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/*------------------------------------------------------------------------------------------*\
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   This file contains material supporting chapter 6 of the cookbook:  
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   Computer Vision Programming using the OpenCV Library.
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   by Robert Laganiere, Packt Publishing, 2011.
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   This program is free software; permission is hereby granted to use, copy, modify,
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   and distribute this source code, or portions thereof, for any purpose, without fee,
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   subject to the restriction that the copyright notice may not be removed
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   or altered from any source or altered source distribution.
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   The software is released on an as-is basis and without any warranties of any kind.
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   In particular, the software is not guaranteed to be fault-tolerant or free from failure.
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   The author disclaims all warranties with regard to this software, any use,
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   and any consequent failure, is purely the responsibility of the user.
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   Copyright (C) 2010-2011 Robert Laganiere, www.laganiere.name
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\*------------------------------------------------------------------------------------------*/
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#include <iostream>
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#include <iomanip>
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#include <opencv2/core/core.hpp>
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#include <opencv2/imgproc/imgproc.hpp>
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#include <opencv2/highgui/highgui.hpp>
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#include "laplacianZC.h"
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int main()
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{
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        // Read input image
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        cv::Mat image= cv::imread("../boldt.jpg",0);
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        if (!image.data)
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                return 0;
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    // Display the image
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        cv::namedWindow("Original Image");
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        cv::imshow("Original Image",image);
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        // Compute Sobel X derivative
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        cv::Mat sobelX;
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        cv::Sobel(image,sobelX,CV_8U,1,0,3,0.4,128);
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    // Display the image
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        cv::namedWindow("Sobel X Image");
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        cv::imshow("Sobel X Image",sobelX);
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        // Compute Sobel Y derivative
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        cv::Mat sobelY;
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        cv::Sobel(image,sobelY,CV_8U,0,1,3,0.4,128);
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    // Display the image
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        cv::namedWindow("Sobel Y Image");
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        cv::imshow("Sobel Y Image",sobelY);
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        // Compute norm of Sobel
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        cv::Sobel(image,sobelX,CV_16S,1,0);
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        cv::Sobel(image,sobelY,CV_16S,0,1);
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        cv::Mat sobel;
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        //compute the L1 norm
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        sobel= abs(sobelX)+abs(sobelY);
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        double sobmin, sobmax;
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        cv::minMaxLoc(sobel,&sobmin,&sobmax);
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        std::cout << "sobel value range: " << sobmin << "  " << sobmax << std::endl;
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        // Print window pixel values
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        for (int i=0; i<12; i++) {
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                for (int j=0; j<12; j++)
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                        std::cout << std::setw(5) << static_cast<int>(sobel.at<short>(i+135,j+362)) << " ";
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                std::cout << std::endl;
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        }
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        std::cout << std::endl;
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        std::cout << std::endl;
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        std::cout << std::endl;
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        // Conversion to 8-bit image
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        // sobelImage = -alpha*sobel + 255
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        cv::Mat sobelImage;
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        sobel.convertTo(sobelImage,CV_8U,-255./sobmax,255);
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    // Display the image
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        cv::namedWindow("Sobel Image");
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        cv::imshow("Sobel Image",sobelImage);
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        // Apply threshold to Sobel norm (low threshold value)
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        cv::Mat sobelThresholded;
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        cv::threshold(sobelImage, sobelThresholded, 225, 255, cv::THRESH_BINARY);
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    // Display the image
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        cv::namedWindow("Binary Sobel Image (low)");
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        cv::imshow("Binary Sobel Image (low)",sobelThresholded);
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        // Apply threshold to Sobel norm (high threshold value)
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        cv::threshold(sobelImage, sobelThresholded, 190, 255, cv::THRESH_BINARY);
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    // Display the image
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        cv::namedWindow("Binary Sobel Image (high)");
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        cv::imshow("Binary Sobel Image (high)",sobelThresholded);
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        // Compute Laplacian 3x3
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        cv::Mat laplace;
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        cv::Laplacian(image,laplace,CV_8U,1,1,128);
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    // Display the image
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        cv::namedWindow("Laplacian Image");
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        cv::imshow("Laplacian Image",laplace);
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        // Print window pixel values
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        for (int i=0; i<12; i++) {
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                for (int j=0; j<12; j++)
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                        std::cout << std::setw(5) << static_cast<int>(laplace.at<uchar>(i+135,j+362))-128 << " ";
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                std::cout << std::endl;
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        }
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        std::cout << std::endl;
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        std::cout << std::endl;
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        std::cout << std::endl;
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        // Compute Laplacian 7x7
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        cv::Laplacian(image,laplace,CV_8U,7,0.01,128);
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    // Display the image 
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        cv::namedWindow("Laplacian Image");
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        cv::imshow("Laplacian Image",laplace);
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        // Print window pixel values
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        for (int i=0; i<12; i++) {
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                for (int j=0; j<12; j++)
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                        std::cout << std::setw(5) << static_cast<int>(laplace.at<uchar>(i+135,j+362))-128 << " ";
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                std::cout << std::endl;
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        }
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    // Extract small window
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        cv::Mat window(image,cv::Rect(362,135,12,12));
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        cv::namedWindow("Image window");
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        cv::imshow("Image window",window);
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        cv::imwrite("window.bmp",window);
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        // Compute Laplacian using LaplacianZC class
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        LaplacianZC laplacian;
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        laplacian.setAperture(7);
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        cv::Mat flap= laplacian.computeLaplacian(image);
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        double lapmin, lapmax;
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        cv::minMaxLoc(flap,&lapmin,&lapmax);
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        std::cout << "Laplacian value range=[" << lapmin << "," << lapmax << "]\n";
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        laplace= laplacian.getLaplacianImage();
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        cv::namedWindow("Laplacian Image (7x7)");
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        cv::imshow("Laplacian Image (7x7)",laplace);
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        // Print Laplacian values
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        std::cout << std::endl;
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        for (int i=0; i<12; i++) {
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                for (int j=0; j<12; j++)
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                        std::cout << std::setw(5) << static_cast<int>(flap.at<float>(i+135,j+362)/100) << " ";
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                std::cout << std::endl;
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        }
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        std::cout << std::endl;
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        // Compute and display the zero-crossing points
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        cv::Mat zeros;
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        zeros= laplacian.getZeroCrossings(lapmax);
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        cv::namedWindow("Zero-crossings");
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        cv::imshow("Zero-crossings",zeros);
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        // Compute and display the zero-crossing points (Sobel version)
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        zeros= laplacian.getZeroCrossings();
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        zeros= laplacian.getZeroCrossingsWithSobel(50);
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        cv::namedWindow("Zero-crossings (2)");
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        cv::imshow("Zero-crossings (2)",zeros);
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        // Print window pixel values
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        for (int i=0; i<12; i++) {
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                for (int j=0; j<12; j++)
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                        std::cout << std::setw(2) << static_cast<int>(zeros.at<uchar>(i+135,j+362)) << " ";
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                std::cout << std::endl;
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        }
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    // Display the image with window
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        cv::rectangle(image,cv::Point(362,135),cv::Point(374,147),cv::Scalar(255,255,255));
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        cv::namedWindow("Original Image with window");
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        cv::imshow("Original Image with window",image);
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        cv::waitKey();
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        return 0;
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}