annotate f103c8/Drivers/CMSIS/DSP_Lib/Source/StatisticsFunctions/arm_rms_q31.c @ 2:0c59e7a7782a

Working on GPIO and RCC
author cin
date Mon, 16 Jan 2017 11:04:47 +0300
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1 /* ----------------------------------------------------------------------
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2 * Copyright (C) 2010-2014 ARM Limited. All rights reserved.
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3 *
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4 * $Date: 19. March 2015
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5 * $Revision: V.1.4.5
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6 *
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7 * Project: CMSIS DSP Library
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8 * Title: arm_rms_q31.c
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9 *
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10 * Description: Root Mean Square of the elements of a Q31 vector.
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11 *
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12 * Target Processor: Cortex-M4/Cortex-M3/Cortex-M0
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13 *
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14 * Redistribution and use in source and binary forms, with or without
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15 * modification, are permitted provided that the following conditions
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16 * are met:
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17 * - Redistributions of source code must retain the above copyright
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18 * notice, this list of conditions and the following disclaimer.
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19 * - Redistributions in binary form must reproduce the above copyright
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20 * notice, this list of conditions and the following disclaimer in
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21 * the documentation and/or other materials provided with the
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22 * distribution.
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23 * - Neither the name of ARM LIMITED nor the names of its contributors
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24 * may be used to endorse or promote products derived from this
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25 * software without specific prior written permission.
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26 *
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27 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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28 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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29 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
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30 * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE
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31 * COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
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32 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
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33 * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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34 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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35 * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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36 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
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37 * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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38 * POSSIBILITY OF SUCH DAMAGE.
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39 * ---------------------------------------------------------------------------- */
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40
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41 #include "arm_math.h"
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42
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43 /**
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44 * @addtogroup RMS
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45 * @{
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46 */
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47
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48
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49 /**
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50 * @brief Root Mean Square of the elements of a Q31 vector.
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51 * @param[in] *pSrc points to the input vector
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52 * @param[in] blockSize length of the input vector
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53 * @param[out] *pResult rms value returned here
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54 * @return none.
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55 *
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56 * @details
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57 * <b>Scaling and Overflow Behavior:</b>
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58 *
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59 *\par
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60 * The function is implemented using an internal 64-bit accumulator.
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61 * The input is represented in 1.31 format, and intermediate multiplication
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62 * yields a 2.62 format.
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63 * The accumulator maintains full precision of the intermediate multiplication results,
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64 * but provides only a single guard bit.
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65 * There is no saturation on intermediate additions.
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66 * If the accumulator overflows, it wraps around and distorts the result.
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67 * In order to avoid overflows completely, the input signal must be scaled down by
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68 * log2(blockSize) bits, as a total of blockSize additions are performed internally.
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69 * Finally, the 2.62 accumulator is right shifted by 31 bits to yield a 1.31 format value.
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70 *
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71 */
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72
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73 void arm_rms_q31(
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74 q31_t * pSrc,
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75 uint32_t blockSize,
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76 q31_t * pResult)
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77 {
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78 q63_t sum = 0; /* accumulator */
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79 q31_t in; /* Temporary variable to store the input */
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80 uint32_t blkCnt; /* loop counter */
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81
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82 #ifndef ARM_MATH_CM0_FAMILY
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83
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84 /* Run the below code for Cortex-M4 and Cortex-M3 */
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85
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86 q31_t in1, in2, in3, in4; /* Temporary input variables */
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87
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88 /*loop Unrolling */
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89 blkCnt = blockSize >> 2u;
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90
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91 /* First part of the processing with loop unrolling. Compute 8 outputs at a time.
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92 ** a second loop below computes the remaining 1 to 7 samples. */
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93 while(blkCnt > 0u)
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94 {
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95 /* C = A[0] * A[0] + A[1] * A[1] + A[2] * A[2] + ... + A[blockSize-1] * A[blockSize-1] */
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96 /* Compute sum of the squares and then store the result in a temporary variable, sum */
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97 /* read two samples from source buffer */
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98 in1 = pSrc[0];
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99 in2 = pSrc[1];
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100
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101 /* calculate power and accumulate to accumulator */
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102 sum += (q63_t) in1 *in1;
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103 sum += (q63_t) in2 *in2;
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104
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105 /* read two samples from source buffer */
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106 in3 = pSrc[2];
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107 in4 = pSrc[3];
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108
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109 /* calculate power and accumulate to accumulator */
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110 sum += (q63_t) in3 *in3;
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111 sum += (q63_t) in4 *in4;
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112
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113
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114 /* update source buffer to process next samples */
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115 pSrc += 4u;
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116
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117 /* Decrement the loop counter */
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118 blkCnt--;
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119 }
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120
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121 /* If the blockSize is not a multiple of 8, compute any remaining output samples here.
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122 ** No loop unrolling is used. */
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123 blkCnt = blockSize % 0x4u;
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124
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125 #else
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126
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127 /* Run the below code for Cortex-M0 */
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128 blkCnt = blockSize;
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129
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130 #endif /* #ifndef ARM_MATH_CM0_FAMILY */
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131
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132 while(blkCnt > 0u)
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133 {
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134 /* C = A[0] * A[0] + A[1] * A[1] + A[2] * A[2] + ... + A[blockSize-1] * A[blockSize-1] */
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135 /* Compute sum of the squares and then store the results in a temporary variable, sum */
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136 in = *pSrc++;
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137 sum += (q63_t) in *in;
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138
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139 /* Decrement the loop counter */
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140 blkCnt--;
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141 }
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142
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143 /* Convert data in 2.62 to 1.31 by 31 right shifts and saturate */
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144 /* Compute Rms and store the result in the destination vector */
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145 arm_sqrt_q31(clip_q63_to_q31((sum / (q63_t) blockSize) >> 31), pResult);
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146 }
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147
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148 /**
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149 * @} end of RMS group
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150 */