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Merge pull request #643 from cuda-geek:refactor-softcascade-globbing
This commit is contained in:
commit
061dd7e84e
@ -46,116 +46,32 @@
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#include <iostream>
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#include <queue>
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inline std::string itoa(long i) { return cv::format("%ld", i); }
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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# include <glob.h>
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namespace {
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using namespace sft;
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void glob(const string& path, svector& ret)
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{
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glob_t glob_result;
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glob(path.c_str(), GLOB_TILDE, 0, &glob_result);
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ret.clear();
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ret.reserve(glob_result.gl_pathc);
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for(unsigned int i = 0; i < glob_result.gl_pathc; ++i)
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{
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ret.push_back(std::string(glob_result.gl_pathv[i]));
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dprintf("%s\n", ret[i].c_str());
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}
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globfree(&glob_result);
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}
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}
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#else
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# include <windows.h>
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namespace {
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using namespace sft;
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void glob(const string& refRoot, const string& refExt, svector &refvecFiles)
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{
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std::string strFilePath; // File path
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std::string strExtension; // Extension
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std::string strPattern = refRoot + "\\*.*";
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WIN32_FIND_DATA FileInformation; // File information
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HANDLE hFile = ::FindFirstFile(strPattern.c_str(), &FileInformation);
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if(hFile == INVALID_HANDLE_VALUE)
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CV_Error(CV_StsBadArg, "Your dataset search path is incorrect");
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do
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{
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if(FileInformation.cFileName[0] != '.')
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{
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strFilePath.erase();
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strFilePath = refRoot + "\\" + FileInformation.cFileName;
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if( !(FileInformation.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY) )
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{
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// Check extension
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strExtension = FileInformation.cFileName;
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strExtension = strExtension.substr(strExtension.rfind(".") + 1);
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if(strExtension == refExt)
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// Save filename
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refvecFiles.push_back(strFilePath);
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}
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}
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}
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while(::FindNextFile(hFile, &FileInformation) == TRUE);
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// Close handle
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::FindClose(hFile);
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DWORD dwError = ::GetLastError();
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if(dwError != ERROR_NO_MORE_FILES)
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CV_Error(CV_StsBadArg, "Your dataset search path is incorrect");
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}
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}
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#endif
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// in the default case data folders should be aligned as following:
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// 1. positives: <train or test path>/octave_<octave number>/pos/*.png
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// 2. negatives: <train or test path>/octave_<octave number>/neg/*.png
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ScaledDataset::ScaledDataset(const string& path, const int oct)
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sft::ScaledDataset::ScaledDataset(const string& path, const int oct)
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{
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dprintf("%s\n", "get dataset file names...");
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dprintf("%s\n", "Positives globing...");
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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glob(path + "/pos/octave_" + itoa(oct) + "/*.png", pos);
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#else
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glob(path + "/pos/octave_" + itoa(oct), "png", pos);
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#endif
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cv::glob(path + "/pos/octave_" + cv::format("%d", oct) + "/*.png", pos);
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dprintf("%s\n", "Negatives globing...");
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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glob(path + "/neg/octave_" + itoa(oct) + "/*.png", neg);
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#else
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glob(path + "/neg/octave_" + itoa(oct), "png", neg);
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#endif
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cv::glob(path + "/neg/octave_" + cv::format("%d", oct) + "/*.png", neg);
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// Check: files not empty
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CV_Assert(pos.size() != size_t(0));
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CV_Assert(neg.size() != size_t(0));
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}
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cv::Mat ScaledDataset::get(SampleType type, int idx) const
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cv::Mat sft::ScaledDataset::get(SampleType type, int idx) const
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{
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const std::string& src = (type == POSITIVE)? pos[idx]: neg[idx];
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return cv::imread(src);
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}
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int ScaledDataset::available(SampleType type) const
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int sft::ScaledDataset::available(SampleType type) const
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{
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return (int)((type == POSITIVE)? pos.size():neg.size());
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}
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ScaledDataset::~ScaledDataset(){}
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sft::ScaledDataset::~ScaledDataset(){}
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@ -1,162 +0,0 @@
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/*M///////////////////////////////////////////////////////////////////////////////////////
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//
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// IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
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//
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// By downloading, copying, installing or using the software you agree to this license.
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// If you do not agree to this license, do not download, install,
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// copy or use the software.
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//
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//
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// License Agreement
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// For Open Source Computer Vision Library
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//
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// Copyright (C) 2000-2008, Intel Corporation, all rights reserved.
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// Copyright (C) 2008-2012, Willow Garage Inc., all rights reserved.
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// Third party copyrights are property of their respective owners.
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//
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// Redistribution and use in source and binary forms, with or without modification,
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// are permitted provided that the following conditions are met:
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//
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// * Redistribution's of source code must retain the above copyright notice,
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// this list of conditions and the following disclaimer.
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//
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// * Redistribution's in binary form must reproduce the above copyright notice,
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// this list of conditions and the following disclaimer in the documentation
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// and / or other materials provided with the distribution.
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//
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// * The name of the copyright holders may not be used to endorse or promote products
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// derived from this software without specific prior written permission.
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//
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// This software is provided by the copyright holders and contributors "as is" and
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// any express or implied warranties, including, but not limited to, the implied
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// warranties of merchantability and fitness for a particular purpose are disclaimed.
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// In no event shall the Intel Corporation or contributors be liable for any direct,
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// indirect, incidental, special, exemplary, or consequential damages
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// (including, but not limited to, procurement of substitute goods or services;
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// loss of use, data, or profits; or business interruption) however caused
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// and on any theory of liability, whether in contract, strict liability,
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// or tort (including negligence or otherwise) arising in any way out of
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// the use of this software, even if advised of the possibility of such damage.
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//
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//M*/
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#ifndef __SFT_RANDOM_HPP__
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#define __SFT_RANDOM_HPP__
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#if defined(_MSC_VER) && _MSC_VER >= 1600
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# include <random>
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namespace cv { namespace softcascade { namespace internal
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{
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struct Random
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{
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typedef std::mt19937 engine;
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typedef engine::result_type seed_type;
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typedef std::uniform_int<int> uniform;
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};
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}}}
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#elif (__GNUC__) && __GNUC__ > 3 && __GNUC_MINOR__ > 1 && !defined(__ANDROID__)
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# if defined (__cplusplus) && __cplusplus > 201100L
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# include <random>
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namespace cv { namespace softcascade { namespace internal
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{
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struct Random
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{
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typedef std::mt19937 engine;
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typedef engine::result_type seed_type;
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// True if we're using C++11.
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#if __cplusplus >= 201103L
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// C++11 removes uniform_int.
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typedef std::uniform_int_distribution<int> uniform;
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#else
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typedef std::uniform_int<int> uniform;
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#endif
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};
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}}}
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# else
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# include <tr1/random>
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namespace cv { namespace softcascade { namespace internal
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{
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struct Random
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{
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typedef std::tr1::mt19937 engine;
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typedef engine::result_type seed_type;
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typedef std::tr1::uniform_int<int> uniform;
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};
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}}}
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# endif
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#else
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# include <opencv2/core/core.hpp>
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namespace cv { namespace softcascade { namespace internal
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{
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namespace rnd {
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typedef cv::RNG engine;
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template<typename T>
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struct uniform_int
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{
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uniform_int(const int _min, const int _max) : min(_min), max(_max) {}
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T operator() (engine& eng, const int bound) const
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{
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return (T)eng.uniform(min, bound);
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}
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T operator() (engine& eng) const
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{
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return (T)eng.uniform(min, max);
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}
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private:
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int min;
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int max;
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};
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}
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struct Random
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{
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typedef rnd::engine engine;
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typedef uint64 seed_type;
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typedef rnd::uniform_int<int> uniform;
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};
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}}}
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#endif
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#if defined _WIN32 && (_WIN32 || _WIN64)
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# if _WIN64
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# define USE_LONG_SEEDS
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# endif
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#endif
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#if defined (__GNUC__) &&__GNUC__
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# if defined(__x86_64__) || defined(__ppc64__)
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# define USE_LONG_SEEDS
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# endif
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#endif
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#if defined USE_LONG_SEEDS
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# define FEATURE_RECT_SEED 8854342234LU
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# define INDEX_ENGINE_SEED 764224349868LU
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#else
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# define FEATURE_RECT_SEED 88543422LU
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# define INDEX_ENGINE_SEED 76422434LU
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#endif
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#undef USE_LONG_SEEDS
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#define DCHANNELS_SEED 314152314LU
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#define DX_DY_SEED 65633343LU
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#endif
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@ -238,22 +238,8 @@ void ChannelFeaturePool::fill(int desired)
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int x = xRand(eng);
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int y = yRand(eng);
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#if __cplusplus >= 201103L
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// The interface changed slightly going from uniform_int to
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// uniform_int_distribution. See this page to understand
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// the old behavior:
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// http://www.boost.org/doc/libs/1_47_0/boost/random/uniform_int.hpp
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int w = 1 + wRand(
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eng,
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// This extra "- 1" appears to be necessary, based on the Boost docs.
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Random::uniform::param_type(0, (model.width - x - 1) - 1));
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int h = 1 + hRand(
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eng,
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Random::uniform::param_type(0, (model.height - y - 1) - 1));
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#else
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int w = 1 + wRand(eng, model.width - x - 1);
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int h = 1 + hRand(eng, model.height - y - 1);
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#endif
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CV_Assert(w > 0);
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CV_Assert(h > 0);
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@ -53,6 +53,46 @@
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#include "opencv2/core/core_c.h"
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#include "opencv2/core/internal.hpp"
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#include "opencv2/ml/ml.hpp"
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#include "_random.hpp"
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namespace cv { namespace softcascade { namespace internal
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{
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namespace rnd {
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typedef cv::RNG_MT19937 engine;
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template<typename T>
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struct uniform_int
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{
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uniform_int(const int _min, const int _max) : min(_min), max(_max) {}
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T operator() (engine& eng, const int bound) const
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{
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return (T)eng.uniform(min, bound);
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}
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T operator() (engine& eng) const
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{
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return (T)eng.uniform(min, max);
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}
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private:
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int min;
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int max;
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};
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}
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struct Random
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{
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typedef rnd::engine engine;
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typedef uint64 seed_type;
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typedef rnd::uniform_int<int> uniform;
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};
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}}}
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#define FEATURE_RECT_SEED 88543422U
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#define INDEX_ENGINE_SEED 76422434U
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#define DCHANNELS_SEED 314152314U
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#define DX_DY_SEED 65633343U
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#endif
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@ -42,17 +42,11 @@
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#if !defined(ANDROID)
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#include <test_precomp.hpp>
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#include <string>
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#include <fstream>
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#include <vector>
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#include "test_precomp.hpp"
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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# include <glob.h>
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#else
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# include <windows.h>
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#endif
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using namespace std;
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namespace {
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@ -74,92 +68,10 @@ private:
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svector neg;
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};
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string itoa(long i)
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{
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char s[65];
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sprintf(s, "%ld", i);
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return std::string(s);
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}
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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void glob(const string& path, svector& ret)
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{
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glob_t glob_result;
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glob(path.c_str(), GLOB_TILDE, 0, &glob_result);
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ret.clear();
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ret.reserve(glob_result.gl_pathc);
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for(unsigned int i = 0; i < glob_result.gl_pathc; ++i)
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{
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ret.push_back(std::string(glob_result.gl_pathv[i]));
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}
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globfree(&glob_result);
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}
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#else
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void glob(const string& refRoot, const string& refExt, svector &refvecFiles)
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{
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std::string strFilePath; // File path
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std::string strExtension; // Extension
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std::string strPattern = refRoot + "\\*.*";
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WIN32_FIND_DATA FileInformation; // File information
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HANDLE hFile = ::FindFirstFile(strPattern.c_str(), &FileInformation);
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if(hFile == INVALID_HANDLE_VALUE)
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CV_Error(CV_StsBadArg, "Your dataset search path is incorrect");
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do
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{
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if(FileInformation.cFileName[0] != '.')
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{
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strFilePath.erase();
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strFilePath = refRoot + "\\" + FileInformation.cFileName;
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if( !(FileInformation.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY) )
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{
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// Check extension
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strExtension = FileInformation.cFileName;
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strExtension = strExtension.substr(strExtension.rfind(".") + 1);
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if(strExtension == refExt)
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// Save filename
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refvecFiles.push_back(strFilePath);
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}
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}
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}
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while(::FindNextFile(hFile, &FileInformation) == TRUE);
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// Close handle
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::FindClose(hFile);
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DWORD dwError = ::GetLastError();
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if(dwError != ERROR_NO_MORE_FILES)
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CV_Error(CV_StsBadArg, "Your dataset search path is incorrect");
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}
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#endif
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ScaledDataset::ScaledDataset(const string& path, const int oct)
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{
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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glob(path + "/pos/octave_" + itoa(oct) + "/*.png", pos);
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#else
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glob(path + "/pos/octave_" + itoa(oct), "png", pos);
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#endif
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#if !defined (_WIN32) && ! defined(__MINGW32__)
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glob(path + "/neg/octave_" + itoa(oct) + "/*.png", neg);
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#else
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glob(path + "/neg/octave_" + itoa(oct), "png", neg);
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#endif
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cv::glob(path + cv::format("/octave_%d/*.png", oct), pos);
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cv::glob(path + "/*.png", neg);
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// Check: files not empty
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CV_Assert(pos.size() != size_t(0));
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@ -181,7 +93,7 @@ ScaledDataset::~ScaledDataset(){}
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}
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TEST(DISABLED_SoftCascade, training)
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TEST(SoftCascade, training)
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{
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// // 2. check and open output file
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string outXmlPath = cv::tempfile(".xml");
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@ -214,8 +126,8 @@ TEST(DISABLED_SoftCascade, training)
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cv::Ptr<FeaturePool> pool = FeaturePool::create(model, nfeatures, 10);
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nfeatures = pool->size();
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int npositives = 20;
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int nnegatives = 40;
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int npositives = 10;
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int nnegatives = 20;
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cv::Rect boundingBox = cv::Rect( cvRound(20 * octave), cvRound(20 * octave),
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cvRound(64 * octave), cvRound(128 * octave));
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@ -223,7 +135,7 @@ TEST(DISABLED_SoftCascade, training)
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cv::Ptr<ChannelFeatureBuilder> builder = ChannelFeatureBuilder::create("HOG6MagLuv");
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cv::Ptr<Octave> boost = Octave::create(boundingBox, npositives, nnegatives, *it, shrinkage, builder);
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std::string path = cvtest::TS::ptr()->get_data_path() + "softcascade/sample_training_set";
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std::string path = cvtest::TS::ptr()->get_data_path() + "cascadeandhog/sample_training_set";
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ScaledDataset dataset(path, *it);
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if (boost->train(&dataset, pool, 3, 2))
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|
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