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view mupdf-source/thirdparty/tesseract/src/lstm/input.h @ 46:7ee69f120f19 default tip
>>>>> tag v1.26.5+1 for changeset b74429b0f5c4
| author | Franz Glasner <fzglas.hg@dom66.de> |
|---|---|
| date | Sat, 11 Oct 2025 17:17:30 +0200 |
| parents | b50eed0cc0ef |
| children |
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/////////////////////////////////////////////////////////////////////// // File: input.h // Description: Input layer class for neural network implementations. // Author: Ray Smith // // (C) Copyright 2014, Google Inc. // Licensed under the Apache License, Version 2.0 (the "License"); // you may not use this file except in compliance with the License. // You may obtain a copy of the License at // http://www.apache.org/licenses/LICENSE-2.0 // Unless required by applicable law or agreed to in writing, software // distributed under the License is distributed on an "AS IS" BASIS, // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. // See the License for the specific language governing permissions and // limitations under the License. /////////////////////////////////////////////////////////////////////// #ifndef TESSERACT_LSTM_INPUT_H_ #define TESSERACT_LSTM_INPUT_H_ #include "network.h" namespace tesseract { class ScrollView; class Input : public Network { public: TESS_API Input(const std::string &name, int ni, int no); TESS_API Input(const std::string &name, const StaticShape &shape); ~Input() override = default; std::string spec() const override { return std::to_string(shape_.batch()) + "," + std::to_string(shape_.height()) + "," + std::to_string(shape_.width()) + "," + std::to_string(shape_.depth()); } // Returns the required shape input to the network. StaticShape InputShape() const override { return shape_; } // Returns the shape output from the network given an input shape (which may // be partially unknown ie zero). StaticShape OutputShape( [[maybe_unused]] const StaticShape &input_shape) const override { return shape_; } // Writes to the given file. Returns false in case of error. // Should be overridden by subclasses, but called by their Serialize. bool Serialize(TFile *fp) const override; // Reads from the given file. Returns false in case of error. bool DeSerialize(TFile *fp) override; // Returns an integer reduction factor that the network applies to the // time sequence. Assumes that any 2-d is already eliminated. Used for // scaling bounding boxes of truth data. // WARNING: if GlobalMinimax is used to vary the scale, this will return // the last used scale factor. Call it before any forward, and it will return // the minimum scale factor of the paths through the GlobalMinimax. int XScaleFactor() const override; // Provides the (minimum) x scale factor to the network (of interest only to // input units) so they can determine how to scale bounding boxes. void CacheXScaleFactor(int factor) override; // Runs forward propagation of activations on the input line. // See Network for a detailed discussion of the arguments. void Forward(bool debug, const NetworkIO &input, const TransposedArray *input_transpose, NetworkScratch *scratch, NetworkIO *output) override; // Runs backward propagation of errors on the deltas line. // See Network for a detailed discussion of the arguments. bool Backward(bool debug, const NetworkIO &fwd_deltas, NetworkScratch *scratch, NetworkIO *back_deltas) override; // Creates and returns a Pix of appropriate size for the network from the // image_data. If non-null, *image_scale returns the image scale factor used. // Returns nullptr on error. /* static */ static Image PrepareLSTMInputs(const ImageData &image_data, const Network *network, int min_width, TRand *randomizer, float *image_scale); // Converts the given pix to a NetworkIO of height and depth appropriate to // the given StaticShape: // If depth == 3, convert to 24 bit color, otherwise normalized grey. // Scale to target height, if the shape's height is > 1, or its depth if the // height == 1. If height == 0 then no scaling. // NOTE: It isn't safe for multiple threads to call this on the same pix. static void PreparePixInput(const StaticShape &shape, const Image pix, TRand *randomizer, NetworkIO *input); private: void DebugWeights() override { tprintf("Must override Network::DebugWeights for type %d\n", type_); } // Input shape determines how images are dealt with. StaticShape shape_; // Cached total network x scale factor for scaling bounding boxes. int cached_x_scale_; }; } // namespace tesseract. #endif // TESSERACT_LSTM_INPUT_H_
