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@ -8,6 +8,7 @@
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#include <stdexcept>
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#include "imageops.h"
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#include <QColor>
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#include <QVector>
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#include <cmath>
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// Macros {{{
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@ -92,9 +93,11 @@ QImage remove_borders(const QImage &image, double fuzz) {
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unsigned int width = img.width(), height = img.height();
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unsigned int top_border = 0, bottom_border = 0, left_border = 0, right_border = 0;
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bool bad_alloc = false;
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QVector<int> vbuf = QVector<int>();
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ENSURE32(img)
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buf = new int[3*(MAX(width, height)+1)];
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vbuf.resize(3*(MAX(width, height)+1));
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buf = vbuf.data();
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fuzz /= 255;
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Py_BEGIN_ALLOW_THREADS;
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@ -122,7 +125,6 @@ QImage remove_borders(const QImage &image, double fuzz) {
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}
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Py_END_ALLOW_THREADS;
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delete[] buf;
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if (bad_alloc) throw std::bad_alloc();
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return img;
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}
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@ -158,6 +160,8 @@ static QImage convolve(const QImage &image, int matrix_size, float *matrix) {
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const QRgb *src = NULL;
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float *m, *normalize_matrix, normalize, r, g, b;
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QImage img(image);
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QVector<QRgb*> buf1 = QVector<QRgb*>(matrix_size);
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QVector<float> buf2 = QVector<float>(matrix_size * matrix_size);
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if(!(matrix_size % 2))
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throw std::out_of_range("Convolution kernel width must be an odd number");
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@ -170,8 +174,10 @@ static QImage convolve(const QImage &image, int matrix_size, float *matrix) {
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QImage buffer = QImage(w, h, img.format());
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if (buffer.isNull()) throw std::bad_alloc();
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scanblock = new QRgb* [matrix_size];
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normalize_matrix = new float[matrix_size*matrix_size];
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buf1.resize(matrix_size);
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scanblock = buf1.data();
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buf2.resize(matrix_size * matrix_size);
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normalize_matrix = buf2.data();
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Py_BEGIN_ALLOW_THREADS;
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// create normalized matrix
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@ -263,8 +269,6 @@ static QImage convolve(const QImage &image, int matrix_size, float *matrix) {
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}
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Py_END_ALLOW_THREADS;
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delete[] scanblock;
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delete[] normalize_matrix;
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return buffer;
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}
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@ -301,7 +305,8 @@ static int default_convolve_matrix_size(const float radius, const float sigma, c
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QImage gaussian_sharpen(const QImage &img, const float radius, const float sigma, const bool high_quality) { // {{{
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int matrix_size = default_convolve_matrix_size(radius, sigma, high_quality);
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int len = matrix_size*matrix_size;
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float alpha, *matrix = new float[len];
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QVector<float> buf = QVector<float>(len);
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float alpha, *matrix = buf.data();
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float sigma2 = sigma*sigma*2.0;
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float sigmaPI2 = 2.0*M_PI*sigma*sigma;
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@ -320,25 +325,24 @@ QImage gaussian_sharpen(const QImage &img, const float radius, const float sigma
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matrix[i/2]=(-2.0)*normalize;
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Py_END_ALLOW_THREADS;
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QImage result(convolve(img, matrix_size, matrix));
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delete[] matrix;
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return(result);
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} // }}}
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// gaussian_blur() {{{
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static float* get_blur_kernel(int &kernel_width, const float sigma)
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static void get_blur_kernel(int &kernel_width, const float sigma, QVector<float> &kernel)
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{
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#define KernelRank 3
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float alpha, normalize, *kernel;
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float alpha, normalize;
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int bias;
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long i;
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if(sigma == 0.0) throw std::out_of_range("Zero sigma value is invalid for gaussian_blur");
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if(kernel_width == 0) kernel_width = 3;
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kernel.resize(kernel_width + 1);
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kernel = new float[kernel_width+1];
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Py_BEGIN_ALLOW_THREADS;
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memset(kernel, 0, (kernel_width+1)*sizeof(float));
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kernel.fill(0);
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bias = KernelRank*kernel_width/2;
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for(i=(-bias); i <= bias; ++i){
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alpha = std::exp(-((float) i*i)/(2.0*KernelRank*KernelRank*sigma*sigma));
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@ -351,10 +355,9 @@ static float* get_blur_kernel(int &kernel_width, const float sigma)
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for(i=0; i < kernel_width; ++i)
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kernel[i] /= normalize;
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Py_END_ALLOW_THREADS;
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return(kernel);
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}
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static void blur_scan_line(const float *kernel, const int kern_width, const QRgb *source, QRgb *destination, const int columns, const int offset) {
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static void blur_scan_line(const float* kernel, const int kern_width, const QRgb *source, QRgb *destination, const int columns, const int offset) {
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FloatPixel aggregate, zero;
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float scale;
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const float *k;
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@ -451,30 +454,25 @@ QImage gaussian_blur(const QImage &image, const float radius, const float sigma)
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int kern_width, x, y, w, h;
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QRgb *src;
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QImage img(image);
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float *k = NULL;
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QVector<float> kernel;
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if(sigma == 0.0) throw std::out_of_range("Zero sigma is invalid for convolution");
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// figure out optimal kernel width
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if(radius > 0){
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kern_width = (int)(2*std::ceil(radius)+1);
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k = get_blur_kernel(kern_width, sigma);
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get_blur_kernel(kern_width, sigma, kernel);
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}
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else{
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float *last_kernel = NULL;
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kern_width = 3;
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k = get_blur_kernel(kern_width, sigma);
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while((long)(255*k[0]) > 0){
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if(last_kernel != NULL)
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delete[] last_kernel;
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last_kernel = k;
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get_blur_kernel(kern_width, sigma, kernel);
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while((long)(255*kernel[0]) > 0){
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kern_width += 2;
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k = get_blur_kernel(kern_width, sigma);
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get_blur_kernel(kern_width, sigma, kernel);
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}
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if(last_kernel != NULL){
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delete[] k;
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kern_width -= 2;
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k = last_kernel;
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}
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}
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@ -489,16 +487,15 @@ QImage gaussian_blur(const QImage &image, const float radius, const float sigma)
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//blur image rows
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for(y=0; y < h; ++y)
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blur_scan_line(k, kern_width, reinterpret_cast<const QRgb *>(img.constScanLine(y)),
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blur_scan_line(kernel.data(), kern_width, reinterpret_cast<const QRgb *>(img.constScanLine(y)),
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reinterpret_cast<QRgb *>(buffer.scanLine(y)), img.width(), 1);
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// blur image columns
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src = reinterpret_cast<QRgb *>(buffer.scanLine(0));
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for(x=0; x < w; ++x)
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blur_scan_line(k, kern_width, src+x, src+x, img.height(),
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blur_scan_line(kernel.data(), kern_width, src+x, src+x, img.height(),
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img.width());
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// finish up
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delete[] k;
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return(buffer);
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}
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// }}}
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@ -549,7 +546,7 @@ static inline void hull(const int x_offset, const int y_offset, const int w, con
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}
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#define DESPECKLE_CHANNEL(c, e) \
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(void)memset(pixels, 0, length); \
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pixels.fill(0); \
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j = w+2; \
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for(y=0; y < h; ++y, ++j){ \
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src = reinterpret_cast<const QRgb *>(img.constScanLine(y)); \
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@ -557,12 +554,12 @@ static inline void hull(const int x_offset, const int y_offset, const int w, con
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for(x=w-1; x >= 0; --x, ++src, ++j) \
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pixels[j] = c(*src); \
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} \
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(void)memset(buffer, 0, length); \
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buffer.fill(0); \
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for(i=0; i < 4; ++i){ \
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hull(X[i], Y[i], w, h, pixels, buffer, 1); \
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hull(-X[i], -Y[i], w, h, pixels, buffer, 1); \
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hull(-X[i], -Y[i], w, h, pixels, buffer, -1); \
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hull(X[i], Y[i], w, h, pixels, buffer, -1); \
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hull(X[i], Y[i], w, h, pixels.data(), buffer.data(), 1); \
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hull(-X[i], -Y[i], w, h, pixels.data(), buffer.data(), 1); \
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hull(-X[i], -Y[i], w, h, pixels.data(), buffer.data(), -1); \
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hull(X[i], Y[i], w, h, pixels.data(), buffer.data(), -1); \
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} \
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j = w+2; \
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for(y=0; y < h; ++y, ++j){ \
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@ -577,7 +574,6 @@ QImage despeckle(const QImage &image) {
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QRgb *dest;
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const QRgb *src;
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QImage img(image);
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unsigned char *buffer, *pixels;
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int w = img.width();
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int h = img.height();
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@ -587,8 +583,7 @@ QImage despeckle(const QImage &image) {
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ENSURE32(img);
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length = (img.width()+2)*(img.height()+2);
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pixels = new unsigned char[length];
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buffer = new unsigned char[length];
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QVector<unsigned char> pixels(length), buffer(length);
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Py_BEGIN_ALLOW_THREADS;
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DESPECKLE_CHANNEL(qRed, qRgba(pixels[j], qGreen(*dest), qBlue(*dest), qAlpha(*dest)))
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@ -596,8 +591,6 @@ QImage despeckle(const QImage &image) {
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DESPECKLE_CHANNEL(qBlue, qRgba(qRed(*dest), qGreen(*dest), pixels[j], qAlpha(*dest)))
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Py_END_ALLOW_THREADS;
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delete[] pixels;
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delete[] buffer;
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return(img);
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}
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// }}}
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@ -662,8 +655,8 @@ void overlay(const QImage &image, QImage &canvas, unsigned int left, unsigned in
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QImage normalize(const QImage &image) { // {{{
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IntegerPixel intensity;
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HistogramListItem *histogram;
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CharPixel *normalize_map;
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HistogramListItem histogram[256] = {{0, 0, 0, 0}};
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CharPixel normalize_map[256] = {{0, 0, 0, 0}};
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ShortPixel high, low;
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uint threshold_intensity;
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int i, count;
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@ -674,12 +667,9 @@ QImage normalize(const QImage &image) { // {{{
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ENSURE32(img);
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count = img.width()*img.height();
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histogram = new HistogramListItem[256];
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normalize_map = new CharPixel[256];
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Py_BEGIN_ALLOW_THREADS;
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// form histogram
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memset(histogram, 0, 256*sizeof(HistogramListItem));
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dest = (QRgb *)img.bits();
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for(i=0; i < count; ++i){
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@ -730,8 +720,6 @@ QImage normalize(const QImage &image) { // {{{
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break;
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}
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delete[] histogram;
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// stretch the histogram to create the normalized image mapping.
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for(i=0; i < 256; i++){
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if(i < low.red)
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@ -778,7 +766,6 @@ QImage normalize(const QImage &image) { // {{{
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*dest++ = qRgba(r, g, b, qAlpha(pixel));
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}
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delete[] normalize_map;
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Py_END_ALLOW_THREADS;
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return img;
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} // }}}
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@ -788,8 +775,10 @@ QImage oil_paint(const QImage &image, const float radius, const bool high_qualit
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int i, x, y, w, h, matrix_x, matrix_y;
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int edge = matrix_size/2;
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unsigned int max, value;
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unsigned int histogram[256] = {0};
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QRgb *dest, *s, **scanblock;
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QImage img(image);
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QVector<QRgb*> buf = QVector<QRgb*>(matrix_size);
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w = img.width();
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h = img.height();
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@ -798,8 +787,8 @@ QImage oil_paint(const QImage &image, const float radius, const bool high_qualit
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ENSURE32(img);
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QImage buffer(w, h, img.format());
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scanblock = new QRgb* [matrix_size];
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unsigned int *histogram = new unsigned int[256];
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buf.resize(matrix_size);
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scanblock = buf.data();
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Py_BEGIN_ALLOW_THREADS;
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for(y=0; y < h; ++y){
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@ -891,8 +880,6 @@ QImage oil_paint(const QImage &image, const float radius, const bool high_qualit
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}
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}
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delete[] histogram;
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delete[] scanblock;
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Py_END_ALLOW_THREADS;
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return(buffer);
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} // }}}
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