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Diffstat (limited to 'media/openmax_dl/dl/sp')
16 files changed, 0 insertions, 10508 deletions
diff --git a/media/openmax_dl/dl/sp/api/armSP.h b/media/openmax_dl/dl/sp/api/armSP.h deleted file mode 100644 index f615a87c7a..0000000000 --- a/media/openmax_dl/dl/sp/api/armSP.h +++ /dev/null @@ -1,92 +0,0 @@ -/* - * Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. - * - * Use of this source code is governed by a BSD-style license - * that can be found in the LICENSE file in the root of the source - * tree. An additional intellectual property rights grant can be found - * in the file PATENTS. All contributing project authors may - * be found in the AUTHORS file in the root of the source tree. - * - * This file was originally licensed as follows. It has been - * relicensed with permission from the copyright holders. - */ - -/** - * - * File Name: armSP.h - * OpenMAX DL: v1.0.2 - * Last Modified Revision: 7014 - * Last Modified Date: Wed, 01 Aug 2007 - * - * (c) Copyright 2007-2008 ARM Limited. All Rights Reserved. - * - * - * - * File: armSP.h - * Brief: Declares API's/Basic Data types used across the OpenMAX Signal Processing domain - * - */ -#ifndef _armSP_H_ -#define _armSP_H_ - -#include "dl/api/omxtypes.h" - -#ifdef __cplusplus -extern "C" { -#endif - -/** FFT Specific declarations */ -extern OMX_S32 armSP_FFT_S32TwiddleTable[1026]; -extern OMX_F32 armSP_FFT_F32TwiddleTable[]; - -typedef struct ARMsFFTSpec_SC32_Tag -{ - OMX_U32 N; - OMX_U16 *pBitRev; - OMX_SC32 *pTwiddle; - OMX_SC32 *pBuf; -}ARMsFFTSpec_SC32; - - -typedef struct ARMsFFTSpec_SC16_Tag -{ - OMX_U32 N; - OMX_U16 *pBitRev; - OMX_SC16 *pTwiddle; - OMX_SC16 *pBuf; -}ARMsFFTSpec_SC16; - -typedef struct ARMsFFTSpec_R_SC32_Tag -{ - OMX_U32 N; - OMX_U16 *pBitRev; - OMX_SC32 *pTwiddle; - OMX_S32 *pBuf; -}ARMsFFTSpec_R_SC32; - -typedef struct ARMsFFTSpec_R_FC32_Tag -{ - OMX_U32 N; - OMX_U16* pBitRev; - OMX_FC32* pTwiddle; - OMX_F32* pBuf; -} ARMsFFTSpec_R_FC32; - -typedef struct ARMsFFTSpec_FC32_Tag -{ - OMX_U32 N; - OMX_U16* pBitRev; - OMX_FC32* pTwiddle; - OMX_FC32* pBuf; -} ARMsFFTSpec_FC32; - -#ifdef __cplusplus -} -#endif - -#endif - -/*End of File*/ - - - diff --git a/media/openmax_dl/dl/sp/api/omxSP.h b/media/openmax_dl/dl/sp/api/omxSP.h deleted file mode 100644 index f2a3f5db67..0000000000 --- a/media/openmax_dl/dl/sp/api/omxSP.h +++ /dev/null @@ -1,2620 +0,0 @@ -/** - * File: omxSP.h - * Brief: OpenMAX DL v1.0.2 - Signal Processing library - * - * Copyright (c) 2005-2008,2015 The Khronos Group Inc. - * - * Permission is hereby granted, free of charge, to any person obtaining a - * copy of this software and/or associated documentation files (the - * "Materials"), to deal in the Materials without restriction, including - * without limitation the rights to use, copy, modify, merge, publish, - * distribute, sublicense, and/or sell copies of the Materials, and to - * permit persons to whom the Materials are furnished to do so, subject to - * the following conditions: - * - * The above copyright notice and this permission notice shall be included - * in all copies or substantial portions of the Materials. - * - * MODIFICATIONS TO THIS FILE MAY MEAN IT NO LONGER ACCURATELY REFLECTS - * KHRONOS STANDARDS. THE UNMODIFIED, NORMATIVE VERSIONS OF KHRONOS - * SPECIFICATIONS AND HEADER INFORMATION ARE LOCATED AT - * https://www.khronos.org/registry/ - * - * THE MATERIALS ARE PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, - * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF - * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. - * IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY - * CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, - * TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE - * MATERIALS OR THE USE OR OTHER DEALINGS IN THE MATERIALS. - * - */ - -/* *****************************************************************************************/ - -#ifndef _OMXSP_H_ -#define _OMXSP_H_ - -#include "dl/api/omxtypes.h" - -#ifdef __cplusplus -extern "C" { -#endif - - -/* 2.1 Vendor-Specific FFT Data Structures */ - typedef void OMXFFTSpec_C_SC16; - typedef void OMXFFTSpec_C_SC32; - typedef void OMXFFTSpec_R_S16S32; - typedef void OMXFFTSpec_R_S16; - typedef void OMXFFTSpec_R_S32; - typedef void OMXFFTSpec_R_F32; - typedef void OMXFFTSpec_C_FC32; - -/** - * Function: omxSP_Copy_S16 (2.2.1.1.1) - * - * Description: - * Copies the len elements of the vector pointed to by pSrcinto the len - * elements of the vector pointed to by pDst. That is: - * pDst[i] = pSrc[i], for (i=0, 1, ..., len-1) - * - * Input Arguments: - * - * pSrc - pointer to the source vector - * len - number of elements contained in the source and destination vectors - * - * Output Arguments: - * - * pDst - pointer to the destination vector - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments detected; returned if one or more of - * the following is true: - * - pSrc or pDst is NULL - * - len < 0 - * - */ -OMXResult omxSP_Copy_S16 ( - const OMX_S16 *pSrc, - OMX_S16 *pDst, - OMX_INT len -); - - - -/** - * Function: omxSP_DotProd_S16 (2.2.2.1.1) - * - * Description: - * Calculates the dot product of the two input vectors. This function does - * not perform scaling. The internal accumulator width must be at least 32 - * bits. If any of the partially accumulated values exceeds the range of a - * signed 32-bit integer then the result is undefined. - * - * Input Arguments: - * - * pSrc1 - pointer to the first input vector; must be aligned on an 8-byte - * boundary. - * pSrc2 - pointer to the second input vector; must be aligned on an 8-byte - * boundary. - * len - length of the vectors in pSrc1 and pSrc2 - * - * Output Arguments: - * - * Return Value: - * - * The dot product result Note: this function returns the actual result - * rather than the standard OMXError. - * - */ -OMX_S32 omxSP_DotProd_S16 ( - const OMX_S16 *pSrc1, - const OMX_S16 *pSrc2, - OMX_INT len -); - - - -/** - * Function: omxSP_DotProd_S16_Sfs (2.2.2.1.2) - * - * Description: - * Calculates the dot product of the two input signals with output scaling - * and saturation, i.e., the result is multiplied by two to the power of the - * negative (-)scalefactor (scaled) prior to return. The result is saturated - * with rounding if the scaling operation produces a value outside the range - * of a signed 32-bit integer. Rounding behavior is defined in section 1.6.7 - * Integer Scaling and Rounding Conventions. The internal accumulator width - * must be at least 32 bits. The result is undefined if any of the partially - * accumulated values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrc1 - pointer to the first input vector; must be aligned on an 8-byte - * boundary. - * pSrc2 - pointer to the second input vector; must be aligned on an 8-byte - * boundary. - * len - length of the vectors in pSrc1 and pSrc2 - * scaleFactor - integer scalefactor - * - * Output Arguments: - * - * Return Value: - * - * The dot product result Note: This function returns the actual result - * rather than the standard OMXError. - * - */ -OMX_S32 omxSP_DotProd_S16_Sfs ( - const OMX_S16 *pSrc1, - const OMX_S16 *pSrc2, - OMX_INT len, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_BlockExp_S16 (2.2.2.2.2) - * - * Description: - * Block exponent calculation for 16-bit and 32-bit signals (count leading - * sign bits). These functions compute the number of extra sign bits of all - * values in the 16-bit and 32-bit input vector pSrc and return the minimum - * sign bit count. This is also the maximum shift value that could be used in - * scaling the block of data. The functions BlockExp_S16 and - * BlockExp_S32 return the values 15 and 31, respectively, for input vectors in - * which all entries are equal to zero. - * - * Note: These functions differ from other DL functions by not returning the - * standard OMXError but the actual result. - * - * Input Arguments: - * - * pSrc - pointer to the input vector - * len - number of elements contained in the input and output - * vectors (0 < len < 65536) - * - * Output Arguments: - * - * none - * - * Return Value: - * - * Maximum exponent that may be used in scaling - * - */ -OMX_INT omxSP_BlockExp_S16 ( - const OMX_S16 *pSrc, - OMX_INT len -); - - - -/** - * Function: omxSP_BlockExp_S32 (2.2.2.2.2) - * - * Description: - * Block exponent calculation for 16-bit and 32-bit signals (count leading - * sign bits). These functions compute the number of extra sign bits of all - * values in the 16-bit and 32-bit input vector pSrc and return the minimum - * sign bit count. This is also the maximum shift value that could be used in - * scaling the block of data. The functions BlockExp_S16 and - * BlockExp_S32 return the values 15 and 31, respectively, for input vectors in - * which all entries are equal to zero. - * - * Note: These functions differ from other DL functions by not returning the - * standard OMXError but the actual result. - * - * Input Arguments: - * - * pSrc - pointer to the input vector - * len - number of elements contained in the input and output - * vectors (0 < len < 65536) - * - * Output Arguments: - * - * none - * - * Return Value: - * - * Maximum exponent that may be used in scaling - * - */ -OMX_INT omxSP_BlockExp_S32 ( - const OMX_S32 *pSrc, - OMX_INT len -); - - - -/** - * Function: omxSP_FIR_Direct_S16 (2.2.3.1.1) - * - * Description: - * Block FIR filtering for 16-bit data type. This function applies the - * FIR filter defined by the coefficient vector pTapsQ15 to a vector of - * input data. The result is saturated with rounding if the operation - * produces a value outside the range of a signed 16-bit integer. - * Rounding behavior is defined in: - * section 1.6.7 "Integer Scaling and Rounding Conventions". - * The internal accumulator width must be at least 32 bits. The result - * is undefined if any of the partially accumulated values exceeds the - * range of a signed 32-bit integer. - * - * - * Input Arguments: - * - * pSrc - pointer to the vector of input samples to which the - * filter is applied - * sampLen - the number of samples contained in the input and output - * vectors - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k <tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * - * Output Arguments: - * - * pDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pSrc, - * - pDst, - * - pSrcDst, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - samplen < 0 - * - tapslen < 1 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen). - * - */ -OMXResult omxSP_FIR_Direct_S16 ( - const OMX_S16 *pSrc, - OMX_S16 *pDst, - OMX_INT sampLen, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex -); - - - -/** - * Function: omxSP_FIR_Direct_S16_I (2.2.3.1.1) - * - * Description: - * Block FIR filtering for 16-bit data type. This function applies the - * FIR filter defined by the coefficient vector pTapsQ15 to a vector of - * input data. The result is saturated with rounding if the operation - * produces a value outside the range of a signed 16-bit integer. - * Rounding behavior is defined in: - * section 1.6.7 "Integer Scaling and Rounding Conventions". - * The internal accumulator width must be at least 32 bits. The result - * is undefined if any of the partially accumulated values exceeds the - * range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrcDst - pointer to the vector of input samples to which the - * filter is applied - * sampLen - the number of samples contained in the input and output - * vectors - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k <tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * - * Output Arguments: - * - * pSrcDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pSrc, - * - pDst, - * - pSrcDst, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - samplen < 0 - * - tapslen < 1 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen). - * - */ -OMXResult omxSP_FIR_Direct_S16_I ( - OMX_S16 *pSrcDst, - OMX_INT sampLen, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex -); - - - -/** - * Function: omxSP_FIR_Direct_S16_Sfs (2.2.3.1.1) - * - * Description: - * Block FIR filtering for 16-bit data type. This function applies - * the FIR filter defined by the coefficient vector pTapsQ15 to a - * vector of input data. The output is multiplied by 2 to the negative - * power of scalefactor (i.e., 2^-scalefactor) before returning to the caller. - * Scaling and rounding conventions are defined in section 1.6.7. - * The internal accumulator width must be at least 32 bits. - * The result is undefined if any of the partially accumulated - * values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrc - pointer to the vector of input samples to which the - * filter is applied - * sampLen - the number of samples contained in the input and output - * vectors - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k <tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * scaleFactor - saturation fixed scalefactor - * - * Output Arguments: - * - * pDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pSrc, - * - pDst, - * - pSrcDst, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - samplen < 0 - * - tapslen < 1 - * - scaleFactor < 0 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen). - * - */ -OMXResult omxSP_FIR_Direct_S16_Sfs ( - const OMX_S16 *pSrc, - OMX_S16 *pDst, - OMX_INT sampLen, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_FIR_Direct_S16_ISfs (2.2.3.1.1) - * - * Description: - * Block FIR filtering for 16-bit data type. This function applies - * the FIR filter defined by the coefficient vector pTapsQ15 to a - * vector of input data. The output is multiplied by 2 to the negative - * power of scalefactor (i.e., 2^-scalefactor) before returning to the caller. - * Scaling and rounding conventions are defined in section 1.6.7. - * The internal accumulator width must be at least 32 bits. - * The result is undefined if any of the partially accumulated - * values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrcDst - pointer to the vector of input samples to which the - * filter is applied - * sampLen - the number of samples contained in the input and output - * vectors - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k <tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * scaleFactor - saturation fixed scalefactor - * - * Output Arguments: - * - * pSrcDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pSrc, - * - pDst, - * - pSrcDst, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - samplen < 0 - * - tapslen < 1 - * - scaleFactor < 0 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen). - * - */ -OMXResult omxSP_FIR_Direct_S16_ISfs ( - OMX_S16 *pSrcDst, - OMX_INT sampLen, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_FIROne_Direct_S16 (2.2.3.1.2) - * - * Description: - * Single-sample FIR filtering for 16-bit data type. These functions apply - * the FIR filter defined by the coefficient vector pTapsQ15 to a single - * sample of input data. The result is saturated with rounding if the - * operation produces a value outside the range of a signed 16-bit integer. - * Rounding behavior is defined in: - * section 1.6.7 "Integer Scaling and Rounding Conventions". - * The internal accumulator width must be at least 32 bits. The result is - * undefined if any of the partially accumulated values exceeds the range of a - * signed 32-bit integer. - * - * Input Arguments: - * - * val - the single input sample to which the filter is - * applied. - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (as defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k < tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * - * Output Arguments: - * - * pResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pResult, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - tapslen < 1 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen) - * - */ -OMXResult omxSP_FIROne_Direct_S16 ( - OMX_S16 val, - OMX_S16 *pResult, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex -); - - - -/** - * Function: omxSP_FIROne_Direct_S16_I (2.2.3.1.2) - * - * Description: - * Single-sample FIR filtering for 16-bit data type. These functions apply - * the FIR filter defined by the coefficient vector pTapsQ15 to a single - * sample of input data. The result is saturated with rounding if the - * operation produces a value outside the range of a signed 16-bit integer. - * Rounding behavior is defined in: - * section 1.6.7 "Integer Scaling and Rounding Conventions". - * The internal accumulator width must be at least 32 bits. The result is - * undefined if any of the partially accumulated values exceeds the range of a - * signed 32-bit integer. - * - * Input Arguments: - * - * pValResult - pointer to the single input sample to which the filter is - * applied. - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (as defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k < tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * - * Output Arguments: - * - * pValResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pValResult, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - tapslen < 1 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen) - * - */ -OMXResult omxSP_FIROne_Direct_S16_I ( - OMX_S16 *pValResult, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex -); - - - -/** - * Function: omxSP_FIROne_Direct_S16_Sfs (2.2.3.1.2) - * - * Description: - * Single-sample FIR filtering for 16-bit data type. These functions apply - * the FIR filter defined by the coefficient vector pTapsQ15 to a single - * sample of input data. The output is multiplied by 2 to the negative power - * of scalefactor (i.e., 2^-scalefactor) before returning to the user. - * Scaling and rounding conventions are defined in section 1.6.7. - * The internal accumulator width must be at least 32 bits. - * The result is undefined if any of the partially accumulated values exceeds - * the range of a signed 32-bit integer. - * - * Input Arguments: - * - * val - the single input sample to which the filter is - * applied. - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (as defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k < tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * scaleFactor - saturation fixed scaleFactor - * - * Output Arguments: - * - * pResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pResult, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - tapslen < 1 - * - scaleFactor < 0 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen) - * - */ -OMXResult omxSP_FIROne_Direct_S16_Sfs ( - OMX_S16 val, - OMX_S16 *pResult, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_FIROne_Direct_S16_ISfs (2.2.3.1.2) - * - * Description: - * Single-sample FIR filtering for 16-bit data type. These functions apply - * the FIR filter defined by the coefficient vector pTapsQ15 to a single - * sample of input data. The output is multiplied by 2 to the negative power - * of scalefactor (i.e., 2^-scalefactor) before returning to the user. - * Scaling and rounding conventions are defined in section 1.6.7. - * The internal accumulator width must be at least 32 bits. - * The result is undefined if any of the partially accumulated values exceeds - * the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pValResult - the pointer to a single input sample to which the filter is - * applied. - * pTapsQ15 - pointer to the vector that contains the filter coefficients, - * represented in Q0.15 format (as defined in section 1.6.5). Given - * that: - * -32768 = pTapsQ15(k) < 32768, - * 0 = k < tapsLen, - * the range on the actual filter coefficients is -1 = bK <1, and - * therefore coefficient normalization may be required during the - * filter design process. - * tapsLen - the number of taps, or, equivalently, the filter order + 1 - * pDelayLine - pointer to the 2.tapsLen -element filter memory buffer - * (state). The user is responsible for allocation, initialization, - * and de-allocation. The filter memory elements are initialized to - * zero in most applications. - * pDelayLineIndex - pointer to the filter memory index that is maintained - * internally by the function. The user should initialize the value - * of this index to zero. - * scaleFactor - saturation fixed scaleFactor - * - * Output Arguments: - * - * pValResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - One or more of the following pointers is NULL: - * - pValResult, - * - pTapsQ15, - * - pDelayLine, or - * - pDelayLineIndex - * - tapslen < 1 - * - scaleFactor < 0 - * - *pDelayLineIndex < 0 or *pDelayLineIndex >= (2 * tapslen) - * - */ -OMXResult omxSP_FIROne_Direct_S16_ISfs ( - OMX_S16 *pValResult, - const OMX_S16 *pTapsQ15, - OMX_INT tapsLen, - OMX_S16 *pDelayLine, - OMX_INT *pDelayLineIndex, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_IIR_Direct_S16 (2.2.3.2.1) - * - * Description: - * Block IIR filtering for 16-bit data. This function applies the direct form - * II IIR filter defined by the coefficient vector pTaps to a vector of input - * data. The internal accumulator width must be at least 32 bits, and the - * result is saturated if the operation produces a value outside the range of - * a signed 16-bit integer, i.e., the output will saturate to 0x8000 (-32768) - * for a negative overflow or 0x7fff (32767) for a positive overflow. The - * result is undefined if any of the partially accumulated values exceeds the - * range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrc - pointer to the vector of input samples to which the - * filter is applied - * len - the number of samples contained in both the input and output - * vectors - * pTaps - pointer to the 2L+2-element vector that contains the combined - * numerator and denominator filter coefficients from the system - * transfer function, H(z). Coefficient scaling and coefficient - * vector organization should follow the conventions described - * above. The value of the coefficient scaleFactor exponent must be - * non-negative (sf=0). - * order - the maximum of the degrees of the numerator and denominator - * coefficient polynomials from the system transfer function, H(z). - * In the notation of section 2.2.3.2, the parameter - * order=max(K,M)=L gives the maximum delay, in samples, used to - * compute each output sample. - * pDelayLine - pointer to the L-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: - * - pSrc, - * - pDst, - * - pTaps, or - * - pDelayLine. - * - len < 0 - * - pTaps[order+1] < 0 (negative scaling) - * - order < 1 - * - */ -OMXResult omxSP_IIR_Direct_S16 ( - const OMX_S16 *pSrc, - OMX_S16 *pDst, - OMX_INT len, - const OMX_S16 *pTaps, - OMX_INT order, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIR_Direct_S16_I (2.2.3.2.1) - * - * Description: - * Block IIR filtering for 16-bit data. This function applies the direct form - * II IIR filter defined by the coefficient vector pTaps to a vector of input - * data. The internal accumulator width must be at least 32 bits, and the - * result is saturated if the operation produces a value outside the range of - * a signed 16-bit integer, i.e., the output will saturate to 0x8000 (-32768) - * for a negative overflow or 0x7fff (32767) for a positive overflow. The - * result is undefined if any of the partially accumulated values exceeds the - * range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrcDst - pointer to the vector of input samples to which the - * filter is applied - * len - the number of samples contained in both the input and output - * vectors - * pTaps - pointer to the 2L+2-element vector that contains the combined - * numerator and denominator filter coefficients from the system - * transfer function, H(z). Coefficient scaling and coefficient - * vector organization should follow the conventions described - * above. The value of the coefficient scaleFactor exponent must be - * non-negative (sf>=0). - * order - the maximum of the degrees of the numerator and denominator - * coefficient polynomials from the system transfer function, H(z). - * In the notation of section 2.2.3.2, the parameter - * order=max(K,M)=L gives the maximum delay, in samples, used to - * compute each output sample. - * pDelayLine - pointer to the L-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pSrcDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: - * - pSrcDst, - * - pTaps, or - * - pDelayLine. - * - len < 0 - * - pTaps[order+1] < 0 (negative scaling) - * - order < 1 - * - */ -OMXResult omxSP_IIR_Direct_S16_I ( - OMX_S16 *pSrcDst, - OMX_INT len, - const OMX_S16 *pTaps, - OMX_INT order, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIROne_Direct_S16 (2.2.3.2.2) - * - * Description: - * Single sample IIR filtering for 16-bit data. This function applies the - * direct form II IIR filter defined by the coefficient vector pTaps to a - * single sample of input data. The internal accumulator width must be at - * least 32 bits, and the result is saturated if the operation produces a - * value outside the range of a signed 16-bit integer, i.e., the output will - * saturate to 0x8000 (-32768) for a negative overflow or 0x7fff (32767) for a - * positive overflow. The result is undefined if any of the partially - * accumulated values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * val - the single input sample to which the filter is - * applied. - * pTaps - pointer to the 2L+2 -element vector that contains the combined - * numerator and denominator filter coefficients from the system - * transfer function, H(z). Coefficient scaling and coefficient - * vector organization should follow the conventions described - * above. The value of the coefficient scaleFactor exponent must be - * non-negative (sf>=0). - * order - the maximum of the degrees of the numerator and denominator - * coefficient polynomials from the system transfer function, H(z). - * In the notation of section 2.2.3.2, the parameter - * order=max(K,M)=L gives the maximum delay, in samples, used to - * compute each output sample. - * pDelayLine - pointer to the L-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: pResult, - * pTaps, or pDelayLine. - * - order < 1 - * - pTaps[order+1] < 0 (negative scaling) - * - */ -OMXResult omxSP_IIROne_Direct_S16 ( - OMX_S16 val, - OMX_S16 *pResult, - const OMX_S16 *pTaps, - OMX_INT order, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIROne_Direct_S16_I (2.2.3.2.2) - * - * Description: - * Single sample IIR filtering for 16-bit data. This function applies the - * direct form II IIR filter defined by the coefficient vector pTaps to a - * single sample of input data. The internal accumulator width must be at - * least 32 bits, and the result is saturated if the operation produces a - * value outside the range of a signed 16-bit integer, i.e., the output will - * saturate to 0x8000 (-32768) for a negative overflow or 0x7fff (32767) for a - * positive overflow. The result is undefined if any of the partially - * accumulated values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pValResult - pointer to the single input sample to which the filter is - * applied. - * pTaps - pointer to the 2L+2 -element vector that contains the combined - * numerator and denominator filter coefficients from the system - * transfer function, H(z). Coefficient scaling and coefficient - * vector organization should follow the conventions described - * above. The value of the coefficient scaleFactor exponent must be - * non-negative (sf>=0). - * order - the maximum of the degrees of the numerator and denominator - * coefficient polynomials from the system transfer function, H(z). - * In the notation of section 2.2.3.2, the parameter - * order=max(K,M)=L gives the maximum delay, in samples, used to - * compute each output sample. - * pDelayLine - pointer to the L-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pValResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: - * pValResult, pTaps, or pDelayLine. - * - order < 1 - * - pTaps[order+1] < 0 (negative scaling) - * - */ -OMXResult omxSP_IIROne_Direct_S16_I ( - OMX_S16 *pValResult, - const OMX_S16 *pTaps, - OMX_INT order, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIR_BiQuadDirect_S16 (2.2.3.3.1) - * - * Description: - * Block biquad IIR filtering for 16-bit data type. This function applies the - * direct form II biquad IIR cascade defined by the coefficient vector pTaps - * to a vector of input data. The internal accumulator width must be at least - * 32 bits, and the result is saturated if the operation produces a value - * outside the range of a signed 16-bit integer, i.e., the output will - * saturate to 0x8000 (-32768) for a negative overflow or 0x7fff (32767) for a - * positive overflow. The result is undefined if any of the partially - * accumulated values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrc - pointer to the vector of input samples to which the - * filter is applied - * len - the number of samples contained in both the input and output - * vectors - * pTaps - pointer to the 6P -element vector that contains the combined - * numerator and denominator filter coefficients from the biquad - * cascade. Coefficient scaling and coefficient vector organization - * should follow the conventions described above. The value of the - * coefficient scaleFactor exponent must be non-negative. (sfp>=0). - * numBiquad - the number of biquads contained in the IIR filter cascade: - * (P) - * pDelayLine - pointer to the 2P -element filter memory buffer (state). - * The user is responsible for allocation, initialization, and - * de-allocation. The filter memory elements are initialized to - * zero in most applications. - * - * Output Arguments: - * - * pDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: pSrc, pDst, - * pTaps, or pDelayLine. - * - len < 0 - * - numBiquad < 1 - * - pTaps[3+n*6] < 0, for 0 <= n < numBiquad (negative scaling) - * - */ -OMXResult omxSP_IIR_BiQuadDirect_S16 ( - const OMX_S16 *pSrc, - OMX_S16 *pDst, - OMX_INT len, - const OMX_S16 *pTaps, - OMX_INT numBiquad, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIR_BiQuadDirect_S16_I (2.2.3.3.1) - * - * Description: - * Block biquad IIR filtering for 16-bit data type. This function applies the - * direct form II biquad IIR cascade defined by the coefficient vector pTaps - * to a vector of input data. The internal accumulator width must be at least - * 32 bits, and the result is saturated if the operation produces a value - * outside the range of a signed 16-bit integer, i.e., the output will - * saturate to 0x8000 (-32768) for a negative overflow or 0x7fff (32767) for a - * positive overflow. The result is undefined if any of the partially - * accumulated values exceeds the range of a signed 32-bit integer. - * - * Input Arguments: - * - * pSrcDst - pointer to the vector of input samples to which the - * filter is applied - * len - the number of samples contained in both the input and output - * vectors - * pTaps - pointer to the 6P -element vector that contains the combined - * numerator and denominator filter coefficients from the biquad - * cascade. Coefficient scaling and coefficient vector organization - * should follow the conventions described above. The value of the - * coefficient scaleFactor exponent must be non-negative. (sfp>=0). - * numBiquad - the number of biquads contained in the IIR filter cascade: - * (P) - * pDelayLine - pointer to the 2P -element filter memory buffer (state). - * The user is responsible for allocation, initialization, and - * de-allocation. The filter memory elements are initialized to - * zero in most applications. - * - * Output Arguments: - * - * pSrcDst - pointer to the vector of filtered output samples - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: - * pSrcDst, pTaps, or pDelayLine. - * - len < 0 - * - numBiquad < 1 - * - pTaps[3+n*6] < 0, for 0 <= n < numBiquad (negative scaling) - * - */ -OMXResult omxSP_IIR_BiQuadDirect_S16_I ( - OMX_S16 *pSrcDst, - OMX_INT len, - const OMX_S16 *pTaps, - OMX_INT numBiquad, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIROne_BiQuadDirect_S16 (2.2.3.3.2) - * - * Description: - * Single-sample biquad IIR filtering for 16-bit data type. This function - * applies the direct form II biquad IIR cascade defined by the coefficient - * vector pTaps to a single sample of input data. The internal accumulator - * width must be at least 32 bits, and the result is saturated if the - * operation produces a value outside the range of a signed 16-bit integer, - * i.e., the output will saturate to 0x8000 (-32768) for a negative overflow - * or 0x7fff (32767) for a positive overflow. The result is undefined if any - * of the partially accumulated values exceeds the range of a signed 32-bit - * integer. - * - * Input Arguments: - * - * val - the single input sample to which the filter is - * applied. - * pTaps - pointer to the 6P-element vector that contains the combined - * numerator and denominator filter coefficients from the biquad - * cascade. Coefficient scaling and coefficient vector organization - * should follow the conventions described above. The value of the - * coefficient scalefactor exponent must be non-negative: (sfp>=0). - * numBiquad - the number of biquads contained in the IIR filter cascade: - * (P) - * pDelayLine - pointer to the 2p-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: pResult, - * pValResult, pTaps, or pDelayLine. - * - numBiquad < 1 - * - pTaps[3+n*6] < 0, for 0 <= n < numBiquad (negative scaling) - * - */ -OMXResult omxSP_IIROne_BiQuadDirect_S16 ( - OMX_S16 val, - OMX_S16 *pResult, - const OMX_S16 *pTaps, - OMX_INT numBiquad, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_IIROne_BiQuadDirect_S16_I (2.2.3.3.2) - * - * Description: - * Single-sample biquad IIR filtering for 16-bit data type. This function - * applies the direct form II biquad IIR cascade defined by the coefficient - * vector pTaps to a single sample of input data. The internal accumulator - * width must be at least 32 bits, and the result is saturated if the - * operation produces a value outside the range of a signed 16-bit integer, - * i.e., the output will saturate to 0x8000 (-32768) for a negative overflow - * or 0x7fff (32767) for a positive overflow. The result is undefined if any - * of the partially accumulated values exceeds the range of a signed 32-bit - * integer. - * - * Input Arguments: - * - * pValResult - pointer to the single input sample to which the filter is - * applied. - * pTaps - pointer to the 6P-element vector that contains the combined - * numerator and denominator filter coefficients from the biquad - * cascade. Coefficient scaling and coefficient vector organization - * should follow the conventions described above. The value of the - * coefficient scalefactor exponent must be non-negative: (sfp>=0). - * numBiquad - the number of biquads contained in the IIR filter cascade: - * (P) - * pDelayLine - pointer to the 2p-element filter memory buffer (state). The - * user is responsible for allocation, initialization, and - * deallocation. The filter memory elements are initialized to zero - * in most applications. - * - * Output Arguments: - * - * pValResult - pointer to the filtered output sample - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: - * pValResult, pTaps, or pDelayLine. - * - numBiquad < 1 - * - pTaps[3+n*6] < 0, for 0 <= n < numBiquad (negative scaling) - * - */ -OMXResult omxSP_IIROne_BiQuadDirect_S16_I ( - OMX_S16 *pValResult, - const OMX_S16 *pTaps, - OMX_INT numBiquad, - OMX_S32 *pDelayLine -); - - - -/** - * Function: omxSP_FilterMedian_S32 (2.2.3.4.1) - * - * Description: - * This function computes the median over the region specified by the median - * mask for the every element of the input array. The median outputs are - * stored in the corresponding elements of the output vector. - * - * Input Arguments: - * - * pSrc - pointer to the input vector - * len - number of elements contained in the input and output vectors (0 < - * len < 65536) - * maskSize - median mask size; if an even value is specified, the function - * subtracts 1 and uses the odd value of the filter mask for median - * filtering (0 < maskSize < 256) - * - * Output Arguments: - * - * pDst - pointer to the median-filtered output vector - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - one or more of the following pointers is NULL: pSrc, pDst. - * - len < 0 - * - maskSize < 1 or maskSize> 255 - * OMX_StsSP_EvenMedianMaskSizeErr - even mask size replaced by odd mask - * size - * - */ -OMXResult omxSP_FilterMedian_S32 ( - const OMX_S32 *pSrc, - OMX_S32 *pDst, - OMX_INT len, - OMX_INT maskSize -); - - - -/** - * Function: omxSP_FilterMedian_S32_I (2.2.3.4.1) - * - * Description: - * This function computes the median over the region specified by the median - * mask for the every element of the input array. The median outputs are - * stored in the corresponding elements of the output vector. - * - * Input Arguments: - * - * pSrcDst - pointer to the input vector - * len - number of elements contained in the input and output vectors (0 < - * len < 65536) - * maskSize - median mask size; if an even value is specified, the function - * subtracts 1 and uses the odd value of the filter mask for median - * filtering (0 < maskSize < 256) - * - * Output Arguments: - * - * pSrcDst - pointer to the median-filtered output vector - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pSrcDst is NULL. - * - len < 0 - * - maskSize < 1 or maskSize> 255 - * OMX_StsSP_EvenMedianMaskSizeErr - even mask size replaced by odd mask - * size - * - */ -OMXResult omxSP_FilterMedian_S32_I ( - OMX_S32 *pSrcDst, - OMX_INT len, - OMX_INT maskSize -); - - - -/** - * Function: omxSP_FFTInit_C_SC16 (2.2.4.1.2) - * - * Description: - * These functions initialize the specification structures required for the - * complex FFT and IFFT functions. Desired block length is specified as an - * input. The function <FFTInit_C_SC16> is used to initialize the - * specification structures for functions <FFTFwd_CToC_SC16_Sfs> and - * <FFTInv_CToC_SC16_Sfs>. - * - * Memory for the specification structure *pFFTSpec - * must be allocated prior to calling these functions and should be 4-byte - * aligned for omxSP_FFTInit_C_SC16. - * - * The space required for *pFFTSpec, in bytes, can be - * determined using <FFTGetBufSize_C_SC16>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; - * valid in the range [0,12] - * - * Output Arguments: - * - * pFFTSpec - pointer to initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr -no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTSpec is either NULL or violates the 4-byte alignment - * restrictions - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTInit_C_SC16 ( - OMXFFTSpec_C_SC16 *pFFTSpec, - OMX_INT order -); - - - -/** - * Function: omxSP_FFTInit_C_SC32 (2.2.4.1.2) - * - * Description: - * These functions initialize the specification structures required for the - * complex FFT and IFFT functions. Desired block length is specified as an - * input. The function <FFTInit_C_SC32> is used to initialize - * the specification structures for the functions <FFTFwd_CToC_SC32_Sfs> and - * <FFTInv_CToC_SC32_Sfs>. - * - * Memory for the specification structure *pFFTSpec must be allocated prior - * to calling these functions and should be 8-byte aligned for - * omxSP_FFTInit_C_SC32. - * - * The space required for *pFFTSpec, in bytes, can be - * determined using <FFTGetBufSize_C_SC32>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [0,12] - * - * Output Arguments: - * - * pFFTSpec - pointer to initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr -no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTInit_C_SC32 ( - OMXFFTSpec_C_SC32 *pFFTSpec, - OMX_INT order -); - -/** - * Function: omxSP_FFTInit_C_FC32 (2.2.4.1.2) - * - * Description: - * These functions initialize the specification structures required for the - * complex FFT and IFFT functions. Desired block length is specified as an - * input. The function <FFTInit_C_FC32> is used to initialize - * the specification structures for the functions <FFTFwd_CToC_FC32_Sfs> and - * <FFTInv_CToC_FC32_Sfs>. - * - * Memory for the specification structure *pFFTSpec must be allocated prior - * to calling these functions and should be 8-byte aligned for - * omxSP_FFTInit_C_FC32. - * - * The space required for *pFFTSpec, in bytes, can be - * determined using <FFTGetBufSize_C_FC32>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [1,15] - * - * Output Arguments: - * - * pFFTSpec - pointer to initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr -no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 1 or order > 15 - * - */ -OMXResult omxSP_FFTInit_C_FC32( - OMXFFTSpec_C_FC32* pFFTSpec, - OMX_INT order -); - - - -/** - * Function: omxSP_FFTInit_R_S16S32 (2.2.4.1.4) - * - * Description: - * These functions initialize specification structures required for the real - * FFT and IFFT functions. The function <FFTInit_R_S16S32> is used to - * initialize the specification structures for functions - * <FFTFwd_RToCCS_S16S32_Sfs> and <FFTInv_CCSToR_S32S16_Sfs>. - * - * Memory for - * *pFFTFwdSpec must be allocated before calling these functions and should be - * 8-byte aligned. The number of bytes required for *pFFTFwdSpec can be - * determined using <FFTGetBufSize_R_S16S32>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [0,12] - * - * Output Arguments: - * - * pFFTFwdSpec - pointer to the initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTFwdSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTInit_R_S16S32( - OMXFFTSpec_R_S16S32* pFFTFwdSpec, - OMX_INT order -); - - - -/** - * Function: omxSP_FFTInit_R_S16 - * - * Description: - * These functions initialize specification structures required for the real - * FFT and IFFT functions. The function <FFTInit_R_S16> is used - * to initialize the specification structures for functions - * <FFTFwd_RToCCS_S16_Sfs> and <FFTInv_CCSToR_S16_Sfs>. - * - * Memory for *pFFTFwdSpec must be allocated before calling these functions - * and should be 8-byte aligned. - * - * The number of bytes required for *pFFTFwdSpec can be - * determined using <FFTGetBufSize_R_S16>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [1,12] - * - * Output Arguments: - * - * pFFTFwdSpec - pointer to the initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTFwdSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 1 or order > 12 - * - */ -OMXResult omxSP_FFTInit_R_S16 ( - OMXFFTSpec_R_S32*pFFTFwdSpec, - OMX_INT order -); - -/** - * Function: omxSP_FFTInit_R_S32 (2.2.4.1.4) - * - * Description: - * These functions initialize specification structures required for the real - * FFT and IFFT functions. The function <FFTInit_R_S32> is used to initialize - * the specification structures for functions <FFTFwd_RToCCS_S32_Sfs> - * and <FFTInv_CCSToR_S32_Sfs>. - * - * Memory for *pFFTFwdSpec must be allocated before calling these functions - * and should be 8-byte aligned. - * - * The number of bytes required for *pFFTFwdSpec can be - * determined using <FFTGetBufSize_R_S32>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [0,12] - * - * Output Arguments: - * - * pFFTFwdSpec - pointer to the initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTFwdSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTInit_R_S32 ( - OMXFFTSpec_R_S32*pFFTFwdSpec, - OMX_INT order -); - -/** - * Function: omxSP_FFTInit_R_F32 - * - * Description: - * These functions initialize specification structures required for the real - * FFT and IFFT functions. The function <FFTInit_R_F32> is used to initialize - * the specification structures for functions <FFTFwd_RToCCS_F32_Sfs> - * and <FFTInv_CCSToR_F32_Sfs>. - * - * Memory for *pFFTFwdSpec must be allocated before calling these functions - * and should be 8-byte aligned. - * - * The number of bytes required for *pFFTFwdSpec can be - * determined using <FFTGetBufSize_R_F32>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [1,15] - * - * Output Arguments: - * - * pFFTFwdSpec - pointer to the initialized specification structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pFFTFwdSpec is either NULL or violates the 8-byte alignment - * restrictions - * - order < 1 or order > 15 - * - */ -OMXResult omxSP_FFTInit_R_F32( - OMXFFTSpec_R_F32* pFFTFwdSpec, - OMX_INT order -); - -/** - * Function: omxSP_FFTGetBufSize_C_SC16 (2.2.4.1.6) - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order complex FFT and IFFT functions. The function - * <FFTGetBufSize_C_SC16> is used in conjunction with the 16-bit functions - * <FFTFwd_CToC_SC16_Sfs> and <FFTInv_CToC_SC16_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [0,12] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pSize is NULL - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTGetBufSize_C_SC16 ( - OMX_INT order, - OMX_INT *pSize -); - - - -/** - * Function: omxSP_FFTGetBufSize_C_SC32 (2.2.4.1.6) - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order complex FFT and IFFT functions. The function - * <FFTGetBufSize_C_SC32> is used in conjunction with the 32-bit functions - * <FFTFwd_CToC_SC32_Sfs> and <FFTInv_CToC_SC32_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [0,12] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pSize is NULL - * - order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTGetBufSize_C_SC32 ( - OMX_INT order, - OMX_INT *pSize -); - -/** - * Function: omxSP_FFTGetBufSize_C_FC32 - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order complex FFT and IFFT functions. The function - * <FFTGetBufSize_C_FC32> is used in conjunction with the 32-bit functions - * <FFTFwd_CToC_FC32_Sfs> and <FFTInv_CToC_FC32_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the desired block length; valid in the range - * [1,15] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments; returned if one or more of the - * following is true: - * - pSize is NULL - * - order < 1 or order > 15 - * - */ -OMXResult omxSP_FFTGetBufSize_C_FC32( - OMX_INT order, - OMX_INT* pSize -); - - -/** - * Function: omxSP_FFTGetBufSize_R_S16S32 (2.2.4.1.8) - * - * Description: - * order These functions compute the size of the specification structure - * required for the length 2^order real FFT and IFFT functions. The function - * <FFTGetBufSize_R_S16S32> is used in conjunction with the 16-bit functions - * <FFTFwd_RToCCS_S16S32_Sfs> and <FFTInv_CCSToR_S32S16_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the length; valid in the range [0,12] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments The function returns - * OMX_Sts_BadArgErr if one or more of the following is true: - * pSize is NULL - * order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTGetBufSize_R_S16S32( - OMX_INT order, - OMX_INT* pSize -); - - -/** - * Function: omxSP_FFTGetBufSize_R_S16 - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order real FFT and IFFT functions. The function - * <FFTGetBufSize_R_S16> is used in conjunction with the 16-bit - * functions <FFTFwd_RToCCS_S16_Sfs> and <FFTInv_CCSToR_S16_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the length; valid in the range - * [1,12] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments The function returns - * OMX_Sts_BadArgErr if one or more of the following is true: - * pSize is NULL - * order < 1 or order > 12 - * - */ -OMXResult omxSP_FFTGetBufSize_R_S16 ( - OMX_INT order, - OMX_INT *pSize -); - -/** - * Function: omxSP_FFTGetBufSize_R_S32 (2.2.4.1.8) - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order real FFT and IFFT functions. The function - * <FFTGetBufSize_R_S32> is used in conjunction with the 32-bit functions - * <FFTFwd_RToCCS_S32_Sfs> and <FFTInv_CCSToR_S32_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the length; valid in the range [0,12] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments The function returns - * OMX_Sts_BadArgErr if one or more of the following is true: - * pSize is NULL - * order < 0 or order > 12 - * - */ -OMXResult omxSP_FFTGetBufSize_R_S32 ( - OMX_INT order, - OMX_INT *pSize -); - -/** - * Function: omxSP_FFTGetBufSize_R_F32 - * - * Description: - * These functions compute the size of the specification structure - * required for the length 2^order real FFT and IFFT functions. The function - * <FFTGetBufSize_R_F32> is used in conjunction with the 32-bit functions - * <FFTFwd_RToCCS_F32_Sfs> and <FFTInv_CCSToR_F32_Sfs>. - * - * Input Arguments: - * - * order - base-2 logarithm of the length; valid in the range [1,15] - * - * Output Arguments: - * - * pSize - pointer to the number of bytes required for the specification - * structure - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments The function returns - * OMX_Sts_BadArgErr if one or more of the following is true: - * pSize is NULL - * order < 1 or order > 15 - * - */ -OMXResult omxSP_FFTGetBufSize_R_F32( - OMX_INT order, - OMX_INT* pSize -); - - - -/** - * Function: omxSP_FFTFwd_CToC_SC16_Sfs (2.2.4.2.2) - * - * Description: - * Compute an FFT for a complex signal of length of 2^order, - * where 0 <= order <= 12. - * Transform length is determined by the specification structure, which - * must be initialized prior to calling the FFT function using the appropriate - * helper, i.e., <FFTInit_C_sc32> or <FFTInit_C_SC16>. The relationship - * between the input and output sequences can be expressed in terms of the - * DFT, i.e., - * - * X[k] = 2^(-scaleFactor) . SUM[n=0...N-1]x[n].e^(-jnk.2.pi/N) - * k = 0,1,2,..., N-1 - * N = 2^order - * - * Input Arguments: - * pSrc - pointer to the input signal, a complex-valued vector of length 2^order; - * must be aligned on a 32 byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scale factor; the range for is [0,16] - * - * Output Arguments: - * pDst - pointer to the complex-valued output vector, of length 2^order; - * must be aligned on an 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor>16 - * - */ - -OMXResult omxSP_FFTFwd_CToC_SC16_Sfs ( - const OMX_SC16 *pSrc, - OMX_SC16 *pDst, - const OMXFFTSpec_C_SC16 *pFFTSpec, - OMX_INT scaleFactor -); - -OMXResult omxSP_FFTFwd_CToC_SC16_Sfs_neon ( - const OMX_SC16 *pSrc, - OMX_SC16 *pDst, - const OMXFFTSpec_C_SC16 *pFFTSpec, - OMX_INT scaleFactor -); - -/** - * Function: omxSP_FFTFwd_CToC_SC32_Sfs (2.2.4.2.2) - * - * Description: - * Compute an FFT for a complex signal of length of 2^order, - * where 0 <= order <= 12. - * Transform length is determined by the specification structure, which - * must be initialized prior to calling the FFT function using the appropriate - * helper, i.e., <FFTInit_C_sc32> or <FFTInit_C_SC16>. The relationship - * between the input and output sequences can be expressed in terms of the - * DFT, i.e., - * - * X[k] = 2^(-scaleFactor) . SUM[n=0...N-1]x[n].e^(-jnk.2.pi/N) - * k = 0,1,2,..., N-1 - * N = 2^order - * - * Input Arguments: - * pSrc - pointer to the input signal, a complex-valued vector of length 2^order; - * must be aligned on a 32 byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scale factor; the range is [0,32] - * - * Output Arguments: - * pDst - pointer to the complex-valued output vector, of length 2^order; must be - * aligned on an 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTFwd_CToC_SC32_Sfs ( - const OMX_SC32 *pSrc, - OMX_SC32 *pDst, - const OMXFFTSpec_C_SC32 *pFFTSpec, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_FFTInv_CToC_SC16_Sfs (2.2.4.2.4) - * - * Description: - * These functions compute an inverse FFT for a complex signal of length - * of 2^order, where 0 <= order <= 12. Transform length is determined by the - * specification structure, which must be initialized prior to calling the FFT - * function using the appropriate helper, i.e., <FFTInit_C_sc32> or - * <FFTInit_C_SC16>. The relationship between the input and output sequences - * can be expressed in terms of the IDFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input signal, of length 2^order ; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - scale factor of the output. Valid range is [0,16]. - * - * Output Arguments: - * order - * pDst - pointer to the complex-valued output signal, of length 2^order; - * must be aligned on a 32-byte boundary. - * - * Return Value: - * - * Positive value - the shift scale that was performed inside - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor>16 - * - */ -OMXResult omxSP_FFTInv_CToC_SC16_Sfs ( - const OMX_SC16 *pSrc, - OMX_SC16 *pDst, - const OMXFFTSpec_C_SC16 *pFFTSpec, - OMX_INT scaleFactor -); - -OMXResult omxSP_FFTInv_CToC_SC16_Sfs_neon ( - const OMX_SC16 *pSrc, - OMX_SC16 *pDst, - const OMXFFTSpec_C_SC16 *pFFTSpec, - OMX_INT scaleFactor -); - - - - -/** - * Function: omxSP_FFTInv_CToC_SC32_Sfs (2.2.4.2.4) - * - * Description: - * These functions compute an inverse FFT for a complex signal of length - * of 2^order, where 0 <= order <= 12. Transform length is determined by the - * specification structure, which must be initialized prior to calling the FFT - * function using the appropriate helper, i.e., <FFTInit_C_sc32> or - * <FFTInit_C_SC16>. The relationship between the input and output sequences - * can be expressed in terms of the IDFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input signal, of length 2^order ; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - scale factor of the output. Valid range is [0,32]. - * - * Output Arguments: - * order - * pDst - pointer to the complex-valued output signal, of length 2^order; - * must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor>32 - * - */ -OMXResult omxSP_FFTInv_CToC_SC32_Sfs ( - const OMX_SC32 *pSrc, - OMX_SC32 *pDst, - const OMXFFTSpec_C_SC32 *pFFTSpec, - OMX_INT scaleFactor -); - - - -/** - * Function: omxSP_FFTFwd_RToCCS_S16S32_Sfs (2.2.4.4.2) - * - * Description: - * These functions compute an FFT for a real-valued signal of length of 2^order, - * where 0 <= order <= 12. Transform length is determined by the - * specification structure, which must be initialized prior to calling the FFT - * function using the appropriate helper, i.e., <FFTInit_R_S16S32>. - * The relationship between the input and output sequences - * can be expressed in terms of the DFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * The conjugate-symmetric output sequence is represented using a CCS vector, - * which is of length N+2, and is organized as follows: - * - * Index: 0 1 2 3 4 5 . . . N-2 N-1 N N+1 - * Component: R0 0 R1 I1 R2 I2 . . . R[N/2-1] I[N/2-1] R[N/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components - * for FFT bin 'n'. Bins are numbered from 0 to N/2, where N is the FFT length. - * Bin index 0 corresponds to the DC component, and bin index N/2 corresponds to the - * foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the real-valued input sequence, of length 2^order; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scale factor; valid range is [0, 32] - * - * Output Arguments: - * pDst - pointer to output sequence, represented using CCS format, of - * length (2^order)+2; must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments, if one or more of the following is true: - * - one of the pointers pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTFwd_RToCCS_S16S32_Sfs ( - const OMX_S16 *pSrc, - OMX_S32 *pDst, - const OMXFFTSpec_R_S16S32 *pFFTSpec, - OMX_INT scaleFactor -); - - -/** - * Function: omxSP_FFTFwd_RToCCS_S16_Sfs - * - * Description: - * These functions compute an FFT for a real-valued signal of length of 2^order, - * where 0 < order <= 12. Transform length is determined by the - * specification structure, which must be initialized prior to calling the FFT - * function using the appropriate helper, i.e., <FFTInit_R_S16>. - * The relationship between the input and output sequences can - * be expressed in terms of the DFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * The conjugate-symmetric output sequence is represented using a CCS vector, - * which is of length N+2, and is organized as follows: - * - * Index: 0 1 2 3 4 5 . . . N-2 N-1 N N+1 - * Component: R0 0 R1 I1 R2 I2 . . . R[N/2-1] I[N/2-1] R[N/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components - * for FFT bin 'n'. Bins are numbered from 0 to N/2, where N is the FFT length. - * Bin index 0 corresponds to the DC component, and bin index N/2 corresponds to - * the foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the real-valued input sequence, of length 2^order; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scale factor; valid range is [0, 16] - * - * Output Arguments: - * pDst - pointer to output sequence, represented using CCS format, of - * length (2^order)+2; must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments, if one or more of followings is true: - * - one of the pointers pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >16 - * - */ -OMXResult omxSP_FFTFwd_RToCCS_S16_Sfs ( - const OMX_S16* pSrc, - OMX_S16* pDst, - const OMXFFTSpec_R_S16* pFFTSpec, - OMX_INT scaleFactor -); - - -/** - * Function: omxSP_FFTFwd_RToCCS_S32_Sfs (2.2.4.4.2) - * - * Description: - * These functions compute an FFT for a real-valued signal of length of 2^order, - * where 0 <= order <= 12. Transform length is determined by the - * specification structure, which must be initialized prior to calling the FFT - * function using the appropriate helper, i.e., <FFTInit_R_S32>. - * The relationship between the input and output sequences - * can be expressed in terms of the DFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * The conjugate-symmetric output sequence is represented using a CCS vector, - * which is of length N+2, and is organized as follows: - * - * Index: 0 1 2 3 4 5 . . . N-2 N-1 N N+1 - * Component: R0 0 R1 I1 R2 I2 . . . R[N/2-1] I[N/2-1] R[N/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components - * for FFT bin 'n'. Bins are numbered from 0 to N/2, where N is the FFT length. - * Bin index 0 corresponds to the DC component, and bin index N/2 corresponds to the - * foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the real-valued input sequence, of length 2^order; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scale factor; valid range is [0, 32] - * - * Output Arguments: - * pDst - pointer to output sequence, represented using CCS format, of - * length (2^order)+2; must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments, if one or more of the following is true: - * - one of the pointers pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTFwd_RToCCS_S32_Sfs ( - const OMX_S32 *pSrc, - OMX_S32 *pDst, - const OMXFFTSpec_R_S32 *pFFTSpec, - OMX_INT scaleFactor -); - -/** - * Function: omxSP_FFTFwd_CToC_FC32_Sfs (2.2.4.2.2) - * - * Description: - * Compute an FFT for a complex signal of length of 2^order, - * where 0 <= order <= 15. - * Transform length is determined by the specification structure, which - * must be initialized prior to calling the FFT function using the appropriate - * helper, i.e., <FFTInit_C_sc32> or <FFTInit_C_SC16>. The relationship - * between the input and output sequences can be expressed in terms of the - * DFT, i.e., - * - * X[k] = SUM[n=0...N-1]x[n].e^(-jnk.2.pi/N) - * k = 0,1,2,..., N-1 - * N = 2^order - * - * Input Arguments: - * pSrc - pointer to the input signal, a complex-valued vector of length - * 2^order; must be aligned on a 32 byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * - * Output Arguments: - * pDst - pointer to the complex-valued output vector, of length 2^order; - * must be aligned on an 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTFwd_CToC_FC32_Sfs ( - const OMX_FC32 *pSrc, - OMX_FC32 *pDst, - const OMXFFTSpec_C_FC32 *pFFTSpec -); -#ifdef __arm__ -/* - * Non-NEON version - */ -OMXResult omxSP_FFTFwd_CToC_FC32_Sfs_vfp ( - const OMX_FC32 *pSrc, - OMX_FC32 *pDst, - const OMXFFTSpec_C_FC32 *pFFTSpec -); -#endif - -/** - * Function: omxSP_FFTFwd_RToCCS_F32_Sfs - * - * Description: - * These functions compute an FFT for a real-valued signal of length - * of 2^order, where 0 <= order <= 12. Transform length is determined - * by the specification structure, which must be initialized prior to - * calling the FFT function using the appropriate helper, i.e., - * <FFTInit_R_F32>. The relationship between the input and output - * sequences can be expressed in terms of the DFT, i.e.: - * - * x[n] = (2^(-scalefactor)/N) . SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * The conjugate-symmetric output sequence is represented using a CCS vector, - * which is of length N+2, and is organized as follows: - * - * Index: 0 1 2 3 4 5 . . . N-2 N-1 N N+1 - * Component: R0 0 R1 I1 R2 I2 . . . R[N/2-1] I[N/2-1] R[N/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary - * components for FFT bin 'n'. Bins are numbered from 0 to N/2, where - * N is the FFT length. Bin index 0 corresponds to the DC component, - * and bin index N/2 corresponds to the foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the real-valued input sequence, of length 2^order; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * - * Output Arguments: - * pDst - pointer to output sequence, represented using CCS format, of - * length (2^order)+2; must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - - * OMX_Sts_BadArgErr - bad arguments, if one or more of the - * following is true: - one of the pointers pSrc, pDst, or pFFTSpec - * is NULL - pSrc or pDst is not aligned on a 32-byte boundary - * - */ -OMXResult omxSP_FFTFwd_RToCCS_F32_Sfs( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); - -#ifdef __arm__ -/* - * Non-NEON version of omxSP_FFTFwd_RToCCS_F32_Sfs - */ -OMXResult omxSP_FFTFwd_RToCCS_F32_Sfs_vfp( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); - -/* - * Just like omxSP_FFTFwd_RToCCS_F32_Sfs, but automatically detects - * whether NEON is available or not and chooses the appropriate - * routine. - */ -extern OMXResult (*omxSP_FFTFwd_RToCCS_F32)( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); -#else -#define omxSP_FFTFwd_RToCCS_F32 omxSP_FFTFwd_RToCCS_F32_Sfs -#endif - -/** - * Function: omxSP_FFTInv_CCSToR_S32S16_Sfs (2.2.4.4.4) - * - * Description: - * These functions compute the inverse FFT for a conjugate-symmetric input - * sequence. Transform length is determined by the specification structure, - * which must be initialized prior to calling the FFT function using - * <FFTInit_R_S16S32>. For a transform of length M, the input sequence is - * represented using a packed CCS vector of length M+2, and is organized - * as follows: - * - * Index: 0 1 2 3 4 5 . . . M-2 M-1 M M+1 - * Component R[0] 0 R[1] I[1] R[2] I[2] . . . R[M/2-1] I[M/2-1] R[M/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components for FFT bin n. - * Bins are numbered from 0 to M/2, where M is the FFT length. Bin index 0 - * corresponds to the DC component, and bin index M/2 corresponds to the - * foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input sequence represented using - * CCS format, of length (2^order) + 2; must be aligned on a 32-byte - * boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scalefactor; range is [0,16] - * - * Output Arguments: - * pDst - pointer to the real-valued output sequence, of length 2^order ; must be - * aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments if one or more of the following is true: - * - pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >16 - * - */ -OMXResult omxSP_FFTInv_CCSToR_S32S16_Sfs ( - const OMX_S32 *pSrc, - OMX_S16 *pDst, - const OMXFFTSpec_R_S16S32 *pFFTSpec, - OMX_INT scaleFactor -); - - -/** - * Function: omxSP_FFTInv_CCSToR_S16_Sfs - * - * Description: - * These functions compute the inverse FFT for a conjugate-symmetric input - * sequence. Transform length is determined by the specification structure, - * which must be initialized prior to calling the FFT function using - * <FFTInit_R_S16>. For a transform of length M, the input - * sequence is represented using a packed CCS vector of length - * M+2, and is organized as follows: - * - * Index: 0 1 2 3 4 5 . . . M-2 M-1 M M+1 - * Component R[0] 0 R[1] I[1] R[2] I[2] . . . R[M/2-1] I[M/2-1] R[M/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components - * for FFT bin n. - * Bins are numbered from 0 to M/2, where M is the FFT length. Bin index 0 - * corresponds to the DC component, and bin index M/2 corresponds to the - * foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input sequence represented using - * CCS format, of length (2^order) + 2; must be aligned on a 32-byte - * boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scalefactor; range is [0,16] - * - * Output Arguments: - * pDst - pointer to the real-valued output sequence, of length 2^order ; must - * be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments if one or more of the following is true: - * - pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >16 - * - */ -OMXResult omxSP_FFTInv_CCSToR_S16_Sfs ( - const OMX_S16* pSrc, - OMX_S16* pDst, - const OMXFFTSpec_R_S16* pFFTSpec, - OMX_INT scaleFactor -); - -/** - * Function: omxSP_FFTInv_CCSToR_S32_Sfs (2.2.4.4.4) - * - * Description: - * These functions compute the inverse FFT for a conjugate-symmetric input - * sequence. Transform length is determined by the specification structure, - * which must be initialized prior to calling the FFT function using - * <FFTInit_R_S32>. For a transform of length M, the input sequence is - * represented using a packed CCS vector of length M+2, and is organized - * as follows: - * - * Index: 0 1 2 3 4 5 . . . M-2 M-1 M M+1 - * Component R[0] 0 R[1] I[1] R[2] I[2] . . . R[M/2-1] I[M/2-1] R[M/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary components for FFT bin n. - * Bins are numbered from 0 to M/2, where M is the FFT length. Bin index 0 - * corresponds to the DC component, and bin index M/2 corresponds to the - * foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input sequence represented using - * CCS format, of length (2^order) + 2; must be aligned on a 32-byte - * boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * scaleFactor - output scalefactor; range is [0,32] - * - * Output Arguments: - * pDst - pointer to the real-valued output sequence, of length 2^order ; must be - * aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - bad arguments if one or more of the following is true: - * - pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTInv_CCSToR_S32_Sfs ( - const OMX_S32 *pSrc, - OMX_S32 *pDst, - const OMXFFTSpec_R_S32 *pFFTSpec, - OMX_INT scaleFactor -); - -/** - * Function: omxSP_FFTInv_CToC_FC32_Sfs (2.2.4.2.4) - * - * Description: - * These functions compute an inverse FFT for a complex signal of - * length of 2^order, where 0 <= order <= 15. Transform length is - * determined by the specification structure, which must be - * initialized prior to calling the FFT function using the appropriate - * helper, i.e., <FFTInit_C_FC32>. The relationship between the input - * and output sequences can be expressed in terms of the IDFT, i.e.: - * - * x[n] = SUM[k=0,...,N-1] X[k].e^(jnk.2.pi/N) - * n=0,1,2,...N-1 - * N=2^order. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input signal, of length 2^order ; - * must be aligned on a 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized specification - * structure - * - * Output Arguments: - * order - * pDst - pointer to the complex-valued output signal, of length 2^order; - * must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - * OMX_Sts_BadArgErr - returned if one or more of the following conditions - * is true: - * - one or more of the following pointers is NULL: pSrc, pDst, or - * pFFTSpec. - * - pSrc or pDst is not 32-byte aligned - * - scaleFactor<0 or scaleFactor>32 - * - */ -OMXResult omxSP_FFTInv_CToC_FC32_Sfs ( - const OMX_FC32 *pSrc, - OMX_FC32 *pDst, - const OMXFFTSpec_C_FC32 *pFFTSpec -); -#ifdef __arm__ -/* - * Non-NEON version - */ -OMXResult omxSP_FFTInv_CToC_FC32_Sfs_vfp ( - const OMX_FC32 *pSrc, - OMX_FC32 *pDst, - const OMXFFTSpec_C_FC32 *pFFTSpec -); -#endif - -/** - * Function: omxSP_FFTInv_CCSToR_F32_Sfs - * - * Description: - * These functions compute the inverse FFT for a conjugate-symmetric input - * sequence. Transform length is determined by the specification structure, - * which must be initialized prior to calling the FFT function using - * <FFTInit_R_F32>. For a transform of length M, the input sequence is - * represented using a packed CCS vector of length M+2, and is organized - * as follows: - * - * Index: 0 1 2 3 4 5 . . . M-2 M-1 M M+1 - * Comp: R[0] 0 R[1] I[1] R[2] I[2] . . . R[M/2-1] I[M/2-1] R[M/2] 0 - * - * where R[n] and I[n], respectively, denote the real and imaginary - * components for FFT bin n. Bins are numbered from 0 to M/2, where M - * is the FFT length. Bin index 0 corresponds to the DC component, - * and bin index M/2 corresponds to the foldover frequency. - * - * Input Arguments: - * pSrc - pointer to the complex-valued input sequence represented - * using CCS format, of length (2^order) + 2; must be aligned on a - * 32-byte boundary. - * pFFTSpec - pointer to the preallocated and initialized - * specification structure - * - * Output Arguments: - * pDst - pointer to the real-valued output sequence, of length - * 2^order ; must be aligned on a 32-byte boundary. - * - * Return Value: - * - * OMX_Sts_NoErr - no error - - * OMX_Sts_BadArgErr - bad arguments if one or more of the - * following is true: - * - pSrc, pDst, or pFFTSpec is NULL - * - pSrc or pDst is not aligned on a 32-byte boundary - * - scaleFactor<0 or scaleFactor >32 - * - */ -OMXResult omxSP_FFTInv_CCSToR_F32_Sfs( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); - -#ifdef __arm__ -/* - * Non-NEON version of omxSP_FFTInv_CCSToR_F32_Sfs - */ -OMXResult omxSP_FFTInv_CCSToR_F32_Sfs_vfp( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); - -/* - * Just like omxSP_FFTInv_CCSToR_F32_Sfs, but automatically detects - * whether NEON is available or not and chooses the appropriate - * routine. - */ -extern OMXResult (*omxSP_FFTInv_CCSToR_F32)( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec); -#else -#define omxSP_FFTInv_CCSToR_F32 omxSP_FFTInv_CCSToR_F32_Sfs -#endif - -/* - * Just like omxSP_FFTInv_CCSToR_F32_Sfs, but does not scale the result. - * (Actually, we multiple by two for consistency with other FFT routines in - * use.) - */ -OMXResult omxSP_FFTInv_CCSToR_F32_Sfs_unscaled( - const OMX_F32* pSrc, - OMX_F32* pDst, - const OMXFFTSpec_R_F32* pFFTSpec -); - - -#ifdef __cplusplus -} -#endif - -#endif /** end of #define _OMXSP_H_ */ - -/** EOF */ - diff --git a/media/openmax_dl/dl/sp/src/armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe_s.S deleted file mode 100644 index e1656118b6..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe_s.S +++ /dev/null @@ -1,294 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of -@// armSP_FFTInv_CCSToR_S32_preTwiddleRadix2_unsafe_s.s to support float -@// instead of SC32. -@// - -@// -@// Description: -@// Compute the "preTwiddleRadix2" stage prior to the call to the complexFFT -@// It does a Z(k) = Feven(k) + jW^(-k) FOdd(k); k=0,1,2,...N/2-1 computation -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - @// Guarding implementation by the processor name - - - -@//Input Registers - -#define pSrc r0 -#define pDst r1 -#define pFFTSpec r2 -#define scale r3 - - -@// Output registers -#define result r0 - -@//Local Scratch Registers - -#define argTwiddle r1 -#define argDst r2 -#define argScale r4 -#define tmpOrder r4 -#define pTwiddle r4 -#define pOut r5 -#define subFFTSize r7 -#define subFFTNum r6 -#define N r6 -#define order r14 -#define diff r9 -@// Total num of radix stages required to complete the FFT -#define count r8 -#define x0r r4 -#define x0i r5 -#define diffMinusOne r2 -#define round r3 - -#define pOut1 r2 -#define size r7 -#define step r8 -#define step1 r9 -#define twStep r10 -#define pTwiddleTmp r11 -#define argTwiddle1 r12 -#define zero r14 - -@// Neon registers - -#define dX0 D0 -#define dShift D1 -#define dX1 D1 -#define dY0 D2 -#define dY1 D3 -#define dX0r D0 -#define dX0i D1 -#define dX1r D2 -#define dX1i D3 -#define dW0r D4 -#define dW0i D5 -#define dW1r D6 -#define dW1i D7 -#define dT0 D8 -#define dT1 D9 -#define dT2 D10 -#define dT3 D11 -#define qT0 D12 -#define qT1 D14 -#define qT2 D16 -#define qT3 D18 -#define dY0r D4 -#define dY0i D5 -#define dY1r D6 -#define dY1i D7 - -#define dY2 D4 -#define dY3 D5 -#define dW0 D6 -#define dW1 D7 -#define dW0Tmp D10 -#define dW1Neg D11 - -#define half D13 - -@ Structure offsets for the FFTSpec - .set ARMsFFTSpec_N, 0 - .set ARMsFFTSpec_pBitRev, 4 - .set ARMsFFTSpec_pTwiddle, 8 - .set ARMsFFTSpec_pBuf, 12 - - .MACRO FFTSTAGE scaled, inverse, name - - @// Read the size from structure and take log - LDR N, [pFFTSpec, #ARMsFFTSpec_N] - - @// Read other structure parameters - LDR pTwiddle, [pFFTSpec, #ARMsFFTSpec_pTwiddle] - LDR pOut, [pFFTSpec, #ARMsFFTSpec_pBuf] - - VMOV.F32 half, #0.5 - - - MOV size,N,ASR #1 @// preserve the contents of N - MOV step,N,LSL #2 @// step = N/2 * 8 bytes - - - @// Z(k) = 1/2 {[F(k) + F'(N/2-k)] +j*W^(-k) [F(k) - F'(N/2-k)]} - @// Note: W^(k) is stored as negated value and also need to - @// conjugate the values from the table - - @// Z(0) : no need of twiddle multiply - @// Z(0) = 1/2 { [F(0) + F'(N/2)] +j [F(0) - F'(N/2)] } - - VLD1.F32 dX0,[pSrc],step - ADD pOut1,pOut,step @// pOut1 = pOut+ N/2*8 bytes - - VLD1.F32 dX1,[pSrc]! - @// twStep = 3N/8 * 8 bytes pointing to W^1 - SUB twStep,step,size,LSL #1 - - MOV step1,size,LSL #2 @// step1 = N/4 * 8 = N/2*4 bytes - SUB step1,step1,#8 @// (N/4-1)*8 bytes - - VADD.F32 dY0,dX0,dX1 @// [b+d | a+c] - VSUB.F32 dY1,dX0,dX1 @// [b-d | a-c] - VMUL.F32 dY0, dY0, half[0] - VMUL.F32 dY1, dY1, half[0] - - @// dY0= [a-c | a+c] ;dY1= [b-d | b+d] - VZIP.F32 dY0,dY1 - - VSUB.F32 dX0,dY0,dY1 - SUBS size,size,#2 - VADD.F32 dX1,dY0,dY1 - - SUB pSrc,pSrc,step - - VST1.F32 dX0[0],[pOut1]! - ADD pTwiddleTmp,pTwiddle,#8 @// W^2 - VST1.F32 dX1[1],[pOut1]! - ADD argTwiddle1,pTwiddle,twStep @// W^1 - - - BLT decrementScale\name - BEQ lastElement\name - - - @// Z(k) = 1/2[F(k) + F'(N/2-k)] +j*W^(-k) [F(k) - F'(N/2-k)] - @// Note: W^k is stored as negative values in the table and also - @// need to conjugate the values from the table. - @// - @// Process 4 elements at a time. E.g: Z(1),Z(2) and Z(N/2-2),Z(N/2-1) - @// since both of them require F(1),F(2) and F(N/2-2),F(N/2-1) - - - SUB step,step,#24 -evenOddButterflyLoop\name : - - - VLD1.F32 dW0r,[argTwiddle1],step1 - VLD1.F32 dW1r,[argTwiddle1]! - - VLD2.F32 {dX0r,dX0i},[pSrc],step - SUB argTwiddle1,argTwiddle1,step1 - VLD2.F32 {dX1r,dX1i},[pSrc]! - - SUB step1,step1,#8 @// (N/4-2)*8 bytes - VLD1.F32 dW0i,[pTwiddleTmp],step1 - VLD1.F32 dW1i,[pTwiddleTmp]! - SUB pSrc,pSrc,step - - SUB pTwiddleTmp,pTwiddleTmp,step1 - VREV64.F32 dX1r,dX1r - VREV64.F32 dX1i,dX1i - SUBS size,size,#4 - - - VSUB.F32 dT2,dX0r,dX1r @// a-c - VADD.F32 dT3,dX0i,dX1i @// b+d - VADD.F32 dT0,dX0r,dX1r @// a+c - VSUB.F32 dT1,dX0i,dX1i @// b-d - SUB step1,step1,#8 - - VMUL.F32 dT2, dT2, half[0] - VMUL.F32 dT3, dT3, half[0] - - VMUL.F32 dT0, dT0, half[0] - VMUL.F32 dT1, dT1, half[0] - - VZIP.F32 dW1r,dW1i - VZIP.F32 dW0r,dW0i - - - VMUL.F32 dX1r,dW1r,dT2 - VMUL.F32 dX1i,dW1r,dT3 - VMUL.F32 dX0r,dW0r,dT2 - VMUL.F32 dX0i,dW0r,dT3 - - VMLS.F32 dX1r,dW1i,dT3 - VMLA.F32 dX1i,dW1i,dT2 - - VMLA.F32 dX0r,dW0i,dT3 - VMLS.F32 dX0i,dW0i,dT2 - - - VADD.F32 dY1r,dT0,dX1i @// F(N/2 -1) - VSUB.F32 dY1i,dX1r,dT1 - - VREV64.F32 dY1r,dY1r - VREV64.F32 dY1i,dY1i - - - VADD.F32 dY0r,dT0,dX0i @// F(1) - VSUB.F32 dY0i,dT1,dX0r - - - VST2.F32 {dY0r,dY0i},[pOut1],step - VST2.F32 {dY1r,dY1i},[pOut1]! - SUB pOut1,pOut1,step - SUB step,step,#32 @// (N/2-4)*8 bytes - - - BGT evenOddButterflyLoop\name - - - @// set both the ptrs to the last element - SUB pSrc,pSrc,#8 - SUB pOut1,pOut1,#8 - - @// Last element can be expanded as follows - @// 1/2[Z(k) + Z'(k)] - j w^-k [Z(k) - Z'(k)] (since W^k is stored as - @// -ve) - @// 1/2[(a+jb) + (a-jb)] - j w^-k [(a+jb) - (a-jb)] - @// 1/2[2a+j0] - j (c-jd) [0+j2b] - @// (a+bc, -bd) - @// Since (c,d) = (0,1) for the last element, result is just (a,-b) - -lastElement\name : - VLD1.F32 dX0r,[pSrc] - - VST1.F32 dX0r[0],[pOut1]! - VNEG.F32 dX0r,dX0r - VST1.F32 dX0r[1],[pOut1] - - - -decrementScale\name : - - .endm - - M_START armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe,r4 - - FFTSTAGE "FALSE","TRUE",Inv - M_END - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_fs_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_fs_unsafe_s.S deleted file mode 100644 index 770848c623..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_fs_unsafe_s.S +++ /dev/null @@ -1,134 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix2_fs_unsafe_s.S -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute the first stage of a Radix 2 DIT in-order out-of-place FFT -@// stage for a N point complex signal. -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - -@// Guarding implementation by the processor name - - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define pPingPongBuf r5 -#define subFFTNum r6 -#define subFFTSize r7 - - -@//Output Registers - - -@//Local Scratch Registers - -#define pointStep r3 -#define outPointStep r3 -#define grpSize r4 -#define setCount r4 -#define step r8 -#define dstStep r8 - -@// Neon Registers - -#define dX0 D0 -#define dX1 D1 -#define dY0 D2 -#define dY1 D3 - - - .MACRO FFTSTAGE scaled, inverse, name - - @// Define stack arguments - - - @// update subFFTSize and subFFTNum into RN6 and RN7 for the next stage - - - MOV subFFTSize,#2 - LSR grpSize,subFFTNum,#1 - MOV subFFTNum,grpSize - - - @// pT0+1 increments pT0 by 8 bytes - @// pT0+pointStep = increment of 8*pointStep bytes = 4*grpSize bytes - @// Note: outPointStep = pointStep for firststage - @// Note: setCount = grpSize/2 (reuse the updated grpSize for setCount) - - MOV pointStep,grpSize,LSL #3 - RSB step,pointStep,#8 - - - @// Loop on the sets for grp zero - -grpZeroSetLoop\name : - - VLD1.F32 dX0,[pSrc],pointStep - VLD1.F32 dX1,[pSrc],step @// step = -pointStep + 8 - SUBS setCount,setCount,#1 - - VADD.F32 dY0,dX0,dX1 - VSUB.F32 dY1,dX0,dX1 - - VST1.F32 dY0,[pDst],outPointStep - @// dstStep = step = -pointStep + 8 - VST1.F32 dY1,[pDst],dstStep - - BGT grpZeroSetLoop\name - - - @// reset pSrc to pDst for the next stage - SUB pSrc,pDst,pointStep @// pDst -= 2*grpSize - MOV pDst,pPingPongBuf - - .endm - - - - M_START armSP_FFTFwd_CToC_FC32_Radix2_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",fwd - M_END - - - - M_START armSP_FFTInv_CToC_FC32_Radix2_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",inv - M_END - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_ls_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_ls_unsafe_s.S deleted file mode 100644 index ac8d982200..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_ls_unsafe_s.S +++ /dev/null @@ -1,153 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix2_ls_unsafe_s.S -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute the last stage of a Radix 2 DIT in-order out-of-place FFT -@// stage for a N point complex signal. -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - -@// Guarding implementation by the processor name - - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define subFFTNum r6 -#define subFFTSize r7 - - -@//Output Registers - - -@//Local Scratch Registers - - -#define outPointStep r3 -#define grpCount r4 -#define dstStep r5 -#define pTmp r4 - -@// Neon Registers - -#define dWr d0 -#define dWi d1 -#define dXr0 d2 -#define dXi0 d3 -#define dXr1 d4 -#define dXi1 d5 -#define dYr0 d6 -#define dYi0 d7 -#define dYr1 d8 -#define dYi1 d9 -#define qT0 d10 -#define qT1 d12 - - .MACRO FFTSTAGE scaled, inverse, name - - - MOV outPointStep,subFFTSize,LSL #3 - @// Update grpCount and grpSize rightaway - - MOV subFFTNum,#1 @//after the last stage - LSL grpCount,subFFTSize,#1 - - @// update subFFTSize for the next stage - MOV subFFTSize,grpCount - - RSB dstStep,outPointStep,#16 - - - @// Loop on 2 grps at a time for the last stage - -radix2lsGrpLoop\name : - @ dWr = [pTwiddle[0].Re, pTwiddle[1].Re] - @ dWi = [pTwiddle[0].Im, pTwiddle[1].Im] - VLD2.F32 {dWr,dWi},[pTwiddle, :64]! - - @ dXr0 = [pSrc[0].Re, pSrc[2].Re] - @ dXi0 = [pSrc[0].Im, pSrc[2].Im] - @ dXr1 = [pSrc[1].Re, pSrc[3].Re] - @ dXi1 = [pSrc[1].Im, pSrc[3].Im] - VLD4.F32 {dXr0,dXi0,dXr1,dXi1},[pSrc, :128]! - SUBS grpCount,grpCount,#4 @// grpCount is multiplied by 2 - - .ifeqs "\inverse", "TRUE" - VMUL.F32 qT0,dWr,dXr1 - VMLA.F32 qT0,dWi,dXi1 @// real part - VMUL.F32 qT1,dWr,dXi1 - VMLS.F32 qT1,dWi,dXr1 @// imag part - - .else - - VMUL.F32 qT0,dWr,dXr1 - VMLS.F32 qT0,dWi,dXi1 @// real part - VMUL.F32 qT1,dWr,dXi1 - VMLA.F32 qT1,dWi,dXr1 @// imag part - - .endif - - VSUB.F32 dYr0,dXr0,qT0 - VSUB.F32 dYi0,dXi0,qT1 - VADD.F32 dYr1,dXr0,qT0 - VADD.F32 dYi1,dXi0,qT1 - - VST2.F32 {dYr0,dYi0},[pDst],outPointStep - VST2.F32 {dYr1,dYi1},[pDst],dstStep @// dstStep = step = -outPointStep + 16 - - BGT radix2lsGrpLoop\name - - - @// Reset and Swap pSrc and pDst for the next stage - MOV pTmp,pDst - SUB pDst,pSrc,outPointStep,LSL #1 @// pDst -= 4*size; pSrc -= 8*size bytes - SUB pSrc,pTmp,outPointStep - - @// Reset pTwiddle for the next stage - SUB pTwiddle,pTwiddle,outPointStep @// pTwiddle -= 4*size bytes - - .endm - - - - M_START armSP_FFTFwd_CToC_FC32_Radix2_ls_OutOfPlace_unsafe,r4,"" - FFTSTAGE "FALSE","FALSE",fwd - M_END - - - - M_START armSP_FFTInv_CToC_FC32_Radix2_ls_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",inv - M_END - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_unsafe_s.S deleted file mode 100644 index f04e9b84ff..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix2_unsafe_s.S +++ /dev/null @@ -1,191 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix2_unsafe_s.s -@// to support float instead of SC32. -@// - -@// Description: -@// Compute a Radix 2 DIT in-order out-of-place FFT stage for an N point -@// complex signal. This handles the general stage, not the first or last -@// stage. -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - -@// Guarding implementation by the processor name - - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define subFFTNum r6 -#define subFFTSize r7 - - -@//Output Registers - - -@//Local Scratch Registers - -#define outPointStep r3 -#define pointStep r4 -#define grpCount r5 -#define setCount r8 -@//const RN 9 -#define step r10 -#define dstStep r11 -#define pTable r9 -#define pTmp r9 - -@// Neon Registers - -#define dW D0 -#define dX0 D2 -#define dX1 D3 -#define dX2 D4 -#define dX3 D5 -#define dY0 D6 -#define dY1 D7 -#define dY2 D8 -#define dY3 D9 -#define qT0 D10 -#define qT1 D11 - - - .MACRO FFTSTAGE scaled, inverse, name - - @// Define stack arguments - - - @// Update grpCount and grpSize rightaway inorder to reuse pGrpCount - @// and pGrpSize regs - - LSR subFFTNum,subFFTNum,#1 @//grpSize - LSL grpCount,subFFTSize,#1 - - - @// pT0+1 increments pT0 by 8 bytes - @// pT0+pointStep = increment of 8*pointStep bytes = 4*grpSize bytes - MOV pointStep,subFFTNum,LSL #2 - - @// update subFFTSize for the next stage - MOV subFFTSize,grpCount - - @// pOut0+1 increments pOut0 by 8 bytes - @// pOut0+outPointStep == increment of 8*outPointStep bytes = - @// 4*size bytes - SMULBB outPointStep,grpCount,pointStep - LSL pointStep,pointStep,#1 - - - RSB step,pointStep,#16 - RSB dstStep,outPointStep,#16 - - @// Loop on the groups - -radix2GrpLoop\name : - MOV setCount,pointStep,LSR #3 - VLD1.F32 dW,[pTwiddle],pointStep @//[wi | wr] - - - @// Loop on the sets - - -radix2SetLoop\name : - - - @// point0: dX0-real part dX1-img part - VLD2.F32 {dX0,dX1},[pSrc],pointStep - @// point1: dX2-real part dX3-img part - VLD2.F32 {dX2,dX3},[pSrc],step - - SUBS setCount,setCount,#2 - - .ifeqs "\inverse", "TRUE" - VMUL.F32 qT0,dX2,dW[0] - VMLA.F32 qT0,dX3,dW[1] @// real part - VMUL.F32 qT1,dX3,dW[0] - VMLS.F32 qT1,dX2,dW[1] @// imag part - - .else - - VMUL.F32 qT0,dX2,dW[0] - VMLS.F32 qT0,dX3,dW[1] @// real part - VMUL.F32 qT1,dX3,dW[0] - VMLA.F32 qT1,dX2,dW[1] @// imag part - - .endif - - VSUB.F32 dY0,dX0,qT0 - VSUB.F32 dY1,dX1,qT1 - VADD.F32 dY2,dX0,qT0 - VADD.F32 dY3,dX1,qT1 - - VST2.F32 {dY0,dY1},[pDst],outPointStep - @// dstStep = -outPointStep + 16 - VST2.F32 {dY2,dY3},[pDst],dstStep - - BGT radix2SetLoop\name - - SUBS grpCount,grpCount,#2 - ADD pSrc,pSrc,pointStep - BGT radix2GrpLoop\name - - - @// Reset and Swap pSrc and pDst for the next stage - MOV pTmp,pDst - @// pDst -= 4*size; pSrc -= 8*size bytes - SUB pDst,pSrc,outPointStep,LSL #1 - SUB pSrc,pTmp,outPointStep - - @// Reset pTwiddle for the next stage - @// pTwiddle -= 4*size bytes - SUB pTwiddle,pTwiddle,outPointStep - - - .endm - - - - M_START armSP_FFTFwd_CToC_FC32_Radix2_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",FWD - M_END - - - - M_START armSP_FFTInv_CToC_FC32_Radix2_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",INV - M_END - - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_fs_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_fs_unsafe_s.S deleted file mode 100644 index 6a3c835338..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_fs_unsafe_s.S +++ /dev/null @@ -1,251 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix4_fs_unsafe_s.s -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute a first stage Radix 4 FFT stage for a N point complex signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - -@// Import symbols required from other files -@// (For example tables) - - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - -@// Guarding implementation by the processor name - - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define pPingPongBuf r5 -#define subFFTNum r6 -#define subFFTSize r7 - - -@//Output Registers - - -@//Local Scratch Registers - -#define grpSize r3 -@// Reuse grpSize as setCount -#define setCount r3 -#define pointStep r4 -#define outPointStep r4 -#define setStep r8 -#define step1 r9 -#define step3 r10 - -@// Neon Registers - -#define dXr0 D0 -#define dXi0 D1 -#define dXr1 D2 -#define dXi1 D3 -#define dXr2 D4 -#define dXi2 D5 -#define dXr3 D6 -#define dXi3 D7 -#define dYr0 D8 -#define dYi0 D9 -#define dYr1 D10 -#define dYi1 D11 -#define dYr2 D12 -#define dYi2 D13 -#define dYr3 D14 -#define dYi3 D15 -#define qX0 Q0 -#define qX1 Q1 -#define qX2 Q2 -#define qX3 Q3 -#define qY0 Q4 -#define qY1 Q5 -#define qY2 Q6 -#define qY3 Q7 -#define dZr0 D16 -#define dZi0 D17 -#define dZr1 D18 -#define dZi1 D19 -#define dZr2 D20 -#define dZi2 D21 -#define dZr3 D22 -#define dZi3 D23 -#define qZ0 Q8 -#define qZ1 Q9 -#define qZ2 Q10 -#define qZ3 Q11 - - - .MACRO FFTSTAGE scaled, inverse, name - - @// Define stack arguments - - @// pT0+1 increments pT0 by 8 bytes - @// pT0+pointStep = increment of 8*pointStep bytes = 2*grpSize bytes - @// Note: outPointStep = pointStep for firststage - - MOV pointStep,subFFTNum,LSL #1 - - - @// Update pSubFFTSize and pSubFFTNum regs - VLD2.F32 {dXr0,dXi0},[pSrc, :128],pointStep @// data[0] - @// subFFTSize = 1 for the first stage - MOV subFFTSize,#4 - - @// Note: setCount = subFFTNum/4 (reuse the grpSize reg for setCount) - LSR grpSize,subFFTNum,#2 - VLD2.F32 {dXr1,dXi1},[pSrc, :128],pointStep @// data[1] - MOV subFFTNum,grpSize - - - @// Calculate the step of input data for the next set - @//MOV setStep,pointStep,LSL #1 - MOV setStep,grpSize,LSL #4 - VLD2.F32 {dXr2,dXi2},[pSrc, :128],pointStep @// data[2] - @// setStep = 3*pointStep - ADD setStep,setStep,pointStep - @// setStep = - 3*pointStep+16 - RSB setStep,setStep,#16 - - @// data[3] & update pSrc for the next set - VLD2.F32 {dXr3,dXi3},[pSrc, :128],setStep - @// step1 = 2*pointStep - MOV step1,pointStep,LSL #1 - - VADD.F32 qY0,qX0,qX2 - - @// step3 = -pointStep - RSB step3,pointStep,#0 - - @// grp = 0 a special case since all the twiddle factors are 1 - @// Loop on the sets : 2 sets at a time - -radix4fsGrpZeroSetLoop\name : - - - - @// Decrement setcount - SUBS setCount,setCount,#2 - - - @// finish first stage of 4 point FFT - - - VSUB.F32 qY2,qX0,qX2 - - VLD2.F32 {dXr0,dXi0},[pSrc, :128],step1 @// data[0] - VADD.F32 qY1,qX1,qX3 - VLD2.F32 {dXr2,dXi2},[pSrc, :128],step3 @// data[2] - VSUB.F32 qY3,qX1,qX3 - - - @// finish second stage of 4 point FFT - - .ifeqs "\inverse", "TRUE" - - VLD2.F32 {dXr1,dXi1},[pSrc, :128],step1 @// data[1] - VADD.F32 qZ0,qY0,qY1 - - @// data[3] & update pSrc for the next set, but not if it's the - @// last iteration so that we don't read past the end of the - @// input array. - BEQ radix4SkipLastUpdateInv\name - VLD2.F32 {dXr3,dXi3},[pSrc, :128],setStep -radix4SkipLastUpdateInv\name: - VSUB.F32 dZr3,dYr2,dYi3 - - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VADD.F32 dZi3,dYi2,dYr3 - - VSUB.F32 qZ1,qY0,qY1 - VST2.F32 {dZr3,dZi3},[pDst, :128],outPointStep - - VADD.F32 dZr2,dYr2,dYi3 - VST2.F32 {dZr1,dZi1},[pDst, :128],outPointStep - VSUB.F32 dZi2,dYi2,dYr3 - - VADD.F32 qY0,qX0,qX2 @// u0 for next iteration - VST2.F32 {dZr2,dZi2},[pDst, :128],setStep - - - .else - - VLD2.F32 {dXr1,dXi1},[pSrc, :128],step1 @// data[1] - VADD.F32 qZ0,qY0,qY1 - - @// data[3] & update pSrc for the next set, but not if it's the - @// last iteration so that we don't read past the end of the - @// input array. - BEQ radix4SkipLastUpdateFwd\name - VLD2.F32 {dXr3,dXi3},[pSrc, :128],setStep -radix4SkipLastUpdateFwd\name: - VADD.F32 dZr2,dYr2,dYi3 - - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VSUB.F32 dZi2,dYi2,dYr3 - - VSUB.F32 qZ1,qY0,qY1 - VST2.F32 {dZr2,dZi2},[pDst, :128],outPointStep - - VSUB.F32 dZr3,dYr2,dYi3 - VST2.F32 {dZr1,dZi1},[pDst, :128],outPointStep - VADD.F32 dZi3,dYi2,dYr3 - - VADD.F32 qY0,qX0,qX2 @// u0 for next iteration - VST2.F32 {dZr3,dZi3},[pDst, :128],setStep - - .endif - - BGT radix4fsGrpZeroSetLoop\name - - @// reset pSrc to pDst for the next stage - SUB pSrc,pDst,pointStep @// pDst -= 2*grpSize - MOV pDst,pPingPongBuf - - - .endm - - - - M_START armSP_FFTFwd_CToC_FC32_Radix4_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",fwd - M_END - - - - M_START armSP_FFTInv_CToC_FC32_Radix4_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",inv - M_END - - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_ls_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_ls_unsafe_s.S deleted file mode 100644 index c2e798874b..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_ls_unsafe_s.S +++ /dev/null @@ -1,339 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix4_ls_unsafe_s.s -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute a Radix 4 FFT stage for a N point complex signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - -@// Import symbols required from other files -@// (For example tables) - - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - -@// Guarding implementation by the processor name - - -@// Import symbols required from other files -@// (For example tables) - @//IMPORT armAAC_constTable - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define subFFTNum r6 -#define subFFTSize r7 - - - -@//Output Registers - - -@//Local Scratch Registers - -#define outPointStep r3 -#define grpCount r4 -#define dstStep r5 -#define grpTwStep r8 -#define stepTwiddle r9 -#define twStep r10 -#define pTmp r4 -#define step16 r11 -#define step24 r12 - - -@// Neon Registers - -#define dButterfly1Real02 D0 -#define dButterfly1Imag02 D1 -#define dButterfly1Real13 D2 -#define dButterfly1Imag13 D3 -#define dButterfly2Real02 D4 -#define dButterfly2Imag02 D5 -#define dButterfly2Real13 D6 -#define dButterfly2Imag13 D7 -#define dXr0 D0 -#define dXi0 D1 -#define dXr1 D2 -#define dXi1 D3 -#define dXr2 D4 -#define dXi2 D5 -#define dXr3 D6 -#define dXi3 D7 - -#define dYr0 D16 -#define dYi0 D17 -#define dYr1 D18 -#define dYi1 D19 -#define dYr2 D20 -#define dYi2 D21 -#define dYr3 D22 -#define dYi3 D23 - -#define dW1r D8 -#define dW1i D9 -#define dW2r D10 -#define dW2i D11 -#define dW3r D12 -#define dW3i D13 -#define qT0 d14 -#define qT1 d16 -#define qT2 d18 -#define qT3 d20 -#define qT4 d22 -#define qT5 d24 - -#define dZr0 D14 -#define dZi0 D15 -#define dZr1 D26 -#define dZi1 D27 -#define dZr2 D28 -#define dZi2 D29 -#define dZr3 D30 -#define dZi3 D31 - -#define qX0 Q0 -#define qY0 Q8 -#define qY1 Q9 -#define qY2 Q10 -#define qY3 Q11 -#define qZ0 Q7 -#define qZ1 Q13 -#define qZ2 Q14 -#define qZ3 Q15 - - - - .MACRO FFTSTAGE scaled, inverse , name - - @// Define stack arguments - - - @// pOut0+1 increments pOut0 by 8 bytes - @// pOut0+outPointStep == increment of 8*outPointStep bytes - MOV outPointStep,subFFTSize,LSL #3 - - @// Update grpCount and grpSize rightaway - - VLD2.F32 {dW1r,dW1i},[pTwiddle, :128] @// [wi|wr] - MOV step16,#16 - LSL grpCount,subFFTSize,#2 - - VLD1.F32 dW2r,[pTwiddle, :64] @// [wi|wr] - MOV subFFTNum,#1 @//after the last stage - - VLD1.F32 dW3r,[pTwiddle, :64],step16 @// [wi|wr] - MOV stepTwiddle,#0 - - VLD1.F32 dW2i,[pTwiddle, :64]! @// [wi|wr] - SUB grpTwStep,stepTwiddle,#8 @// grpTwStep = -8 to start with - - @// update subFFTSize for the next stage - MOV subFFTSize,grpCount - VLD1.F32 dW3i,[pTwiddle, :64],grpTwStep @// [wi|wr] - MOV dstStep,outPointStep,LSL #1 - - @// AC.r AC.i BD.r BD.i - VLD4.F32 {dButterfly1Real02,dButterfly1Imag02,dButterfly1Real13,dButterfly1Imag13},[pSrc, :256]! - ADD dstStep,dstStep,outPointStep @// dstStep = 3*outPointStep - RSB dstStep,dstStep,#16 @// dstStep = - 3*outPointStep+16 - MOV step24,#24 - - @// AC.r AC.i BD.r BD.i - VLD4.F32 {dButterfly2Real02,dButterfly2Imag02,dButterfly2Real13,dButterfly2Imag13},[pSrc, :256]! - - - @// Process two groups at a time - -radix4lsGrpLoop\name : - - VZIP.F32 dW2r,dW2i - ADD stepTwiddle,stepTwiddle,#16 - VZIP.F32 dW3r,dW3i - ADD grpTwStep,stepTwiddle,#4 - VUZP.F32 dButterfly1Real13, dButterfly2Real13 @// B.r D.r - SUB twStep,stepTwiddle,#16 @// -16+stepTwiddle - VUZP.F32 dButterfly1Imag13, dButterfly2Imag13 @// B.i D.i - MOV grpTwStep,grpTwStep,LSL #1 - VUZP.F32 dButterfly1Real02, dButterfly2Real02 @// A.r C.r - RSB grpTwStep,grpTwStep,#0 @// -8-2*stepTwiddle - - - VUZP.F32 dButterfly1Imag02, dButterfly2Imag02 @// A.i C.i - - - @// grpCount is multiplied by 4 - SUBS grpCount,grpCount,#8 - - .ifeqs "\inverse", "TRUE" - VMUL.F32 dZr1,dW1r,dXr1 - VMLA.F32 dZr1,dW1i,dXi1 @// real part - VMUL.F32 dZi1,dW1r,dXi1 - VMLS.F32 dZi1,dW1i,dXr1 @// imag part - - .else - - VMUL.F32 dZr1,dW1r,dXr1 - VMLS.F32 dZr1,dW1i,dXi1 @// real part - VMUL.F32 dZi1,dW1r,dXi1 - VMLA.F32 dZi1,dW1i,dXr1 @// imag part - - .endif - - VLD2.F32 {dW1r,dW1i},[pTwiddle, :128],stepTwiddle @// [wi|wr] - - .ifeqs "\inverse", "TRUE" - VMUL.F32 dZr2,dW2r,dXr2 - VMLA.F32 dZr2,dW2i,dXi2 @// real part - VMUL.F32 dZi2,dW2r,dXi2 - VLD1.F32 dW2r,[pTwiddle, :64],step16 @// [wi|wr] - VMLS.F32 dZi2,dW2i,dXr2 @// imag part - - .else - - VMUL.F32 dZr2,dW2r,dXr2 - VMLS.F32 dZr2,dW2i,dXi2 @// real part - VMUL.F32 dZi2,dW2r,dXi2 - VLD1.F32 dW2r,[pTwiddle, :64],step16 @// [wi|wr] - VMLA.F32 dZi2,dW2i,dXr2 @// imag part - - .endif - - - VLD1.F32 dW2i,[pTwiddle, :64],twStep @// [wi|wr] - - @// move qX0 so as to load for the next iteration - VMOV qZ0,qX0 - - .ifeqs "\inverse", "TRUE" - VMUL.F32 dZr3,dW3r,dXr3 - VMLA.F32 dZr3,dW3i,dXi3 @// real part - VMUL.F32 dZi3,dW3r,dXi3 - VLD1.F32 dW3r,[pTwiddle, :64],step24 - VMLS.F32 dZi3,dW3i,dXr3 @// imag part - - .else - - VMUL.F32 dZr3,dW3r,dXr3 - VMLS.F32 dZr3,dW3i,dXi3 @// real part - VMUL.F32 dZi3,dW3r,dXi3 - VLD1.F32 dW3r,[pTwiddle, :64],step24 - VMLA.F32 dZi3,dW3i,dXr3 @// imag part - - .endif - - VLD1.F32 dW3i,[pTwiddle, :64],grpTwStep @// [wi|wr] - - @// Don't do the load on the last iteration so we don't read past the end - @// of pSrc. - addeq pSrc, pSrc, #64 - beq radix4lsSkipRead\name - @// AC.r AC.i BD.r BD.i - VLD4.F32 {dButterfly1Real02,dButterfly1Imag02,dButterfly1Real13,dButterfly1Imag13},[pSrc, :256]! - - @// AC.r AC.i BD.r BD.i - VLD4.F32 {dButterfly2Real02,dButterfly2Imag02,dButterfly2Real13,dButterfly2Imag13},[pSrc, :256]! -radix4lsSkipRead\name: - - @// finish first stage of 4 point FFT - - VADD.F32 qY0,qZ0,qZ2 - VSUB.F32 qY2,qZ0,qZ2 - VADD.F32 qY1,qZ1,qZ3 - VSUB.F32 qY3,qZ1,qZ3 - - - @// finish second stage of 4 point FFT - - .ifeqs "\inverse", "TRUE" - - VSUB.F32 qZ0,qY2,qY1 - - VADD.F32 dZr3,dYr0,dYi3 - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VSUB.F32 dZi3,dYi0,dYr3 - - VADD.F32 qZ2,qY2,qY1 - VST2.F32 {dZr3,dZi3},[pDst, :128],outPointStep - - VSUB.F32 dZr1,dYr0,dYi3 - VST2.F32 {dZr2,dZi2},[pDst, :128],outPointStep - VADD.F32 dZi1,dYi0,dYr3 - - @// dstStep = -outPointStep + 16 - VST2.F32 {dZr1,dZi1},[pDst, :128],dstStep - - - .else - - VSUB.F32 qZ0,qY2,qY1 - - VSUB.F32 dZr1,dYr0,dYi3 - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VADD.F32 dZi1,dYi0,dYr3 - - VADD.F32 qZ2,qY2,qY1 - VST2.F32 {dZr1,dZi1},[pDst, :128],outPointStep - - VADD.F32 dZr3,dYr0,dYi3 - VST2.F32 {dZr2,dZi2},[pDst, :128],outPointStep - VSUB.F32 dZi3,dYi0,dYr3 - - @// dstStep = -outPointStep + 16 - VST2.F32 {dZr3,dZi3},[pDst, :128],dstStep - - - .endif - - BGT radix4lsGrpLoop\name - - - @// Reset and Swap pSrc and pDst for the next stage - MOV pTmp,pDst - @// Extra increment done in final iteration of the loop - SUB pSrc,pSrc,#64 - @// pDst -= 4*size; pSrc -= 8*size bytes - SUB pDst,pSrc,outPointStep,LSL #2 - SUB pSrc,pTmp,outPointStep - SUB pTwiddle,pTwiddle,subFFTSize,LSL #1 - @// Extra increment done in final iteration of the loop - SUB pTwiddle,pTwiddle,#16 - - .endm - - - M_START armSP_FFTFwd_CToC_FC32_Radix4_ls_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",fwd - M_END - - - M_START armSP_FFTInv_CToC_FC32_Radix4_ls_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",inv - M_END - - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_unsafe_s.S deleted file mode 100644 index dc71eff63c..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix4_unsafe_s.S +++ /dev/null @@ -1,331 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// -@// This is a modification of armSP_FFT_CToC_SC32_Radix4_unsafe_s.s -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute a Radix 4 FFT stage for a N point complex signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - -@// Guarding implementation by the processor name - - -@// Import symbols required from other files -@// (For example tables) - - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define subFFTNum r6 -#define subFFTSize r7 - - - -@//Output Registers - - -@//Local Scratch Registers - -#define grpCount r3 -#define pointStep r4 -#define outPointStep r5 -#define stepTwiddle r12 -#define setCount r14 -#define srcStep r8 -#define setStep r9 -#define dstStep r10 -#define twStep r11 -#define t1 r3 - -@// Neon Registers - -#define dW1 D0 -#define dW2 D1 -#define dW3 D2 - -#define dXr0 D4 -#define dXi0 D5 -#define dXr1 D6 -#define dXi1 D7 -#define dXr2 D8 -#define dXi2 D9 -#define dXr3 D10 -#define dXi3 D11 -#define dYr0 D12 -#define dYi0 D13 -#define dYr1 D14 -#define dYi1 D15 -#define dYr2 D16 -#define dYi2 D17 -#define dYr3 D18 -#define dYi3 D19 -#define qT0 d16 -#define qT1 d18 -#define qT2 d12 -#define qT3 d14 -#define dZr0 D20 -#define dZi0 D21 -#define dZr1 D22 -#define dZi1 D23 -#define dZr2 D24 -#define dZi2 D25 -#define dZr3 D26 -#define dZi3 D27 - -#define qY0 Q6 -#define qY1 Q7 -#define qY2 Q8 -#define qY3 Q9 -#define qX0 Q2 -#define qZ0 Q10 -#define qZ1 Q11 -#define qZ2 Q12 -#define qZ3 Q13 - - .MACRO FFTSTAGE scaled, inverse , name - - @// Define stack arguments - - - @// Update grpCount and grpSize rightaway inorder to reuse - @// pGrpCount and pGrpSize regs - - LSL grpCount,subFFTSize,#2 - LSR subFFTNum,subFFTNum,#2 - MOV subFFTSize,grpCount - - VLD1.F32 dW1,[pTwiddle] @//[wi | wr] - @// pT0+1 increments pT0 by 8 bytes - @// pT0+pointStep = increment of 8*pointStep bytes = 2*grpSize bytes - MOV pointStep,subFFTNum,LSL #1 - - - @// pOut0+1 increments pOut0 by 8 bytes - @// pOut0+outPointStep == increment of 8*outPointStep bytes - @// = 2*size bytes - - MOV stepTwiddle,#0 - VLD1.F32 dW2,[pTwiddle] @//[wi | wr] - SMULBB outPointStep,grpCount,pointStep - LSL pointStep,pointStep,#2 @// 2*grpSize - - VLD1.F32 dW3,[pTwiddle] @//[wi | wr] - MOV srcStep,pointStep,LSL #1 @// srcStep = 2*pointStep - ADD setStep,srcStep,pointStep @// setStep = 3*pointStep - - RSB setStep,setStep,#0 @// setStep = - 3*pointStep - SUB srcStep,srcStep,#16 @// srcStep = 2*pointStep-16 - - MOV dstStep,outPointStep,LSL #1 - ADD dstStep,dstStep,outPointStep @// dstStep = 3*outPointStep - @// dstStep = - 3*outPointStep+16 - RSB dstStep,dstStep,#16 - - - -radix4GrpLoop\name : - - VLD2.F32 {dXr0,dXi0},[pSrc],pointStep @// data[0] - ADD stepTwiddle,stepTwiddle,pointStep - VLD2.F32 {dXr1,dXi1},[pSrc],pointStep @// data[1] - @// set pTwiddle to the first point - ADD pTwiddle,pTwiddle,stepTwiddle - VLD2.F32 {dXr2,dXi2},[pSrc],pointStep @// data[2] - MOV twStep,stepTwiddle,LSL #2 - - @// data[3] & update pSrc for the next set - VLD2.F32 {dXr3,dXi3},[pSrc],setStep - SUB twStep,stepTwiddle,twStep @// twStep = -3*stepTwiddle - - MOV setCount,pointStep,LSR #3 - @// set pSrc to data[0] of the next set - ADD pSrc,pSrc,#16 - @// increment to data[1] of the next set - ADD pSrc,pSrc,pointStep - - - @// Loop on the sets - -radix4SetLoop\name : - - - - .ifeqs "\inverse", "TRUE" - VMUL.F32 dZr1,dXr1,dW1[0] - VMUL.F32 dZi1,dXi1,dW1[0] - VMUL.F32 dZr2,dXr2,dW2[0] - VMUL.F32 dZi2,dXi2,dW2[0] - VMUL.F32 dZr3,dXr3,dW3[0] - VMUL.F32 dZi3,dXi3,dW3[0] - - VMLA.F32 dZr1,dXi1,dW1[1] @// real part - VMLS.F32 dZi1,dXr1,dW1[1] @// imag part - - @// data[1] for next iteration - VLD2.F32 {dXr1,dXi1},[pSrc],pointStep - - VMLA.F32 dZr2,dXi2,dW2[1] @// real part - VMLS.F32 dZi2,dXr2,dW2[1] @// imag part - - @// data[2] for next iteration - VLD2.F32 {dXr2,dXi2},[pSrc],pointStep - - VMLA.F32 dZr3,dXi3,dW3[1] @// real part - VMLS.F32 dZi3,dXr3,dW3[1] @// imag part - .else - VMUL.F32 dZr1,dXr1,dW1[0] - VMUL.F32 dZi1,dXi1,dW1[0] - VMUL.F32 dZr2,dXr2,dW2[0] - VMUL.F32 dZi2,dXi2,dW2[0] - VMUL.F32 dZr3,dXr3,dW3[0] - VMUL.F32 dZi3,dXi3,dW3[0] - - VMLS.F32 dZr1,dXi1,dW1[1] @// real part - VMLA.F32 dZi1,dXr1,dW1[1] @// imag part - - @// data[1] for next iteration - VLD2.F32 {dXr1,dXi1},[pSrc],pointStep - - VMLS.F32 dZr2,dXi2,dW2[1] @// real part - VMLA.F32 dZi2,dXr2,dW2[1] @// imag part - - @// data[2] for next iteration - VLD2.F32 {dXr2,dXi2},[pSrc],pointStep - - VMLS.F32 dZr3,dXi3,dW3[1] @// real part - VMLA.F32 dZi3,dXr3,dW3[1] @// imag part - .endif - - @// data[3] & update pSrc to data[0] - @// But don't read on the very last iteration because that reads past - @// the end of pSrc. The last iteration is grpCount = 4, setCount = 2. - cmp grpCount, #4 - cmpeq setCount, #2 @// Test setCount if grpCount = 4 - @// These are executed only if both grpCount = 4 and setCount = 2 - addeq pSrc, pSrc, setStep - beq radix4SkipRead\name - VLD2.F32 {dXr3,dXi3},[pSrc],setStep -radix4SkipRead\name: - SUBS setCount,setCount,#2 - - @// finish first stage of 4 point FFT - VADD.F32 qY0,qX0,qZ2 - VSUB.F32 qY2,qX0,qZ2 - - @// data[0] for next iteration - VLD2.F32 {dXr0,dXi0},[pSrc, :128]! - VADD.F32 qY1,qZ1,qZ3 - VSUB.F32 qY3,qZ1,qZ3 - - @// finish second stage of 4 point FFT - - VSUB.F32 qZ0,qY2,qY1 - - - .ifeqs "\inverse", "TRUE" - - VADD.F32 dZr3,dYr0,dYi3 - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VSUB.F32 dZi3,dYi0,dYr3 - - VADD.F32 qZ2,qY2,qY1 - VST2.F32 {dZr3,dZi3},[pDst, :128],outPointStep - - VSUB.F32 dZr1,dYr0,dYi3 - VST2.F32 {dZr2,dZi2},[pDst, :128],outPointStep - VADD.F32 dZi1,dYi0,dYr3 - - VST2.F32 {dZr1,dZi1},[pDst, :128],dstStep - - - .else - - VSUB.F32 dZr1,dYr0,dYi3 - VST2.F32 {dZr0,dZi0},[pDst, :128],outPointStep - VADD.F32 dZi1,dYi0,dYr3 - - VADD.F32 qZ2,qY2,qY1 - VST2.F32 {dZr1,dZi1},[pDst, :128],outPointStep - - VADD.F32 dZr3,dYr0,dYi3 - VST2.F32 {dZr2,dZi2},[pDst, :128],outPointStep - VSUB.F32 dZi3,dYi0,dYr3 - - VST2.F32 {dZr3,dZi3},[pDst, :128],dstStep - - - .endif - - @// increment to data[1] of the next set - ADD pSrc,pSrc,pointStep - BGT radix4SetLoop\name - - - VLD1.F32 dW1,[pTwiddle, :64],stepTwiddle @//[wi | wr] - @// subtract 4 since grpCount multiplied by 4 - SUBS grpCount,grpCount,#4 - VLD1.F32 dW2,[pTwiddle, :64],stepTwiddle @//[wi | wr] - @// increment pSrc for the next grp - ADD pSrc,pSrc,srcStep - VLD1.F32 dW3,[pTwiddle, :64],twStep @//[wi | wr] - BGT radix4GrpLoop\name - - - @// Reset and Swap pSrc and pDst for the next stage - MOV t1,pDst - @// pDst -= 2*size; pSrc -= 8*size bytes - SUB pDst,pSrc,outPointStep,LSL #2 - SUB pSrc,t1,outPointStep - - - .endm - - - M_START armSP_FFTFwd_CToC_FC32_Radix4_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",FWD - M_END - - - M_START armSP_FFTInv_CToC_FC32_Radix4_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",INV - M_END - - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix8_fs_unsafe_s.S b/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix8_fs_unsafe_s.S deleted file mode 100644 index 569818c5c3..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_CToC_FC32_Radix8_fs_unsafe_s.S +++ /dev/null @@ -1,422 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of armSP_FFT_CToC_FC32_Radix8_fs_unsafe_s.s -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute a first stage Radix 8 FFT stage for a N point complex signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - -@// Import symbols required from other files -@// (For example tables) - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - -@// Guarding implementation by the processor name - -@//Input Registers - -#define pSrc r0 -#define pDst r2 -#define pTwiddle r1 -#define subFFTNum r6 -#define subFFTSize r7 -@// dest buffer for the next stage (not pSrc for first stage) -#define pPingPongBuf r5 - - -@//Output Registers - - -@//Local Scratch Registers - -#define grpSize r3 -@// Reuse grpSize as setCount -#define setCount r3 -#define pointStep r4 -#define outPointStep r4 -#define setStep r8 -#define step1 r9 -#define step2 r10 -#define t0 r11 - - -@// Neon Registers - -#define dXr0 D0 -#define dXi0 D1 -#define dXr1 D2 -#define dXi1 D3 -#define dXr2 D4 -#define dXi2 D5 -#define dXr3 D6 -#define dXi3 D7 -#define dXr4 D8 -#define dXi4 D9 -#define dXr5 D10 -#define dXi5 D11 -#define dXr6 D12 -#define dXi6 D13 -#define dXr7 D14 -#define dXi7 D15 -#define qX0 Q0 -#define qX1 Q1 -#define qX2 Q2 -#define qX3 Q3 -#define qX4 Q4 -#define qX5 Q5 -#define qX6 Q6 -#define qX7 Q7 - -#define dUr0 D16 -#define dUi0 D17 -#define dUr2 D18 -#define dUi2 D19 -#define dUr4 D20 -#define dUi4 D21 -#define dUr6 D22 -#define dUi6 D23 -#define dUr1 D24 -#define dUi1 D25 -#define dUr3 D26 -#define dUi3 D27 -#define dUr5 D28 -#define dUi5 D29 -@// reuse dXr7 and dXi7 -#define dUr7 D30 -#define dUi7 D31 -#define qU0 Q8 -#define qU1 Q12 -#define qU2 Q9 -#define qU3 Q13 -#define qU4 Q10 -#define qU5 Q14 -#define qU6 Q11 -#define qU7 Q15 - - -#define dVr0 D24 -#define dVi0 D25 -#define dVr2 D26 -#define dVi2 D27 -#define dVr4 D28 -#define dVi4 D29 -#define dVr6 D30 -#define dVi6 D31 -#define dVr1 D16 -#define dVi1 D17 -#define dVr3 D18 -#define dVi3 D19 -#define dVr5 D20 -#define dVi5 D21 -#define dVr7 D22 -#define dVi7 D23 -#define qV0 Q12 -#define qV1 Q8 -#define qV2 Q13 -#define qV3 Q9 -#define qV4 Q14 -#define qV5 Q10 -#define qV6 Q15 -#define qV7 Q11 - -#define dYr0 D16 -#define dYi0 D17 -#define dYr2 D18 -#define dYi2 D19 -#define dYr4 D20 -#define dYi4 D21 -#define dYr6 D22 -#define dYi6 D23 -#define dYr1 D24 -#define dYi1 D25 -#define dYr3 D26 -#define dYi3 D27 -#define dYr5 D28 -#define dYi5 D29 -#define dYr7 D30 -#define dYi7 D31 -#define qY0 Q8 -#define qY1 Q12 -#define qY2 Q9 -#define qY3 Q13 -#define qY4 Q10 -#define qY5 Q14 -#define qY6 Q11 -#define qY7 Q15 - -#define dT0 D14 -#define dT1 D15 - - - .MACRO FFTSTAGE scaled, inverse, name - - @// Define stack arguments - - @// Update pSubFFTSize and pSubFFTNum regs - @// subFFTSize = 1 for the first stage - MOV subFFTSize,#8 - ADR t0,ONEBYSQRT2\name - - @// Note: setCount = subFFTNum/8 (reuse the grpSize reg for setCount) - LSR grpSize,subFFTNum,#3 - MOV subFFTNum,grpSize - - - @// pT0+1 increments pT0 by 8 bytes - @// pT0+pointStep = increment of 8*pointStep bytes = grpSize bytes - @// Note: outPointStep = pointStep for firststage - - MOV pointStep,grpSize,LSL #3 - - - @// Calculate the step of input data for the next set - @//MOV step1,pointStep,LSL #1 @// step1 = 2*pointStep - VLD2.F32 {dXr0,dXi0},[pSrc, :128],pointStep @// data[0] - MOV step1,grpSize,LSL #4 - - MOV step2,pointStep,LSL #3 - VLD2.F32 {dXr1,dXi1},[pSrc, :128],pointStep @// data[1] - SUB step2,step2,pointStep @// step2 = 7*pointStep - @// setStep = - 7*pointStep+16 - RSB setStep,step2,#16 - - VLD2.F32 {dXr2,dXi2},[pSrc, :128],pointStep @// data[2] - VLD2.F32 {dXr3,dXi3},[pSrc, :128],pointStep @// data[3] - VLD2.F32 {dXr4,dXi4},[pSrc, :128],pointStep @// data[4] - VLD2.F32 {dXr5,dXi5},[pSrc, :128],pointStep @// data[5] - VLD2.F32 {dXr6,dXi6},[pSrc, :128],pointStep @// data[6] - @// data[7] & update pSrc for the next set - @// setStep = -7*pointStep + 16 - VLD2.F32 {dXr7,dXi7},[pSrc, :128],setStep - @// grp = 0 a special case since all the twiddle factors are 1 - @// Loop on the sets - -radix8fsGrpZeroSetLoop\name : - - @// Decrement setcount - SUBS setCount,setCount,#2 - - - @// finish first stage of 8 point FFT - - VADD.F32 qU0,qX0,qX4 - VADD.F32 qU2,qX1,qX5 - VADD.F32 qU4,qX2,qX6 - VADD.F32 qU6,qX3,qX7 - - @// finish second stage of 8 point FFT - - VADD.F32 qV0,qU0,qU4 - VSUB.F32 qV2,qU0,qU4 - VADD.F32 qV4,qU2,qU6 - VSUB.F32 qV6,qU2,qU6 - - @// finish third stage of 8 point FFT - - VADD.F32 qY0,qV0,qV4 - VSUB.F32 qY4,qV0,qV4 - VST2.F32 {dYr0,dYi0},[pDst, :128],step1 @// store y0 - - .ifeqs "\inverse", "TRUE" - - VSUB.F32 dYr2,dVr2,dVi6 - VADD.F32 dYi2,dVi2,dVr6 - - VADD.F32 dYr6,dVr2,dVi6 - VST2.F32 {dYr2,dYi2},[pDst, :128],step1 @// store y2 - VSUB.F32 dYi6,dVi2,dVr6 - - VSUB.F32 qU1,qX0,qX4 - VST2.F32 {dYr4,dYi4},[pDst, :128],step1 @// store y4 - - VSUB.F32 qU3,qX1,qX5 - VSUB.F32 qU5,qX2,qX6 - VST2.F32 {dYr6,dYi6},[pDst, :128],step1 @// store y6 - - .ELSE - - VADD.F32 dYr6,dVr2,dVi6 - VSUB.F32 dYi6,dVi2,dVr6 - - VSUB.F32 dYr2,dVr2,dVi6 - VST2.F32 {dYr6,dYi6},[pDst, :128],step1 @// store y2 - VADD.F32 dYi2,dVi2,dVr6 - - - VSUB.F32 qU1,qX0,qX4 - VST2.F32 {dYr4,dYi4},[pDst, :128],step1 @// store y4 - VSUB.F32 qU3,qX1,qX5 - VSUB.F32 qU5,qX2,qX6 - VST2.F32 {dYr2,dYi2},[pDst, :128],step1 @// store y6 - - - .ENDIF - - @// finish first stage of 8 point FFT - - VSUB.F32 qU7,qX3,qX7 - VLD1.F32 dT0[0], [t0] - - @// finish second stage of 8 point FFT - - VSUB.F32 dVr1,dUr1,dUi5 - @// data[0] for next iteration - VLD2.F32 {dXr0,dXi0},[pSrc, :128],pointStep - VADD.F32 dVi1,dUi1,dUr5 - VADD.F32 dVr3,dUr1,dUi5 - VLD2.F32 {dXr1,dXi1},[pSrc, :128],pointStep @// data[1] - VSUB.F32 dVi3,dUi1,dUr5 - - VSUB.F32 dVr5,dUr3,dUi7 - VLD2.F32 {dXr2,dXi2},[pSrc, :128],pointStep @// data[2] - VADD.F32 dVi5,dUi3,dUr7 - VADD.F32 dVr7,dUr3,dUi7 - VLD2.F32 {dXr3,dXi3},[pSrc, :128],pointStep @// data[3] - VSUB.F32 dVi7,dUi3,dUr7 - - @// finish third stage of 8 point FFT - - .ifeqs "\inverse", "TRUE" - - @// calculate a*v5 - VMUL.F32 dT1,dVr5,dT0[0] @// use dVi0 for dT1 - - VLD2.F32 {dXr4,dXi4},[pSrc, :128],pointStep @// data[4] - VMUL.F32 dVi5,dVi5,dT0[0] - - VLD2.F32 {dXr5,dXi5},[pSrc, :128],pointStep @// data[5] - VSUB.F32 dVr5,dT1,dVi5 @// a * V5 - VADD.F32 dVi5,dT1,dVi5 - - VLD2.F32 {dXr6,dXi6},[pSrc, :128],pointStep @// data[6] - - @// calculate b*v7 - VMUL.F32 dT1,dVr7,dT0[0] - VMUL.F32 dVi7,dVi7,dT0[0] - - VADD.F32 qY1,qV1,qV5 - VSUB.F32 qY5,qV1,qV5 - - - VADD.F32 dVr7,dT1,dVi7 @// b * V7 - VSUB.F32 dVi7,dVi7,dT1 - SUB pDst, pDst, step2 @// set pDst to y1 - - @// On the last iteration, this will read past the end of pSrc, - @// so skip this read. - BEQ radix8SkipLastUpdateInv\name - VLD2.F32 {dXr7,dXi7},[pSrc, :128],setStep @// data[7] -radix8SkipLastUpdateInv\name: - - VSUB.F32 dYr3,dVr3,dVr7 - VSUB.F32 dYi3,dVi3,dVi7 - VST2.F32 {dYr1,dYi1},[pDst, :128],step1 @// store y1 - VADD.F32 dYr7,dVr3,dVr7 - VADD.F32 dYi7,dVi3,dVi7 - - - VST2.F32 {dYr3,dYi3},[pDst, :128],step1 @// store y3 - VST2.F32 {dYr5,dYi5},[pDst, :128],step1 @// store y5 - VST2.F32 {dYr7,dYi7},[pDst, :128] @// store y7 - ADD pDst, pDst, #16 - - .ELSE - - @// calculate b*v7 - VMUL.F32 dT1,dVr7,dT0[0] - VLD2.F32 {dXr4,dXi4},[pSrc, :128],pointStep @// data[4] - VMUL.F32 dVi7,dVi7,dT0[0] - - VLD2.F32 {dXr5,dXi5},[pSrc, :128],pointStep @// data[5] - VADD.F32 dVr7,dT1,dVi7 @// b * V7 - VSUB.F32 dVi7,dVi7,dT1 - - VLD2.F32 {dXr6,dXi6},[pSrc, :128],pointStep @// data[6] - - @// calculate a*v5 - VMUL.F32 dT1,dVr5,dT0[0] @// use dVi0 for dT1 - VMUL.F32 dVi5,dVi5,dT0[0] - - VADD.F32 dYr7,dVr3,dVr7 - VADD.F32 dYi7,dVi3,dVi7 - SUB pDst, pDst, step2 @// set pDst to y1 - - VSUB.F32 dVr5,dT1,dVi5 @// a * V5 - VADD.F32 dVi5,dT1,dVi5 - - @// On the last iteration, this will read past the end of pSrc, - @// so skip this read. - BEQ radix8SkipLastUpdateFwd\name - VLD2.F32 {dXr7,dXi7},[pSrc, :128],setStep @// data[7] -radix8SkipLastUpdateFwd\name: - - VSUB.F32 qY5,qV1,qV5 - - VSUB.F32 dYr3,dVr3,dVr7 - VST2.F32 {dYr7,dYi7},[pDst, :128],step1 @// store y1 - VSUB.F32 dYi3,dVi3,dVi7 - VADD.F32 qY1,qV1,qV5 - - - VST2.F32 {dYr5,dYi5},[pDst, :128],step1 @// store y3 - VST2.F32 {dYr3,dYi3},[pDst, :128],step1 @// store y5 - VST2.F32 {dYr1,dYi1},[pDst, :128]! @// store y7 - - .ENDIF - - - @// update pDst for the next set - SUB pDst, pDst, step2 - BGT radix8fsGrpZeroSetLoop\name - - - @// reset pSrc to pDst for the next stage - SUB pSrc,pDst,pointStep @// pDst -= 2*grpSize - MOV pDst,pPingPongBuf - - - - .endm - - - @// Allocate stack memory required by the function - - - M_START armSP_FFTFwd_CToC_FC32_Radix8_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","FALSE",FWD - M_END -ONEBYSQRT2FWD: .float 0.7071067811865476e0 - - M_START armSP_FFTInv_CToC_FC32_Radix8_fs_OutOfPlace_unsafe,r4 - FFTSTAGE "FALSE","TRUE",INV - M_END -ONEBYSQRT2INV: .float 0.7071067811865476e0 - - - .end diff --git a/media/openmax_dl/dl/sp/src/armSP_FFT_F32TwiddleTable.c b/media/openmax_dl/dl/sp/src/armSP_FFT_F32TwiddleTable.c deleted file mode 100644 index 87d98614fa..0000000000 --- a/media/openmax_dl/dl/sp/src/armSP_FFT_F32TwiddleTable.c +++ /dev/null @@ -1,4643 +0,0 @@ -/* - * Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. - * - * Use of this source code is governed by a BSD-style license - * that can be found in the LICENSE file in the root of the source - * tree. An additional intellectual property rights grant can be found - * in the file PATENTS. All contributing project authors may - * be found in the AUTHORS file in the root of the source tree. - * - */ - -/* - * Description: - * Twiddle table for Forward FFT in float format. - * It contains complex pairs [-cos (W * i), -sin (W * i)] where W = -2*PI/N - * and 0<= i<= N/8. N is the max size of the FFT. Here N = 2^12 - * Values for N/8 < i < N are generated in the FFTInit function using the - * symmetries of cos and sine. - * - * We use the negative to be consistent with the S32 version. -**/ - -#include "dl/api/omxtypes.h" - -#define TWIDDLE_TABLE_ENTRIES ((1 << TWIDDLE_TABLE_ORDER) / 8) - -const OMX_F32 armSP_FFT_F32TwiddleTable[2 * TWIDDLE_TABLE_ENTRIES + 2] = { -#if TWIDDLE_TABLE_ORDER == 15 - -1.000000000000000e+00, 0.000000000000000e+00, - -9.999999816164293e-01, 1.917475973107033e-04, - -9.999999264657179e-01, 3.834951875713956e-04, - -9.999998345478677e-01, 5.752427637320661e-04, - -9.999997058628822e-01, 7.669903187427045e-04, - -9.999995404107661e-01, 9.587378455533014e-04, - -9.999993381915255e-01, 1.150485337113848e-03, - -9.999990992051678e-01, 1.342232786374338e-03, - -9.999988234517019e-01, 1.533980186284766e-03, - -9.999985109311378e-01, 1.725727529795126e-03, - -9.999981616434870e-01, 1.917474809855419e-03, - -9.999977755887623e-01, 2.109222019415644e-03, - -9.999973527669782e-01, 2.300969151425805e-03, - -9.999968931781499e-01, 2.492716198835908e-03, - -9.999963968222944e-01, 2.684463154595962e-03, - -9.999958636994299e-01, 2.876210011655979e-03, - -9.999952938095762e-01, 3.067956762965976e-03, - -9.999946871527541e-01, 3.259703401475973e-03, - -9.999940437289858e-01, 3.451449920135994e-03, - -9.999933635382952e-01, 3.643196311896068e-03, - -9.999926465807072e-01, 3.834942569706228e-03, - -9.999918928562480e-01, 4.026688686516512e-03, - -9.999911023649456e-01, 4.218434655276963e-03, - -9.999902751068289e-01, 4.410180468937631e-03, - -9.999894110819284e-01, 4.601926120448570e-03, - -9.999885102902757e-01, 4.793671602759841e-03, - -9.999875727319041e-01, 4.985416908821511e-03, - -9.999865984068480e-01, 5.177162031583651e-03, - -9.999855873151432e-01, 5.368906963996342e-03, - -9.999845394568270e-01, 5.560651699009674e-03, - -9.999834548319377e-01, 5.752396229573736e-03, - -9.999823334405153e-01, 5.944140548638633e-03, - -9.999811752826011e-01, 6.135884649154475e-03, - -9.999799803582377e-01, 6.327628524071378e-03, - -9.999787486674688e-01, 6.519372166339468e-03, - -9.999774802103399e-01, 6.711115568908879e-03, - -9.999761749868976e-01, 6.902858724729756e-03, - -9.999748329971898e-01, 7.094601626752250e-03, - -9.999734542412659e-01, 7.286344267926521e-03, - -9.999720387191767e-01, 7.478086641202744e-03, - -9.999705864309741e-01, 7.669828739531097e-03, - -9.999690973767116e-01, 7.861570555861772e-03, - -9.999675715564438e-01, 8.053312083144972e-03, - -9.999660089702269e-01, 8.245053314330906e-03, - -9.999644096181183e-01, 8.436794242369799e-03, - -9.999627735001769e-01, 8.628534860211886e-03, - -9.999611006164628e-01, 8.820275160807411e-03, - -9.999593909670375e-01, 9.012015137106633e-03, - -9.999576445519639e-01, 9.203754782059820e-03, - -9.999558613713061e-01, 9.395494088617251e-03, - -9.999540414251298e-01, 9.587233049729225e-03, - -9.999521847135018e-01, 9.778971658346043e-03, - -9.999502912364905e-01, 9.970709907418030e-03, - -9.999483609941654e-01, 1.016244778989551e-02, - -9.999463939865975e-01, 1.035418529872884e-02, - -9.999443902138591e-01, 1.054592242686838e-02, - -9.999423496760239e-01, 1.073765916726449e-02, - -9.999402723731670e-01, 1.092939551286757e-02, - -9.999381583053646e-01, 1.112113145662802e-02, - -9.999360074726946e-01, 1.131286699149626e-02, - -9.999338198752360e-01, 1.150460211042271e-02, - -9.999315955130692e-01, 1.169633680635784e-02, - -9.999293343862761e-01, 1.188807107225209e-02, - -9.999270364949396e-01, 1.207980490105596e-02, - -9.999247018391445e-01, 1.227153828571993e-02, - -9.999223304189765e-01, 1.246327121919451e-02, - -9.999199222345228e-01, 1.265500369443024e-02, - -9.999174772858718e-01, 1.284673570437766e-02, - -9.999149955731135e-01, 1.303846724198733e-02, - -9.999124770963392e-01, 1.323019830020983e-02, - -9.999099218556415e-01, 1.342192887199577e-02, - -9.999073298511143e-01, 1.361365895029574e-02, - -9.999047010828529e-01, 1.380538852806039e-02, - -9.999020355509539e-01, 1.399711759824037e-02, - -9.998993332555154e-01, 1.418884615378634e-02, - -9.998965941966367e-01, 1.438057418764901e-02, - -9.998938183744185e-01, 1.457230169277906e-02, - -9.998910057889630e-01, 1.476402866212725e-02, - -9.998881564403733e-01, 1.495575508864430e-02, - -9.998852703287545e-01, 1.514748096528099e-02, - -9.998823474542126e-01, 1.533920628498810e-02, - -9.998793878168549e-01, 1.553093104071645e-02, - -9.998763914167904e-01, 1.572265522541686e-02, - -9.998733582541293e-01, 1.591437883204018e-02, - -9.998702883289830e-01, 1.610610185353729e-02, - -9.998671816414644e-01, 1.629782428285906e-02, - -9.998640381916877e-01, 1.648954611295644e-02, - -9.998608579797685e-01, 1.668126733678033e-02, - -9.998576410058239e-01, 1.687298794728171e-02, - -9.998543872699719e-01, 1.706470793741156e-02, - -9.998510967723322e-01, 1.725642730012088e-02, - -9.998477695130259e-01, 1.744814602836069e-02, - -9.998444054921752e-01, 1.763986411508205e-02, - -9.998410047099040e-01, 1.783158155323604e-02, - -9.998375671663371e-01, 1.802329833577375e-02, - -9.998340928616010e-01, 1.821501445564629e-02, - -9.998305817958234e-01, 1.840672990580482e-02, - -9.998270339691334e-01, 1.859844467920051e-02, - -9.998234493816616e-01, 1.879015876878455e-02, - -9.998198280335394e-01, 1.898187216750818e-02, - -9.998161699249004e-01, 1.917358486832262e-02, - -9.998124750558788e-01, 1.936529686417916e-02, - -9.998087434266105e-01, 1.955700814802908e-02, - -9.998049750372329e-01, 1.974871871282373e-02, - -9.998011698878843e-01, 1.994042855151444e-02, - -9.997973279787047e-01, 2.013213765705259e-02, - -9.997934493098353e-01, 2.032384602238959e-02, - -9.997895338814188e-01, 2.051555364047688e-02, - -9.997855816935992e-01, 2.070726050426589e-02, - -9.997815927465217e-01, 2.089896660670814e-02, - -9.997775670403329e-01, 2.109067194075512e-02, - -9.997735045751810e-01, 2.128237649935839e-02, - -9.997694053512153e-01, 2.147408027546951e-02, - -9.997652693685865e-01, 2.166578326204008e-02, - -9.997610966274466e-01, 2.185748545202174e-02, - -9.997568871279491e-01, 2.204918683836614e-02, - -9.997526408702488e-01, 2.224088741402496e-02, - -9.997483578545018e-01, 2.243258717194993e-02, - -9.997440380808654e-01, 2.262428610509280e-02, - -9.997396815494987e-01, 2.281598420640535e-02, - -9.997352882605617e-01, 2.300768146883937e-02, - -9.997308582142160e-01, 2.319937788534672e-02, - -9.997263914106245e-01, 2.339107344887926e-02, - -9.997218878499513e-01, 2.358276815238889e-02, - -9.997173475323622e-01, 2.377446198882755e-02, - -9.997127704580239e-01, 2.396615495114721e-02, - -9.997081566271049e-01, 2.415784703229986e-02, - -9.997035060397746e-01, 2.434953822523753e-02, - -9.996988186962042e-01, 2.454122852291229e-02, - -9.996940945965660e-01, 2.473291791827622e-02, - -9.996893337410336e-01, 2.492460640428147e-02, - -9.996845361297821e-01, 2.511629397388019e-02, - -9.996797017629879e-01, 2.530798062002457e-02, - -9.996748306408287e-01, 2.549966633566685e-02, - -9.996699227634838e-01, 2.569135111375929e-02, - -9.996649781311333e-01, 2.588303494725420e-02, - -9.996599967439592e-01, 2.607471782910390e-02, - -9.996549786021447e-01, 2.626639975226076e-02, - -9.996499237058742e-01, 2.645808070967719e-02, - -9.996448320553336e-01, 2.664976069430562e-02, - -9.996397036507102e-01, 2.684143969909853e-02, - -9.996345384921923e-01, 2.703311771700843e-02, - -9.996293365799701e-01, 2.722479474098788e-02, - -9.996240979142346e-01, 2.741647076398944e-02, - -9.996188224951786e-01, 2.760814577896574e-02, - -9.996135103229960e-01, 2.779981977886944e-02, - -9.996081613978821e-01, 2.799149275665324e-02, - -9.996027757200335e-01, 2.818316470526987e-02, - -9.995973532896484e-01, 2.837483561767210e-02, - -9.995918941069260e-01, 2.856650548681273e-02, - -9.995863981720671e-01, 2.875817430564461e-02, - -9.995808654852737e-01, 2.894984206712064e-02, - -9.995752960467492e-01, 2.914150876419372e-02, - -9.995696898566986e-01, 2.933317438981684e-02, - -9.995640469153277e-01, 2.952483893694298e-02, - -9.995583672228443e-01, 2.971650239852519e-02, - -9.995526507794570e-01, 2.990816476751655e-02, - -9.995468975853760e-01, 3.009982603687020e-02, - -9.995411076408129e-01, 3.029148619953928e-02, - -9.995352809459805e-01, 3.048314524847701e-02, - -9.995294175010931e-01, 3.067480317663663e-02, - -9.995235173063663e-01, 3.086645997697141e-02, - -9.995175803620170e-01, 3.105811564243470e-02, - -9.995116066682634e-01, 3.124977016597986e-02, - -9.995055962253253e-01, 3.144142354056030e-02, - -9.994995490334236e-01, 3.163307575912948e-02, - -9.994934650927806e-01, 3.182472681464089e-02, - -9.994873444036201e-01, 3.201637670004806e-02, - -9.994811869661670e-01, 3.220802540830459e-02, - -9.994749927806478e-01, 3.239967293236409e-02, - -9.994687618472900e-01, 3.259131926518023e-02, - -9.994624941663232e-01, 3.278296439970672e-02, - -9.994561897379773e-01, 3.297460832889734e-02, - -9.994498485624845e-01, 3.316625104570586e-02, - -9.994434706400778e-01, 3.335789254308614e-02, - -9.994370559709915e-01, 3.354953281399207e-02, - -9.994306045554617e-01, 3.374117185137758e-02, - -9.994241163937256e-01, 3.393280964819666e-02, - -9.994175914860217e-01, 3.412444619740333e-02, - -9.994110298325898e-01, 3.431608149195165e-02, - -9.994044314336713e-01, 3.450771552479575e-02, - -9.993977962895086e-01, 3.469934828888980e-02, - -9.993911244003460e-01, 3.489097977718800e-02, - -9.993844157664286e-01, 3.508260998264462e-02, - -9.993776703880028e-01, 3.527423889821395e-02, - -9.993708882653172e-01, 3.546586651685035e-02, - -9.993640693986205e-01, 3.565749283150822e-02, - -9.993572137881640e-01, 3.584911783514202e-02, - -9.993503214341994e-01, 3.604074152070623e-02, - -9.993433923369802e-01, 3.623236388115540e-02, - -9.993364264967612e-01, 3.642398490944411e-02, - -9.993294239137984e-01, 3.661560459852703e-02, - -9.993223845883495e-01, 3.680722294135883e-02, - -9.993153085206731e-01, 3.699883993089426e-02, - -9.993081957110295e-01, 3.719045556008812e-02, - -9.993010461596801e-01, 3.738206982189523e-02, - -9.992938598668878e-01, 3.757368270927049e-02, - -9.992866368329167e-01, 3.776529421516886e-02, - -9.992793770580327e-01, 3.795690433254531e-02, - -9.992720805425026e-01, 3.814851305435489e-02, - -9.992647472865944e-01, 3.834012037355269e-02, - -9.992573772905781e-01, 3.853172628309387e-02, - 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-7.491363945234594e-01, 6.624157775901718e-01, - -7.481193804504036e-01, 6.635641586120398e-01, - -7.471006059801801e-01, 6.647109782033448e-01, - -7.460800735100638e-01, 6.658562336655097e-01, - -7.450577854414661e-01, 6.669999223036375e-01, - -7.440337441799293e-01, 6.681420414265185e-01, - -7.430079521351217e-01, 6.692825883466360e-01, - -7.419804117208311e-01, 6.704215603801731e-01, - -7.409511253549591e-01, 6.715589548470183e-01, - -7.399200954595162e-01, 6.726947690707729e-01, - -7.388873244606151e-01, 6.738290003787560e-01, - -7.378528147884660e-01, 6.749616461020119e-01, - -7.368165688773699e-01, 6.760927035753159e-01, - -7.357785891657136e-01, 6.772221701371803e-01, - -7.347388780959635e-01, 6.783500431298615e-01, - -7.336974381146604e-01, 6.794763198993650e-01, - -7.326542716724128e-01, 6.806009977954530e-01, - -7.316093812238926e-01, 6.817240741716497e-01, - -7.305627692278276e-01, 6.828455463852481e-01, - -7.295144381469970e-01, 6.839654117973154e-01, - -7.284643904482252e-01, 6.850836677727004e-01, - -7.274126286023758e-01, 6.862003116800386e-01, - -7.263591550843460e-01, 6.873153408917590e-01, - -7.253039723730608e-01, 6.884287527840904e-01, - -7.242470829514670e-01, 6.895405447370668e-01, - -7.231884893065275e-01, 6.906507141345346e-01, - -7.221281939292153e-01, 6.917592583641577e-01, - -7.210661993145081e-01, 6.928661748174246e-01, - -7.200025079613817e-01, 6.939714608896540e-01, - -7.189371223728045e-01, 6.950751139800009e-01, - -7.178700450557317e-01, 6.961771314914630e-01, - -7.168012785210995e-01, 6.972775108308865e-01, - -7.157308252838186e-01, 6.983762494089729e-01, - -7.146586878627691e-01, 6.994733446402838e-01, - -7.135848687807936e-01, 7.005687939432483e-01, - -7.125093705646923e-01, 7.016625947401685e-01, - -7.114321957452164e-01, 7.027547444572253e-01, - -7.103533468570624e-01, 7.038452405244849e-01, - -7.092728264388657e-01, 7.049340803759049e-01, - -7.081906370331954e-01, 7.060212614493397e-01, - -7.071067811865476e-01, 7.071067811865475e-01, -#else -#error Unsupported twiddle table size -#endif -}; diff --git a/media/openmax_dl/dl/sp/src/omxSP_FFTFwd_RToCCS_F32_Sfs_s.S b/media/openmax_dl/dl/sp/src/omxSP_FFTFwd_RToCCS_F32_Sfs_s.S deleted file mode 100644 index bbbd9d5b43..0000000000 --- a/media/openmax_dl/dl/sp/src/omxSP_FFTFwd_RToCCS_F32_Sfs_s.S +++ /dev/null @@ -1,404 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of omxSP_FFTFwd_RToCCS_S32_Sfs_s.s -@// to support float instead of SC32. -@// - -@// -@// Description: -@// Compute FFT for a real signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - .extern armSP_FFTFwd_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix4_fs_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix8_fs_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix4_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix4_fs_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix8_fs_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix2_OutOfPlace_unsafe - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - @// Guarding implementation by the processor name - -@// Import symbols required from other files -@// (For example tables) - .extern armSP_FFTFwd_CToC_FC32_Radix4_ls_OutOfPlace_unsafe - .extern armSP_FFTFwd_CToC_FC32_Radix2_ls_OutOfPlace_unsafe - - -@//Input Registers - -#define pSrc r0 -#define pDst r1 -#define pFFTSpec r2 -#define scale r3 - - -@// Output registers -#define result r0 - -@//Local Scratch Registers - -#define argTwiddle r1 -#define argDst r2 -#define argScale r4 -#define tmpOrder r4 -#define pTwiddle r4 -#define pOut r5 -#define subFFTSize r7 -#define subFFTNum r6 -#define N r6 -#define order r14 -#define diff r9 -@// Total num of radix stages required to comple the FFT -#define count r8 -#define x0r r4 -#define x0i r5 -#define diffMinusOne r2 -#define subFFTSizeTmp r6 -#define step r3 -#define step1 r4 -#define twStep r8 -#define zero r9 -#define pTwiddleTmp r5 -#define t0 r10 - -@// Neon registers - -#define dX0 d0 -#define dzero d1 -#define dZero d2 -#define dShift d3 -#define dX0r d2 -#define dX0i d3 -#define dX1r d4 -#define dX1i d5 -#define dT0 d6 -#define dT1 d7 -#define dT2 d8 -#define dT3 d9 -#define qT0 d10 -#define qT1 d12 -#define dW0r d14 -#define dW0i d15 -#define dW1r d16 -#define dW1i d17 -#define dY0r d14 -#define dY0i d15 -#define dY1r d16 -#define dY1i d17 -#define dY0rS64 d14.s64 -#define dY0iS64 d15.s64 -#define qT2 d18 -#define qT3 d20 -@// lastThreeelements -#define dX1 d3 -#define dW0 d4 -#define dW1 d5 -#define dY0 d10 -#define dY1 d11 -#define dY2 d12 -#define dY3 d13 - -#define half d0 - - @// Allocate stack memory required by the function - - @// Write function header - M_START omxSP_FFTFwd_RToCCS_F32_Sfs,r11,d15 - -@ Structure offsets for the FFTSpec - .set ARMsFFTSpec_N, 0 - .set ARMsFFTSpec_pBitRev, 4 - .set ARMsFFTSpec_pTwiddle, 8 - .set ARMsFFTSpec_pBuf, 12 - - @// Define stack arguments - - @// Read the size from structure and take log - LDR N, [pFFTSpec, #ARMsFFTSpec_N] - - @// Read other structure parameters - LDR pTwiddle, [pFFTSpec, #ARMsFFTSpec_pTwiddle] - LDR pOut, [pFFTSpec, #ARMsFFTSpec_pBuf] - - @// N=1 Treat seperately - CMP N,#1 - BGT sizeGreaterThanOne - VLD1.F32 dX0[0],[pSrc] - MOV zero,#0 - VMOV.F32 dzero[0],zero - VMOV.F32 dZero[0],zero - VST3.F32 {dX0[0],dzero[0],dZero[0]},[pDst] - - B End - - - -sizeGreaterThanOne: - @// Do a N/2 point complex FFT including the scaling - - MOV N,N,ASR #1 @// N/2 point complex FFT - - CLZ order,N @// N = 2^order - RSB order,order,#31 - MOV subFFTSize,#1 - @//MOV subFFTNum,N - - CMP order,#3 - BGT orderGreaterthan3 @// order > 3 - - CMP order,#1 - BGE orderGreaterthan0 @// order > 0 - VLD1.F32 dX0,[pSrc] - VST1.F32 dX0,[pOut] - MOV pSrc,pOut - MOV argDst,pDst - BLT FFTEnd - -orderGreaterthan0: - @// set the buffers appropriately for various orders - CMP order,#2 - MOVEQ argDst,pDst - MOVNE argDst,pOut - @// Pass the first stage destination in RN5 - MOVNE pOut,pDst - MOV argTwiddle,pTwiddle - - CMP order,#1 - BGT orderGreaterthan1 - @// order = 1 - BL armSP_FFTFwd_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - B FFTEnd - -orderGreaterthan1: - CMP order,#2 - BGT orderGreaterthan2 - @// order =2 - BL armSP_FFTFwd_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - BL armSP_FFTFwd_CToC_FC32_Radix2_ls_OutOfPlace_unsafe - B FFTEnd - -orderGreaterthan2:@// order =3 - BL armSP_FFTFwd_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - BL armSP_FFTFwd_CToC_FC32_Radix2_OutOfPlace_unsafe - BL armSP_FFTFwd_CToC_FC32_Radix2_ls_OutOfPlace_unsafe - - B FFTEnd - - - -orderGreaterthan3: -specialScaleCase: - - @// Set input args to fft stages - TST order, #2 - MOVEQ argDst,pDst - MOVNE argDst,pOut - @// Pass the first stage destination in RN5 - MOVNE pOut,pDst - MOV argTwiddle,pTwiddle - - @//check for even or odd order - @// NOTE: The following combination of BL's would work fine even though - @// the first BL would corrupt the flags. This is because the end of - @// the "grpZeroSetLoop" loop inside - @// armSP_FFTFwd_CToC_FC32_Radix4_fs_OutOfPlace_unsafe sets the Z flag - @// to EQ - - TST order,#0x00000001 - BLEQ armSP_FFTFwd_CToC_FC32_Radix4_fs_OutOfPlace_unsafe - BLNE armSP_FFTFwd_CToC_FC32_Radix8_fs_OutOfPlace_unsafe - - CMP subFFTNum,#4 - BLT FFTEnd - - -unscaledRadix4Loop: - BEQ lastStageUnscaledRadix4 - BL armSP_FFTFwd_CToC_FC32_Radix4_OutOfPlace_unsafe - CMP subFFTNum,#4 - B unscaledRadix4Loop - -lastStageUnscaledRadix4: - BL armSP_FFTFwd_CToC_FC32_Radix4_ls_OutOfPlace_unsafe - B FFTEnd - - -FFTEnd: -finalComplexToRealFixup: - - - @// F(0) = 1/2[Z(0) + Z'(0)] - j [Z(0) - Z'(0)] - @// 1/2[(a+jb) + (a-jb)] - j [(a+jb) - (a-jb)] - @// 1/2[2a+j0] - j [0+j2b] - @// (a+b, 0) - - @// F(N/2) = 1/2[Z(0) + Z'(0)] + j [Z(0) - Z'(0)] - @// 1/2[(a+jb) + (a-jb)] + j [(a+jb) - (a-jb)] - @// 1/2[2a+j0] + j [0+j2b] - @// (a-b, 0) - - @// F(0) and F(N/2) - VLD2.F32 {dX0r[0],dX0i[0]},[pSrc]! - MOV zero,#0 - VMOV.F32 dX0r[1],zero - MOV step,subFFTSize,LSL #3 @// step = N/2 * 8 bytes - VMOV.F32 dX0i[1],zero - @// twStep = 3N/8 * 8 bytes pointing to W^1 - SUB twStep,step,subFFTSize,LSL #1 - - VADD.F32 dY0r,dX0r,dX0i @// F(0) = ((Z0.r+Z0.i) , 0) - MOV step1,subFFTSize,LSL #2 @// step1 = N/2 * 4 bytes - VSUB.F32 dY0i,dX0r,dX0i @// F(N/2) = ((Z0.r-Z0.i) , 0) - SUBS subFFTSize,subFFTSize,#2 - - VST1.F32 dY0r,[argDst],step - ADD pTwiddleTmp,argTwiddle,#8 @// W^2 - VST1.F32 dY0i,[argDst]! - ADD argTwiddle,argTwiddle,twStep @// W^1 - - VDUP.F32 dzero,zero - SUB argDst,argDst,step - - BLT End - BEQ lastElement - SUB step,step,#24 - SUB step1,step1,#8 @// (N/4-1)*8 bytes - - @// F(k) = 1/2[Z(k) + Z'(N/2-k)] -j*W^(k) [Z(k) - Z'(N/2-k)] - @// Note: W^k is stored as negative values in the table - @// Process 4 elements at a time. E.g: F(1),F(2) and F(N/2-2),F(N/2-1) - @// since both of them require Z(1),Z(2) and Z(N/2-2),Z(N/2-1) - - - ADR t0, HALF - VLD1.F32 half[0], [t0] - -evenOddButterflyLoop: - - - VLD1.F32 dW0r,[argTwiddle],step1 - VLD1.F32 dW1r,[argTwiddle]! - - VLD2.F32 {dX0r,dX0i},[pSrc],step - SUB argTwiddle,argTwiddle,step1 - VLD2.F32 {dX1r,dX1i},[pSrc]! - - - - SUB step1,step1,#8 @// (N/4-2)*8 bytes - VLD1.F32 dW0i,[pTwiddleTmp],step1 - VLD1.F32 dW1i,[pTwiddleTmp]! - SUB pSrc,pSrc,step - - SUB pTwiddleTmp,pTwiddleTmp,step1 - VREV64.F32 dX1r,dX1r - VREV64.F32 dX1i,dX1i - SUBS subFFTSize,subFFTSize,#4 - - - - VSUB.F32 dT2,dX0r,dX1r @// a-c - SUB step1,step1,#8 - VADD.F32 dT0,dX0r,dX1r @// a+c - VSUB.F32 dT1,dX0i,dX1i @// b-d - VADD.F32 dT3,dX0i,dX1i @// b+d - VMUL.F32 dT0,dT0,half[0] - VMUL.F32 dT1,dT1,half[0] - VZIP.F32 dW1r,dW1i - VZIP.F32 dW0r,dW0i - - - VMUL.F32 qT0,dW1r,dT2 - VMUL.F32 qT1,dW1r,dT3 - VMUL.F32 qT2,dW0r,dT2 - VMUL.F32 qT3,dW0r,dT3 - - VMLA.F32 qT0,dW1i,dT3 - VMLS.F32 qT1,dW1i,dT2 - - VMLS.F32 qT2,dW0i,dT3 - VMLA.F32 qT3,dW0i,dT2 - - - VMUL.F32 dX1r,qT0,half[0] - VMUL.F32 dX1i,qT1,half[0] - - VSUB.F32 dY1r,dT0,dX1i @// F(N/2 -1) - VADD.F32 dY1i,dT1,dX1r - VNEG.F32 dY1i,dY1i - - VREV64.F32 dY1r,dY1r - VREV64.F32 dY1i,dY1i - - - VMUL.F32 dX0r,qT2,half[0] - VMUL.F32 dX0i,qT3,half[0] - - VSUB.F32 dY0r,dT0,dX0i @// F(1) - VADD.F32 dY0i,dT1,dX0r - - - VST2.F32 {dY0r,dY0i},[argDst],step - VST2.F32 {dY1r,dY1i},[argDst]! - SUB argDst,argDst,step - SUB step,step,#32 @// (N/2-4)*8 bytes - - - BGT evenOddButterflyLoop - - @// set both the ptrs to the last element - SUB pSrc,pSrc,#8 - SUB argDst,argDst,#8 - - - - @// Last element can be expanded as follows - @// 1/2[Z(k) + Z'(k)] + j w^k [Z(k) - Z'(k)] - @// 1/2[(a+jb) + (a-jb)] + j w^k [(a+jb) - (a-jb)] - @// 1/2[2a+j0] + j (c+jd) [0+j2b] - @// (a-bc, -bd) - @// Since (c,d) = (0,1) for the last element, result is just (a,-b) - -lastElement: - VLD1.F32 dX0r,[pSrc] - - VST1.F32 dX0r[0],[argDst]! - VNEG.F32 dX0r,dX0r - VST1.F32 dX0r[1],[argDst]! - -End: - @// Set return value - MOV result, #OMX_Sts_NoErr - - @// Write function tail - M_END -HALF: .float 0.5 - .end diff --git a/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_F32.c b/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_F32.c deleted file mode 100644 index 19b16bbd95..0000000000 --- a/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_F32.c +++ /dev/null @@ -1,49 +0,0 @@ -/* - * Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. - * - * Use of this source code is governed by a BSD-style license - * that can be found in the LICENSE file in the root of the source - * tree. An additional intellectual property rights grant can be found - * in the file PATENTS. All contributing project authors may - * be found in the AUTHORS file in the root of the source tree. - * - */ - -#include "dl/api/armOMX.h" -#include "dl/api/omxtypes.h" -#include "dl/sp/api/armSP.h" -#include "dl/sp/api/omxSP.h" - -/** - * Function: omxSP_FFTGetBufSize_R_F32 - * - * Description: - * Computes the size of the specification structure required for the length - * 2^order real FFT and IFFT functions. - * - * Remarks: - * This function is used in conjunction with the 32-bit functions - * <FFTFwd_RToCCS_F32_Sfs> and <FFTInv_CCSToR_F32_Sfs>. - * - * Parameters: - * [in] order base-2 logarithm of the length; valid in the range - * [1,12]. ([1,15] if BIG_FFT_TABLE is defined.) - * [out] pSize pointer to the number of bytes required for the - * specification structure. - * - * Return Value: - * Standard omxError result. See enumeration for possible result codes. - * - */ - -OMXResult omxSP_FFTGetBufSize_R_F32(OMX_INT order, OMX_INT *pSize) { - if (!pSize || (order < 1) || (order > TWIDDLE_TABLE_ORDER)) - return OMX_Sts_BadArgErr; - - /* - * The required size is the same as for R_S32, because the - * elements are the same size and because ARMsFFTSpec_R_SC32 is - * the same size as ARMsFFTSpec_R_FC32. - */ - return omxSP_FFTGetBufSize_R_S32(order, pSize); -} diff --git a/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_S32.c b/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_S32.c deleted file mode 100644 index d57294700e..0000000000 --- a/media/openmax_dl/dl/sp/src/omxSP_FFTGetBufSize_R_S32.c +++ /dev/null @@ -1,91 +0,0 @@ -/* - * Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. - * - * Use of this source code is governed by a BSD-style license - * that can be found in the LICENSE file in the root of the source - * tree. An additional intellectual property rights grant can be found - * in the file PATENTS. All contributing project authors may - * be found in the AUTHORS file in the root of the source tree. - * - * This file was originally licensed as follows. It has been - * relicensed with permission from the copyright holders. - */ - -/** - * - * File Name: omxSP_FFTGetBufSize_R_S32.c - * OpenMAX DL: v1.0.2 - * Last Modified Revision: 7777 - * Last Modified Date: Thu, 27 Sep 2007 - * - * (c) Copyright 2007-2008 ARM Limited. All Rights Reserved. - * - * - * Description: - * Computes the size of the specification structure required. - */ - -#include "dl/api/armOMX.h" -#include "dl/api/omxtypes.h" -#include "dl/sp/api/armSP.h" -#include "dl/sp/api/omxSP.h" - -/** - * Function: omxSP_FFTGetBufSize_R_S32 - * - * Description: - * Computes the size of the specification structure required for the length - * 2^order real FFT and IFFT functions. - * - * Remarks: - * This function is used in conjunction with the 32-bit functions - * <FFTFwd_RToCCS_S32_Sfs> and <FFTInv_CCSToR_S32_Sfs>. - * - * Parameters: - * [in] order base-2 logarithm of the length; valid in the range - * [0,12]. - * [out] pSize pointer to the number of bytes required for the - * specification structure. - * - * Return Value: - * Standard omxError result. See enumeration for possible result codes. - * - */ - -OMXResult omxSP_FFTGetBufSize_R_S32( - OMX_INT order, - OMX_INT *pSize - ) -{ - OMX_INT NBy2,N,twiddleSize; - - - /* Check for order zero */ - if (order == 0) - { - *pSize = sizeof(ARMsFFTSpec_R_SC32) - + sizeof(OMX_S32) * (2); /* Extra size 'N' is used in FFTInv_CCSToR_S32S16_Sfs as a temporary buf */ - - return OMX_Sts_NoErr; - } - - NBy2 = 1 << (order - 1); - N = NBy2<<1; - twiddleSize = 5*N/8; /* 3/4(N/2) + N/4 */ - - /* 2 pointers to store bitreversed array and twiddle factor array */ - *pSize = sizeof(ARMsFFTSpec_R_SC32) - /* Twiddle factors */ - + sizeof(OMX_SC32) * twiddleSize - /* Ping Pong buffer for doing the N/2 point complex FFT */ - + sizeof(OMX_S32) * (N<<1) /* Extra size 'N' is used in FFTInv_CCSToR_S32_Sfs as a temporary buf */ - + 62 ; /* Extra bytes to get 32 byte alignment of ptwiddle and pBuf */ - - - return OMX_Sts_NoErr; -} - -/***************************************************************************** - * END OF FILE - *****************************************************************************/ - diff --git a/media/openmax_dl/dl/sp/src/omxSP_FFTInit_R_F32.c b/media/openmax_dl/dl/sp/src/omxSP_FFTInit_R_F32.c deleted file mode 100644 index 32d22230ed..0000000000 --- a/media/openmax_dl/dl/sp/src/omxSP_FFTInit_R_F32.c +++ /dev/null @@ -1,210 +0,0 @@ -/* - * Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. - * - * Use of this source code is governed by a BSD-style license - * that can be found in the LICENSE file in the root of the source - * tree. An additional intellectual property rights grant can be found - * in the file PATENTS. All contributing project authors may - * be found in the AUTHORS file in the root of the source tree. - * - * This is a modification of omxSP_FFTInit_R_S32.c to support float - * instead of S32. - */ - -#include "dl/api/armOMX.h" -#include "dl/api/omxtypes.h" -#include "dl/sp/api/armSP.h" -#include "dl/sp/api/omxSP.h" - -/** - * Function: omxSP_FFTInit_R_F32 - * - * Description: - * Initialize the real forward-FFT specification information struct. - * - * Remarks: - * This function is used to initialize the specification structures - * for functions <ippsFFTFwd_RToCCS_F32_Sfs> and - * <ippsFFTInv_CCSToR_F32_Sfs>. Memory for *pFFTSpec must be - * allocated prior to calling this function. The number of bytes - * required for *pFFTSpec can be determined using - * <FFTGetBufSize_R_F32>. - * - * Parameters: - * [in] order base-2 logarithm of the desired block length; - * valid in the range [1,12]. ([1,15] if - * BIG_FFT_TABLE is defined.) - * [out] pFFTFwdSpec pointer to the initialized specification structure. - * - * Return Value: - * Standard omxError result. See enumeration for possible result codes. - * - */ -OMXResult omxSP_FFTInit_R_F32(OMXFFTSpec_R_F32* pFFTSpec, OMX_INT order) { - OMX_INT i; - OMX_INT j; - OMX_FC32* pTwiddle; - OMX_FC32* pTwiddle1; - OMX_FC32* pTwiddle2; - OMX_FC32* pTwiddle3; - OMX_FC32* pTwiddle4; - OMX_F32* pBuf; - OMX_U16* pBitRev; - OMX_U32 pTmp; - OMX_INT Nby2; - OMX_INT N; - OMX_INT M; - OMX_INT diff; - OMX_INT step; - OMX_F32 x; - OMX_F32 y; - OMX_F32 xNeg; - ARMsFFTSpec_R_FC32* pFFTStruct = 0; - - pFFTStruct = (ARMsFFTSpec_R_FC32 *) pFFTSpec; - - /* Validate args */ - if (!pFFTSpec || (order < 1) || (order > TWIDDLE_TABLE_ORDER)) - return OMX_Sts_BadArgErr; - - /* Do the initializations */ - Nby2 = 1 << (order - 1); - N = Nby2 << 1; - - /* optimized implementations don't use bitreversal */ - pBitRev = NULL; - - pTwiddle = (OMX_FC32 *) (sizeof(ARMsFFTSpec_R_SC32) + (OMX_S8*) pFFTSpec); - - /* Align to 32 byte boundary */ - pTmp = ((OMX_U32)pTwiddle) & 31; - if (pTmp) - pTwiddle = (OMX_FC32*) ((OMX_S8*)pTwiddle + (32 - pTmp)); - - pBuf = (OMX_F32*) (sizeof(OMX_FC32)*(5*N/8) + (OMX_S8*) pTwiddle); - - /* Align to 32 byte boundary */ - pTmp = ((OMX_U32)pBuf)&31; /* (OMX_U32)pBuf % 32 */ - if (pTmp) - pBuf = (OMX_F32*) ((OMX_S8*)pBuf + (32 - pTmp)); - - /* - * Filling Twiddle factors : - * - * exp^(-j*2*PI*k/ (N/2) ) ; k=0,1,2,...,3/4(N/2) - * - * N/2 point complex FFT is used to compute N point real FFT The - * original twiddle table "armSP_FFT_F32TwiddleTable" is of size - * (MaxSize/8 + 1) Rest of the values i.e., upto MaxSize are - * calculated using the symmetries of sin and cos The max size of - * the twiddle table needed is 3/4(N/2) for a radix-4 stage - * - * W = (-2 * PI) / N - * N = 1 << order - * W = -PI >> (order - 1) - */ - - M = Nby2 >> 3; - diff = TWIDDLE_TABLE_ORDER - (order - 1); - /* step into the twiddle table for the current order */ - step = 1 << diff; - - x = armSP_FFT_F32TwiddleTable[0]; - y = armSP_FFT_F32TwiddleTable[1]; - xNeg = 1; - - if ((order - 1) >= 3) { - /* i = 0 case */ - pTwiddle[0].Re = x; - pTwiddle[0].Im = y; - pTwiddle[2*M].Re = -y; - pTwiddle[2*M].Im = xNeg; - pTwiddle[4*M].Re = xNeg; - pTwiddle[4*M].Im = y; - - for (i = 1; i <= M; i++) { - j = i*step; - - x = armSP_FFT_F32TwiddleTable[2*j]; - y = armSP_FFT_F32TwiddleTable[2*j+1]; - - pTwiddle[i].Re = x; - pTwiddle[i].Im = y; - pTwiddle[2*M-i].Re = -y; - pTwiddle[2*M-i].Im = -x; - pTwiddle[2*M+i].Re = y; - pTwiddle[2*M+i].Im = -x; - pTwiddle[4*M-i].Re = -x; - pTwiddle[4*M-i].Im = y; - pTwiddle[4*M+i].Re = -x; - pTwiddle[4*M+i].Im = -y; - pTwiddle[6*M-i].Re = y; - pTwiddle[6*M-i].Im = x; - } - } else if ((order - 1) == 2) { - pTwiddle[0].Re = x; - pTwiddle[0].Im = y; - pTwiddle[1].Re = -y; - pTwiddle[1].Im = xNeg; - pTwiddle[2].Re = xNeg; - pTwiddle[2].Im = y; - } else if ((order-1) == 1) { - pTwiddle[0].Re = x; - pTwiddle[0].Im = y; - } - - /* - * Now fill the last N/4 values : exp^(-j*2*PI*k/N) ; - * k=1,3,5,...,N/2-1 These are used for the final twiddle fix-up for - * converting complex to real FFT - */ - - M = N >> 3; - diff = TWIDDLE_TABLE_ORDER - order; - step = 1 << diff; - - pTwiddle1 = pTwiddle + 3*N/8; - pTwiddle4 = pTwiddle1 + (N/4 - 1); - pTwiddle3 = pTwiddle1 + N/8; - pTwiddle2 = pTwiddle1 + (N/8 - 1); - - x = armSP_FFT_F32TwiddleTable[0]; - y = armSP_FFT_F32TwiddleTable[1]; - xNeg = 1; - - if (order >=3) { - for (i = 1; i <= M; i += 2) { - j = i*step; - - x = armSP_FFT_F32TwiddleTable[2*j]; - y = armSP_FFT_F32TwiddleTable[2*j+1]; - - pTwiddle1[0].Re = x; - pTwiddle1[0].Im = y; - pTwiddle1 += 1; - pTwiddle2[0].Re = -y; - pTwiddle2[0].Im = -x; - pTwiddle2 -= 1; - pTwiddle3[0].Re = y; - pTwiddle3[0].Im = -x; - pTwiddle3 += 1; - pTwiddle4[0].Re = -x; - pTwiddle4[0].Im = y; - pTwiddle4 -= 1; - } - } else { - if (order == 2) { - pTwiddle1[0].Re = -y; - pTwiddle1[0].Im = xNeg; - } - } - - - /* Update the structure */ - pFFTStruct->N = N; - pFFTStruct->pTwiddle = pTwiddle; - pFFTStruct->pBitRev = pBitRev; - pFFTStruct->pBuf = pBuf; - - return OMX_Sts_NoErr; -} diff --git a/media/openmax_dl/dl/sp/src/omxSP_FFTInv_CCSToR_F32_Sfs_unscaled_s.S b/media/openmax_dl/dl/sp/src/omxSP_FFTInv_CCSToR_F32_Sfs_unscaled_s.S deleted file mode 100644 index 838de317f0..0000000000 --- a/media/openmax_dl/dl/sp/src/omxSP_FFTInv_CCSToR_F32_Sfs_unscaled_s.S +++ /dev/null @@ -1,284 +0,0 @@ -@// -@// Copyright (c) 2013 The WebRTC project authors. All Rights Reserved. -@// -@// Copyright 2016, Mozilla Foundation and contributors -@// -@// Use of this source code is governed by a BSD-style license -@// that can be found in the LICENSE file in the root of the source -@// tree. An additional intellectual property rights grant can be found -@// in the file PATENTS. All contributing project authors may -@// be found in the AUTHORS file in the root of the source tree. -@// -@// This is a modification of omxSP_FFTInv_CCSToR_S32_Sfs_s.s -@// to support float instead of SC32. -@// -@// It is further modified to produce an "unscaled" version, which -@// actually multiplies by two for consistency with the other FFT functions -@// in use. -@// - -@// -@// Description: -@// Compute an inverse FFT for a complex signal -@// -@// - - -@// Include standard headers - -#include "dl/api/armCOMM_s.h" -#include "dl/api/omxtypes_s.h" - - -@// Import symbols required from other files -@// (For example tables) - - .extern armSP_FFTInv_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - .extern armSP_FFTInv_CToC_FC32_Radix4_fs_OutOfPlace_unsafe - .extern armSP_FFTInv_CToC_FC32_Radix8_fs_OutOfPlace_unsafe - .extern armSP_FFTInv_CToC_FC32_Radix4_OutOfPlace_unsafe - .extern armSP_FFTInv_CToC_FC32_Radix2_OutOfPlace_unsafe - .extern armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe - - -@// Set debugging level -@//DEBUG_ON SETL {TRUE} - - - -@// Guarding implementation by the processor name - - - - @// Guarding implementation by the processor name - -@// Import symbols required from other files -@// (For example tables) - .extern armSP_FFTInv_CToC_FC32_Radix4_ls_OutOfPlace_unsafe - .extern armSP_FFTInv_CToC_FC32_Radix2_ls_OutOfPlace_unsafe - - -@//Input Registers - -#define pSrc r0 -#define pDst r1 -#define pFFTSpec r2 -#define scale r3 - - -@// Output registers -#define result r0 - -@//Local Scratch Registers - -#define argTwiddle r1 -#define argDst r2 -#define argScale r4 -#define tmpOrder r4 -#define pTwiddle r4 -#define pOut r5 -#define subFFTSize r7 -#define subFFTNum r6 -#define N r6 -#define order r14 -#define diff r9 -@// Total num of radix stages required to comple the FFT -#define count r8 -#define x0r r4 -#define x0i r5 -#define diffMinusOne r2 -#define round r3 - -#define pOut1 r2 -#define size r7 -#define step r8 -#define step1 r9 -#define twStep r10 -#define pTwiddleTmp r11 -#define argTwiddle1 r12 -#define zero r14 - -@// Neon registers - -#define dX0 D0 -#define dShift D1 -#define dX1 D1 -#define dY0 D2 -#define dY1 D3 -#define dX0r D0 -#define dX0i D1 -#define dX1r D2 -#define dX1i D3 -#define dW0r D4 -#define dW0i D5 -#define dW1r D6 -#define dW1i D7 -#define dT0 D8 -#define dT1 D9 -#define dT2 D10 -#define dT3 D11 -#define qT0 d12 -#define qT1 d14 -#define qT2 d16 -#define qT3 d18 -#define dY0r D4 -#define dY0i D5 -#define dY1r D6 -#define dY1i D7 -#define dzero D20 - -#define dY2 D4 -#define dY3 D5 -#define dW0 D6 -#define dW1 D7 -#define dW0Tmp D10 -#define dW1Neg D11 - -#define sN S0.S32 -#define fN S1 -@// two must be the same as dScale[0]! -#define dScale D2 -#define two S4 - - - @// Allocate stack memory required by the function - M_ALLOC4 complexFFTSize, 4 - - @// Write function header - M_START omxSP_FFTInv_CCSToR_F32_Sfs_unscaled,r11,d15 - -@ Structure offsets for the FFTSpec - .set ARMsFFTSpec_N, 0 - .set ARMsFFTSpec_pBitRev, 4 - .set ARMsFFTSpec_pTwiddle, 8 - .set ARMsFFTSpec_pBuf, 12 - - @// Define stack arguments - - @// Read the size from structure and take log - LDR N, [pFFTSpec, #ARMsFFTSpec_N] - - @// Read other structure parameters - LDR pTwiddle, [pFFTSpec, #ARMsFFTSpec_pTwiddle] - LDR pOut, [pFFTSpec, #ARMsFFTSpec_pBuf] - - @// N=1 Treat seperately - CMP N,#1 - BGT sizeGreaterThanOne - VLD1.F32 dX0[0],[pSrc] - VST1.F32 dX0[0],[pDst] - - B End - -sizeGreaterThanOne: - - @// Call the preTwiddle Radix2 stage before doing the compledIFFT - - - BL armSP_FFTInv_CCSToR_F32_preTwiddleRadix2_unsafe - - -complexIFFT: - - ASR N,N,#1 @// N/2 point complex IFFT - M_STR N, complexFFTSize @ Save N for scaling later - ADD pSrc,pOut,N,LSL #3 @// set pSrc as pOut1 - - CLZ order,N @// N = 2^order - RSB order,order,#31 - MOV subFFTSize,#1 - @//MOV subFFTNum,N - - CMP order,#3 - BGT orderGreaterthan3 @// order > 3 - - CMP order,#1 - BGE orderGreaterthan0 @// order > 0 - - VLD1.F32 dX0,[pSrc] - VST1.F32 dX0,[pDst] - MOV pSrc,pDst - BLT FFTEnd - -orderGreaterthan0: - @// set the buffers appropriately for various orders - CMP order,#2 - MOVNE argDst,pDst - MOVEQ argDst,pOut - @// Pass the first stage destination in RN5 - MOVEQ pOut,pDst - MOV argTwiddle,pTwiddle - - BGE orderGreaterthan1 - BLLT armSP_FFTInv_CToC_FC32_Radix2_fs_OutOfPlace_unsafe @// order = 1 - B FFTEnd - -orderGreaterthan1: - MOV tmpOrder,order @// tmpOrder = RN 4 - BL armSP_FFTInv_CToC_FC32_Radix2_fs_OutOfPlace_unsafe - CMP tmpOrder,#2 - BLGT armSP_FFTInv_CToC_FC32_Radix2_OutOfPlace_unsafe - BL armSP_FFTInv_CToC_FC32_Radix2_ls_OutOfPlace_unsafe - B FFTEnd - - -orderGreaterthan3: -specialScaleCase: - - @// Set input args to fft stages - TST order, #2 - MOVNE argDst,pDst - MOVEQ argDst,pOut - @// Pass the first stage destination in RN5 - MOVEQ pOut,pDst - MOV argTwiddle,pTwiddle - - @//check for even or odd order - @// NOTE: The following combination of BL's would work fine even though - @// the first BL would corrupt the flags. This is because the end of - @// the "grpZeroSetLoop" loop inside - @// armSP_FFTInv_CToC_FC32_Radix4_fs_OutOfPlace_unsafe sets the Z flag - @// to EQ - - TST order,#0x00000001 - BLEQ armSP_FFTInv_CToC_FC32_Radix4_fs_OutOfPlace_unsafe - BLNE armSP_FFTInv_CToC_FC32_Radix8_fs_OutOfPlace_unsafe - - CMP subFFTNum,#4 - BLT FFTEnd - - -unscaledRadix4Loop: - BEQ lastStageUnscaledRadix4 - BL armSP_FFTInv_CToC_FC32_Radix4_OutOfPlace_unsafe - CMP subFFTNum,#4 - B unscaledRadix4Loop - -lastStageUnscaledRadix4: - BL armSP_FFTInv_CToC_FC32_Radix4_ls_OutOfPlace_unsafe - B FFTEnd - -FFTEnd: @// Does only the scaling - @ Scale inverse FFT result by 2 for consistency with other FFTs - VMOV.F32 two, #2.0 @ two = dScale[0] - - @// N = subFFTSize ; dataptr = pDst -scaleFFTData: - VLD1.F32 {dX0},[pSrc] @// pSrc contains pDst pointer - SUBS subFFTSize,subFFTSize,#1 - VMUL.F32 dX0, dX0, dScale[0] - VST1.F32 {dX0},[pSrc]! - - BGT scaleFFTData - - -End: - @// Set return value - MOV result, #OMX_Sts_NoErr - - @// Write function tail - M_END - - - - .end |