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/* ----------------------------------------------------------------------
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 * Project:      CMSIS DSP Library
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 * Title:        arm_scale_q31.c
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 * Description:  Multiplies a Q31 vector by a scalar
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 *
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 * $Date:        27. January 2017
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 * $Revision:    V.1.5.1
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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) 2010-2017 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 scale
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 * @{
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 */
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/**
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 * @brief Multiplies a Q31 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 the 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 input data <code>*pSrc</code> and <code>scaleFract</code> are in 1.31 format.
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 * These are multiplied to yield a 2.62 intermediate result and this is shifted with saturation to 1.31 format.
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 */
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void arm_scale_q31(
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  q31_t * pSrc,
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  q31_t scaleFract,
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  int8_t shift,
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  q31_t * pDst,
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  uint32_t blockSize)
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{
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  int8_t kShift = shift + 1;                     /* Shift to apply after scaling */
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  int8_t sign = (kShift & 0x80);
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  uint32_t blkCnt;                               /* loop counter */
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  q31_t in, out;
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#if defined (ARM_MATH_DSP)
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/* Run the below code for Cortex-M4 and Cortex-M3 */
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  q31_t in1, in2, in3, in4;                      /* temporary input variables */
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  q31_t out1, out2, out3, out4;                  /* temporary output variabels */
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  /*loop Unrolling */
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  blkCnt = blockSize >> 2U;
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  if (sign == 0U)
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  {
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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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      /* read four inputs from source */
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      in1 = *pSrc;
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      in2 = *(pSrc + 1);
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      in3 = *(pSrc + 2);
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      in4 = *(pSrc + 3);
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      /* multiply input with scaler value */
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      in1 = ((q63_t) in1 * scaleFract) >> 32;
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      in2 = ((q63_t) in2 * scaleFract) >> 32;
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      in3 = ((q63_t) in3 * scaleFract) >> 32;
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      in4 = ((q63_t) in4 * scaleFract) >> 32;
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      /* apply shifting */
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      out1 = in1 << kShift;
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      out2 = in2 << kShift;
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      /* saturate the results. */
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      if (in1 != (out1 >> kShift))
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        out1 = 0x7FFFFFFF ^ (in1 >> 31);
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      if (in2 != (out2 >> kShift))
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        out2 = 0x7FFFFFFF ^ (in2 >> 31);
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      out3 = in3 << kShift;
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      out4 = in4 << kShift;
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      *pDst = out1;
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      *(pDst + 1) = out2;
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      if (in3 != (out3 >> kShift))
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        out3 = 0x7FFFFFFF ^ (in3 >> 31);
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      if (in4 != (out4 >> kShift))
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        out4 = 0x7FFFFFFF ^ (in4 >> 31);
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      /* Store result destination */
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      *(pDst + 2) = out3;
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      *(pDst + 3) = out4;
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      /* Update pointers to process next sampels */
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      pSrc += 4U;
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      pDst += 4U;
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      /* Decrement the loop counter */
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      blkCnt--;
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    }
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  }
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  else
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  {
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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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      /* read four inputs from source */
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      in1 = *pSrc;
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      in2 = *(pSrc + 1);
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      in3 = *(pSrc + 2);
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      in4 = *(pSrc + 3);
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      /* multiply input with scaler value */
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      in1 = ((q63_t) in1 * scaleFract) >> 32;
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      in2 = ((q63_t) in2 * scaleFract) >> 32;
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      in3 = ((q63_t) in3 * scaleFract) >> 32;
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      in4 = ((q63_t) in4 * scaleFract) >> 32;
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      /* apply shifting */
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      out1 = in1 >> -kShift;
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      out2 = in2 >> -kShift;
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      out3 = in3 >> -kShift;
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      out4 = in4 >> -kShift;
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      /* Store result destination */
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      *pDst = out1;
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      *(pDst + 1) = out2;
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      *(pDst + 2) = out3;
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      *(pDst + 3) = out4;
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      /* Update pointers to process next sampels */
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      pSrc += 4U;
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      pDst += 4U;
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      /* Decrement the loop counter */
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      blkCnt--;
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    }
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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 /* #if defined (ARM_MATH_DSP) */
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  if (sign == 0)
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  {
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          while (blkCnt > 0U)
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          {
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                /* C = A * scale */
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                /* Scale the input and then store the result in the destination buffer. */
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                in = *pSrc++;
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                in = ((q63_t) in * scaleFract) >> 32;
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                out = in << kShift;
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                if (in != (out >> kShift))
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                        out = 0x7FFFFFFF ^ (in >> 31);
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                *pDst++ = out;
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                /* Decrement the loop counter */
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                blkCnt--;
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          }
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  }
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  else
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  {
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          while (blkCnt > 0U)
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          {
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                /* C = A * scale */
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                /* Scale the input and then store the result in the destination buffer. */
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                in = *pSrc++;
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                in = ((q63_t) in * scaleFract) >> 32;
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                out = in >> -kShift;
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                *pDst++ = out;
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                /* Decrement the loop counter */
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                blkCnt--;
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          }
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  }
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}
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/**
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 * @} end of scale group
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 */