138 lines
4.1 KiB
C
138 lines
4.1 KiB
C
/* ----------------------------------------------------------------------
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* Project: CMSIS DSP Library
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* Title: arm_scale_q15.c
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* Description: Multiplies a Q15 vector by a scalar
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*
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* $Date: 18. March 2019
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* $Revision: V1.6.0
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*
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* Target Processor: Cortex-M cores
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* -------------------------------------------------------------------- */
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/*
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* Copyright (C) 2010-2019 ARM Limited or its affiliates. All rights reserved.
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*
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* SPDX-License-Identifier: Apache-2.0
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*
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* Licensed under the Apache License, Version 2.0 (the License); you may
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* not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an AS IS BASIS, WITHOUT
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* WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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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 BasicScale
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@{
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*/
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/**
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@brief Multiplies a Q15 vector by a scalar.
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@param[in] pSrc points to the input vector
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@param[in] scaleFract fractional portion of the scale value
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@param[in] shift number of bits to shift the result by
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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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@par Scaling and Overflow Behavior
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The input data <code>*pSrc</code> and <code>scaleFract</code>
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are in 1.15 format. These are multiplied to yield a 2.30 intermediate result
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and this is shifted with saturation to 1.15 format.
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*/
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void arm_scale_q15(const q15_t *pSrc, q15_t scaleFract, int8_t shift,
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q15_t *pDst, uint32_t blockSize) {
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uint32_t blkCnt; /* Loop counter */
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int8_t kShift = 15 - shift; /* Shift to apply after scaling */
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#if defined(ARM_MATH_LOOPUNROLL)
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#if defined(ARM_MATH_DSP)
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q31_t inA1, inA2;
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q31_t out1, out2, out3, out4; /* Temporary output variables */
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q15_t in1, in2, in3, in4; /* Temporary input variables */
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#endif
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#endif
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#if defined(ARM_MATH_LOOPUNROLL)
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/* Loop unrolling: Compute 4 outputs at a time */
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blkCnt = blockSize >> 2U;
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while (blkCnt > 0U) {
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/* C = A * scale */
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#if defined(ARM_MATH_DSP)
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/* read 2 times 2 samples at a time from source */
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inA1 = read_q15x2_ia((q15_t **)&pSrc);
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inA2 = read_q15x2_ia((q15_t **)&pSrc);
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/* Scale inputs and store result in temporary variables
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* in single cycle by packing the outputs */
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out1 = (q31_t)((q15_t)(inA1 >> 16) * scaleFract);
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out2 = (q31_t)((q15_t)(inA1)*scaleFract);
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out3 = (q31_t)((q15_t)(inA2 >> 16) * scaleFract);
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out4 = (q31_t)((q15_t)(inA2)*scaleFract);
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/* apply shifting */
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out1 = out1 >> kShift;
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out2 = out2 >> kShift;
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out3 = out3 >> kShift;
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out4 = out4 >> kShift;
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/* saturate the output */
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in1 = (q15_t)(__SSAT(out1, 16));
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in2 = (q15_t)(__SSAT(out2, 16));
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in3 = (q15_t)(__SSAT(out3, 16));
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in4 = (q15_t)(__SSAT(out4, 16));
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/* store result to destination */
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write_q15x2_ia(&pDst, __PKHBT(in2, in1, 16));
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write_q15x2_ia(&pDst, __PKHBT(in4, in3, 16));
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#else
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*pDst++ = (q15_t)(__SSAT(((q31_t)*pSrc++ * scaleFract) >> kShift, 16));
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*pDst++ = (q15_t)(__SSAT(((q31_t)*pSrc++ * scaleFract) >> kShift, 16));
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*pDst++ = (q15_t)(__SSAT(((q31_t)*pSrc++ * scaleFract) >> kShift, 16));
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*pDst++ = (q15_t)(__SSAT(((q31_t)*pSrc++ * scaleFract) >> kShift, 16));
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#endif
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/* Decrement loop counter */
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blkCnt--;
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}
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/* Loop unrolling: Compute remaining outputs */
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blkCnt = blockSize % 0x4U;
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#else
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/* Initialize blkCnt with number of samples */
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blkCnt = blockSize;
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#endif /* #if defined (ARM_MATH_LOOPUNROLL) */
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while (blkCnt > 0U) {
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/* C = A * scale */
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/* Scale input and store result in destination buffer. */
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*pDst++ = (q15_t)(__SSAT(((q31_t)*pSrc++ * scaleFract) >> kShift, 16));
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/* Decrement 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 BasicScale group
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*/
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