| #include "edge-impulse-sdk/dsp/config.hpp" |
| #if EIDSP_LOAD_CMSIS_DSP_SOURCES |
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| #include "edge-impulse-sdk/CMSIS/DSP/Include/dsp/svm_functions_f16.h" |
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| #if defined(ARM_FLOAT16_SUPPORTED) |
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| #include <limits.h> |
| #include <math.h> |
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| #if !defined(ARM_MATH_MVE_FLOAT16) || defined(ARM_MATH_AUTOVECTORIZE) |
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| __STATIC_INLINE float16_t arm_exponent_f16(float16_t x, int32_t nb) |
| { |
| float16_t r = x; |
| nb --; |
| while(nb > 0) |
| { |
| r = (_Float16)r * (_Float16)x; |
| nb--; |
| } |
| return(r); |
| } |
| #endif |
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| #if defined(ARM_MATH_MVE_FLOAT16) && !defined(ARM_MATH_AUTOVECTORIZE) |
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| #include "edge-impulse-sdk/CMSIS/DSP/Include/arm_helium_utils.h" |
| #include "edge-impulse-sdk/CMSIS/DSP/Include/arm_vec_math_f16.h" |
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| void arm_svm_polynomial_predict_f16( |
| const arm_svm_polynomial_instance_f16 *S, |
| const float16_t * in, |
| int32_t * pResult) |
| { |
| |
| uint32_t numRows = S->nbOfSupportVectors; |
| uint32_t numCols = S->vectorDimension; |
| const float16_t *pSupport = S->supportVectors; |
| const float16_t *pSrcA = pSupport; |
| const float16_t *pInA0; |
| const float16_t *pInA1; |
| uint32_t row; |
| uint32_t blkCnt; |
| const float16_t *pDualCoef = S->dualCoefficients; |
| _Float16 sum = S->intercept; |
| f16x8_t vSum = vdupq_n_f16(0.0f); |
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| row = numRows; |
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| while (row >= 4) { |
| const float16_t *pInA2, *pInA3; |
| float16_t const *pSrcA0Vec, *pSrcA1Vec, *pSrcA2Vec, *pSrcA3Vec, *pInVec; |
| f16x8_t vecIn, acc0, acc1, acc2, acc3; |
| float16_t const *pSrcVecPtr = in; |
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| pInA0 = pSrcA; |
| pInA1 = pInA0 + numCols; |
| pInA2 = pInA1 + numCols; |
| pInA3 = pInA2 + numCols; |
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| pInVec = pSrcVecPtr; |
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| acc0 = vdupq_n_f16(0.0f); |
| acc1 = vdupq_n_f16(0.0f); |
| acc2 = vdupq_n_f16(0.0f); |
| acc3 = vdupq_n_f16(0.0f); |
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| pSrcA0Vec = pInA0; |
| pSrcA1Vec = pInA1; |
| pSrcA2Vec = pInA2; |
| pSrcA3Vec = pInA3; |
|
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| blkCnt = numCols >> 3; |
| while (blkCnt > 0U) { |
| f16x8_t vecA; |
|
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| vecIn = vld1q(pInVec); |
| pInVec += 8; |
| vecA = vld1q(pSrcA0Vec); |
| pSrcA0Vec += 8; |
| acc0 = vfmaq(acc0, vecIn, vecA); |
| vecA = vld1q(pSrcA1Vec); |
| pSrcA1Vec += 8; |
| acc1 = vfmaq(acc1, vecIn, vecA); |
| vecA = vld1q(pSrcA2Vec); |
| pSrcA2Vec += 8; |
| acc2 = vfmaq(acc2, vecIn, vecA); |
| vecA = vld1q(pSrcA3Vec); |
| pSrcA3Vec += 8; |
| acc3 = vfmaq(acc3, vecIn, vecA); |
|
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| blkCnt--; |
| } |
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| blkCnt = numCols & 7; |
| if (blkCnt > 0U) { |
| mve_pred16_t p0 = vctp16q(blkCnt); |
| f16x8_t vecA; |
|
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| vecIn = vldrhq_z_f16(pInVec, p0); |
| vecA = vldrhq_z_f16(pSrcA0Vec, p0); |
| acc0 = vfmaq(acc0, vecIn, vecA); |
| vecA = vldrhq_z_f16(pSrcA1Vec, p0); |
| acc1 = vfmaq(acc1, vecIn, vecA); |
| vecA = vldrhq_z_f16(pSrcA2Vec, p0); |
| acc2 = vfmaq(acc2, vecIn, vecA); |
| vecA = vldrhq_z_f16(pSrcA3Vec, p0); |
| acc3 = vfmaq(acc3, vecIn, vecA); |
| } |
| |
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| f16x8_t vtmp = vuninitializedq_f16(); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc0), vtmp, 0); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc1), vtmp, 1); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc2), vtmp, 2); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc3), vtmp, 3); |
|
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| vSum = vfmaq_m_f16(vSum, vld1q(pDualCoef), |
| arm_vec_exponent_f16 |
| (vaddq_n_f16(vmulq_n_f16(vtmp, S->gamma), S->coef0), |
| S->degree),vctp16q(4)); |
| |
| pDualCoef += 4; |
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| pSrcA += numCols * 4; |
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| row -= 4; |
| } |
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| if (row >= 2) { |
| float16_t const *pSrcA0Vec, *pSrcA1Vec, *pInVec; |
| f16x8_t vecIn, acc0, acc1; |
| float16_t const *pSrcVecPtr = in; |
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| pInA0 = pSrcA; |
| pInA1 = pInA0 + numCols; |
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| pInVec = pSrcVecPtr; |
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| acc0 = vdupq_n_f16(0.0f); |
| acc1 = vdupq_n_f16(0.0f); |
| pSrcA0Vec = pInA0; |
| pSrcA1Vec = pInA1; |
|
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| blkCnt = numCols >> 3; |
| while (blkCnt > 0U) { |
| f16x8_t vecA; |
|
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| vecIn = vld1q(pInVec); |
| pInVec += 8; |
| vecA = vld1q(pSrcA0Vec); |
| pSrcA0Vec += 8; |
| acc0 = vfmaq(acc0, vecIn, vecA); |
| vecA = vld1q(pSrcA1Vec); |
| pSrcA1Vec += 8; |
| acc1 = vfmaq(acc1, vecIn, vecA); |
|
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| blkCnt--; |
| } |
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| blkCnt = numCols & 7; |
| if (blkCnt > 0U) { |
| mve_pred16_t p0 = vctp16q(blkCnt); |
| f16x8_t vecA; |
|
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| vecIn = vldrhq_z_f16(pInVec, p0); |
| vecA = vldrhq_z_f16(pSrcA0Vec, p0); |
| acc0 = vfmaq(acc0, vecIn, vecA); |
| vecA = vldrhq_z_f16(pSrcA1Vec, p0); |
| acc1 = vfmaq(acc1, vecIn, vecA); |
| } |
| |
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| f16x8_t vtmp = vuninitializedq_f16(); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc0), vtmp, 0); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc1), vtmp, 1); |
|
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| vSum = vfmaq_m_f16(vSum, vld1q(pDualCoef), |
| arm_vec_exponent_f16 |
| (vaddq_n_f16(vmulq_n_f16(vtmp, S->gamma), S->coef0), S->degree), |
| vctp16q(2)); |
| |
| pDualCoef += 2; |
| pSrcA += numCols * 2; |
| row -= 2; |
| } |
|
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| if (row >= 1) { |
| f16x8_t vecIn, acc0; |
| float16_t const *pSrcA0Vec, *pInVec; |
| float16_t const *pSrcVecPtr = in; |
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| pInA0 = pSrcA; |
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| pInVec = pSrcVecPtr; |
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| acc0 = vdupq_n_f16(0.0f); |
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| pSrcA0Vec = pInA0; |
|
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| blkCnt = numCols >> 3; |
| while (blkCnt > 0U) { |
| f16x8_t vecA; |
|
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| vecIn = vld1q(pInVec); |
| pInVec += 8; |
| vecA = vld1q(pSrcA0Vec); |
| pSrcA0Vec += 8; |
| acc0 = vfmaq(acc0, vecIn, vecA); |
|
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| blkCnt--; |
| } |
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| blkCnt = numCols & 7; |
| if (blkCnt > 0U) { |
| mve_pred16_t p0 = vctp16q(blkCnt); |
| f16x8_t vecA; |
|
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| vecIn = vldrhq_z_f16(pInVec, p0); |
| vecA = vldrhq_z_f16(pSrcA0Vec, p0); |
| acc0 = vfmaq(acc0, vecIn, vecA); |
| } |
| |
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| |
| f16x8_t vtmp = vuninitializedq_f16(); |
| vtmp = vsetq_lane(vecAddAcrossF16Mve(acc0), vtmp, 0); |
| vSum = vfmaq_m_f16(vSum, vld1q(pDualCoef), |
| arm_vec_exponent_f16 |
| (vaddq_n_f16(vmulq_n_f16(vtmp, S->gamma), S->coef0), S->degree), |
| vctp16q(1)); |
| } |
| sum += (_Float16)vecAddAcrossF16Mve(vSum); |
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| |
| *pResult = S->classes[STEP(sum)]; |
| } |
|
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| #else |
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| void arm_svm_polynomial_predict_f16( |
| const arm_svm_polynomial_instance_f16 *S, |
| const float16_t * in, |
| int32_t * pResult) |
| { |
| _Float16 sum=S->intercept; |
| _Float16 dot=0; |
| uint32_t i,j; |
| const float16_t *pSupport = S->supportVectors; |
|
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| for(i=0; i < S->nbOfSupportVectors; i++) |
| { |
| dot=0; |
| for(j=0; j < S->vectorDimension; j++) |
| { |
| dot = (_Float16)dot + (_Float16)in[j]* (_Float16)*pSupport++; |
| } |
| sum += (_Float16)S->dualCoefficients[i] * (_Float16)arm_exponent_f16((_Float16)S->gamma * (_Float16)dot + (_Float16)S->coef0, S->degree); |
| } |
|
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| *pResult=S->classes[STEP(sum)]; |
| } |
| #endif |
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| #endif |
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| #endif |
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