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691 lines
22 KiB
C
691 lines
22 KiB
C
/* ----------------------------------------------------------------------
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* Copyright (C) 2010-2014 ARM Limited. All rights reserved.
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*
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* $Date: 19. March 2015
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* $Revision: V.1.4.5
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*
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* Project: CMSIS DSP Library
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* Title: arm_conv_q7.c
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*
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* Description: Convolution of Q7 sequences.
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*
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* Target Processor: Cortex-M4/Cortex-M3/Cortex-M0
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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* - Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* - Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in
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* the documentation and/or other materials provided with the
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* distribution.
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* - Neither the name of ARM LIMITED nor the names of its contributors
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* may be used to endorse or promote products derived from this
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* software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
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* FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE
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* COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
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* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
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* BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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* LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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* CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
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* ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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* POSSIBILITY OF SUCH DAMAGE.
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* -------------------------------------------------------------------- */
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#include "arm_math.h"
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/**
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* @ingroup groupFilters
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*/
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/**
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* @addtogroup Conv
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* @{
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*/
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/**
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* @brief Convolution of Q7 sequences.
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* @param[in] *pSrcA points to the first input sequence.
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* @param[in] srcALen length of the first input sequence.
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* @param[in] *pSrcB points to the second input sequence.
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* @param[in] srcBLen length of the second input sequence.
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* @param[out] *pDst points to the location where the output result is written. Length srcALen+srcBLen-1.
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* @return none.
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*
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* @details
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* <b>Scaling and Overflow Behavior:</b>
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*
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* \par
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* The function is implemented using a 32-bit internal accumulator.
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* Both the inputs are represented in 1.7 format and multiplications yield a 2.14 result.
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* The 2.14 intermediate results are accumulated in a 32-bit accumulator in 18.14 format.
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* This approach provides 17 guard bits and there is no risk of overflow as long as <code>max(srcALen, srcBLen)<131072</code>.
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* The 18.14 result is then truncated to 18.7 format by discarding the low 7 bits and then saturated to 1.7 format.
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*
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* \par
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* Refer the function <code>arm_conv_opt_q7()</code> for a faster implementation of this function.
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*
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*/
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void arm_conv_q7(
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q7_t * pSrcA,
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uint32_t srcALen,
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q7_t * pSrcB,
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uint32_t srcBLen,
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q7_t * pDst)
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{
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#ifndef ARM_MATH_CM0_FAMILY
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/* Run the below code for Cortex-M4 and Cortex-M3 */
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q7_t *pIn1; /* inputA pointer */
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q7_t *pIn2; /* inputB pointer */
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q7_t *pOut = pDst; /* output pointer */
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q7_t *px; /* Intermediate inputA pointer */
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q7_t *py; /* Intermediate inputB pointer */
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q7_t *pSrc1, *pSrc2; /* Intermediate pointers */
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q7_t x0, x1, x2, x3, c0, c1; /* Temporary variables to hold state and coefficient values */
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q31_t sum, acc0, acc1, acc2, acc3; /* Accumulator */
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q31_t input1, input2; /* Temporary input variables */
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q15_t in1, in2; /* Temporary input variables */
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uint32_t j, k, count, blkCnt, blockSize1, blockSize2, blockSize3; /* loop counter */
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/* The algorithm implementation is based on the lengths of the inputs. */
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/* srcB is always made to slide across srcA. */
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/* So srcBLen is always considered as shorter or equal to srcALen */
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if(srcALen >= srcBLen)
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{
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/* Initialization of inputA pointer */
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pIn1 = pSrcA;
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/* Initialization of inputB pointer */
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pIn2 = pSrcB;
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}
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else
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{
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/* Initialization of inputA pointer */
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pIn1 = pSrcB;
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/* Initialization of inputB pointer */
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pIn2 = pSrcA;
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/* srcBLen is always considered as shorter or equal to srcALen */
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j = srcBLen;
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srcBLen = srcALen;
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srcALen = j;
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}
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/* conv(x,y) at n = x[n] * y[0] + x[n-1] * y[1] + x[n-2] * y[2] + ...+ x[n-N+1] * y[N -1] */
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/* The function is internally
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* divided into three stages according to the number of multiplications that has to be
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* taken place between inputA samples and inputB samples. In the first stage of the
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* algorithm, the multiplications increase by one for every iteration.
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* In the second stage of the algorithm, srcBLen number of multiplications are done.
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* In the third stage of the algorithm, the multiplications decrease by one
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* for every iteration. */
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/* The algorithm is implemented in three stages.
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The loop counters of each stage is initiated here. */
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blockSize1 = srcBLen - 1u;
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blockSize2 = (srcALen - srcBLen) + 1u;
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blockSize3 = blockSize1;
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/* --------------------------
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* Initializations of stage1
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* -------------------------*/
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/* sum = x[0] * y[0]
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* sum = x[0] * y[1] + x[1] * y[0]
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* ....
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* sum = x[0] * y[srcBlen - 1] + x[1] * y[srcBlen - 2] +...+ x[srcBLen - 1] * y[0]
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*/
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/* In this stage the MAC operations are increased by 1 for every iteration.
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The count variable holds the number of MAC operations performed */
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count = 1u;
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/* Working pointer of inputA */
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px = pIn1;
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/* Working pointer of inputB */
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py = pIn2;
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/* ------------------------
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* Stage1 process
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* ----------------------*/
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/* The first stage starts here */
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while(blockSize1 > 0u)
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{
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/* Accumulator is made zero for every iteration */
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sum = 0;
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/* Apply loop unrolling and compute 4 MACs simultaneously. */
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k = count >> 2u;
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/* First part of the processing with loop unrolling. Compute 4 MACs at a time.
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** a second loop below computes MACs for the remaining 1 to 3 samples. */
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while(k > 0u)
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{
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/* x[0] , x[1] */
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in1 = (q15_t) * px++;
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in2 = (q15_t) * px++;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* y[srcBLen - 1] , y[srcBLen - 2] */
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in1 = (q15_t) * py--;
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in2 = (q15_t) * py--;
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input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* x[0] * y[srcBLen - 1] */
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/* x[1] * y[srcBLen - 2] */
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sum = __SMLAD(input1, input2, sum);
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/* x[2] , x[3] */
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in1 = (q15_t) * px++;
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in2 = (q15_t) * px++;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* y[srcBLen - 3] , y[srcBLen - 4] */
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in1 = (q15_t) * py--;
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in2 = (q15_t) * py--;
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input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* x[2] * y[srcBLen - 3] */
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/* x[3] * y[srcBLen - 4] */
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sum = __SMLAD(input1, input2, sum);
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/* Decrement the loop counter */
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k--;
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}
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/* If the count is not a multiple of 4, compute any remaining MACs here.
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** No loop unrolling is used. */
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k = count % 0x4u;
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while(k > 0u)
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{
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/* Perform the multiply-accumulates */
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sum += ((q15_t) * px++ * *py--);
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/* Decrement the loop counter */
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k--;
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}
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/* Store the result in the accumulator in the destination buffer. */
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*pOut++ = (q7_t) (__SSAT(sum >> 7u, 8));
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/* Update the inputA and inputB pointers for next MAC calculation */
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py = pIn2 + count;
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px = pIn1;
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/* Increment the MAC count */
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count++;
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/* Decrement the loop counter */
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blockSize1--;
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}
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/* --------------------------
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* Initializations of stage2
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* ------------------------*/
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/* sum = x[0] * y[srcBLen-1] + x[1] * y[srcBLen-2] +...+ x[srcBLen-1] * y[0]
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* sum = x[1] * y[srcBLen-1] + x[2] * y[srcBLen-2] +...+ x[srcBLen] * y[0]
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* ....
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* sum = x[srcALen-srcBLen-2] * y[srcBLen-1] + x[srcALen] * y[srcBLen-2] +...+ x[srcALen-1] * y[0]
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*/
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/* Working pointer of inputA */
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px = pIn1;
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/* Working pointer of inputB */
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pSrc2 = pIn2 + (srcBLen - 1u);
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py = pSrc2;
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/* count is index by which the pointer pIn1 to be incremented */
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count = 0u;
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/* -------------------
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* Stage2 process
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* ------------------*/
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/* Stage2 depends on srcBLen as in this stage srcBLen number of MACS are performed.
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* So, to loop unroll over blockSize2,
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* srcBLen should be greater than or equal to 4 */
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if(srcBLen >= 4u)
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{
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/* Loop unroll over blockSize2, by 4 */
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blkCnt = blockSize2 >> 2u;
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while(blkCnt > 0u)
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{
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/* Set all accumulators to zero */
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acc0 = 0;
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acc1 = 0;
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acc2 = 0;
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acc3 = 0;
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/* read x[0], x[1], x[2] samples */
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x0 = *(px++);
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x1 = *(px++);
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x2 = *(px++);
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/* Apply loop unrolling and compute 4 MACs simultaneously. */
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k = srcBLen >> 2u;
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/* First part of the processing with loop unrolling. Compute 4 MACs at a time.
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** a second loop below computes MACs for the remaining 1 to 3 samples. */
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do
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{
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/* Read y[srcBLen - 1] sample */
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c0 = *(py--);
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/* Read y[srcBLen - 2] sample */
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c1 = *(py--);
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/* Read x[3] sample */
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x3 = *(px++);
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/* x[0] and x[1] are packed */
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in1 = (q15_t) x0;
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in2 = (q15_t) x1;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* y[srcBLen - 1] and y[srcBLen - 2] are packed */
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in1 = (q15_t) c0;
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in2 = (q15_t) c1;
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input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc0 += x[0] * y[srcBLen - 1] + x[1] * y[srcBLen - 2] */
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acc0 = __SMLAD(input1, input2, acc0);
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/* x[1] and x[2] are packed */
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in1 = (q15_t) x1;
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in2 = (q15_t) x2;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc1 += x[1] * y[srcBLen - 1] + x[2] * y[srcBLen - 2] */
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acc1 = __SMLAD(input1, input2, acc1);
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/* x[2] and x[3] are packed */
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in1 = (q15_t) x2;
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in2 = (q15_t) x3;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc2 += x[2] * y[srcBLen - 1] + x[3] * y[srcBLen - 2] */
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acc2 = __SMLAD(input1, input2, acc2);
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/* Read x[4] sample */
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x0 = *(px++);
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/* x[3] and x[4] are packed */
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in1 = (q15_t) x3;
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in2 = (q15_t) x0;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc3 += x[3] * y[srcBLen - 1] + x[4] * y[srcBLen - 2] */
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acc3 = __SMLAD(input1, input2, acc3);
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/* Read y[srcBLen - 3] sample */
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c0 = *(py--);
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/* Read y[srcBLen - 4] sample */
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c1 = *(py--);
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/* Read x[5] sample */
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x1 = *(px++);
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/* x[2] and x[3] are packed */
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in1 = (q15_t) x2;
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in2 = (q15_t) x3;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* y[srcBLen - 3] and y[srcBLen - 4] are packed */
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in1 = (q15_t) c0;
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in2 = (q15_t) c1;
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input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc0 += x[2] * y[srcBLen - 3] + x[3] * y[srcBLen - 4] */
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acc0 = __SMLAD(input1, input2, acc0);
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/* x[3] and x[4] are packed */
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in1 = (q15_t) x3;
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in2 = (q15_t) x0;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc1 += x[3] * y[srcBLen - 3] + x[4] * y[srcBLen - 4] */
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acc1 = __SMLAD(input1, input2, acc1);
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/* x[4] and x[5] are packed */
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in1 = (q15_t) x0;
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in2 = (q15_t) x1;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc2 += x[4] * y[srcBLen - 3] + x[5] * y[srcBLen - 4] */
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acc2 = __SMLAD(input1, input2, acc2);
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/* Read x[6] sample */
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x2 = *(px++);
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/* x[5] and x[6] are packed */
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in1 = (q15_t) x1;
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in2 = (q15_t) x2;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* acc3 += x[5] * y[srcBLen - 3] + x[6] * y[srcBLen - 4] */
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acc3 = __SMLAD(input1, input2, acc3);
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} while(--k);
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/* If the srcBLen is not a multiple of 4, compute any remaining MACs here.
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** No loop unrolling is used. */
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k = srcBLen % 0x4u;
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while(k > 0u)
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{
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/* Read y[srcBLen - 5] sample */
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c0 = *(py--);
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/* Read x[7] sample */
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x3 = *(px++);
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/* Perform the multiply-accumulates */
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/* acc0 += x[4] * y[srcBLen - 5] */
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acc0 += ((q15_t) x0 * c0);
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/* acc1 += x[5] * y[srcBLen - 5] */
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acc1 += ((q15_t) x1 * c0);
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/* acc2 += x[6] * y[srcBLen - 5] */
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acc2 += ((q15_t) x2 * c0);
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/* acc3 += x[7] * y[srcBLen - 5] */
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acc3 += ((q15_t) x3 * c0);
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/* Reuse the present samples for the next MAC */
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x0 = x1;
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x1 = x2;
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x2 = x3;
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/* Decrement the loop counter */
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k--;
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}
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/* Store the result in the accumulator in the destination buffer. */
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*pOut++ = (q7_t) (__SSAT(acc0 >> 7u, 8));
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*pOut++ = (q7_t) (__SSAT(acc1 >> 7u, 8));
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*pOut++ = (q7_t) (__SSAT(acc2 >> 7u, 8));
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*pOut++ = (q7_t) (__SSAT(acc3 >> 7u, 8));
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/* Increment the pointer pIn1 index, count by 4 */
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count += 4u;
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/* Update the inputA and inputB pointers for next MAC calculation */
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px = pIn1 + count;
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py = pSrc2;
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/* Decrement the loop counter */
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blkCnt--;
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}
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/* If the blockSize2 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 = blockSize2 % 0x4u;
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while(blkCnt > 0u)
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{
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/* Accumulator is made zero for every iteration */
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sum = 0;
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/* Apply loop unrolling and compute 4 MACs simultaneously. */
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k = srcBLen >> 2u;
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/* First part of the processing with loop unrolling. Compute 4 MACs at a time.
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** a second loop below computes MACs for the remaining 1 to 3 samples. */
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while(k > 0u)
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{
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/* Reading two inputs of SrcA buffer and packing */
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in1 = (q15_t) * px++;
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in2 = (q15_t) * px++;
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input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* Reading two inputs of SrcB buffer and packing */
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in1 = (q15_t) * py--;
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in2 = (q15_t) * py--;
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input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
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/* Perform the multiply-accumulates */
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|
sum = __SMLAD(input1, input2, sum);
|
|
|
|
/* Reading two inputs of SrcA buffer and packing */
|
|
in1 = (q15_t) * px++;
|
|
in2 = (q15_t) * px++;
|
|
input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* Reading two inputs of SrcB buffer and packing */
|
|
in1 = (q15_t) * py--;
|
|
in2 = (q15_t) * py--;
|
|
input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* Perform the multiply-accumulates */
|
|
sum = __SMLAD(input1, input2, sum);
|
|
|
|
/* Decrement the loop counter */
|
|
k--;
|
|
}
|
|
|
|
/* If the srcBLen is not a multiple of 4, compute any remaining MACs here.
|
|
** No loop unrolling is used. */
|
|
k = srcBLen % 0x4u;
|
|
|
|
while(k > 0u)
|
|
{
|
|
/* Perform the multiply-accumulates */
|
|
sum += ((q15_t) * px++ * *py--);
|
|
|
|
/* Decrement the loop counter */
|
|
k--;
|
|
}
|
|
|
|
/* Store the result in the accumulator in the destination buffer. */
|
|
*pOut++ = (q7_t) (__SSAT(sum >> 7u, 8));
|
|
|
|
/* Increment the pointer pIn1 index, count by 1 */
|
|
count++;
|
|
|
|
/* Update the inputA and inputB pointers for next MAC calculation */
|
|
px = pIn1 + count;
|
|
py = pSrc2;
|
|
|
|
/* Decrement the loop counter */
|
|
blkCnt--;
|
|
}
|
|
}
|
|
else
|
|
{
|
|
/* If the srcBLen is not a multiple of 4,
|
|
* the blockSize2 loop cannot be unrolled by 4 */
|
|
blkCnt = blockSize2;
|
|
|
|
while(blkCnt > 0u)
|
|
{
|
|
/* Accumulator is made zero for every iteration */
|
|
sum = 0;
|
|
|
|
/* srcBLen number of MACS should be performed */
|
|
k = srcBLen;
|
|
|
|
while(k > 0u)
|
|
{
|
|
/* Perform the multiply-accumulate */
|
|
sum += ((q15_t) * px++ * *py--);
|
|
|
|
/* Decrement the loop counter */
|
|
k--;
|
|
}
|
|
|
|
/* Store the result in the accumulator in the destination buffer. */
|
|
*pOut++ = (q7_t) (__SSAT(sum >> 7u, 8));
|
|
|
|
/* Increment the MAC count */
|
|
count++;
|
|
|
|
/* Update the inputA and inputB pointers for next MAC calculation */
|
|
px = pIn1 + count;
|
|
py = pSrc2;
|
|
|
|
/* Decrement the loop counter */
|
|
blkCnt--;
|
|
}
|
|
}
|
|
|
|
|
|
/* --------------------------
|
|
* Initializations of stage3
|
|
* -------------------------*/
|
|
|
|
/* sum += x[srcALen-srcBLen+1] * y[srcBLen-1] + x[srcALen-srcBLen+2] * y[srcBLen-2] +...+ x[srcALen-1] * y[1]
|
|
* sum += x[srcALen-srcBLen+2] * y[srcBLen-1] + x[srcALen-srcBLen+3] * y[srcBLen-2] +...+ x[srcALen-1] * y[2]
|
|
* ....
|
|
* sum += x[srcALen-2] * y[srcBLen-1] + x[srcALen-1] * y[srcBLen-2]
|
|
* sum += x[srcALen-1] * y[srcBLen-1]
|
|
*/
|
|
|
|
/* In this stage the MAC operations are decreased by 1 for every iteration.
|
|
The blockSize3 variable holds the number of MAC operations performed */
|
|
|
|
/* Working pointer of inputA */
|
|
pSrc1 = pIn1 + (srcALen - (srcBLen - 1u));
|
|
px = pSrc1;
|
|
|
|
/* Working pointer of inputB */
|
|
pSrc2 = pIn2 + (srcBLen - 1u);
|
|
py = pSrc2;
|
|
|
|
/* -------------------
|
|
* Stage3 process
|
|
* ------------------*/
|
|
|
|
while(blockSize3 > 0u)
|
|
{
|
|
/* Accumulator is made zero for every iteration */
|
|
sum = 0;
|
|
|
|
/* Apply loop unrolling and compute 4 MACs simultaneously. */
|
|
k = blockSize3 >> 2u;
|
|
|
|
/* First part of the processing with loop unrolling. Compute 4 MACs at a time.
|
|
** a second loop below computes MACs for the remaining 1 to 3 samples. */
|
|
while(k > 0u)
|
|
{
|
|
/* Reading two inputs, x[srcALen - srcBLen + 1] and x[srcALen - srcBLen + 2] of SrcA buffer and packing */
|
|
in1 = (q15_t) * px++;
|
|
in2 = (q15_t) * px++;
|
|
input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* Reading two inputs, y[srcBLen - 1] and y[srcBLen - 2] of SrcB buffer and packing */
|
|
in1 = (q15_t) * py--;
|
|
in2 = (q15_t) * py--;
|
|
input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* sum += x[srcALen - srcBLen + 1] * y[srcBLen - 1] */
|
|
/* sum += x[srcALen - srcBLen + 2] * y[srcBLen - 2] */
|
|
sum = __SMLAD(input1, input2, sum);
|
|
|
|
/* Reading two inputs, x[srcALen - srcBLen + 3] and x[srcALen - srcBLen + 4] of SrcA buffer and packing */
|
|
in1 = (q15_t) * px++;
|
|
in2 = (q15_t) * px++;
|
|
input1 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* Reading two inputs, y[srcBLen - 3] and y[srcBLen - 4] of SrcB buffer and packing */
|
|
in1 = (q15_t) * py--;
|
|
in2 = (q15_t) * py--;
|
|
input2 = ((q31_t) in1 & 0x0000FFFF) | ((q31_t) in2 << 16u);
|
|
|
|
/* sum += x[srcALen - srcBLen + 3] * y[srcBLen - 3] */
|
|
/* sum += x[srcALen - srcBLen + 4] * y[srcBLen - 4] */
|
|
sum = __SMLAD(input1, input2, sum);
|
|
|
|
/* Decrement the loop counter */
|
|
k--;
|
|
}
|
|
|
|
/* If the blockSize3 is not a multiple of 4, compute any remaining MACs here.
|
|
** No loop unrolling is used. */
|
|
k = blockSize3 % 0x4u;
|
|
|
|
while(k > 0u)
|
|
{
|
|
/* Perform the multiply-accumulates */
|
|
sum += ((q15_t) * px++ * *py--);
|
|
|
|
/* Decrement the loop counter */
|
|
k--;
|
|
}
|
|
|
|
/* Store the result in the accumulator in the destination buffer. */
|
|
*pOut++ = (q7_t) (__SSAT(sum >> 7u, 8));
|
|
|
|
/* Update the inputA and inputB pointers for next MAC calculation */
|
|
px = ++pSrc1;
|
|
py = pSrc2;
|
|
|
|
/* Decrement the loop counter */
|
|
blockSize3--;
|
|
}
|
|
|
|
#else
|
|
|
|
/* Run the below code for Cortex-M0 */
|
|
|
|
q7_t *pIn1 = pSrcA; /* input pointer */
|
|
q7_t *pIn2 = pSrcB; /* coefficient pointer */
|
|
q31_t sum; /* Accumulator */
|
|
uint32_t i, j; /* loop counter */
|
|
|
|
/* Loop to calculate output of convolution for output length number of times */
|
|
for (i = 0; i < (srcALen + srcBLen - 1); i++)
|
|
{
|
|
/* Initialize sum with zero to carry on MAC operations */
|
|
sum = 0;
|
|
|
|
/* Loop to perform MAC operations according to convolution equation */
|
|
for (j = 0; j <= i; j++)
|
|
{
|
|
/* Check the array limitations */
|
|
if(((i - j) < srcBLen) && (j < srcALen))
|
|
{
|
|
/* z[i] += x[i-j] * y[j] */
|
|
sum += (q15_t) pIn1[j] * (pIn2[i - j]);
|
|
}
|
|
}
|
|
|
|
/* Store the output in the destination buffer */
|
|
pDst[i] = (q7_t) __SSAT((sum >> 7u), 8u);
|
|
}
|
|
|
|
#endif /* #ifndef ARM_MATH_CM0_FAMILY */
|
|
|
|
}
|
|
|
|
/**
|
|
* @} end of Conv group
|
|
*/
|