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2 | mjames | 1 | /* ---------------------------------------------------------------------- |
2 | * Project: CMSIS DSP Library |
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3 | * Title: arm_cos_f32.c |
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4 | * Description: Fast cosine calculation for floating-point values |
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5 | * |
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6 | * $Date: 27. January 2017 |
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7 | * $Revision: V.1.5.1 |
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8 | * |
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9 | * Target Processor: Cortex-M cores |
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10 | * -------------------------------------------------------------------- */ |
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11 | /* |
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12 | * Copyright (C) 2010-2017 ARM Limited or its affiliates. All rights reserved. |
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13 | * |
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14 | * SPDX-License-Identifier: Apache-2.0 |
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15 | * |
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16 | * Licensed under the Apache License, Version 2.0 (the License); you may |
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17 | * not use this file except in compliance with the License. |
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18 | * You may obtain a copy of the License at |
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19 | * |
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20 | * www.apache.org/licenses/LICENSE-2.0 |
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21 | * |
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22 | * Unless required by applicable law or agreed to in writing, software |
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23 | * distributed under the License is distributed on an AS IS BASIS, WITHOUT |
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24 | * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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25 | * See the License for the specific language governing permissions and |
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26 | * limitations under the License. |
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27 | */ |
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28 | |||
29 | #include "arm_math.h" |
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30 | #include "arm_common_tables.h" |
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31 | /** |
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32 | * @ingroup groupFastMath |
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33 | */ |
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34 | |||
35 | /** |
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36 | * @defgroup cos Cosine |
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37 | * |
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38 | * Computes the trigonometric cosine function using a combination of table lookup |
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39 | * and linear interpolation. There are separate functions for |
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40 | * Q15, Q31, and floating-point data types. |
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41 | * The input to the floating-point version is in radians and in the range [0 2*pi) while the |
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42 | * fixed-point Q15 and Q31 have a scaled input with the range |
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43 | * [0 +0.9999] mapping to [0 2*pi). The fixed-point range is chosen so that a |
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44 | * value of 2*pi wraps around to 0. |
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45 | * |
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46 | * The implementation is based on table lookup using 256 values together with linear interpolation. |
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47 | * The steps used are: |
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48 | * -# Calculation of the nearest integer table index |
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49 | * -# Compute the fractional portion (fract) of the table index. |
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50 | * -# The final result equals <code>(1.0f-fract)*a + fract*b;</code> |
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51 | * |
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52 | * where |
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53 | * <pre> |
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54 | * b=Table[index+0]; |
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55 | * c=Table[index+1]; |
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56 | * </pre> |
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57 | */ |
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58 | |||
59 | /** |
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60 | * @addtogroup cos |
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61 | * @{ |
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62 | */ |
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63 | |||
64 | /** |
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65 | * @brief Fast approximation to the trigonometric cosine function for floating-point data. |
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66 | * @param[in] x input value in radians. |
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67 | * @return cos(x). |
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68 | */ |
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69 | |||
70 | float32_t arm_cos_f32( |
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71 | float32_t x) |
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72 | { |
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73 | float32_t cosVal, fract, in; /* Temporary variables for input, output */ |
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74 | uint16_t index; /* Index variable */ |
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75 | float32_t a, b; /* Two nearest output values */ |
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76 | int32_t n; |
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77 | float32_t findex; |
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78 | |||
79 | /* input x is in radians */ |
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80 | /* Scale the input to [0 1] range from [0 2*PI] , divide input by 2*pi, add 0.25 (pi/2) to read sine table */ |
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81 | in = x * 0.159154943092f + 0.25f; |
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82 | |||
83 | /* Calculation of floor value of input */ |
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84 | n = (int32_t) in; |
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85 | |||
86 | /* Make negative values towards -infinity */ |
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87 | if (in < 0.0f) |
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88 | { |
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89 | n--; |
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90 | } |
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91 | |||
92 | /* Map input value to [0 1] */ |
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93 | in = in - (float32_t) n; |
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94 | |||
95 | /* Calculation of index of the table */ |
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96 | findex = (float32_t) FAST_MATH_TABLE_SIZE * in; |
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97 | index = ((uint16_t)findex) & 0x1ff; |
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98 | |||
99 | /* fractional value calculation */ |
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100 | fract = findex - (float32_t) index; |
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101 | |||
102 | /* Read two nearest values of input value from the cos table */ |
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103 | a = sinTable_f32[index]; |
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104 | b = sinTable_f32[index+1]; |
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105 | |||
106 | /* Linear interpolation process */ |
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107 | cosVal = (1.0f-fract)*a + fract*b; |
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108 | |||
109 | /* Return the output value */ |
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110 | return (cosVal); |
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111 | } |
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112 | |||
113 | /** |
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114 | * @} end of cos group |
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115 | */ |