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			527 lines
		
	
	
		
			17 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			527 lines
		
	
	
		
			17 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /* ----------------------------------------------------------------------
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|  * Project:      CMSIS DSP Library
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|  * Title:        arm_rfft_q15.c
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|  * Description:  RFFT & RIFFT Q15 process function
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|  *
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|  * $Date:        23 April 2021
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|  * $Revision:    V1.9.0
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|  *
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|  * Target Processor: Cortex-M and Cortex-A cores
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|  * -------------------------------------------------------------------- */
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| /*
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|  * Copyright (C) 2010-2021 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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| 
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| #include "dsp/transform_functions.h"
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| 
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| /* ----------------------------------------------------------------------
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|  * Internal functions prototypes
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|  * -------------------------------------------------------------------- */
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| 
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| void arm_split_rfft_q15(
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|         q15_t * pSrc,
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|         uint32_t fftLen,
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|   const q15_t * pATable,
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|   const q15_t * pBTable,
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|         q15_t * pDst,
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|         uint32_t modifier);
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| 
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| void arm_split_rifft_q15(
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|         q15_t * pSrc,
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|         uint32_t fftLen,
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|   const q15_t * pATable,
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|   const q15_t * pBTable,
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|         q15_t * pDst,
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|         uint32_t modifier);
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| 
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| /**
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|   @addtogroup RealFFT
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|   @{
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|  */
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| 
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| /**
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|   @brief         Processing function for the Q15 RFFT/RIFFT.
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|   @param[in]     S     points to an instance of the Q15 RFFT/RIFFT structure
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|   @param[in]     pSrc  points to input buffer (Source buffer is modified by this function.)
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|   @param[out]    pDst  points to output buffer
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|   @return        none
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| 
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|   @par           Input an output formats
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|                    Internally input is downscaled by 2 for every stage to avoid saturations inside CFFT/CIFFT process.
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|                    Hence the output format is different for different RFFT sizes.
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|                    The input and output formats for different RFFT sizes and number of bits to upscale are mentioned in the tables below for RFFT and RIFFT:
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|   @par
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|                    \image html RFFTQ15.gif "Input and Output Formats for Q15 RFFT"
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|   @par
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|                    \image html RIFFTQ15.gif "Input and Output Formats for Q15 RIFFT"
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|   @par
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|                    If the input buffer is of length N, the output buffer must have length 2*N.
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|                    The input buffer is modified by this function.
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|   @par
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|                    For the RIFFT, the source buffer must at least have length 
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|                    fftLenReal + 2.
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|                    The last two elements must be equal to what would be generated
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|                    by the RFFT:
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|                      (pSrc[0] - pSrc[1]) >> 1 and 0
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|  */
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| 
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| void arm_rfft_q15(
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|   const arm_rfft_instance_q15 * S,
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|         q15_t * pSrc,
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|         q15_t * pDst)
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| {
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| #if defined(ARM_MATH_MVEI) && !defined(ARM_MATH_AUTOVECTORIZE)
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|   const arm_cfft_instance_q15 *S_CFFT = &(S->cfftInst);
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| #else
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|   const arm_cfft_instance_q15 *S_CFFT = S->pCfft;
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| #endif
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|         uint32_t L2 = S->fftLenReal >> 1U;
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| 
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|   /* Calculation of RIFFT of input */
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|   if (S->ifftFlagR == 1U)
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|   {
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|      /*  Real IFFT core process */
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|      arm_split_rifft_q15 (pSrc, L2, S->pTwiddleAReal, S->pTwiddleBReal, pDst, S->twidCoefRModifier);
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| 
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|      /* Complex IFFT process */
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|      arm_cfft_q15 (S_CFFT, pDst, S->ifftFlagR, S->bitReverseFlagR);
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| 
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|      arm_shift_q15(pDst, 1, pDst, S->fftLenReal);
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|   }
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|   else
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|   {
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|      /* Calculation of RFFT of input */
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| 
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|      /* Complex FFT process */
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|      arm_cfft_q15 (S_CFFT, pSrc, S->ifftFlagR, S->bitReverseFlagR);
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| 
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|      /*  Real FFT core process */
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|      arm_split_rfft_q15 (pSrc, L2, S->pTwiddleAReal, S->pTwiddleBReal, pDst, S->twidCoefRModifier);
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|   }
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| 
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| }
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| 
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| /**
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|   @} end of RealFFT group
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|  */
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| 
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| /**
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|   @brief         Core Real FFT process
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|   @param[in]     pSrc      points to input buffer
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|   @param[in]     fftLen    length of FFT
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|   @param[in]     pATable   points to twiddle Coef A buffer
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|   @param[in]     pBTable   points to twiddle Coef B buffer
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|   @param[out]    pDst      points to output buffer
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|   @param[in]     modifier  twiddle coefficient modifier that supports different size FFTs with the same twiddle factor table
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|   @return        none
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| 
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|   @par
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|                    The function implements a Real FFT
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|  */
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| 
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| #if defined(ARM_MATH_MVEI) && !defined(ARM_MATH_AUTOVECTORIZE)
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| 
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| #include "arm_helium_utils.h"
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| #include "arm_vec_fft.h"
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| 
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| #if defined(__CMSIS_GCC_H)
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| #define MVE_CMPLX_MULT_FX_AxB_S16(A,B)          vqdmladhxq_s16(vqdmlsdhq_s16((__typeof(A))vuninitializedq_s16(), A, B), A, B)
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| #define MVE_CMPLX_MULT_FX_AxConjB_S16(A,B)      vqdmladhq_s16(vqdmlsdhxq_s16((__typeof(A))vuninitializedq_s16(), A, B), A, B)
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| 
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| #endif 
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| 
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| void arm_split_rfft_q15(
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|         q15_t * pSrc,
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|         uint32_t fftLen,
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|   const q15_t * pATable,
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|   const q15_t * pBTable,
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|         q15_t * pDst,
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|         uint32_t modifier)
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| {
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|    uint32_t        i;          /* Loop Counter */
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|     const q15_t    *pCoefA, *pCoefB;    /* Temporary pointers for twiddle factors */
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|     q15_t          *pOut1 = &pDst[2];
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|     q15_t          *pIn1 = &pSrc[2];
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|     uint16x8_t      offsetIn = { 6, 7, 4, 5, 2, 3, 0, 1 };
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|     uint16x8_t      offsetCoef;
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|     const uint16_t  offsetCoefArr[16] = {
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|         0, 0, 2, 2, 4, 4, 6, 6,
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|         0, 1, 0, 1, 0, 1, 0, 1
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|     };
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| 
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|     offsetCoef = vmulq_n_u16(vld1q_u16(offsetCoefArr), modifier) + vld1q_u16(offsetCoefArr + 8);
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|     offsetIn = vaddq_n_u16(offsetIn, (2 * fftLen - 8));
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| 
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|     /* Init coefficient pointers */
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|     pCoefA = &pATable[modifier * 2];
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|     pCoefB = &pBTable[modifier * 2];
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| 
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|     const q15_t    *pCoefAb, *pCoefBb;
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|     pCoefAb = pCoefA;
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|     pCoefBb = pCoefB;
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| 
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|     pIn1 = &pSrc[2];
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| 
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|     i = fftLen - 1U;
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|     i = i / 4 + 1;
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|     while (i > 0U) {
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|         q15x8_t         in1 = vld1q_s16(pIn1);
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|         q15x8_t         in2 = vldrhq_gather_shifted_offset_s16(pSrc, offsetIn);
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|         q15x8_t         coefA = vldrhq_gather_shifted_offset_s16(pCoefAb, offsetCoef);
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|         q15x8_t         coefB = vldrhq_gather_shifted_offset_s16(pCoefBb, offsetCoef);
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| 
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| #if defined(__CMSIS_GCC_H)
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|         q15x8_t         out = vhaddq_s16(MVE_CMPLX_MULT_FX_AxB_S16(in1, coefA),
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|                                      MVE_CMPLX_MULT_FX_AxConjB_S16(coefB, in2));
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| #else
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|         q15x8_t         out = vhaddq_s16(MVE_CMPLX_MULT_FX_AxB(in1, coefA, q15x8_t),
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|                                          MVE_CMPLX_MULT_FX_AxConjB(coefB, in2, q15x8_t));
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| #endif
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|         vst1q_s16(pOut1, out);
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|         pOut1 += 8;
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| 
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|         offsetCoef = vaddq_n_u16(offsetCoef, modifier * 8);
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|         offsetIn -= 8;
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|         pIn1 += 8;
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|         i -= 1;
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|     }
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| 
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|     pDst[2 * fftLen] = (pSrc[0] - pSrc[1]) >> 1U;
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|     pDst[2 * fftLen + 1] = 0;
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| 
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|     pDst[0] = (pSrc[0] + pSrc[1]) >> 1U;
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|     pDst[1] = 0;
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| }
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| #else
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| void arm_split_rfft_q15(
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|         q15_t * pSrc,
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|         uint32_t fftLen,
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|   const q15_t * pATable,
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|   const q15_t * pBTable,
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|         q15_t * pDst,
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|         uint32_t modifier)
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| {       
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|         uint32_t i;                                    /* Loop Counter */
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|         q31_t outR, outI;                              /* Temporary variables for output */
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|   const q15_t *pCoefA, *pCoefB;                        /* Temporary pointers for twiddle factors */
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|         q15_t *pSrc1, *pSrc2;
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| #if defined (ARM_MATH_DSP)
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|         q15_t *pD1, *pD2;
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| #endif
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| 
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|   /* Init coefficient pointers */
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|   pCoefA = &pATable[modifier * 2];
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|   pCoefB = &pBTable[modifier * 2];
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| 
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|   pSrc1 = &pSrc[2];
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|   pSrc2 = &pSrc[(2U * fftLen) - 2U];
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| 
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| #if defined (ARM_MATH_DSP)
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| 
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|     i = 1U;
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|     pD1 = pDst + 2;
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|     pD2 = pDst + (4U * fftLen) - 2;
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| 
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|     for (i = fftLen - 1; i > 0; i--)
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|     {
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|         /*
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|           outR = (  pSrc[2 * i]             * pATable[2 * i]
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|                   - pSrc[2 * i + 1]         * pATable[2 * i + 1]
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|                   + pSrc[2 * n - 2 * i]     * pBTable[2 * i]
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|                   + pSrc[2 * n - 2 * i + 1] * pBTable[2 * i + 1]);
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| 
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|           outI = (  pIn[2 * i + 1]         * pATable[2 * i]
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|                   + pIn[2 * i]             * pATable[2 * i + 1]
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|                   + pIn[2 * n - 2 * i]     * pBTable[2 * i + 1]
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|                   - pIn[2 * n - 2 * i + 1] * pBTable[2 * i])
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|          */
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| 
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| 
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| #ifndef ARM_MATH_BIG_ENDIAN
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|         /* pSrc[2 * i] * pATable[2 * i] - pSrc[2 * i + 1] * pATable[2 * i + 1] */
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|         outR = __SMUSD(read_q15x2 (pSrc1), read_q15x2((q15_t *) pCoefA));
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| #else
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|         /* -(pSrc[2 * i + 1] * pATable[2 * i + 1] - pSrc[2 * i] * pATable[2 * i]) */
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|         outR = -(__SMUSD(read_q15x2 (pSrc1), read_q15x2((q15_t *) pCoefA)));
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| #endif /* #ifndef ARM_MATH_BIG_ENDIAN */
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| 
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|         /* pSrc[2 * n - 2 * i] * pBTable[2 * i] + pSrc[2 * n - 2 * i + 1] * pBTable[2 * i + 1]) */
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|         outR = __SMLAD(read_q15x2 (pSrc2), read_q15x2((q15_t *) pCoefB), outR) >> 16U;
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| 
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|         /* pIn[2 * n - 2 * i] * pBTable[2 * i + 1] - pIn[2 * n - 2 * i + 1] * pBTable[2 * i] */
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| #ifndef ARM_MATH_BIG_ENDIAN
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|         outI = __SMUSDX(read_q15x2_da (&pSrc2), read_q15x2((q15_t *) pCoefB));
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| #else
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|         outI = __SMUSDX(read_q15x2 ((q15_t *) pCoefB), read_q15x2_da (&pSrc2));
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| #endif /* #ifndef ARM_MATH_BIG_ENDIAN */
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| 
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|         /* (pIn[2 * i + 1] * pATable[2 * i] + pIn[2 * i] * pATable[2 * i + 1] */
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|         outI = __SMLADX(read_q15x2_ia (&pSrc1), read_q15x2 ((q15_t *) pCoefA), outI);
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| 
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|         /* write output */
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|         *pD1++ = (q15_t) outR;
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|         *pD1++ = outI >> 16U;
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| 
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|         /* write complex conjugate output */
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|         pD2[0] = (q15_t) outR;
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|         pD2[1] = -(outI >> 16U);
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|         pD2 -= 2;
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| 
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|         /* update coefficient pointer */
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|         pCoefB = pCoefB + (2U * modifier);
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|         pCoefA = pCoefA + (2U * modifier);
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|     }
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| 
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|     pDst[2U * fftLen]      = (pSrc[0] - pSrc[1]) >> 1U;
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|     pDst[2U * fftLen + 1U] = 0;
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| 
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|     pDst[0] = (pSrc[0] + pSrc[1]) >> 1U;
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|     pDst[1] = 0;
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| 
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| #else
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| 
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|     i = 1U;
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| 
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|     while (i < fftLen)
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|     {
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|         /*
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|           outR = (  pSrc[2 * i]             * pATable[2 * i]
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|                   - pSrc[2 * i + 1]         * pATable[2 * i + 1]
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|                   + pSrc[2 * n - 2 * i]     * pBTable[2 * i]
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|                   + pSrc[2 * n - 2 * i + 1] * pBTable[2 * i + 1]);
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|         */
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| 
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|         outR = *pSrc1 * *pCoefA;
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|         outR = outR - (*(pSrc1 + 1) * *(pCoefA + 1));
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|         outR = outR + (*pSrc2 * *pCoefB);
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|         outR = (outR + (*(pSrc2 + 1) * *(pCoefB + 1))) >> 16;
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| 
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|         /*
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|           outI = (  pIn[2 * i + 1]         * pATable[2 * i]
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|                   + pIn[2 * i]             * pATable[2 * i + 1]
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|                   + pIn[2 * n - 2 * i]     * pBTable[2 * i + 1]
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|                   - pIn[2 * n - 2 * i + 1] * pBTable[2 * i]);
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|         */
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| 
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|         outI = *pSrc2 * *(pCoefB + 1);
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|         outI = outI - (*(pSrc2 + 1) * *pCoefB);
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|         outI = outI + (*(pSrc1 + 1) * *pCoefA);
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|         outI = outI + (*pSrc1 * *(pCoefA + 1));
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| 
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|         /* update input pointers */
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|         pSrc1 += 2U;
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|         pSrc2 -= 2U;
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| 
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|         /* write output */
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|         pDst[2U * i] = (q15_t) outR;
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|         pDst[2U * i + 1U] = outI >> 16U;
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| 
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|         /* write complex conjugate output */
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|         pDst[(4U * fftLen) - (2U * i)] = (q15_t) outR;
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|         pDst[((4U * fftLen) - (2U * i)) + 1U] = -(outI >> 16U);
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| 
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|         /* update coefficient pointer */
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|         pCoefB = pCoefB + (2U * modifier);
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|         pCoefA = pCoefA + (2U * modifier);
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| 
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|         i++;
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|     }
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| 
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|     pDst[2U * fftLen] = (pSrc[0] - pSrc[1]) >> 1;
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|     pDst[2U * fftLen + 1U] = 0;
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| 
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|     pDst[0] = (pSrc[0] + pSrc[1]) >> 1;
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|     pDst[1] = 0;
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| 
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| #endif /* #if defined (ARM_MATH_DSP) */
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| }
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| #endif /* defined(ARM_MATH_MVEI) */
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| 
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| /**
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|   @brief         Core Real IFFT process
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|   @param[in]     pSrc      points to input buffer
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|   @param[in]     fftLen    length of FFT
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|   @param[in]     pATable   points to twiddle Coef A buffer
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|   @param[in]     pBTable   points to twiddle Coef B buffer
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|   @param[out]    pDst      points to output buffer
 | |
|   @param[in]     modifier  twiddle coefficient modifier that supports different size FFTs with the same twiddle factor table
 | |
|   @return        none
 | |
| 
 | |
|   @par
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|                    The function implements a Real IFFT
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|  */
 | |
| 
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| #if defined(ARM_MATH_MVEI) && !defined(ARM_MATH_AUTOVECTORIZE)
 | |
| 
 | |
| #include "arm_helium_utils.h"
 | |
| #include "arm_vec_fft.h"
 | |
| 
 | |
| void arm_split_rifft_q15(
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|         q15_t * pSrc,
 | |
|         uint32_t fftLen,
 | |
|   const q15_t * pATable,
 | |
|   const q15_t * pBTable,
 | |
|         q15_t * pDst,
 | |
|         uint32_t modifier)
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| {
 | |
|    uint32_t        i;                  /* Loop Counter */
 | |
|     const q15_t    *pCoefA, *pCoefB;    /* Temporary pointers for twiddle factors */
 | |
|     q15_t          *pIn1;
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|     uint16x8_t      offset = { 6, 7, 4, 5, 2, 3, 0, 1 };
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|     uint16x8_t      offsetCoef;
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|     int16x8_t       conj = { 1, -1, 1, -1, 1, -1, 1, -1 }; /* conjugate */
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|     const uint16_t  offsetCoefArr[16] = {
 | |
|         0, 0, 2, 2, 4, 4, 6, 6,
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|         0, 1, 0, 1, 0, 1, 0, 1
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|     };
 | |
| 
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|     offsetCoef = vmulq_n_u16(vld1q_u16(offsetCoefArr), modifier) + vld1q_u16(offsetCoefArr + 8);
 | |
| 
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|     offset = vaddq_n_u16(offset, (2 * fftLen - 6));
 | |
| 
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|     /* Init coefficient pointers */
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|     pCoefA = &pATable[0];
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|     pCoefB = &pBTable[0];
 | |
| 
 | |
|     const q15_t    *pCoefAb, *pCoefBb;
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|     pCoefAb = pCoefA;
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|     pCoefBb = pCoefB;
 | |
| 
 | |
|     pIn1 = &pSrc[0];
 | |
| 
 | |
|     i = fftLen;
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|     i = i / 4;
 | |
| 
 | |
|     while (i > 0U) {
 | |
|         q15x8_t         in1 = vld1q_s16(pIn1);
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|         q15x8_t         in2 = vldrhq_gather_shifted_offset_s16(pSrc, offset);
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|         q15x8_t         coefA = vldrhq_gather_shifted_offset_s16(pCoefAb, offsetCoef);
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|         q15x8_t         coefB = vldrhq_gather_shifted_offset_s16(pCoefBb, offsetCoef);
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| 
 | |
|         /* can we avoid the conjugate here ? */
 | |
|         q15x8_t         out = vhaddq_s16(MVE_CMPLX_MULT_FX_AxConjB(in1, coefA, q15x8_t),
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|                                          vmulq(conj, MVE_CMPLX_MULT_FX_AxB(in2, coefB, q15x8_t)));
 | |
| 
 | |
|         vst1q_s16(pDst, out);
 | |
|         pDst += 8;
 | |
| 
 | |
|         offsetCoef = vaddq_n_u16(offsetCoef, modifier * 8);
 | |
|         offset -= 8;
 | |
| 
 | |
|         pIn1 += 8;
 | |
|         i -= 1;
 | |
|     }
 | |
| }
 | |
| #else
 | |
| void arm_split_rifft_q15(
 | |
|         q15_t * pSrc,
 | |
|         uint32_t fftLen,
 | |
|   const q15_t * pATable,
 | |
|   const q15_t * pBTable,
 | |
|         q15_t * pDst,
 | |
|         uint32_t modifier)
 | |
| {
 | |
|         uint32_t i;                                    /* Loop Counter */
 | |
|         q31_t outR, outI;                              /* Temporary variables for output */
 | |
|   const q15_t *pCoefA, *pCoefB;                        /* Temporary pointers for twiddle factors */
 | |
|         q15_t *pSrc1, *pSrc2;
 | |
|         q15_t *pDst1 = &pDst[0];
 | |
| 
 | |
|   pCoefA = &pATable[0];
 | |
|   pCoefB = &pBTable[0];
 | |
| 
 | |
|   pSrc1 = &pSrc[0];
 | |
|   pSrc2 = &pSrc[2 * fftLen];
 | |
| 
 | |
|   i = fftLen;
 | |
|   while (i > 0U)
 | |
|   {
 | |
|       /*
 | |
|         outR = (  pIn[2 * i]             * pATable[2 * i]
 | |
|                 + pIn[2 * i + 1]         * pATable[2 * i + 1]
 | |
|                 + pIn[2 * n - 2 * i]     * pBTable[2 * i]
 | |
|                 - pIn[2 * n - 2 * i + 1] * pBTable[2 * i + 1]);
 | |
| 
 | |
|         outI = (  pIn[2 * i + 1]         * pATable[2 * i]
 | |
|                 - pIn[2 * i]             * pATable[2 * i + 1]
 | |
|                 - pIn[2 * n - 2 * i]     * pBTable[2 * i + 1]
 | |
|                 - pIn[2 * n - 2 * i + 1] * pBTable[2 * i]);
 | |
|        */
 | |
| 
 | |
| #if defined (ARM_MATH_DSP)
 | |
| 
 | |
| #ifndef ARM_MATH_BIG_ENDIAN
 | |
|       /* pIn[2 * n - 2 * i] * pBTable[2 * i] - pIn[2 * n - 2 * i + 1] * pBTable[2 * i + 1]) */
 | |
|       outR = __SMUSD(read_q15x2(pSrc2), read_q15x2((q15_t *) pCoefB));
 | |
| #else
 | |
|       /* -(-pIn[2 * n - 2 * i] * pBTable[2 * i] + pIn[2 * n - 2 * i + 1] * pBTable[2 * i + 1])) */
 | |
|       outR = -(__SMUSD(read_q15x2(pSrc2), read_q15x2((q15_t *) pCoefB)));
 | |
| #endif /* #ifndef ARM_MATH_BIG_ENDIAN */
 | |
| 
 | |
|       /* pIn[2 * i] * pATable[2 * i] + pIn[2 * i + 1] * pATable[2 * i + 1] + pIn[2 * n - 2 * i] * pBTable[2 * i] */
 | |
|       outR = __SMLAD(read_q15x2(pSrc1), read_q15x2 ((q15_t *) pCoefA), outR) >> 16U;
 | |
| 
 | |
|       /* -pIn[2 * n - 2 * i] * pBTable[2 * i + 1] + pIn[2 * n - 2 * i + 1] * pBTable[2 * i] */
 | |
|       outI = __SMUADX(read_q15x2_da (&pSrc2), read_q15x2((q15_t *) pCoefB));
 | |
| 
 | |
|       /* pIn[2 * i + 1] * pATable[2 * i] - pIn[2 * i] * pATable[2 * i + 1] */
 | |
| #ifndef ARM_MATH_BIG_ENDIAN
 | |
|       outI = __SMLSDX(read_q15x2 ((q15_t *) pCoefA), read_q15x2_ia (&pSrc1), -outI);
 | |
| #else
 | |
|       outI = __SMLSDX(read_q15x2_ia (&pSrc1), read_q15x2 ((q15_t *) pCoefA), -outI);
 | |
| #endif /* #ifndef ARM_MATH_BIG_ENDIAN */
 | |
| 
 | |
|       /* write output */
 | |
| #ifndef ARM_MATH_BIG_ENDIAN
 | |
|       write_q15x2_ia (&pDst1, __PKHBT(outR, (outI >> 16U), 16));
 | |
| #else
 | |
|       write_q15x2_ia (&pDst1, __PKHBT((outI >> 16U), outR, 16));
 | |
| #endif /* #ifndef ARM_MATH_BIG_ENDIAN */
 | |
| 
 | |
| 
 | |
| #else  /* #if defined (ARM_MATH_DSP) */
 | |
| 
 | |
|       outR = *pSrc2 * *pCoefB;
 | |
|       outR = outR - (*(pSrc2 + 1) * *(pCoefB + 1));
 | |
|       outR = outR + (*pSrc1 * *pCoefA);
 | |
|       outR = (outR + (*(pSrc1 + 1) * *(pCoefA + 1))) >> 16;
 | |
| 
 | |
|       outI = *(pSrc1 + 1) * *pCoefA;
 | |
|       outI = outI - (*pSrc1 * *(pCoefA + 1));
 | |
|       outI = outI - (*pSrc2 * *(pCoefB + 1));
 | |
|       outI = outI - (*(pSrc2 + 1) * *(pCoefB));
 | |
| 
 | |
|       /* update input pointers */
 | |
|       pSrc1 += 2U;
 | |
|       pSrc2 -= 2U;
 | |
| 
 | |
|       /* write output */
 | |
|       *pDst1++ = (q15_t) outR;
 | |
|       *pDst1++ = (q15_t) (outI >> 16);
 | |
| 
 | |
| #endif /* #if defined (ARM_MATH_DSP) */
 | |
| 
 | |
|       /* update coefficient pointer */
 | |
|       pCoefB = pCoefB + (2 * modifier);
 | |
|       pCoefA = pCoefA + (2 * modifier);
 | |
| 
 | |
|       i--;
 | |
|   }
 | |
| 
 | |
| }
 | |
| #endif /* defined(ARM_MATH_MVEI) */
 | 
