A new constant in adaptivethreshold is created to calculate
gaussianBlur with CV_32F. hence rouding error are avoided
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@@ -326,7 +326,9 @@ enum AdaptiveThresholdTypes {
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window) of the \f$\texttt{blockSize} \times \texttt{blockSize}\f$ neighborhood of \f$(x, y)\f$
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minus C . The default sigma (standard deviation) is used for the specified blockSize . See
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cv::getGaussianKernel*/
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ADAPTIVE_THRESH_GAUSSIAN_C = 1
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ADAPTIVE_THRESH_GAUSSIAN_C = 1,
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/** Like ADAPTIVE_THRESH_GAUSSIAN_C except that GaussianBlur use CV_32F for blurring to avoid rounding error*/
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ADAPTIVE_THRESH_GAUSSIAN_C_FLOAT = 2
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};
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//! cv::undistort mode
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@@ -1295,11 +1295,19 @@ void cv::adaptiveThreshold( InputArray _src, OutputArray _dst, double maxValue,
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if( src.data != dst.data )
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mean = dst;
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if( method == ADAPTIVE_THRESH_MEAN_C )
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if (method == ADAPTIVE_THRESH_MEAN_C)
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boxFilter( src, mean, src.type(), Size(blockSize, blockSize),
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Point(-1,-1), true, BORDER_REPLICATE );
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else if( method == ADAPTIVE_THRESH_GAUSSIAN_C )
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GaussianBlur( src, mean, Size(blockSize, blockSize), 0, 0, BORDER_REPLICATE );
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else if (method == ADAPTIVE_THRESH_GAUSSIAN_C)
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GaussianBlur(src, mean, Size(blockSize, blockSize), 0, 0, BORDER_REPLICATE);
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else if (method == ADAPTIVE_THRESH_GAUSSIAN_C_FLOAT)
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{
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Mat srcfloat,meanfloat;
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src.convertTo(srcfloat,CV_32F);
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meanfloat=srcfloat;
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GaussianBlur(srcfloat, meanfloat, Size(blockSize, blockSize), 0, 0, BORDER_REPLICATE);
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meanfloat.convertTo(dst, src.type());
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}
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else
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CV_Error( CV_StsBadFlag, "Unknown/unsupported adaptive threshold method" );
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