543 lines
19 KiB
C++
543 lines
19 KiB
C++
/*
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* File: ximajpg.cpp
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* Purpose: Platform Independent JPEG Image Class Loader and Writer
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* 07/Aug/2001 Davide Pizzolato - www.xdp.it
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* CxImage version 7.0.2 07/Feb/2011
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*/
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#include "ximajpg.h"
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#if CXIMAGE_SUPPORT_JPG
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#ifdef _LINUX
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#include <jmorecfg.h>
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#else
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#include "../jpeg/jmorecfg.h"
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#endif
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#include "ximaiter.h"
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#include <setjmp.h>
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struct jpg_error_mgr {
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struct jpeg_error_mgr pub; /* "public" fields */
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jmp_buf setjmp_buffer; /* for return to caller */
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char* buffer; /* error message <CSC>*/
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};
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typedef jpg_error_mgr *jpg_error_ptr;
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////////////////////////////////////////////////////////////////////////////////
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// Here's the routine that will replace the standard error_exit method:
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////////////////////////////////////////////////////////////////////////////////
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static void
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ima_jpeg_error_exit (j_common_ptr cinfo)
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{
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/* cinfo->err really points to a my_error_mgr struct, so coerce pointer */
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jpg_error_ptr myerr = (jpg_error_ptr) cinfo->err;
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/* Create the message */
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myerr->pub.format_message (cinfo, myerr->buffer);
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/* Send it to stderr, adding a newline */
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/* Return control to the setjmp point */
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longjmp(myerr->setjmp_buffer, 1);
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}
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////////////////////////////////////////////////////////////////////////////////
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CxImageJPG::CxImageJPG(): CxImage(CXIMAGE_FORMAT_JPG)
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{
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#if CXIMAGEJPG_SUPPORT_EXIF
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m_exif = NULL;
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memset(&info.ExifInfo, 0, sizeof(EXIFINFO));
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#endif
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}
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////////////////////////////////////////////////////////////////////////////////
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CxImageJPG::~CxImageJPG()
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{
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#if CXIMAGEJPG_SUPPORT_EXIF
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if (m_exif) delete m_exif;
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#endif
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}
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////////////////////////////////////////////////////////////////////////////////
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#if CXIMAGEJPG_SUPPORT_EXIF
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bool CxImageJPG::DecodeExif(CxFile * hFile)
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{
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m_exif = new CxExifInfo(&info.ExifInfo);
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if (m_exif){
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int32_t pos=hFile->Tell();
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m_exif->DecodeExif(hFile);
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hFile->Seek(pos,SEEK_SET);
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return m_exif->m_exifinfo->IsExif;
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} else {
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return false;
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}
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}
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////////////////////////////////////////////////////////////////////////////////
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bool CxImageJPG::GetExifThumbnail(const TCHAR *filename, const TCHAR *outname, int32_t type)
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{
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CxIOFile file;
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if (!file.Open(filename, _T("rb"))) return false;
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CxExifInfo exif(&info.ExifInfo);
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exif.DecodeExif(&file);
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if (info.ExifInfo.IsExif && info.ExifInfo.ThumbnailPointer && info.ExifInfo.ThumbnailSize > 0)
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{ // have a thumbnail - check whether it needs rotating or resizing
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// TODO: Write a fast routine to read the jpeg header to get the width and height
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CxImage image(info.ExifInfo.ThumbnailPointer, info.ExifInfo.ThumbnailSize, CXIMAGE_FORMAT_JPG);
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if (image.IsValid())
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{
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if (image.GetWidth() > 256 || image.GetHeight() > 256)
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{ // resize the image
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// float amount = 256.0f / max(image.GetWidth(), image.GetHeight());
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// image.Resample((int32_t)(image.GetWidth() * amount), (int32_t)(image.GetHeight() * amount), 0);
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}
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#if CXIMAGE_SUPPORT_TRANSFORMATION
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if (info.ExifInfo.Orientation != 1)
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image.RotateExif(info.ExifInfo.Orientation);
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#endif
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#if CXIMAGE_SUPPORT_ENCODE
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return image.Save(outname, CXIMAGE_FORMAT_JPG);
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#endif
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}
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// nice and fast, but we can't resize :(
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/*
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FILE *hFileWrite;
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if ((hFileWrite=fopen(outname, "wb")) != NULL)
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{
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fwrite(m_exifinfo.ThumbnailPointer, m_exifinfo.ThumbnailSize, 1, hFileWrite);
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fclose(hFileWrite);
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return true;
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}*/
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}
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return false;
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}
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#endif //CXIMAGEJPG_SUPPORT_EXIF
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////////////////////////////////////////////////////////////////////////////////
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#if CXIMAGE_SUPPORT_DECODE
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////////////////////////////////////////////////////////////////////////////////
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bool CxImageJPG::Decode(CxFile * hFile)
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{
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bool is_exif = false;
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#if CXIMAGEJPG_SUPPORT_EXIF
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is_exif = DecodeExif(hFile);
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#endif
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CImageIterator iter(this);
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/* This struct contains the JPEG decompression parameters and pointers to
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* working space (which is allocated as needed by the JPEG library).
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*/
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struct jpeg_decompress_struct cinfo;
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/* We use our private extension JPEG error handler. <CSC> */
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struct jpg_error_mgr jerr;
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jerr.buffer=info.szLastError;
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/* More stuff */
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JSAMPARRAY buffer; /* Output row buffer */
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int32_t row_stride; /* physical row width in output buffer */
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/* In this example we want to open the input file before doing anything else,
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* so that the setjmp() error recovery below can assume the file is open.
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* VERY IMPORTANT: use "b" option to fopen() if you are on a machine that
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* requires it in order to read binary files.
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*/
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/* Step 1: allocate and initialize JPEG decompression object */
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/* We set up the normal JPEG error routines, then override error_exit. */
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cinfo.err = jpeg_std_error(&jerr.pub);
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jerr.pub.error_exit = ima_jpeg_error_exit;
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CxFileJpg src(hFile);
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/* Establish the setjmp return context for my_error_exit to use. */
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if (setjmp(jerr.setjmp_buffer)) {
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/* If we get here, the JPEG code has signaled an error.
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* We need to clean up the JPEG object, close the input file, and return.
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*/
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jpeg_destroy_decompress(&cinfo);
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return 0;
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}
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/* Now we can initialize the JPEG decompression object. */
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jpeg_create_decompress(&cinfo);
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/* Step 2: specify data source (eg, a file) */
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//jpeg_stdio_src(&cinfo, infile);
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cinfo.src = &src;
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/* Step 3: read file parameters with jpeg_read_header() */
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(void) jpeg_read_header(&cinfo, TRUE);
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/* Step 4 <chupeev> handle decoder options*/
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uint32_t dwCodecOptions = GetCodecOption(CXIMAGE_FORMAT_JPG); //[nm_114]
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if ((dwCodecOptions & DECODE_GRAYSCALE) != 0)
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cinfo.out_color_space = JCS_GRAYSCALE;
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if ((dwCodecOptions & DECODE_QUANTIZE) != 0) {
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cinfo.quantize_colors = TRUE;
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cinfo.desired_number_of_colors = GetJpegQuality();
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}
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if ((dwCodecOptions & DECODE_DITHER) != 0)
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cinfo.dither_mode = m_nDither;
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if ((dwCodecOptions & DECODE_ONEPASS) != 0)
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cinfo.two_pass_quantize = FALSE;
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if ((dwCodecOptions & DECODE_NOSMOOTH) != 0)
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cinfo.do_fancy_upsampling = FALSE;
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//<DP>: Load true color images as RGB (no quantize)
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/* Step 4: set parameters for decompression */
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/* if (cinfo.jpeg_color_space!=JCS_GRAYSCALE) {
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* cinfo.quantize_colors = TRUE;
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* cinfo.desired_number_of_colors = 128;
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*}
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*/ //</DP>
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cinfo.scale_num = 1;
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// Set the scale <ignacio>
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cinfo.scale_denom = GetJpegScale();
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// Borrowed the idea from GIF implementation <ignacio>
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if (info.nEscape == -1) {
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// Return output dimensions only
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jpeg_calc_output_dimensions(&cinfo);
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head.biWidth = cinfo.output_width;
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head.biHeight = cinfo.output_height;
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info.dwType = CXIMAGE_FORMAT_JPG;
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jpeg_destroy_decompress(&cinfo);
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return true;
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}
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/* Step 5: Start decompressor */
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jpeg_start_decompress(&cinfo);
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/* We may need to do some setup of our own at this point before reading
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* the data. After jpeg_start_decompress() we have the correct scaled
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* output image dimensions available, as well as the output colormap
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* if we asked for color quantization.
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*/
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//Create the image using output dimensions <ignacio>
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//Create(cinfo.image_width, cinfo.image_height, 8*cinfo.output_components, CXIMAGE_FORMAT_JPG);
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Create(cinfo.output_width, cinfo.output_height, 8*cinfo.output_components, CXIMAGE_FORMAT_JPG);
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if (!pDib) longjmp(jerr.setjmp_buffer, 1); //<DP> check if the image has been created
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if (is_exif){
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#if CXIMAGEJPG_SUPPORT_EXIF
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if ((info.ExifInfo.Xresolution != 0.0) && (info.ExifInfo.ResolutionUnit != 0))
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SetXDPI((int32_t)(info.ExifInfo.Xresolution/info.ExifInfo.ResolutionUnit));
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if ((info.ExifInfo.Yresolution != 0.0) && (info.ExifInfo.ResolutionUnit != 0))
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SetYDPI((int32_t)(info.ExifInfo.Yresolution/info.ExifInfo.ResolutionUnit));
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#endif
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} else {
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switch (cinfo.density_unit) {
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case 0: // [andy] fix for aspect ratio...
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if((cinfo.Y_density > 0) && (cinfo.X_density > 0)){
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SetYDPI((int32_t)(GetXDPI()*(float(cinfo.Y_density)/float(cinfo.X_density))));
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}
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break;
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case 2: // [andy] fix: cinfo.X/Y_density is pixels per centimeter
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SetXDPI((int32_t)floor(cinfo.X_density * 2.54 + 0.5));
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SetYDPI((int32_t)floor(cinfo.Y_density * 2.54 + 0.5));
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break;
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default:
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SetXDPI(cinfo.X_density);
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SetYDPI(cinfo.Y_density);
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}
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}
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if (cinfo.out_color_space==JCS_GRAYSCALE){
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SetGrayPalette();
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head.biClrUsed =256;
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} else {
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if (cinfo.quantize_colors){
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SetPalette(cinfo.actual_number_of_colors, cinfo.colormap[0], cinfo.colormap[1], cinfo.colormap[2]);
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head.biClrUsed=cinfo.actual_number_of_colors;
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} else {
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head.biClrUsed=0;
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}
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}
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/* JSAMPLEs per row in output buffer */
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row_stride = cinfo.output_width * cinfo.output_components;
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/* Make a one-row-high sample array that will go away when done with image */
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buffer = (*cinfo.mem->alloc_sarray)
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((j_common_ptr) &cinfo, JPOOL_IMAGE, row_stride, 1);
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/* Step 6: while (scan lines remain to be read) */
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/* jpeg_read_scanlines(...); */
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/* Here we use the library's state variable cinfo.output_scanline as the
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* loop counter, so that we don't have to keep track ourselves.
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*/
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iter.Upset();
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while (cinfo.output_scanline < cinfo.output_height) {
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if (info.nEscape) longjmp(jerr.setjmp_buffer, 1); // <vho> - cancel decoding
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(void) jpeg_read_scanlines(&cinfo, buffer, 1);
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// info.nProgress = (int32_t)(100*cinfo.output_scanline/cinfo.output_height);
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//<DP> Step 6a: CMYK->RGB */
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if ((cinfo.num_components==4)&&(cinfo.quantize_colors==FALSE)){
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uint8_t k,*dst,*src;
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dst=iter.GetRow();
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src=buffer[0];
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for(int32_t x3=0,x4=0; x3<(int32_t)info.dwEffWidth && x4<row_stride; x3+=3, x4+=4){
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k=src[x4+3];
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dst[x3] =(uint8_t)((k * src[x4+2])/255);
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dst[x3+1]=(uint8_t)((k * src[x4+1])/255);
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dst[x3+2]=(uint8_t)((k * src[x4+0])/255);
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}
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} else {
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/* Assume put_scanline_someplace wants a pointer and sample count. */
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iter.SetRow(buffer[0], row_stride);
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}
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iter.PrevRow();
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}
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/* Step 7: Finish decompression */
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(void) jpeg_finish_decompress(&cinfo);
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/* We can ignore the return value since suspension is not possible
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* with the stdio data source.
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*/
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//<DP> Step 7A: Swap red and blue components
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// not necessary if swapped red and blue definition in jmorecfg.h;ln322 <W. Morrison>
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if ((cinfo.num_components==3)&&(cinfo.quantize_colors==FALSE)){
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uint8_t* r0=GetBits();
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for(int32_t y=0;y<head.biHeight;y++){
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if (info.nEscape) longjmp(jerr.setjmp_buffer, 1); // <vho> - cancel decoding
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RGBtoBGR(r0,3*head.biWidth);
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r0+=info.dwEffWidth;
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}
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}
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/* Step 8: Release JPEG decompression object */
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/* This is an important step since it will release a good deal of memory. */
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jpeg_destroy_decompress(&cinfo);
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/* At this point you may want to check to see whether any corrupt-data
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* warnings occurred (test whether jerr.pub.num_warnings is nonzero).
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*/
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/* And we're done! */
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return true;
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}
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////////////////////////////////////////////////////////////////////////////////
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#endif //CXIMAGE_SUPPORT_DECODE
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////////////////////////////////////////////////////////////////////////////////
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#if CXIMAGE_SUPPORT_ENCODE
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////////////////////////////////////////////////////////////////////////////////
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bool CxImageJPG::Encode(CxFile * hFile)
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{
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if (EncodeSafeCheck(hFile)) return false;
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if (head.biClrUsed!=0 && !IsGrayScale()){
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strcpy(info.szLastError,"JPEG can save only RGB or GreyScale images");
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return false;
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}
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// necessary for EXIF, and for roll backs
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int32_t pos=hFile->Tell();
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/* This struct contains the JPEG compression parameters and pointers to
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* working space (which is allocated as needed by the JPEG library).
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* It is possible to have several such structures, representing multiple
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* compression/decompression processes, in existence at once. We refer
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* to any one struct (and its associated working data) as a "JPEG object".
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*/
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struct jpeg_compress_struct cinfo;
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/* This struct represents a JPEG error handler. It is declared separately
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* because applications often want to supply a specialized error handler
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* (see the second half of this file for an example). But here we just
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* take the easy way out and use the standard error handler, which will
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* print a message on stderr and call exit() if compression fails.
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* Note that this struct must live as int32_t as the main JPEG parameter
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* struct, to avoid dangling-pointer problems.
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*/
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//struct jpeg_error_mgr jerr;
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/* We use our private extension JPEG error handler. <CSC> */
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struct jpg_error_mgr jerr;
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jerr.buffer=info.szLastError;
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/* More stuff */
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int32_t row_stride; /* physical row width in image buffer */
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JSAMPARRAY buffer; /* Output row buffer */
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/* Step 1: allocate and initialize JPEG compression object */
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/* We have to set up the error handler first, in case the initialization
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* step fails. (Unlikely, but it could happen if you are out of memory.)
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* This routine fills in the contents of struct jerr, and returns jerr's
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* address which we place into the link field in cinfo.
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*/
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//cinfo.err = jpeg_std_error(&jerr); <CSC>
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/* We set up the normal JPEG error routines, then override error_exit. */
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cinfo.err = jpeg_std_error(&jerr.pub);
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jerr.pub.error_exit = ima_jpeg_error_exit;
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/* Establish the setjmp return context for my_error_exit to use. */
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if (setjmp(jerr.setjmp_buffer)) {
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/* If we get here, the JPEG code has signaled an error.
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* We need to clean up the JPEG object, close the input file, and return.
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*/
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strcpy(info.szLastError, jerr.buffer); //<CSC>
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jpeg_destroy_compress(&cinfo);
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return 0;
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}
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/* Now we can initialize the JPEG compression object. */
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jpeg_create_compress(&cinfo);
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/* Step 2: specify data destination (eg, a file) */
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/* Note: steps 2 and 3 can be done in either order. */
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/* Here we use the library-supplied code to send compressed data to a
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* stdio stream. You can also write your own code to do something else.
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* VERY IMPORTANT: use "b" option to fopen() if you are on a machine that
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* requires it in order to write binary files.
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*/
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//jpeg_stdio_dest(&cinfo, outfile);
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CxFileJpg dest(hFile);
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cinfo.dest = &dest;
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/* Step 3: set parameters for compression */
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/* First we supply a description of the input image.
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* Four fields of the cinfo struct must be filled in:
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*/
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cinfo.image_width = GetWidth(); // image width and height, in pixels
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cinfo.image_height = GetHeight();
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if (IsGrayScale()){
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cinfo.input_components = 1; // # of color components per pixel
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cinfo.in_color_space = JCS_GRAYSCALE; /* colorspace of input image */
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} else {
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cinfo.input_components = 3; // # of color components per pixel
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cinfo.in_color_space = JCS_RGB; /* colorspace of input image */
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}
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/* Now use the library's routine to set default compression parameters.
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* (You must set at least cinfo.in_color_space before calling this,
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* since the defaults depend on the source color space.)
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*/
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jpeg_set_defaults(&cinfo);
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/* Now you can set any non-default parameters you wish to.
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* Here we just illustrate the use of quality (quantization table) scaling:
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*/
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uint32_t dwCodecOptions = GetCodecOption(CXIMAGE_FORMAT_JPG); //[nm_114]
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//#ifdef C_ARITH_CODING_SUPPORTED
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if ((dwCodecOptions & ENCODE_ARITHMETIC) != 0)
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cinfo.arith_code = TRUE;
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//#endif
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//#ifdef ENTROPY_OPT_SUPPORTED
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if ((dwCodecOptions & ENCODE_OPTIMIZE) != 0)
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cinfo.optimize_coding = TRUE;
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//#endif
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if ((dwCodecOptions & ENCODE_GRAYSCALE) != 0)
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jpeg_set_colorspace(&cinfo, JCS_GRAYSCALE);
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if ((dwCodecOptions & ENCODE_SMOOTHING) != 0)
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cinfo.smoothing_factor = m_nSmoothing;
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jpeg_set_quality(&cinfo, GetJpegQuality(), (dwCodecOptions & ENCODE_BASELINE) != 0);
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//#ifdef C_PROGRESSIVE_SUPPORTED
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if ((dwCodecOptions & ENCODE_PROGRESSIVE) != 0)
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jpeg_simple_progression(&cinfo);
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//#endif
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#ifdef C_LOSSLESS_SUPPORTED
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if ((dwCodecOptions & ENCODE_LOSSLESS) != 0)
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jpeg_simple_lossless(&cinfo, m_nPredictor, m_nPointTransform);
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#endif
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//SetCodecOption(ENCODE_SUBSAMPLE_444 | GetCodecOption(CXIMAGE_FORMAT_JPG),CXIMAGE_FORMAT_JPG);
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// 2x2, 1x1, 1x1 (4:1:1) : High (default sub sampling)
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cinfo.comp_info[0].h_samp_factor = 2;
|
|
cinfo.comp_info[0].v_samp_factor = 2;
|
|
cinfo.comp_info[1].h_samp_factor = 1;
|
|
cinfo.comp_info[1].v_samp_factor = 1;
|
|
cinfo.comp_info[2].h_samp_factor = 1;
|
|
cinfo.comp_info[2].v_samp_factor = 1;
|
|
|
|
if ((dwCodecOptions & ENCODE_SUBSAMPLE_422) != 0){
|
|
// 2x1, 1x1, 1x1 (4:2:2) : Medium
|
|
cinfo.comp_info[0].h_samp_factor = 2;
|
|
cinfo.comp_info[0].v_samp_factor = 1;
|
|
cinfo.comp_info[1].h_samp_factor = 1;
|
|
cinfo.comp_info[1].v_samp_factor = 1;
|
|
cinfo.comp_info[2].h_samp_factor = 1;
|
|
cinfo.comp_info[2].v_samp_factor = 1;
|
|
}
|
|
|
|
if ((dwCodecOptions & ENCODE_SUBSAMPLE_444) != 0){
|
|
// 1x1 1x1 1x1 (4:4:4) : None
|
|
cinfo.comp_info[0].h_samp_factor = 1;
|
|
cinfo.comp_info[0].v_samp_factor = 1;
|
|
cinfo.comp_info[1].h_samp_factor = 1;
|
|
cinfo.comp_info[1].v_samp_factor = 1;
|
|
cinfo.comp_info[2].h_samp_factor = 1;
|
|
cinfo.comp_info[2].v_samp_factor = 1;
|
|
}
|
|
|
|
cinfo.density_unit=1;
|
|
cinfo.X_density=(uint16_t)GetXDPI();
|
|
cinfo.Y_density=(uint16_t)GetYDPI();
|
|
|
|
/* Step 4: Start compressor */
|
|
/* TRUE ensures that we will write a complete interchange-JPEG file.
|
|
* Pass TRUE unless you are very sure of what you're doing.
|
|
*/
|
|
jpeg_start_compress(&cinfo, TRUE);
|
|
|
|
/* Step 5: while (scan lines remain to be written) */
|
|
/* jpeg_write_scanlines(...); */
|
|
/* Here we use the library's state variable cinfo.next_scanline as the
|
|
* loop counter, so that we don't have to keep track ourselves.
|
|
* To keep things simple, we pass one scanline per call; you can pass
|
|
* more if you wish, though.
|
|
*/
|
|
row_stride = info.dwEffWidth; /* JSAMPLEs per row in image_buffer */
|
|
|
|
//<DP> "8+row_stride" fix heap deallocation problem during debug???
|
|
buffer = (*cinfo.mem->alloc_sarray)
|
|
((j_common_ptr) &cinfo, JPOOL_IMAGE, 8+row_stride, 1);
|
|
|
|
CImageIterator iter(this);
|
|
|
|
iter.Upset();
|
|
while (cinfo.next_scanline < cinfo.image_height) {
|
|
// info.nProgress = (int32_t)(100*cinfo.next_scanline/cinfo.image_height);
|
|
iter.GetRow(buffer[0], row_stride);
|
|
// not necessary if swapped red and blue definition in jmorecfg.h;ln322 <W. Morrison>
|
|
if (head.biClrUsed==0){ // swap R & B for RGB images
|
|
RGBtoBGR(buffer[0], row_stride); // Lance : 1998/09/01 : Bug ID: EXP-2.1.1-9
|
|
}
|
|
iter.PrevRow();
|
|
(void) jpeg_write_scanlines(&cinfo, buffer, 1);
|
|
}
|
|
|
|
/* Step 6: Finish compression */
|
|
jpeg_finish_compress(&cinfo);
|
|
|
|
/* Step 7: release JPEG compression object */
|
|
/* This is an important step since it will release a good deal of memory. */
|
|
jpeg_destroy_compress(&cinfo);
|
|
|
|
|
|
#if CXIMAGEJPG_SUPPORT_EXIF
|
|
if (m_exif && m_exif->m_exifinfo->IsExif){
|
|
// discard useless sections (if any) read from original image
|
|
m_exif->DiscardAllButExif();
|
|
// read new created image, to split the sections
|
|
hFile->Seek(pos,SEEK_SET);
|
|
m_exif->DecodeExif(hFile,EXIF_READ_IMAGE);
|
|
// save back the image, adding EXIF section
|
|
hFile->Seek(pos,SEEK_SET);
|
|
m_exif->EncodeExif(hFile);
|
|
}
|
|
#endif
|
|
|
|
|
|
/* And we're done! */
|
|
return true;
|
|
}
|
|
////////////////////////////////////////////////////////////////////////////////
|
|
#endif // CXIMAGE_SUPPORT_ENCODE
|
|
////////////////////////////////////////////////////////////////////////////////
|
|
#endif // CXIMAGE_SUPPORT_JPG
|
|
|