#include <iostream>
#include <fstream>
#include <string>
#include <sstream>
#include <iomanip>
#include <stdexcept>
class App
{
public:
    void run();
    void handleKey(char key);
    void hogWorkBegin();
    void hogWorkEnd();
    string hogWorkFps() const;
    void workBegin();
    void workEnd();
    string workFps() const;
private:
    App operator=(App&);
    
    bool running;
    bool make_gray;
    double resize_scale;
    int win_width;
    int win_stride_width, win_stride_height;
    int gr_threshold;
    int nlevels;
    double hit_threshold;
    bool gamma_corr;
    double hog_work_fps;
    double work_fps;
    string img_source;
    string vdo_source;
    string output;
    int camera_id;
    bool write_once;
};
int main(int argc, char** argv)
{
    const char* keys =
        "{ h help      |                | print help message }"
        "{ i input     |                | specify input image}"
        "{ c camera    | -1             | enable camera capturing }"
        "{ v video     | vtest.avi | use video as input }"
        "{ g gray      |                | convert image to gray one or not}"
        "{ s scale     | 1.0            | resize the image before detect}"
        "{ o output    |   output.avi   | specify output path when input is images}";
    {
        return EXIT_SUCCESS;
    }
    App app(cmd);
    try
    {
        app.run();
    }
    {
        return cout << 
"error: "  << e.
what() << endl, 1;
     }
    catch (const exception& e)
    {
        return cout << "error: "  << e.what() << endl, 1;
    }
    catch(...)
    {
        return cout << "unknown exception" << endl, 1;
    }
    return EXIT_SUCCESS;
}
{
    cout << "\nControls:\n"
         << "\tESC - exit\n"
         << "\tm - change mode GPU <-> CPU\n"
         << "\tg - convert image to gray or not\n"
         << "\to - save output image once, or switch on/off video save\n"
         << "\t1/q - increase/decrease HOG scale\n"
         << "\t2/w - increase/decrease levels count\n"
         << "\t3/e - increase/decrease HOG group threshold\n"
         << "\t4/r - increase/decrease hit threshold\n"
         << endl;
    make_gray = cmd.
has(
"gray");
    resize_scale = cmd.
get<
double>(
"s");
    img_source = cmd.
get<
string>(
"i");
    output = cmd.
get<
string>(
"o");
    camera_id = cmd.
get<
int>(
"c");
    win_width = 48;
    win_stride_width = 8;
    win_stride_height = 8;
    gr_threshold = 8;
    nlevels = 13;
    hit_threshold = 1.4;
    gamma_corr = true;
    write_once = false;
    cout << "Group threshold: " << gr_threshold << endl;
    cout << "Levels number: " << nlevels << endl;
    cout << "Win width: " << win_width << endl;
    cout << "Win stride: (" << win_stride_width << ", " << win_stride_height << ")\n";
    cout << "Hit threshold: " << hit_threshold << endl;
    cout << "Gamma correction: " << gamma_corr << endl;
    cout << endl;
}
void App::run()
{
    running = true;
    Size win_size(win_width, win_width * 2);
     Size win_stride(win_stride_width, win_stride_height);
     
    HOGDescriptor hog(win_size, 
Size(16, 16), 
Size(8, 8), 
Size(8, 8), 9, 1, -1,
     while (running)
    {
        if (vdo_source!="")
        {
            vc.
open(vdo_source.c_str());
                throw runtime_error(string("can't open video file: " + vdo_source));
            vc >> frame;
        }
        else if (camera_id != -1)
        {
            {
                stringstream msg;
                msg << "can't open camera: " << camera_id;
                throw runtime_error(msg.str());
            }
            vc >> frame;
        }
        else
        {
                throw runtime_error(string("can't open image file: " + img_source));
        }
        UMat img_aux, img, img_to_show;
         
        while (running && !frame.
empty())
         {
            workBegin();
            
            
            {
                Size sz((
int)((
double)img_aux.
cols/resize_scale), (
int)((
double)img_aux.
rows/resize_scale));
             }
            else img = img_aux;
            vector<Rect> found;
            
            hogWorkBegin();
            hogWorkEnd();
            
            for (size_t i = 0; i < found.size(); i++)
            {
            }
            imshow(
"opencv_hog", img_to_show);
             if (vdo_source!="" || camera_id!=-1) vc >> frame;
            workEnd();
            if (output!="" && write_once)
            {
                if (img_source!="")     
                {
                    write_once = false;
                }
                else                    
                {
                    {
                        video_writer.
open(output, VideoWriter::fourcc(
'x',
'v',
'i',
'd'), 24,
                                          img_to_show.
size(), 
true);
                            throw std::runtime_error("can't create video writer");
                    }
                    video_writer << img;
                }
            }
        }
    }
}
void App::handleKey(char key)
{
    switch (key)
    {
    case 27:
        running = false;
        break;
    case 'm':
    case 'M':
        cout << 
"Switched to " << (
ocl::useOpenCL() ? 
"OpenCL enabled" : 
"CPU") << 
" mode\n";
        break;
    case 'g':
    case 'G':
        make_gray = !make_gray;
        cout << "Convert image to gray: " << (make_gray ? "YES" : "NO") << endl;
        break;
    case '1':
        cout << 
"Scale: " << 
scale << endl;
        break;
    case 'q':
    case 'Q':
        cout << 
"Scale: " << 
scale << endl;
        break;
    case '2':
        nlevels++;
        cout << "Levels number: " << nlevels << endl;
        break;
    case 'w':
    case 'W':
        nlevels = 
max(nlevels - 1, 1);
        cout << "Levels number: " << nlevels << endl;
        break;
    case '3':
        gr_threshold++;
        cout << "Group threshold: " << gr_threshold << endl;
        break;
    case 'e':
    case 'E':
        gr_threshold = 
max(0, gr_threshold - 1);
        cout << "Group threshold: " << gr_threshold << endl;
        break;
    case '4':
        hit_threshold+=0.25;
        cout << "Hit threshold: " << hit_threshold << endl;
        break;
    case 'r':
    case 'R':
        hit_threshold = 
max(0.0, hit_threshold - 0.25);
        cout << "Hit threshold: " << hit_threshold << endl;
        break;
    case 'c':
    case 'C':
        gamma_corr = !gamma_corr;
        cout << "Gamma correction: " << gamma_corr << endl;
        break;
    case 'o':
    case 'O':
        write_once = !write_once;
        break;
    }
}
inline void App::hogWorkBegin()
{
}
inline void App::hogWorkEnd()
{
    hog_work_fps = freq / delta;
}
inline string App::hogWorkFps() const
{
    stringstream ss;
    ss << hog_work_fps;
    return ss.str();
}
inline void App::workBegin()
{
}
inline void App::workEnd()
{
    work_fps = freq / delta;
}
inline string App::workFps() const
{
    stringstream ss;
    ss << work_fps;
    return ss.str();
}