mirror of https://github.com/ARMmbed/mbed-os.git
144 lines
3.9 KiB
C
144 lines
3.9 KiB
C
/* ----------------------------------------------------------------------
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* Copyright (C) 2010 ARM Limited. All rights reserved.
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*
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* $Date: 15. February 2012
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* $Revision: V1.1.0
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*
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* Project: CMSIS DSP Library
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* Title: arm_mult_q31.c
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*
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* Description: Q31 vector multiplication.
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*
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* Target Processor: Cortex-M4/Cortex-M3/Cortex-M0
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*
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* Version 1.1.0 2012/02/15
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* Updated with more optimizations, bug fixes and minor API changes.
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*
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* Version 1.0.10 2011/7/15
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* Big Endian support added and Merged M0 and M3/M4 Source code.
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*
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* Version 1.0.3 2010/11/29
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* Re-organized the CMSIS folders and updated documentation.
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*
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* Version 1.0.2 2010/11/11
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* Documentation updated.
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*
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* Version 1.0.1 2010/10/05
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* Production release and review comments incorporated.
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*
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* Version 1.0.0 2010/09/20
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* Production release and review comments incorporated.
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*
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* Version 0.0.5 2010/04/26
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* incorporated review comments and updated with latest CMSIS layer
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*
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* Version 0.0.3 2010/03/10
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* Initial version
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* -------------------------------------------------------------------- */
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#include "arm_math.h"
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/**
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* @ingroup groupMath
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*/
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/**
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* @addtogroup BasicMult
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* @{
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*/
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/**
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* @brief Q31 vector multiplication.
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* @param[in] *pSrcA points to the first input vector
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* @param[in] *pSrcB points to the second input vector
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* @param[out] *pDst points to the output vector
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* @param[in] blockSize number of samples in each vector
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* @return none.
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*
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* <b>Scaling and Overflow Behavior:</b>
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* \par
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* The function uses saturating arithmetic.
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* Results outside of the allowable Q31 range[0x80000000 0x7FFFFFFF] will be saturated.
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*/
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void arm_mult_q31(
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q31_t * pSrcA,
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q31_t * pSrcB,
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q31_t * pDst,
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uint32_t blockSize)
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{
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uint32_t blkCnt; /* loop counters */
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#ifndef ARM_MATH_CM0
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/* Run the below code for Cortex-M4 and Cortex-M3 */
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q31_t inA1, inA2, inA3, inA4; /* temporary input variables */
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q31_t inB1, inB2, inB3, inB4; /* temporary input variables */
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q31_t out1, out2, out3, out4; /* temporary output variables */
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/* loop Unrolling */
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blkCnt = blockSize >> 2u;
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/* First part of the processing with loop unrolling. Compute 4 outputs at a time.
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** a second loop below computes the remaining 1 to 3 samples. */
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while(blkCnt > 0u)
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{
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/* C = A * B */
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/* Multiply the inputs and then store the results in the destination buffer. */
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inA1 = *pSrcA++;
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inA2 = *pSrcA++;
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inA3 = *pSrcA++;
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inA4 = *pSrcA++;
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inB1 = *pSrcB++;
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inB2 = *pSrcB++;
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inB3 = *pSrcB++;
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inB4 = *pSrcB++;
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out1 = ((q63_t) inA1 * inB1) >> 32;
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out2 = ((q63_t) inA2 * inB2) >> 32;
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out3 = ((q63_t) inA3 * inB3) >> 32;
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out4 = ((q63_t) inA4 * inB4) >> 32;
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out1 = __SSAT(out1, 31);
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out2 = __SSAT(out2, 31);
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out3 = __SSAT(out3, 31);
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out4 = __SSAT(out4, 31);
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*pDst++ = out1 << 1u;
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*pDst++ = out2 << 1u;
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*pDst++ = out3 << 1u;
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*pDst++ = out4 << 1u;
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/* Decrement the blockSize loop counter */
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blkCnt--;
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}
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/* If the blockSize is not a multiple of 4, compute any remaining output samples here.
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** No loop unrolling is used. */
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blkCnt = blockSize % 0x4u;
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#else
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/* Run the below code for Cortex-M0 */
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/* Initialize blkCnt with number of samples */
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blkCnt = blockSize;
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#endif /* #ifndef ARM_MATH_CM0 */
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while(blkCnt > 0u)
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{
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/* C = A * B */
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/* Multiply the inputs and then store the results in the destination buffer. */
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*pDst++ =
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(q31_t) clip_q63_to_q31(((q63_t) (*pSrcA++) * (*pSrcB++)) >> 31);
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/* Decrement the blockSize loop counter */
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blkCnt--;
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}
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}
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/**
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* @} end of BasicMult group
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*/
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