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131 lines
5.7 KiB
C
131 lines
5.7 KiB
C
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///////////////////////////////////////////////////////////////////////
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// File: ctc.h
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// Description: Slightly improved standard CTC to compute the targets.
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// Author: Ray Smith
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// Created: Wed Jul 13 15:17:06 PDT 2016
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//
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// (C) Copyright 2016, Google Inc.
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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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#ifndef TESSERACT_LSTM_CTC_H_
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#define TESSERACT_LSTM_CTC_H_
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#include "genericvector.h"
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#include "network.h"
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#include "networkio.h"
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#include "scrollview.h"
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namespace tesseract {
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// Class to encapsulate CTC and simple target generation.
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class CTC {
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public:
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// Normalizes the probabilities such that no target has a prob below min_prob,
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// and, provided that the initial total is at least min_total_prob, then all
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// probs will sum to 1, otherwise to sum/min_total_prob. The maximum output
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// probability is thus 1 - (num_classes-1)*min_prob.
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static void NormalizeProbs(NetworkIO* probs) {
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NormalizeProbs(probs->mutable_float_array());
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}
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// Builds a target using CTC. Slightly improved as follows:
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// Includes normalizations and clipping for stability.
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// labels should be pre-padded with nulls wherever desired, but they don't
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// have to be between all labels. Allows for multi-label codes with no
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// nulls between.
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// labels can be longer than the time sequence, but the total number of
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// essential labels (non-null plus nulls between equal labels) must not exceed
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// the number of timesteps in outputs.
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// outputs is the output of the network, and should have already been
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// normalized with NormalizeProbs.
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// On return targets is filled with the computed targets.
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// Returns false if there is insufficient time for the labels.
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static bool ComputeCTCTargets(const GenericVector<int>& truth_labels,
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int null_char,
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const GENERIC_2D_ARRAY<float>& outputs,
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NetworkIO* targets);
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private:
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// Constructor is private as the instance only holds information specific to
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// the current labels, outputs etc, and is built by the static function.
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CTC(const GenericVector<int>& labels, int null_char,
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const GENERIC_2D_ARRAY<float>& outputs);
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// Computes vectors of min and max label index for each timestep, based on
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// whether skippability of nulls makes it possible to complete a valid path.
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bool ComputeLabelLimits();
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// Computes targets based purely on the labels by spreading the labels evenly
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// over the available timesteps.
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void ComputeSimpleTargets(GENERIC_2D_ARRAY<float>* targets) const;
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// Computes mean positions and half widths of the simple targets by spreading
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// the labels even over the available timesteps.
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void ComputeWidthsAndMeans(GenericVector<float>* half_widths,
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GenericVector<int>* means) const;
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// Calculates and returns a suitable fraction of the simple targets to add
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// to the network outputs.
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float CalculateBiasFraction();
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// Runs the forward CTC pass, filling in log_probs.
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void Forward(GENERIC_2D_ARRAY<double>* log_probs) const;
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// Runs the backward CTC pass, filling in log_probs.
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void Backward(GENERIC_2D_ARRAY<double>* log_probs) const;
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// Normalizes and brings probs out of log space with a softmax over time.
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void NormalizeSequence(GENERIC_2D_ARRAY<double>* probs) const;
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// For each timestep computes the max prob for each class over all
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// instances of the class in the labels_, and sets the targets to
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// the max observed prob.
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void LabelsToClasses(const GENERIC_2D_ARRAY<double>& probs,
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NetworkIO* targets) const;
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// Normalizes the probabilities such that no target has a prob below min_prob,
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// and, provided that the initial total is at least min_total_prob, then all
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// probs will sum to 1, otherwise to sum/min_total_prob. The maximum output
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// probability is thus 1 - (num_classes-1)*min_prob.
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static void NormalizeProbs(GENERIC_2D_ARRAY<float>* probs);
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// Returns true if the label at index is a needed null.
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bool NeededNull(int index) const;
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// Returns exp(clipped(x)), clipping x to a reasonable range to prevent over/
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// underflow.
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static double ClippedExp(double x) {
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if (x < -kMaxExpArg_) return exp(-kMaxExpArg_);
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if (x > kMaxExpArg_) return exp(kMaxExpArg_);
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return exp(x);
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}
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// Minimum probability limit for softmax input to ctc_loss.
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static const float kMinProb_;
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// Maximum absolute argument to exp().
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static const double kMaxExpArg_;
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// Minimum probability for total prob in time normalization.
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static const double kMinTotalTimeProb_;
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// Minimum probability for total prob in final normalization.
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static const double kMinTotalFinalProb_;
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// The truth label indices that are to be matched to outputs_.
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const GenericVector<int>& labels_;
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// The network outputs.
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GENERIC_2D_ARRAY<float> outputs_;
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// The null or "blank" label.
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int null_char_;
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// Number of timesteps in outputs_.
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int num_timesteps_;
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// Number of classes in outputs_.
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int num_classes_;
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// Number of labels in labels_.
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int num_labels_;
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// Min and max valid label indices for each timestep.
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GenericVector<int> min_labels_;
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GenericVector<int> max_labels_;
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};
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} // namespace tesseract
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#endif // TESSERACT_LSTM_CTC_H_
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