548 lines
21 KiB
C++
548 lines
21 KiB
C++
/* Copyright 2019 The TensorFlow Authors. All Rights Reserved.
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Licensed under the Apache License, Version 2.0 (the "License");
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you may 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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http://www.apache.org/licenses/LICENSE-2.0
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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,
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WITHOUT 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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#include <math.h>
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#include "tensorflow/lite/c/builtin_op_data.h"
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#include "tensorflow/lite/c/common.h"
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#include "tensorflow/lite/kernels/internal/common.h"
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#include "tensorflow/lite/kernels/internal/quantization_util.h"
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#include "tensorflow/lite/kernels/internal/tensor_ctypes.h"
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#include "tensorflow/lite/kernels/kernel_util.h"
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#include "tensorflow/lite/kernels/op_macros.h"
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#include "tensorflow/lite/micro/kernels/activation_utils.h"
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#include "tensorflow/lite/micro/micro_utils.h"
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namespace tflite {
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namespace ops {
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namespace micro {
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namespace svdf {
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namespace {
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struct OpData {
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int32 effective_scale_1_a;
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int32 effective_scale_2_a;
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// b versions of each scale are kept at int since the numbers are just the
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// shift value - typically between [-32, 32].
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int effective_scale_1_b;
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int effective_scale_2_b;
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int scratch_tensor_index;
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int scratch_output_tensor_index;
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};
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/**
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* This version of SVDF is specific to TFLite Micro. It contains the following
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* differences between the TFLite version:
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*
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* 1.) Scratch tensor allocation - scratch tensors must be known ahead of time
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* for the Micro interpreter.
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* 2.) Output dimensions - the TFLite version determines output size and runtime
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* and resizes the output tensor. Micro runtime does not support tensor
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* resizing.
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*/
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static inline void ApplyTimeWeightsBiasAndActivation(
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int batch_size, int memory_size, int num_filters, int num_units, int rank,
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const float* const __restrict__ weights_time_ptr,
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const float* const __restrict__ bias_ptr, TfLiteFusedActivation activation,
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float* const __restrict__ state_ptr, float* const __restrict__ scratch_ptr,
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float* const __restrict__ output_ptr) {
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// Compute matmul(activation_state, weights_time).
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for (int b = 0; b < batch_size; ++b) {
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// Perform batched vector dot product:
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float* scratch_ptr_batch = scratch_ptr + b * num_filters;
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const float* vector1_ptr = weights_time_ptr;
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const float* vector2_ptr = state_ptr + b * memory_size * num_filters;
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for (int i = 0; i < num_filters; ++i) {
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*scratch_ptr_batch = 0.f;
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for (int j = 0; j < memory_size; ++j) {
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*scratch_ptr_batch += *vector1_ptr++ * *vector2_ptr++;
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}
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scratch_ptr_batch++;
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}
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}
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// Initialize output with bias if provided.
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if (bias_ptr) {
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// VectorBatchVectorAssign
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for (int i = 0; i < batch_size; ++i) {
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float* output_data = output_ptr + i * num_units;
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const float* bias_data = bias_ptr;
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for (int j = 0; j < num_units; ++j) {
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*output_data++ = *bias_data++;
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}
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}
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} else {
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float* output_data = output_ptr;
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for (int i = 0; i < batch_size * num_units; ++i) {
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*output_data++ = 0.0f;
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}
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}
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// Reduction sum.
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for (int b = 0; b < batch_size; ++b) {
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float* output_ptr_batch = output_ptr + b * num_units;
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float* scratch_ptr_batch = scratch_ptr + b * num_filters;
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// Reduction sum vector
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for (int i = 0; i < num_units; ++i) {
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for (int j = 0; j < rank; j++) {
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output_ptr_batch[i] += *scratch_ptr_batch++;
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}
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}
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}
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// Apply activation.
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for (int b = 0; b < batch_size; ++b) {
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float* output_ptr_batch = output_ptr + b * num_units;
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for (int i = 0; i < num_units; ++i) {
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*output_ptr_batch = ActivationValFloat(activation, *output_ptr_batch);
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++output_ptr_batch;
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}
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}
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}
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inline void EvalFloatSVDF(
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TfLiteContext* context, TfLiteNode* node, const TfLiteTensor* input,
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const TfLiteTensor* weights_feature, const TfLiteTensor* weights_time,
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const TfLiteTensor* bias, const TfLiteSVDFParams* params,
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int scratch_tensor_index, TfLiteTensor* activation_state,
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TfLiteTensor* output) {
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const int rank = params->rank;
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const int batch_size = input->dims->data[0];
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const int input_size = input->dims->data[1];
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const int num_filters = weights_feature->dims->data[0];
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const int num_units = num_filters / rank;
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const int memory_size = weights_time->dims->data[1];
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const float* weights_feature_ptr = GetTensorData<float>(weights_feature);
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const float* weights_time_ptr = GetTensorData<float>(weights_time);
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const float* bias_ptr = GetTensorData<float>(bias);
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const float* input_ptr = GetTensorData<float>(input);
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float* state_ptr = GetTensorData<float>(activation_state);
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TFLITE_DCHECK(context != nullptr);
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TFLITE_DCHECK(context->GetScratchBuffer != nullptr);
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float* scratch_ptr = static_cast<float*>(
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context->GetScratchBuffer(context, scratch_tensor_index));
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float* output_ptr = GetTensorData<float>(output);
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// Left shift the activation_state.
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{
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float* new_state_start = state_ptr;
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const float* old_state_start = state_ptr + 1;
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const float* old_state_end =
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state_ptr + batch_size * num_filters * memory_size;
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while (old_state_start != old_state_end) {
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*new_state_start++ = *old_state_start++;
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}
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}
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// Note: no need to clear the latest activation, matmul is not accumulative.
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// Compute conv1d(inputs, weights_feature).
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// The activation_state's rightmost column is used to save current cycle
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// activation. This is achieved by starting at state_ptr[memory_size - 1] and
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// having the stride equal to memory_size.
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// Perform batched matrix vector multiply operation:
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{
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const float* matrix = weights_feature_ptr;
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const float* vector = input_ptr;
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float* result = &state_ptr[memory_size - 1];
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float* result_in_batch = result;
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for (int i = 0; i < batch_size; ++i) {
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const float* matrix_ptr = matrix;
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for (int j = 0; j < num_filters; ++j) {
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float dot_prod = 0.0f;
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const float* vector_in_batch = vector + i * input_size;
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for (int k = 0; k < input_size; ++k) {
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dot_prod += *matrix_ptr++ * *vector_in_batch++;
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}
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*result_in_batch = dot_prod;
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result_in_batch += memory_size;
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}
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}
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}
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ApplyTimeWeightsBiasAndActivation(
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batch_size, memory_size, num_filters, num_units, rank, weights_time_ptr,
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bias_ptr, params->activation, state_ptr, scratch_ptr, output_ptr);
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}
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void EvalIntegerSVDF(TfLiteContext* context, TfLiteNode* node,
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const TfLiteTensor* input_tensor,
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const TfLiteTensor* weights_feature_tensor,
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const TfLiteTensor* weights_time_tensor,
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const TfLiteTensor* bias_tensor,
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const TfLiteSVDFParams* params,
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TfLiteTensor* activation_state_tensor,
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TfLiteTensor* output_tensor, const OpData& data,
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int32_t input_zp, int32_t output_zp) {
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const int n_rank = params->rank;
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const int n_batch = input_tensor->dims->data[0];
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const int n_input = input_tensor->dims->data[1];
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const int n_filter = weights_feature_tensor->dims->data[0];
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const int n_unit = n_filter / n_rank;
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const int n_memory = weights_time_tensor->dims->data[1];
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TFLITE_DCHECK(context != nullptr);
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TFLITE_DCHECK(context->GetScratchBuffer != nullptr);
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int32_t* scratch_tensor = static_cast<int32_t*>(
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context->GetScratchBuffer(context, data.scratch_tensor_index));
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int32_t* scratch_output_tensor = static_cast<int32_t*>(
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context->GetScratchBuffer(context, data.scratch_output_tensor_index));
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// Shift states.
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int16_t* const state_ptr = GetTensorData<int16_t>(activation_state_tensor);
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// Left shift the activation_state.
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{
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int16_t* new_state_start = state_ptr;
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const int16_t* old_state_start = state_ptr + 1;
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const int16_t* old_state_end = state_ptr + n_batch * n_filter * n_memory;
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while (old_state_start != old_state_end) {
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*new_state_start++ = *old_state_start++;
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}
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}
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// Note: no need to clear the latest activation, matmul is not accumulative.
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// Feature matmul.
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{
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int16_t* state = GetTensorData<int16_t>(activation_state_tensor);
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const int8_t* input = GetTensorData<int8_t>(input_tensor);
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const int8_t* weight_feature =
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GetTensorData<int8_t>(weights_feature_tensor);
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const int32_t output_max = std::numeric_limits<int16_t>::max();
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const int32_t output_min = std::numeric_limits<int16_t>::min();
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int16_t* result_in_batch = state + (n_memory - 1);
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for (int b = 0; b < n_batch; b++) {
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const int8_t* matrix_ptr = weight_feature;
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for (int r = 0; r < n_filter; r++) {
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int32_t dot_prod = 0;
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const int8_t* vector_in_batch = input + b * n_input;
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for (int c = 0; c < n_input; c++) {
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dot_prod += *matrix_ptr++ * (*vector_in_batch++ - input_zp);
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}
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dot_prod = MultiplyByQuantizedMultiplier(
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dot_prod, data.effective_scale_1_a, data.effective_scale_1_b);
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dot_prod = std::min(std::max(output_min, dot_prod), output_max);
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// This assumes state is symmetrically quantized. Otherwise last bit of
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// state should be initialized to its zero point and accumulate the
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// dot_prod.
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// Equivalent as the following:
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// result_in_batch = zero point, which happens to be zero.
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// result_in_batch += dot_prod_56.
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*result_in_batch = dot_prod;
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result_in_batch += n_memory;
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}
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}
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}
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// Time.
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{
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for (int b = 0; b < n_batch; ++b) {
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int32_t* scratch_ptr_batch = scratch_tensor + b * n_filter;
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// Perform batched vector dot product:
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const int16_t* vector1_ptr = GetTensorData<int16_t>(weights_time_tensor);
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const int16_t* vector2_ptr =
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GetTensorData<int16_t>(activation_state_tensor) +
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b * n_memory * n_filter;
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for (int i = 0; i < n_filter; i++) {
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*scratch_ptr_batch = 0;
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for (int j = 0; j < n_memory; j++) {
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*scratch_ptr_batch += *vector1_ptr++ * *vector2_ptr++;
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}
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scratch_ptr_batch++;
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}
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}
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}
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// Reduce, add bias, rescale, activation.
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{
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// Add bias.
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if (bias_tensor) {
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// Vector batch assign:
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const int32_t* bias_data = GetTensorData<int32_t>(bias_tensor);
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for (int i = 0; i < n_batch; ++i) {
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int32_t* output_ptr = scratch_output_tensor + i * n_unit;
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const int32_t* bias_ptr = bias_data;
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for (int j = 0; j < n_unit; ++j) {
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*output_ptr++ = *bias_ptr++;
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}
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}
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} else {
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int32_t* output_ptr = scratch_output_tensor;
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for (int i = 0; i < n_batch * n_unit; ++i) {
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*output_ptr++ = 0;
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}
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}
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// Reduce.
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for (int b = 0; b < n_batch; ++b) {
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int32_t* output_temp_ptr = scratch_output_tensor + b * n_unit;
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int32_t* scratch_ptr_batch = scratch_tensor + b * n_filter;
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// Reduction sum vector
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for (int i = 0; i < n_unit; ++i) {
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for (int j = 0; j < n_rank; ++j) {
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output_temp_ptr[i] += *scratch_ptr_batch++;
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}
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}
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}
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// Rescale.
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const int32_t output_max = std::numeric_limits<int8_t>::max();
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const int32_t output_min = std::numeric_limits<int8_t>::min();
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for (int i = 0; i < n_batch * n_unit; ++i) {
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int32_t x1 = scratch_output_tensor[i];
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int32_t x2 = MultiplyByQuantizedMultiplier(x1, data.effective_scale_2_a,
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data.effective_scale_2_b);
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int32_t x3 = x2 + output_zp;
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int32_t x4 = std::min(std::max(output_min, x3), output_max);
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GetTensorData<int8_t>(output_tensor)[i] = static_cast<int8_t>(x4);
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}
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}
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}
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} // namespace
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// Input tensors.
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constexpr int kInputTensor = 0;
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constexpr int kWeightsFeatureTensor = 1;
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constexpr int kWeightsTimeTensor = 2;
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constexpr int kBiasTensor = 3;
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// This is a variable tensor, and will be modified by this op.
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constexpr int kInputActivationStateTensor = 4;
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// Output tensor.
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constexpr int kOutputTensor = 0;
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void* Init(TfLiteContext* context, const char* buffer, size_t length) {
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TFLITE_DCHECK(context->AllocatePersistentBuffer != nullptr);
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void* data = nullptr;
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if (context->AllocatePersistentBuffer(context, sizeof(OpData), &data) ==
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kTfLiteError) {
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return nullptr;
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}
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return data;
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}
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TfLiteStatus Prepare(TfLiteContext* context, TfLiteNode* node) {
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TFLITE_DCHECK(node->builtin_data != nullptr);
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const auto* params = static_cast<const TfLiteSVDFParams*>(node->builtin_data);
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// Validate Tensor Inputs (dtype depends on quantization):
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// [0] = Input, {2, batch_size, input_size}
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// [1] = Weights Feature, {2, num_filters, input_size}
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// [2] = Weights Time, {2, num_filters, memory_size}
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// [3] = Bias (optional), {1, num_units}
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// [4] = Activation State (variable),
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// {2, batch_size, memory_size * num_filters}
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const TfLiteTensor* input = GetInput(context, node, kInputTensor);
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const TfLiteTensor* weights_feature =
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GetInput(context, node, kWeightsFeatureTensor);
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const TfLiteTensor* weights_time =
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GetInput(context, node, kWeightsTimeTensor);
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const TfLiteTensor* bias = GetOptionalInputTensor(context, node, kBiasTensor);
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const TfLiteTensor* activation_state =
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GetInput(context, node, kInputActivationStateTensor);
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// Define input constants based on input tensor definition above:
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const int rank = params->rank;
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const int input_size = input->dims->data[1];
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const int batch_size = input->dims->data[0];
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const int num_filters = weights_feature->dims->data[0];
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TF_LITE_ENSURE_EQ(context, num_filters % rank, 0);
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const int num_units = num_filters / rank;
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const int memory_size = weights_time->dims->data[1];
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// Validate Input Tensor:
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TF_LITE_ENSURE(context,
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input->type == kTfLiteFloat32 || input->type == kTfLiteInt8);
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TF_LITE_ENSURE_EQ(context, NumDimensions(input), 2);
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// Validate Tensor Output:
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// [0] = float/int8, {2, batch_size, num_units}
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TF_LITE_ENSURE_EQ(context, node->outputs->size, 1);
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TfLiteTensor* output = GetOutput(context, node, kOutputTensor);
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TF_LITE_ENSURE_EQ(context, NumDimensions(output), 2);
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TF_LITE_ENSURE_EQ(context, output->dims->data[0], batch_size);
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TF_LITE_ENSURE_EQ(context, output->dims->data[1], num_units);
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// Validate Weights Feature Input Tensor:
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TF_LITE_ENSURE_EQ(context, NumDimensions(weights_feature), 2);
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TF_LITE_ENSURE_EQ(context, weights_feature->dims->data[1], input_size);
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// Validate Weights Time Input Tensor:
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TF_LITE_ENSURE_EQ(context, NumDimensions(weights_time), 2);
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TF_LITE_ENSURE_EQ(context, weights_time->dims->data[0], num_filters);
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TF_LITE_ENSURE_EQ(context, weights_time->dims->data[1], memory_size);
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// Validate Optional Bias Input Tensor:
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if (bias != nullptr) {
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TF_LITE_ENSURE_EQ(context, bias->dims->data[0], num_units);
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}
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// Validate Activation State Input Tensor:
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TF_LITE_ENSURE_EQ(context, NumDimensions(activation_state), 2);
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TF_LITE_ENSURE_EQ(context, activation_state->dims->data[0], batch_size);
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TF_LITE_ENSURE_EQ(context, activation_state->dims->data[1],
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memory_size * num_filters);
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TF_LITE_ENSURE_EQ(context, node->inputs->size, 5);
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if (input->type == kTfLiteInt8) {
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TF_LITE_ENSURE_EQ(context, weights_feature->type, kTfLiteInt8);
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TF_LITE_ENSURE_EQ(context, weights_time->type, kTfLiteInt16);
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TF_LITE_ENSURE_EQ(context, activation_state->type, kTfLiteInt16);
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if (bias != nullptr) {
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TF_LITE_ENSURE_EQ(context, bias->type, kTfLiteInt32);
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}
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TF_LITE_ENSURE_TYPES_EQ(context, output->type, kTfLiteInt8);
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const auto* input_params =
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reinterpret_cast<TfLiteAffineQuantization*>(input->quantization.params);
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const auto* weights_feature_params =
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static_cast<const TfLiteAffineQuantization*>(
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weights_feature->quantization.params);
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const auto* state_params = static_cast<const TfLiteAffineQuantization*>(
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activation_state->quantization.params);
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const auto* weight_time_params =
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static_cast<const TfLiteAffineQuantization*>(
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weights_time->quantization.params);
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const auto* output_params = static_cast<const TfLiteAffineQuantization*>(
|
|
output->quantization.params);
|
|
const double effective_scale_1 = static_cast<double>(
|
|
input_params->scale->data[0] * weights_feature_params->scale->data[0] /
|
|
state_params->scale->data[0]);
|
|
const double effective_scale_2 = static_cast<double>(
|
|
state_params->scale->data[0] * weight_time_params->scale->data[0] /
|
|
output_params->scale->data[0]);
|
|
|
|
TFLITE_DCHECK(node->user_data != nullptr);
|
|
OpData* data = static_cast<OpData*>(node->user_data);
|
|
|
|
QuantizeMultiplier(effective_scale_1, &(data->effective_scale_1_a),
|
|
&(data->effective_scale_1_b));
|
|
QuantizeMultiplier(effective_scale_2, &(data->effective_scale_2_a),
|
|
&(data->effective_scale_2_b));
|
|
|
|
TFLITE_DCHECK(context->RequestScratchBufferInArena != nullptr);
|
|
|
|
const TfLiteStatus scratch_status = context->RequestScratchBufferInArena(
|
|
context, batch_size * num_filters * sizeof(int32_t),
|
|
&(data->scratch_tensor_index));
|
|
TF_LITE_ENSURE_OK(context, scratch_status);
|
|
|
|
const TfLiteStatus scratch_output_status =
|
|
context->RequestScratchBufferInArena(
|
|
context, batch_size * num_units * sizeof(int32_t),
|
|
&(data->scratch_output_tensor_index));
|
|
TF_LITE_ENSURE_OK(context, scratch_output_status);
|
|
} else {
|
|
TF_LITE_ENSURE_EQ(context, weights_feature->type, kTfLiteFloat32);
|
|
TF_LITE_ENSURE_EQ(context, weights_time->type, kTfLiteFloat32);
|
|
TF_LITE_ENSURE_EQ(context, activation_state->type, kTfLiteFloat32);
|
|
if (bias != nullptr) {
|
|
TF_LITE_ENSURE_EQ(context, bias->type, kTfLiteFloat32);
|
|
}
|
|
TF_LITE_ENSURE_TYPES_EQ(context, output->type, kTfLiteFloat32);
|
|
|
|
TFLITE_DCHECK(node->user_data != nullptr);
|
|
OpData* data = static_cast<OpData*>(node->user_data);
|
|
|
|
TFLITE_DCHECK(context->RequestScratchBufferInArena != nullptr);
|
|
const TfLiteStatus scratch_status = context->RequestScratchBufferInArena(
|
|
context, batch_size * num_filters * sizeof(float),
|
|
&(data->scratch_tensor_index));
|
|
TF_LITE_ENSURE_OK(context, scratch_status);
|
|
}
|
|
|
|
return kTfLiteOk;
|
|
}
|
|
|
|
TfLiteStatus Eval(TfLiteContext* context, TfLiteNode* node) {
|
|
auto* params = reinterpret_cast<TfLiteSVDFParams*>(node->builtin_data);
|
|
|
|
const TfLiteTensor* input = GetInput(context, node, kInputTensor);
|
|
const TfLiteTensor* weights_feature =
|
|
GetInput(context, node, kWeightsFeatureTensor);
|
|
const TfLiteTensor* weights_time =
|
|
GetInput(context, node, kWeightsTimeTensor);
|
|
const TfLiteTensor* bias = GetOptionalInputTensor(context, node, kBiasTensor);
|
|
TfLiteTensor* activation_state =
|
|
GetVariableInput(context, node, kInputActivationStateTensor);
|
|
TfLiteTensor* output = GetOutput(context, node, kOutputTensor);
|
|
|
|
TFLITE_DCHECK(node->user_data != nullptr);
|
|
const OpData& data = *(static_cast<const OpData*>(node->user_data));
|
|
|
|
switch (weights_feature->type) {
|
|
case kTfLiteFloat32: {
|
|
EvalFloatSVDF(context, node, input, weights_feature, weights_time, bias,
|
|
params, data.scratch_tensor_index, activation_state,
|
|
output);
|
|
return kTfLiteOk;
|
|
break;
|
|
}
|
|
|
|
case kTfLiteInt8: {
|
|
TF_LITE_ENSURE_EQ(context, params->activation, kTfLiteActRelu);
|
|
|
|
EvalIntegerSVDF(context, node, input, weights_feature, weights_time, bias,
|
|
params, activation_state, output, data,
|
|
input->params.zero_point, output->params.zero_point);
|
|
return kTfLiteOk;
|
|
break;
|
|
}
|
|
|
|
default:
|
|
TF_LITE_KERNEL_LOG(context, "Type %s not currently supported.",
|
|
TfLiteTypeGetName(weights_feature->type));
|
|
return kTfLiteError;
|
|
}
|
|
return kTfLiteOk;
|
|
}
|
|
|
|
} // namespace svdf
|
|
|
|
TfLiteRegistration* Register_SVDF() {
|
|
// TODO(b/149408647): Once we remove AddBuiltin from MicroOpResolver and
|
|
// completely switch to the templated AddBuiltin from MicroMutableOpResolver,
|
|
// this struct no longer needs to be static and can be returned by value.
|
|
static TfLiteRegistration r = {/*init=*/svdf::Init,
|
|
/*free=*/nullptr,
|
|
/*prepare=*/svdf::Prepare,
|
|
/*invoke=*/svdf::Eval,
|
|
/*profiling_string=*/nullptr,
|
|
/*builtin_code=*/0,
|
|
/*custom_name=*/nullptr,
|
|
/*version=*/0};
|
|
return &r;
|
|
}
|
|
|
|
} // namespace micro
|
|
} // namespace ops
|
|
} // namespace tflite
|