mirror of https://github.com/davisking/dlib.git
181 lines
6.3 KiB
C++
181 lines
6.3 KiB
C++
// The contents of this file are in the public domain. See LICENSE_FOR_EXAMPLE_PROGRAMS.txt
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/*
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Helper definitions for working with the PASCAL VOC2012 dataset.
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*/
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#ifndef PASCAL_VOC_2012_H_
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#define PASCAL_VOC_2012_H_
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#include <dlib/pixel.h>
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// ----------------------------------------------------------------------------------------
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// The PASCAL VOC2012 dataset contains 20 ground-truth classes + background. Each class
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// is represented using an RGB color value. We associate each class also to an index in the
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// range [0, 20], used internally by the network. To convert the ground-truth data to
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// something that the network can efficiently digest, we need to be able to map the RGB
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// values to the corresponding indexes.
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struct Voc2012class {
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Voc2012class(uint16_t index, const dlib::rgb_pixel& rgb_label, const std::string& classlabel)
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: index(index), rgb_label(rgb_label), classlabel(classlabel)
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{}
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// The index of the class. In the PASCAL VOC 2012 dataset, indexes from 0 to 20 are valid.
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const uint16_t index = 0;
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// The corresponding RGB representation of the class.
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const dlib::rgb_pixel rgb_label;
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// The label of the class in plain text.
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const std::string classlabel;
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};
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namespace {
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constexpr int class_count = 21; // background + 20 classes
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const std::vector<Voc2012class> classes = {
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Voc2012class(0, dlib::rgb_pixel(0, 0, 0), ""), // background
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// The cream-colored `void' label is used in border regions and to mask difficult objects
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// (see http://host.robots.ox.ac.uk/pascal/VOC/voc2012/htmldoc/devkit_doc.html)
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Voc2012class(dlib::loss_multiclass_log_per_pixel_::label_to_ignore,
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dlib::rgb_pixel(224, 224, 192), "border"),
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Voc2012class(1, dlib::rgb_pixel(128, 0, 0), "aeroplane"),
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Voc2012class(2, dlib::rgb_pixel( 0, 128, 0), "bicycle"),
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Voc2012class(3, dlib::rgb_pixel(128, 128, 0), "bird"),
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Voc2012class(4, dlib::rgb_pixel( 0, 0, 128), "boat"),
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Voc2012class(5, dlib::rgb_pixel(128, 0, 128), "bottle"),
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Voc2012class(6, dlib::rgb_pixel( 0, 128, 128), "bus"),
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Voc2012class(7, dlib::rgb_pixel(128, 128, 128), "car"),
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Voc2012class(8, dlib::rgb_pixel( 64, 0, 0), "cat"),
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Voc2012class(9, dlib::rgb_pixel(192, 0, 0), "chair"),
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Voc2012class(10, dlib::rgb_pixel( 64, 128, 0), "cow"),
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Voc2012class(11, dlib::rgb_pixel(192, 128, 0), "diningtable"),
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Voc2012class(12, dlib::rgb_pixel( 64, 0, 128), "dog"),
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Voc2012class(13, dlib::rgb_pixel(192, 0, 128), "horse"),
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Voc2012class(14, dlib::rgb_pixel( 64, 128, 128), "motorbike"),
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Voc2012class(15, dlib::rgb_pixel(192, 128, 128), "person"),
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Voc2012class(16, dlib::rgb_pixel( 0, 64, 0), "pottedplant"),
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Voc2012class(17, dlib::rgb_pixel(128, 64, 0), "sheep"),
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Voc2012class(18, dlib::rgb_pixel( 0, 192, 0), "sofa"),
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Voc2012class(19, dlib::rgb_pixel(128, 192, 0), "train"),
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Voc2012class(20, dlib::rgb_pixel( 0, 64, 128), "tvmonitor"),
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};
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}
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template <typename Predicate>
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const Voc2012class& find_voc2012_class(Predicate predicate)
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{
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const auto i = std::find_if(classes.begin(), classes.end(), predicate);
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if (i != classes.end())
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{
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return *i;
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}
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else
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{
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throw std::runtime_error("Unable to find a matching VOC2012 class");
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}
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}
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// ----------------------------------------------------------------------------------------
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// The names of the input image and the associated RGB label image in the PASCAL VOC 2012
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// data set.
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struct image_info
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{
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std::string image_filename;
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std::string class_label_filename;
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std::string instance_label_filename;
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};
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// Read the list of image files belonging to either the "train", "trainval", or "val" set
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// of the PASCAL VOC2012 data.
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std::vector<image_info> get_pascal_voc2012_listing(
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const std::string& voc2012_folder,
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const std::string& file = "train" // "train", "trainval", or "val"
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)
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{
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std::ifstream in(voc2012_folder + "/ImageSets/Segmentation/" + file + ".txt");
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std::vector<image_info> results;
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while (in)
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{
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std::string basename;
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in >> basename;
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if (!basename.empty())
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{
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image_info image_info;
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image_info.image_filename = voc2012_folder + "/JPEGImages/" + basename + ".jpg";
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image_info.class_label_filename = voc2012_folder + "/SegmentationClass/" + basename + ".png";
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image_info.instance_label_filename = voc2012_folder + "/SegmentationObject/" + basename + ".png";
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results.push_back(image_info);
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}
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}
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return results;
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}
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// Read the list of image files belong to the "train" set of the PASCAL VOC2012 data.
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std::vector<image_info> get_pascal_voc2012_train_listing(
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const std::string& voc2012_folder
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)
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{
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return get_pascal_voc2012_listing(voc2012_folder, "train");
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}
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// Read the list of image files belong to the "val" set of the PASCAL VOC2012 data.
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std::vector<image_info> get_pascal_voc2012_val_listing(
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const std::string& voc2012_folder
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)
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{
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return get_pascal_voc2012_listing(voc2012_folder, "val");
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}
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// Given an RGB representation, find the corresponding PASCAL VOC2012 class
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// (e.g., 'dog').
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const Voc2012class& find_voc2012_class(const dlib::rgb_pixel& rgb_label)
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{
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return find_voc2012_class(
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[&rgb_label](const Voc2012class& voc2012class)
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{
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return rgb_label == voc2012class.rgb_label;
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}
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);
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}
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// ----------------------------------------------------------------------------------------
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// Convert an RGB class label to an index in the range [0, 20].
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inline uint16_t rgb_label_to_index_label(const dlib::rgb_pixel& rgb_label)
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{
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return find_voc2012_class(rgb_label).index;
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}
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// Convert an image containing RGB class labels to a corresponding
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// image containing indexes in the range [0, 20].
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void rgb_label_image_to_index_label_image(
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const dlib::matrix<dlib::rgb_pixel>& rgb_label_image,
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dlib::matrix<uint16_t>& index_label_image
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)
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{
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const long nr = rgb_label_image.nr();
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const long nc = rgb_label_image.nc();
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index_label_image.set_size(nr, nc);
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for (long r = 0; r < nr; ++r)
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{
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for (long c = 0; c < nc; ++c)
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{
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index_label_image(r, c) = rgb_label_to_index_label(rgb_label_image(r, c));
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}
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}
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}
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#endif // PASCAL_VOC_2012_H_
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