Fork of mbed-dsp. CMSIS-DSP library of supporting NEON
Dependents: mbed-os-example-cmsis_dsp_neon
Fork of mbed-dsp by
Information
Japanese version is available in lower part of this page.
このページの後半に日本語版が用意されています.
CMSIS-DSP of supporting NEON
What is this ?
A library for CMSIS-DSP of supporting NEON.
We supported the NEON to CMSIS-DSP Ver1.4.3(CMSIS V4.1) that ARM supplied, has achieved the processing speed improvement.
If you use the mbed-dsp library, you can use to replace this library.
CMSIS-DSP of supporting NEON is provied as a library.
Library Creation environment
CMSIS-DSP library of supporting NEON was created by the following environment.
- Compiler
ARMCC Version 5.03 - Compile option switch[C Compiler]
-DARM_MATH_MATRIX_CHECK -DARM_MATH_ROUNDING -O3 -Otime --cpu=Cortex-A9 --littleend --arm --apcs=/interwork --no_unaligned_access --fpu=vfpv3_fp16 --fpmode=fast --apcs=/hardfp --vectorize --asm
- Compile option switch[Assembler]
--cpreproc --cpu=Cortex-A9 --littleend --arm --apcs=/interwork --no_unaligned_access --fpu=vfpv3_fp16 --fpmode=fast --apcs=/hardfp
Effects of NEON support
In the data which passes to each function, large size will be expected more effective than small size.
Also if the data is a multiple of 16, effect will be expected in every function in the CMSIS-DSP.
NEON対応CMSIS-DSP
概要
NEON対応したCMSIS-DSPのライブラリです。
ARM社提供のCMSIS-DSP Ver1.4.3(CMSIS V4.1)をターゲットにNEON対応を行ない、処理速度向上を実現しております。
mbed-dspライブラリを使用している場合は、本ライブラリに置き換えて使用することができます。
NEON対応したCMSIS-DSPはライブラリで提供します。
ライブラリ作成環境
NEON対応CMSIS-DSPライブラリは、以下の環境で作成しています。
- コンパイラ
ARMCC Version 5.03 - コンパイルオプションスイッチ[C Compiler]
-DARM_MATH_MATRIX_CHECK -DARM_MATH_ROUNDING -O3 -Otime --cpu=Cortex-A9 --littleend --arm --apcs=/interwork --no_unaligned_access --fpu=vfpv3_fp16 --fpmode=fast --apcs=/hardfp --vectorize --asm
- コンパイルオプションスイッチ[Assembler]
--cpreproc --cpu=Cortex-A9 --littleend --arm --apcs=/interwork --no_unaligned_access --fpu=vfpv3_fp16 --fpmode=fast --apcs=/hardfp
NEON対応による効果について
CMSIS-DSP内の各関数へ渡すデータは、小さいサイズよりも大きいサイズの方が効果が見込めます。
また、16の倍数のデータであれば、CMSIS-DSP内のどの関数でも効果が見込めます。
cmsis_dsp/ControllerFunctions/arm_sin_cos_f32.c
- Committer:
- mbed_official
- Date:
- 2013-11-08
- Revision:
- 3:7a284390b0ce
- Parent:
- 2:da51fb522205
File content as of revision 3:7a284390b0ce:
/* ---------------------------------------------------------------------- * Copyright (C) 2010-2013 ARM Limited. All rights reserved. * * $Date: 17. January 2013 * $Revision: V1.4.1 * * Project: CMSIS DSP Library * Title: arm_sin_cos_f32.c * * Description: Sine and Cosine calculation for floating-point values. * * Target Processor: Cortex-M4/Cortex-M3/Cortex-M0 * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in * the documentation and/or other materials provided with the * distribution. * - Neither the name of ARM LIMITED nor the names of its contributors * may be used to endorse or promote products derived from this * software without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * -------------------------------------------------------------------- */ #include "arm_math.h" /** * @ingroup groupController */ /** * @defgroup SinCos Sine Cosine * * Computes the trigonometric sine and cosine values using a combination of table lookup * and linear interpolation. * There are separate functions for Q31 and floating-point data types. * The input to the floating-point version is in degrees while the * fixed-point Q31 have a scaled input with the range * [-1 0.9999] mapping to [-180 179] degrees. * * The implementation is based on table lookup using 360 values together with linear interpolation. * The steps used are: * -# Calculation of the nearest integer table index. * -# Compute the fractional portion (fract) of the input. * -# Fetch the value corresponding to \c index from sine table to \c y0 and also value from \c index+1 to \c y1. * -# Sine value is computed as <code> *psinVal = y0 + (fract * (y1 - y0))</code>. * -# Fetch the value corresponding to \c index from cosine table to \c y0 and also value from \c index+1 to \c y1. * -# Cosine value is computed as <code> *pcosVal = y0 + (fract * (y1 - y0))</code>. */ /** * @addtogroup SinCos * @{ */ /** * \par * Cosine Table is generated from following loop * <pre>for(i = 0; i < 360; i++) * { * cosTable[i]= cos((i-180) * PI/180.0); * } </pre> */ static const float32_t cosTable[360] = { -0.999847695156391270f, -0.999390827019095760f, -0.998629534754573830f, -0.997564050259824200f, 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-0.951056516295153530f, -0.956304755963035440f, -0.961261695938318670f, -0.965925826289068200f, -0.970295726275996470f, -0.974370064785235250f, -0.978147600733805690f, -0.981627183447663980f, -0.984807753012208020f, -0.987688340595137660f, -0.990268068741570250f, -0.992546151641321980f, -0.994521895368273290f, -0.996194698091745550f, -0.997564050259824200f, -0.998629534754573830f, -0.999390827019095760f, -0.999847695156391270f, -1.000000000000000000f }; /** * \par * Sine Table is generated from following loop * <pre>for(i = 0; i < 360; i++) * { * sinTable[i]= sin((i-180) * PI/180.0); * } </pre> */ static const float32_t sinTable[360] = { -0.017452406437283439f, -0.034899496702500699f, -0.052335956242943807f, -0.069756473744125524f, -0.087155742747658638f, -0.104528463267653730f, -0.121869343405147550f, -0.139173100960065740f, -0.156434465040230980f, -0.173648177666930280f, -0.190808995376544970f, -0.207911690817759310f, -0.224951054343864780f, -0.241921895599667730f, 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0.156434465040230980f, 0.139173100960065740f, 0.121869343405147550f, 0.104528463267653730f, 0.087155742747658638f, 0.069756473744125524f, 0.052335956242943807f, 0.034899496702500699f, 0.017452406437283439f, 0.000000000000000122f }; /** * @brief Floating-point sin_cos function. * @param[in] theta input value in degrees * @param[out] *pSinVal points to the processed sine output. * @param[out] *pCosVal points to the processed cos output. * @return none. */ void arm_sin_cos_f32( float32_t theta, float32_t * pSinVal, float32_t * pCosVal) { int32_t i; /* Index for reading nearwst output values */ float32_t x1 = -179.0f; /* Initial input value */ float32_t y0, y1; /* nearest output values */ float32_t y2, y3; float32_t fract; /* fractional part of input */ /* Calculation of fractional part */ if(theta > 0.0f) { fract = theta - (float32_t) ((int32_t) theta); } else { fract = (theta - (float32_t) ((int32_t) theta)) + 1.0f; } /* index calculation for reading nearest output values */ i = (uint32_t) (theta - x1); /* Checking min and max index of table */ if(i < 0) { i = 0; } else if(i >= 359) { i = 358; } /* reading nearest sine output values */ y0 = sinTable[i]; y1 = sinTable[i + 1u]; /* reading nearest cosine output values */ y2 = cosTable[i]; y3 = cosTable[i + 1u]; y1 = y1 - y0; y3 = y3 - y2; y1 = fract * y1; y3 = fract * y3; /* Calculation of sine value */ *pSinVal = y0 + y1; /* Calculation of cosine value */ *pCosVal = y2 + y3; } /** * @} end of SinCos group */