loadsave.cpp 29.8 KB
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/*M///////////////////////////////////////////////////////////////////////////////////////
//
//  IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
//
//  By downloading, copying, installing or using the software you agree to this license.
//  If you do not agree to this license, do not download, install,
//  copy or use the software.
//
//
//                        Intel License Agreement
//                For Open Source Computer Vision Library
//
// Copyright (C) 2000, Intel Corporation, all rights reserved.
// Third party copyrights are property of their respective owners.
//
// Redistribution and use in source and binary forms, with or without modification,
// are permitted provided that the following conditions are met:
//
//   * Redistribution's of source code must retain the above copyright notice,
//     this list of conditions and the following disclaimer.
//
//   * Redistribution's in binary form must reproduce the above copyright notice,
//     this list of conditions and the following disclaimer in the documentation
//     and/or other materials provided with the distribution.
//
//   * The name of Intel Corporation may not be used to endorse or promote products
//     derived from this software without specific prior written permission.
//
// This software is provided by the copyright holders and contributors "as is" and
// any express or implied warranties, including, but not limited to, the implied
// warranties of merchantability and fitness for a particular purpose are disclaimed.
// In no event shall the Intel Corporation or contributors be liable for any direct,
// indirect, incidental, special, exemplary, or consequential damages
// (including, but not limited to, procurement of substitute goods or services;
// loss of use, data, or profits; or business interruption) however caused
// and on any theory of liability, whether in contract, strict liability,
// or tort (including negligence or otherwise) arising in any way out of
// the use of this software, even if advised of the possibility of such damage.
//
//M*/

//
//  Loading and saving IPL images.
//

#include "precomp.hpp"
#include "grfmts.hpp"
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#include "utils.hpp"
#include "exif.hpp"
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#undef min
#undef max
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#include <iostream>
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#include <fstream>
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/****************************************************************************************\
*                                      Image Codecs                                      *
\****************************************************************************************/
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namespace cv {

// TODO Add runtime configuration
#define CV_IO_MAX_IMAGE_PARAMS (50)
#define CV_IO_MAX_IMAGE_WIDTH (1<<20)
#define CV_IO_MAX_IMAGE_HEIGHT (1<<20)
#define CV_IO_MAX_IMAGE_PIXELS (1<<30) // 1 Gigapixel

static Size validateInputImageSize(const Size& size)
{
    CV_Assert(size.width > 0);
    CV_Assert(size.width <= CV_IO_MAX_IMAGE_WIDTH);
    CV_Assert(size.height > 0);
    CV_Assert(size.height <= CV_IO_MAX_IMAGE_HEIGHT);
    uint64 pixels = (uint64)size.width * (uint64)size.height;
    CV_Assert(pixels <= CV_IO_MAX_IMAGE_PIXELS);
    return size;
}


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namespace {

class ByteStreamBuffer: public std::streambuf
{
public:
    ByteStreamBuffer(char* base, size_t length)
    {
        setg(base, base, base + length);
    }

protected:
    virtual pos_type seekoff( off_type offset,
                              std::ios_base::seekdir dir,
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                              std::ios_base::openmode ) CV_OVERRIDE
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    {
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        char* whence = eback();
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        if (dir == std::ios_base::cur)
        {
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            whence = gptr();
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        }
        else if (dir == std::ios_base::end)
        {
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            whence = egptr();
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        }
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        char* to = whence + offset;
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        // check limits
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        if (to >= eback() && to <= egptr())
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        {
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            setg(eback(), to, egptr());
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            return gptr() - eback();
        }

        return -1;
    }
};

}

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/**
 * @struct ImageCodecInitializer
 *
 * Container which stores the registered codecs to be used by OpenCV
*/
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struct ImageCodecInitializer
{
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    /**
     * Default Constructor for the ImageCodeInitializer
    */
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    ImageCodecInitializer()
    {
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        /// BMP Support
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        decoders.push_back( makePtr<BmpDecoder>() );
        encoders.push_back( makePtr<BmpEncoder>() );
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        decoders.push_back( makePtr<HdrDecoder>() );
        encoders.push_back( makePtr<HdrEncoder>() );
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    #ifdef HAVE_JPEG
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        decoders.push_back( makePtr<JpegDecoder>() );
        encoders.push_back( makePtr<JpegEncoder>() );
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    #endif
    #ifdef HAVE_WEBP
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        decoders.push_back( makePtr<WebPDecoder>() );
        encoders.push_back( makePtr<WebPEncoder>() );
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    #endif
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        decoders.push_back( makePtr<SunRasterDecoder>() );
        encoders.push_back( makePtr<SunRasterEncoder>() );
        decoders.push_back( makePtr<PxMDecoder>() );
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        encoders.push_back( makePtr<PxMEncoder>(PXM_TYPE_AUTO) );
        encoders.push_back( makePtr<PxMEncoder>(PXM_TYPE_PBM) );
        encoders.push_back( makePtr<PxMEncoder>(PXM_TYPE_PGM) );
        encoders.push_back( makePtr<PxMEncoder>(PXM_TYPE_PPM) );
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    #ifdef HAVE_TIFF
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        decoders.push_back( makePtr<TiffDecoder>() );
        encoders.push_back( makePtr<TiffEncoder>() );
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    #endif
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    #ifdef HAVE_PNG
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        decoders.push_back( makePtr<PngDecoder>() );
        encoders.push_back( makePtr<PngEncoder>() );
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    #endif
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    #ifdef HAVE_GDCM
        decoders.push_back( makePtr<DICOMDecoder>() );
    #endif
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    #ifdef HAVE_JASPER
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        decoders.push_back( makePtr<Jpeg2KDecoder>() );
        encoders.push_back( makePtr<Jpeg2KEncoder>() );
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    #endif
    #ifdef HAVE_OPENEXR
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        decoders.push_back( makePtr<ExrDecoder>() );
        encoders.push_back( makePtr<ExrEncoder>() );
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    #endif
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    #ifdef HAVE_GDAL
        /// Attach the GDAL Decoder
        decoders.push_back( makePtr<GdalDecoder>() );
    #endif/*HAVE_GDAL*/
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        decoders.push_back( makePtr<PAMDecoder>() );
        encoders.push_back( makePtr<PAMEncoder>() );
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    }

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    std::vector<ImageDecoder> decoders;
    std::vector<ImageEncoder> encoders;
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};

static ImageCodecInitializer codecs;
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/**
 * Find the decoders
 *
 * @param[in] filename File to search
 *
 * @return Image decoder to parse image file.
*/
static ImageDecoder findDecoder( const String& filename ) {

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    size_t i, maxlen = 0;
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    /// iterate through list of registered codecs
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    for( i = 0; i < codecs.decoders.size(); i++ )
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    {
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        size_t len = codecs.decoders[i]->signatureLength();
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        maxlen = std::max(maxlen, len);
    }

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    /// Open the file
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    FILE* f= fopen( filename.c_str(), "rb" );
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    /// in the event of a failure, return an empty image decoder
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    if( !f )
        return ImageDecoder();
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    // read the file signature
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    String signature(maxlen, ' ');
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    maxlen = fread( (void*)signature.c_str(), 1, maxlen, f );
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    fclose(f);
    signature = signature.substr(0, maxlen);

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    /// compare signature against all decoders
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    for( i = 0; i < codecs.decoders.size(); i++ )
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    {
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        if( codecs.decoders[i]->checkSignature(signature) )
            return codecs.decoders[i]->newDecoder();
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    }

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    /// If no decoder was found, return base type
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    return ImageDecoder();
}

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static ImageDecoder findDecoder( const Mat& buf )
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{
    size_t i, maxlen = 0;

    if( buf.rows*buf.cols < 1 || !buf.isContinuous() )
        return ImageDecoder();

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    for( i = 0; i < codecs.decoders.size(); i++ )
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    {
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        size_t len = codecs.decoders[i]->signatureLength();
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        maxlen = std::max(maxlen, len);
    }

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    String signature(maxlen, ' ');
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    size_t bufSize = buf.rows*buf.cols*buf.elemSize();
    maxlen = std::min(maxlen, bufSize);
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    memcpy( (void*)signature.c_str(), buf.data, maxlen );
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    for( i = 0; i < codecs.decoders.size(); i++ )
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    {
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        if( codecs.decoders[i]->checkSignature(signature) )
            return codecs.decoders[i]->newDecoder();
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    }

    return ImageDecoder();
}

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static ImageEncoder findEncoder( const String& _ext )
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{
    if( _ext.size() <= 1 )
        return ImageEncoder();

    const char* ext = strrchr( _ext.c_str(), '.' );
    if( !ext )
        return ImageEncoder();
    int len = 0;
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    for( ext++; len < 128 && isalnum(ext[len]); len++ )
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        ;

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    for( size_t i = 0; i < codecs.encoders.size(); i++ )
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    {
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        String description = codecs.encoders[i]->getDescription();
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        const char* descr = strchr( description.c_str(), '(' );

        while( descr )
        {
            descr = strchr( descr + 1, '.' );
            if( !descr )
                break;
            int j = 0;
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            for( descr++; j < len && isalnum(descr[j]) ; j++ )
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            {
                int c1 = tolower(ext[j]);
                int c2 = tolower(descr[j]);
                if( c1 != c2 )
                    break;
            }
            if( j == len && !isalnum(descr[j]))
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                return codecs.encoders[i]->newEncoder();
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            descr += j;
        }
    }

    return ImageEncoder();
}

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enum { LOAD_CVMAT=0, LOAD_IMAGE=1, LOAD_MAT=2 };

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static void ExifTransform(int orientation, Mat& img)
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{
    switch( orientation )
    {
        case    IMAGE_ORIENTATION_TL: //0th row == visual top, 0th column == visual left-hand side
            //do nothing, the image already has proper orientation
            break;
        case    IMAGE_ORIENTATION_TR: //0th row == visual top, 0th column == visual right-hand side
            flip(img, img, 1); //flip horizontally
            break;
        case    IMAGE_ORIENTATION_BR: //0th row == visual bottom, 0th column == visual right-hand side
            flip(img, img, -1);//flip both horizontally and vertically
            break;
        case    IMAGE_ORIENTATION_BL: //0th row == visual bottom, 0th column == visual left-hand side
            flip(img, img, 0); //flip vertically
            break;
        case    IMAGE_ORIENTATION_LT: //0th row == visual left-hand side, 0th column == visual top
            transpose(img, img);
            break;
        case    IMAGE_ORIENTATION_RT: //0th row == visual right-hand side, 0th column == visual top
            transpose(img, img);
            flip(img, img, 1); //flip horizontally
            break;
        case    IMAGE_ORIENTATION_RB: //0th row == visual right-hand side, 0th column == visual bottom
            transpose(img, img);
            flip(img, img, -1); //flip both horizontally and vertically
            break;
        case    IMAGE_ORIENTATION_LB: //0th row == visual left-hand side, 0th column == visual bottom
            transpose(img, img);
            flip(img, img, 0); //flip vertically
            break;
        default:
            //by default the image read has normal (JPEG_ORIENTATION_TL) orientation
            break;
    }
}
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static void ApplyExifOrientation(const String& filename, Mat& img)
{
    int orientation = IMAGE_ORIENTATION_TL;

    if (filename.size() > 0)
    {
        std::ifstream stream( filename.c_str(), std::ios_base::in | std::ios_base::binary );
        ExifReader reader( stream );
        if( reader.parse() )
        {
            ExifEntry_t entry = reader.getTag( ORIENTATION );
            if (entry.tag != INVALID_TAG)
            {
                orientation = entry.field_u16; //orientation is unsigned short, so check field_u16
            }
        }
        stream.close();
    }

    ExifTransform(orientation, img);
}

static void ApplyExifOrientation(const Mat& buf, Mat& img)
{
    int orientation = IMAGE_ORIENTATION_TL;

    if( buf.isContinuous() )
    {
        ByteStreamBuffer bsb( reinterpret_cast<char*>(buf.data), buf.total() * buf.elemSize() );
        std::istream stream( &bsb );
        ExifReader reader( stream );
        if( reader.parse() )
        {
            ExifEntry_t entry = reader.getTag( ORIENTATION );
            if (entry.tag != INVALID_TAG)
            {
                orientation = entry.field_u16; //orientation is unsigned short, so check field_u16
            }
        }
    }

    ExifTransform(orientation, img);
}

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/**
 * Read an image into memory and return the information
 *
 * @param[in] filename File to load
 * @param[in] flags Flags
 * @param[in] hdrtype { LOAD_CVMAT=0,
 *                      LOAD_IMAGE=1,
 *                      LOAD_MAT=2
 *                    }
 * @param[in] mat Reference to C++ Mat object (If LOAD_MAT)
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 * @param[in] scale_denom Scale value
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 *
*/
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static void*
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imread_( const String& filename, int flags, int hdrtype, Mat* mat=0 )
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{
    IplImage* image = 0;
    CvMat *matrix = 0;
    Mat temp, *data = &temp;

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    /// Search for the relevant decoder to handle the imagery
    ImageDecoder decoder;

#ifdef HAVE_GDAL
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    if(flags != IMREAD_UNCHANGED && (flags & IMREAD_LOAD_GDAL) == IMREAD_LOAD_GDAL ){
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        decoder = GdalDecoder().newDecoder();
    }else{
#endif
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        decoder = findDecoder( filename );
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#ifdef HAVE_GDAL
    }
#endif

    /// if no decoder was found, return nothing.
    if( !decoder ){
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        return 0;
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    }

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    int scale_denom = 1;
    if( flags > IMREAD_LOAD_GDAL )
    {
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    if( flags & IMREAD_REDUCED_GRAYSCALE_2 )
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        scale_denom = 2;
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    else if( flags & IMREAD_REDUCED_GRAYSCALE_4 )
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        scale_denom = 4;
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    else if( flags & IMREAD_REDUCED_GRAYSCALE_8 )
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        scale_denom = 8;
    }

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    /// set the scale_denom in the driver
    decoder->setScale( scale_denom );

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    /// set the filename in the driver
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    decoder->setSource( filename );
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    CV_TRY
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    {
        // read the header to make sure it succeeds
        if( !decoder->readHeader() )
            return 0;
    }
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    CV_CATCH (cv::Exception, e)
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    {
        std::cerr << "imread_('" << filename << "'): can't read header: " << e.what() << std::endl << std::flush;
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        return 0;
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    }
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    CV_CATCH_ALL
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    {
        std::cerr << "imread_('" << filename << "'): can't read header: unknown exception" << std::endl << std::flush;
        return 0;
    }

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    // established the required input image size
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    Size size = validateInputImageSize(Size(decoder->width(), decoder->height()));
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    // grab the decoded type
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    int type = decoder->type();
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    if( (flags & IMREAD_LOAD_GDAL) != IMREAD_LOAD_GDAL && flags != IMREAD_UNCHANGED )
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    {
        if( (flags & CV_LOAD_IMAGE_ANYDEPTH) == 0 )
            type = CV_MAKETYPE(CV_8U, CV_MAT_CN(type));

        if( (flags & CV_LOAD_IMAGE_COLOR) != 0 ||
           ((flags & CV_LOAD_IMAGE_ANYCOLOR) != 0 && CV_MAT_CN(type) > 1) )
            type = CV_MAKETYPE(CV_MAT_DEPTH(type), 3);
        else
            type = CV_MAKETYPE(CV_MAT_DEPTH(type), 1);
    }

    if( hdrtype == LOAD_CVMAT || hdrtype == LOAD_MAT )
    {
        if( hdrtype == LOAD_CVMAT )
        {
            matrix = cvCreateMat( size.height, size.width, type );
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            temp = cvarrToMat( matrix );
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        }
        else
        {
            mat->create( size.height, size.width, type );
            data = mat;
        }
    }
    else
    {
        image = cvCreateImage( size, cvIplDepth(type), CV_MAT_CN(type) );
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        temp = cvarrToMat( image );
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    }

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    // read the image data
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    bool success = false;
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    CV_TRY
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    {
        if (decoder->readData(*data))
            success = true;
    }
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    CV_CATCH (cv::Exception, e)
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    {
        std::cerr << "imread_('" << filename << "'): can't read data: " << e.what() << std::endl << std::flush;
    }
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    CV_CATCH_ALL
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    {
        std::cerr << "imread_('" << filename << "'): can't read data: unknown exception" << std::endl << std::flush;
    }
    if (!success)
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    {
        cvReleaseImage( &image );
        cvReleaseMat( &matrix );
        if( mat )
            mat->release();
        return 0;
    }

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    if( decoder->setScale( scale_denom ) > 1 ) // if decoder is JpegDecoder then decoder->setScale always returns 1
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    {
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        resize( *mat, *mat, Size( size.width / scale_denom, size.height / scale_denom ), 0, 0, INTER_LINEAR_EXACT);
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    }

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    return hdrtype == LOAD_CVMAT ? (void*)matrix :
        hdrtype == LOAD_IMAGE ? (void*)image : (void*)mat;
}

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/**
* Read an image into memory and return the information
*
* @param[in] filename File to load
* @param[in] flags Flags
* @param[in] mats Reference to C++ vector<Mat> object to hold the images
*
*/
static bool
imreadmulti_(const String& filename, int flags, std::vector<Mat>& mats)
{
    /// Search for the relevant decoder to handle the imagery
    ImageDecoder decoder;

#ifdef HAVE_GDAL
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    if (flags != IMREAD_UNCHANGED && (flags & IMREAD_LOAD_GDAL) == IMREAD_LOAD_GDAL){
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        decoder = GdalDecoder().newDecoder();
    }
    else{
#endif
        decoder = findDecoder(filename);
#ifdef HAVE_GDAL
    }
#endif

    /// if no decoder was found, return nothing.
    if (!decoder){
        return 0;
    }

    /// set the filename in the driver
    decoder->setSource(filename);

    // read the header to make sure it succeeds
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    CV_TRY
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    {
        // read the header to make sure it succeeds
        if( !decoder->readHeader() )
            return 0;
    }
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    CV_CATCH (cv::Exception, e)
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    {
        std::cerr << "imreadmulti_('" << filename << "'): can't read header: " << e.what() << std::endl << std::flush;
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        return 0;
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    }
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    CV_CATCH_ALL
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    {
        std::cerr << "imreadmulti_('" << filename << "'): can't read header: unknown exception" << std::endl << std::flush;
        return 0;
    }
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    for (;;)
    {
        // grab the decoded type
        int type = decoder->type();
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        if( (flags & IMREAD_LOAD_GDAL) != IMREAD_LOAD_GDAL && flags != IMREAD_UNCHANGED )
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        {
            if ((flags & CV_LOAD_IMAGE_ANYDEPTH) == 0)
                type = CV_MAKETYPE(CV_8U, CV_MAT_CN(type));

            if ((flags & CV_LOAD_IMAGE_COLOR) != 0 ||
                ((flags & CV_LOAD_IMAGE_ANYCOLOR) != 0 && CV_MAT_CN(type) > 1))
                type = CV_MAKETYPE(CV_MAT_DEPTH(type), 3);
            else
                type = CV_MAKETYPE(CV_MAT_DEPTH(type), 1);
        }

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        // established the required input image size
        Size size = validateInputImageSize(Size(decoder->width(), decoder->height()));

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        // read the image data
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        Mat mat(size.height, size.width, type);
        bool success = false;
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        CV_TRY
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        {
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            if (decoder->readData(mat))
                success = true;
        }
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        CV_CATCH (cv::Exception, e)
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        {
            std::cerr << "imreadmulti_('" << filename << "'): can't read data: " << e.what() << std::endl << std::flush;
        }
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        CV_CATCH_ALL
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        {
            std::cerr << "imreadmulti_('" << filename << "'): can't read data: unknown exception" << std::endl << std::flush;
        }
        if (!success)
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            break;
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        // optionally rotate the data if EXIF' orientation flag says so
        if( (flags & IMREAD_IGNORE_ORIENTATION) == 0 && flags != IMREAD_UNCHANGED )
        {
            ApplyExifOrientation(filename, mat);
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        }

        mats.push_back(mat);
        if (!decoder->nextPage())
        {
            break;
        }
    }

    return !mats.empty();
}

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/**
 * Read an image
 *
 *  This function merely calls the actual implementation above and returns itself.
 *
 * @param[in] filename File to load
 * @param[in] flags Flags you wish to set.
*/
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Mat imread( const String& filename, int flags )
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{
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    CV_TRACE_FUNCTION();

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    /// create the basic container
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    Mat img;
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    /// load the data
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    imread_( filename, flags, LOAD_MAT, &img );
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    /// optionally rotate the data if EXIF' orientation flag says so
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    if( !img.empty() && (flags & IMREAD_IGNORE_ORIENTATION) == 0 && flags != IMREAD_UNCHANGED )
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    {
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        ApplyExifOrientation(filename, img);
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    }

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    /// return a reference to the data
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    return img;
}

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/**
* Read a multi-page image
*
*  This function merely calls the actual implementation above and returns itself.
*
* @param[in] filename File to load
* @param[in] mats Reference to C++ vector<Mat> object to hold the images
* @param[in] flags Flags you wish to set.
*
*/
bool imreadmulti(const String& filename, std::vector<Mat>& mats, int flags)
{
665 666
    CV_TRACE_FUNCTION();

667 668 669
    return imreadmulti_(filename, flags, mats);
}

670
static bool imwrite_( const String& filename, const std::vector<Mat>& img_vec,
671
                      const std::vector<int>& params, bool flipv )
672
{
673 674
    bool isMultiImg = img_vec.size() > 1;
    std::vector<Mat> write_vec;
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    ImageEncoder encoder = findEncoder( filename );
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    if( !encoder )
678 679
        CV_Error( CV_StsError, "could not find a writer for the specified extension" );

680
    for (size_t page = 0; page < img_vec.size(); page++)
681
    {
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        Mat image = img_vec[page];
        CV_Assert( image.channels() == 1 || image.channels() == 3 || image.channels() == 4 );

        Mat temp;
        if( !encoder->isFormatSupported(image.depth()) )
        {
            CV_Assert( encoder->isFormatSupported(CV_8U) );
            image.convertTo( temp, CV_8U );
            image = temp;
        }

        if( flipv )
        {
            flip(image, temp, 0);
            image = temp;
        }

        write_vec.push_back(image);
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    }

    encoder->setDestination( filename );
703
    CV_Assert(params.size() <= CV_IO_MAX_IMAGE_PARAMS*2);
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    bool code;
    if (!isMultiImg)
        code = encoder->write( write_vec[0], params );
    else
        code = encoder->writemulti( write_vec, params ); //to be implemented
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    //    CV_Assert( code );
    return code;
}

714
bool imwrite( const String& filename, InputArray _img,
715
              const std::vector<int>& params )
716
{
717
    CV_TRACE_FUNCTION();
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    std::vector<Mat> img_vec;
    //Did we get a Mat or a vector of Mats?
720
    if (_img.isMat() || _img.isUMat())
721
        img_vec.push_back(_img.getMat());
722
    else if (_img.isMatVector() || _img.isUMatVector())
723
        _img.getMatVector(img_vec);
724
    else
725
        CV_Error(Error::StsBadArg, "Unknown/unsupported input encountered");
726

727
    CV_Assert(!img_vec.empty());
728
    return imwrite_(filename, img_vec, params, false);
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}

static void*
imdecode_( const Mat& buf, int flags, int hdrtype, Mat* mat=0 )
{
734
    CV_Assert(!buf.empty() && buf.isContinuous());
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    IplImage* image = 0;
    CvMat *matrix = 0;
    Mat temp, *data = &temp;
738
    String filename;
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    ImageDecoder decoder = findDecoder(buf);
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    if( !decoder )
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        return 0;

    if( !decoder->setSource(buf) )
    {
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        filename = tempfile();
747
        FILE* f = fopen( filename.c_str(), "wb" );
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        if( !f )
            return 0;
        size_t bufSize = buf.cols*buf.rows*buf.elemSize();
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        if( fwrite( buf.ptr(), 1, bufSize, f ) != bufSize )
        {
            fclose( f );
            CV_Error( CV_StsError, "failed to write image data to temporary file" );
        }
        if( fclose(f) != 0 )
        {
            CV_Error( CV_StsError, "failed to write image data to temporary file" );
        }
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        decoder->setSource(filename);
    }

763
    bool success = false;
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    CV_TRY
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    {
        if (decoder->readHeader())
            success = true;
    }
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    CV_CATCH (cv::Exception, e)
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    {
        std::cerr << "imdecode_('" << filename << "'): can't read header: " << e.what() << std::endl << std::flush;
    }
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    CV_CATCH_ALL
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    {
        std::cerr << "imdecode_('" << filename << "'): can't read header: unknown exception" << std::endl << std::flush;
    }
    if (!success)
778
    {
779
        decoder.release();
780
        if (!filename.empty())
781
        {
782
            if (0 != remove(filename.c_str()))
783
            {
784
                std::cerr << "unable to remove temporary file:" << filename << std::endl << std::flush;
785 786
            }
        }
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        return 0;
    }

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    // established the required input image size
    Size size = validateInputImageSize(Size(decoder->width(), decoder->height()));
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    int type = decoder->type();
794
    if( (flags & IMREAD_LOAD_GDAL) != IMREAD_LOAD_GDAL && flags != IMREAD_UNCHANGED )
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    {
        if( (flags & CV_LOAD_IMAGE_ANYDEPTH) == 0 )
            type = CV_MAKETYPE(CV_8U, CV_MAT_CN(type));

        if( (flags & CV_LOAD_IMAGE_COLOR) != 0 ||
           ((flags & CV_LOAD_IMAGE_ANYCOLOR) != 0 && CV_MAT_CN(type) > 1) )
            type = CV_MAKETYPE(CV_MAT_DEPTH(type), 3);
        else
            type = CV_MAKETYPE(CV_MAT_DEPTH(type), 1);
    }

    if( hdrtype == LOAD_CVMAT || hdrtype == LOAD_MAT )
    {
        if( hdrtype == LOAD_CVMAT )
        {
            matrix = cvCreateMat( size.height, size.width, type );
            temp = cvarrToMat(matrix);
        }
        else
        {
            mat->create( size.height, size.width, type );
            data = mat;
        }
    }
    else
    {
        image = cvCreateImage( size, cvIplDepth(type), CV_MAT_CN(type) );
        temp = cvarrToMat(image);
    }

825
    success = false;
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    CV_TRY
827 828 829 830
    {
        if (decoder->readData(*data))
            success = true;
    }
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    CV_CATCH (cv::Exception, e)
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    {
        std::cerr << "imdecode_('" << filename << "'): can't read data: " << e.what() << std::endl << std::flush;
    }
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    CV_CATCH_ALL
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    {
        std::cerr << "imdecode_('" << filename << "'): can't read data: unknown exception" << std::endl << std::flush;
    }
839
    decoder.release();
840
    if (!filename.empty())
841
    {
842
        if (0 != remove(filename.c_str()))
843
        {
844
            std::cerr << "unable to remove temporary file:" << filename << std::endl << std::flush;
845 846
        }
    }
847

848
    if (!success)
849 850 851 852 853 854 855 856 857 858 859 860 861
    {
        cvReleaseImage( &image );
        cvReleaseMat( &matrix );
        if( mat )
            mat->release();
        return 0;
    }

    return hdrtype == LOAD_CVMAT ? (void*)matrix :
        hdrtype == LOAD_IMAGE ? (void*)image : (void*)mat;
}


862
Mat imdecode( InputArray _buf, int flags )
863
{
864 865
    CV_TRACE_FUNCTION();

866
    Mat buf = _buf.getMat(), img;
867
    imdecode_( buf, flags, LOAD_MAT, &img );
868 869 870 871 872 873 874

    /// optionally rotate the data if EXIF' orientation flag says so
    if( !img.empty() && (flags & IMREAD_IGNORE_ORIENTATION) == 0 && flags != IMREAD_UNCHANGED )
    {
        ApplyExifOrientation(buf, img);
    }

875 876
    return img;
}
877

878 879
Mat imdecode( InputArray _buf, int flags, Mat* dst )
{
880 881
    CV_TRACE_FUNCTION();

882 883 884
    Mat buf = _buf.getMat(), img;
    dst = dst ? dst : &img;
    imdecode_( buf, flags, LOAD_MAT, dst );
885 886 887 888 889 890 891

    /// optionally rotate the data if EXIF' orientation flag says so
    if( !dst->empty() && (flags & IMREAD_IGNORE_ORIENTATION) == 0 && flags != IMREAD_UNCHANGED )
    {
        ApplyExifOrientation(buf, *dst);
    }

892 893
    return *dst;
}
894

895
bool imencode( const String& ext, InputArray _image,
896
               std::vector<uchar>& buf, const std::vector<int>& params )
897
{
898 899
    CV_TRACE_FUNCTION();

900
    Mat image = _image.getMat();
901 902 903 904 905

    int channels = image.channels();
    CV_Assert( channels == 1 || channels == 3 || channels == 4 );

    ImageEncoder encoder = findEncoder( ext );
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    if( !encoder )
907 908 909 910 911
        CV_Error( CV_StsError, "could not find encoder for the specified extension" );

    if( !encoder->isFormatSupported(image.depth()) )
    {
        CV_Assert( encoder->isFormatSupported(CV_8U) );
912
        Mat temp;
913
        image.convertTo(temp, CV_8U);
914
        image = temp;
915 916 917 918 919 920
    }

    bool code;
    if( encoder->setDestination(buf) )
    {
        code = encoder->write(image, params);
921
        encoder->throwOnEror();
922 923 924 925
        CV_Assert( code );
    }
    else
    {
926
        String filename = tempfile();
927 928
        code = encoder->setDestination(filename);
        CV_Assert( code );
929

930
        code = encoder->write(image, params);
931
        encoder->throwOnEror();
932
        CV_Assert( code );
933

934
        FILE* f = fopen( filename.c_str(), "rb" );
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        CV_Assert(f != 0);
        fseek( f, 0, SEEK_END );
        long pos = ftell(f);
        buf.resize((size_t)pos);
        fseek( f, 0, SEEK_SET );
        buf.resize(fread( &buf[0], 1, buf.size(), f ));
        fclose(f);
942
        remove(filename.c_str());
943 944 945 946 947 948 949
    }
    return code;
}

}

/****************************************************************************************\
950
*                         Imgcodecs loading & saving function implementation            *
951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984
\****************************************************************************************/

CV_IMPL int
cvHaveImageReader( const char* filename )
{
    cv::ImageDecoder decoder = cv::findDecoder(filename);
    return !decoder.empty();
}

CV_IMPL int cvHaveImageWriter( const char* filename )
{
    cv::ImageEncoder encoder = cv::findEncoder(filename);
    return !encoder.empty();
}

CV_IMPL IplImage*
cvLoadImage( const char* filename, int iscolor )
{
    return (IplImage*)cv::imread_(filename, iscolor, cv::LOAD_IMAGE );
}

CV_IMPL CvMat*
cvLoadImageM( const char* filename, int iscolor )
{
    return (CvMat*)cv::imread_( filename, iscolor, cv::LOAD_CVMAT );
}

CV_IMPL int
cvSaveImage( const char* filename, const CvArr* arr, const int* _params )
{
    int i = 0;
    if( _params )
    {
        for( ; _params[i] > 0; i += 2 )
985
            CV_Assert(i < CV_IO_MAX_IMAGE_PARAMS*2); // Limit number of params for security reasons
986 987
    }
    return cv::imwrite_(filename, cv::cvarrToMat(arr),
988
        i > 0 ? std::vector<int>(_params, _params+i) : std::vector<int>(),
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        CV_IS_IMAGE(arr) && ((const IplImage*)arr)->origin == IPL_ORIGIN_BL );
}

/* decode image stored in the buffer */
CV_IMPL IplImage*
cvDecodeImage( const CvMat* _buf, int iscolor )
{
    CV_Assert( _buf && CV_IS_MAT_CONT(_buf->type) );
    cv::Mat buf(1, _buf->rows*_buf->cols*CV_ELEM_SIZE(_buf->type), CV_8U, _buf->data.ptr);
    return (IplImage*)cv::imdecode_(buf, iscolor, cv::LOAD_IMAGE );
}

CV_IMPL CvMat*
cvDecodeImageM( const CvMat* _buf, int iscolor )
{
    CV_Assert( _buf && CV_IS_MAT_CONT(_buf->type) );
    cv::Mat buf(1, _buf->rows*_buf->cols*CV_ELEM_SIZE(_buf->type), CV_8U, _buf->data.ptr);
    return (CvMat*)cv::imdecode_(buf, iscolor, cv::LOAD_CVMAT );
}

CV_IMPL CvMat*
cvEncodeImage( const char* ext, const CvArr* arr, const int* _params )
{
    int i = 0;
    if( _params )
    {
        for( ; _params[i] > 0; i += 2 )
1016
            CV_Assert(i < CV_IO_MAX_IMAGE_PARAMS*2); // Limit number of params for security reasons
1017 1018 1019 1020 1021 1022 1023 1024
    }
    cv::Mat img = cv::cvarrToMat(arr);
    if( CV_IS_IMAGE(arr) && ((const IplImage*)arr)->origin == IPL_ORIGIN_BL )
    {
        cv::Mat temp;
        cv::flip(img, temp, 0);
        img = temp;
    }
1025
    std::vector<uchar> buf;
1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037

    bool code = cv::imencode(ext, img, buf,
        i > 0 ? std::vector<int>(_params, _params+i) : std::vector<int>() );
    if( !code )
        return 0;
    CvMat* _buf = cvCreateMat(1, (int)buf.size(), CV_8U);
    memcpy( _buf->data.ptr, &buf[0], buf.size() );

    return _buf;
}

/* End of file. */