With this CL: * We have the hooks needed to register an operator specific parse function with MicroMutableOpResolver and the retrieve it without ParseOpData being used. * This CL is still passing in ParseOpData as the operator specific parse function and that will be changed in a follow-on CL. PiperOrigin-RevId: 314982707 Change-Id: I174259aabd66e97184a8a282832f6c71580366c9
157 lines
6.0 KiB
C++
157 lines
6.0 KiB
C++
/* Copyright 2018 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 "tensorflow/lite/kernels/internal/reference/softmax.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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namespace tflite {
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namespace ops {
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namespace micro {
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namespace activations {
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namespace {
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TfLiteStatus CalculateSoftmaxParams(TfLiteContext* context,
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const TfLiteTensor* input,
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TfLiteTensor* output,
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const TfLiteSoftmaxParams* params,
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SoftmaxParams* op_data) {
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if (input->type == kTfLiteUInt8 || input->type == kTfLiteInt8) {
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if (input->type == kTfLiteUInt8) {
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TF_LITE_ENSURE_TYPES_EQ(context, output->type, kTfLiteUInt8);
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TF_LITE_ENSURE_EQ(context, output->params.zero_point, 0);
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} else {
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TF_LITE_ENSURE_TYPES_EQ(context, input->type, kTfLiteInt8);
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if (output->type == kTfLiteInt16) {
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TF_LITE_ENSURE_EQ(context, output->params.zero_point, -32768);
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// NOTE: Current int16 softmax output does not require symmetric scaling
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// - so no need to verify scale here.
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} else {
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TF_LITE_ENSURE_TYPES_EQ(context, output->type, kTfLiteInt8);
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TF_LITE_ENSURE_EQ(context, output->params.zero_point, -128);
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TF_LITE_ENSURE(context, output->params.scale == 1.f / 256);
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}
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}
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static const int kScaledDiffIntegerBits = 5;
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int input_left_shift;
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tflite::PreprocessSoftmaxScaling(
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static_cast<double>(params->beta),
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static_cast<double>(input->params.scale), kScaledDiffIntegerBits,
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&op_data->input_multiplier, &input_left_shift);
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op_data->input_left_shift = input_left_shift;
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op_data->diff_min =
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-1.0 * tflite::CalculateInputRadius(kScaledDiffIntegerBits,
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op_data->input_left_shift);
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} else {
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TF_LITE_ENSURE_TYPES_EQ(context, input->type, kTfLiteFloat32);
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TF_LITE_ENSURE_TYPES_EQ(context, output->type, kTfLiteFloat32);
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op_data->beta = static_cast<double>(params->beta);
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}
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return kTfLiteOk;
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}
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} // namespace
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TfLiteStatus SoftmaxPrepare(TfLiteContext* context, TfLiteNode* node) {
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TF_LITE_ENSURE_EQ(context, NumInputs(node), 1);
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TF_LITE_ENSURE_EQ(context, NumOutputs(node), 1);
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const TfLiteTensor* input = GetInput(context, node, 0);
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TF_LITE_ENSURE(context, NumDimensions(input) >= 1);
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return kTfLiteOk;
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}
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// Takes a tensor and performs softmax along the last dimension.
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void SoftmaxFloat(const TfLiteTensor* input, TfLiteTensor* output,
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const SoftmaxParams& op_data) {
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tflite::reference_ops::Softmax(
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op_data, GetTensorShape(input), GetTensorData<float>(input),
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GetTensorShape(output), GetTensorData<float>(output));
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}
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void SoftmaxQuantized(const TfLiteTensor* input, TfLiteTensor* output,
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const SoftmaxParams& op_data) {
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if (input->type == kTfLiteUInt8) {
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tflite::reference_ops::Softmax(
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op_data, GetTensorShape(input), GetTensorData<uint8_t>(input),
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GetTensorShape(output), GetTensorData<uint8_t>(output));
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} else {
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if (output->type == kTfLiteInt16) {
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tflite::reference_ops::Softmax(
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op_data, GetTensorShape(input), GetTensorData<int8_t>(input),
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GetTensorShape(output), GetTensorData<int16_t>(output));
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} else {
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tflite::reference_ops::Softmax(
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op_data, GetTensorShape(input), GetTensorData<int8_t>(input),
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GetTensorShape(output), GetTensorData<int8_t>(output));
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}
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}
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}
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TfLiteStatus SoftmaxEval(TfLiteContext* context, TfLiteNode* node) {
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auto* params = static_cast<TfLiteSoftmaxParams*>(node->builtin_data);
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const TfLiteTensor* input = GetInput(context, node, 0);
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TfLiteTensor* output = GetOutput(context, node, 0);
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SoftmaxParams op_data;
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TF_LITE_ENSURE_STATUS(
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CalculateSoftmaxParams(context, input, output, params, &op_data));
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switch (input->type) {
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case kTfLiteFloat32: {
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SoftmaxFloat(input, output, op_data);
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return kTfLiteOk;
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}
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case kTfLiteInt8:
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case kTfLiteUInt8: {
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SoftmaxQuantized(input, output, op_data);
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return kTfLiteOk;
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}
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default:
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TF_LITE_KERNEL_LOG(context, "Type %s (%d) not supported.",
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TfLiteTypeGetName(input->type), input->type);
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return kTfLiteError;
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}
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}
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} // namespace activations
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TfLiteRegistration* Register_SOFTMAX() {
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// TODO(b/149408647): Once we remove AddBuiltin from MicroOpResolver and
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// completely switch to the templated AddBuiltin from MicroMutableOpResolver,
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// this struct no longer needs to be static and can be returned by value.
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static TfLiteRegistration r = {/*init=*/nullptr,
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/*free=*/nullptr,
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/*prepare=*/activations::SoftmaxPrepare,
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/*invoke=*/activations::SoftmaxEval,
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/*profiling_string=*/nullptr,
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/*builtin_code=*/0,
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/*custom_name=*/nullptr,
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/*version=*/0};
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return &r;
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}
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} // namespace micro
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} // namespace ops
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} // namespace tflite
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