179b5deeb8
BUG=none TEST=none (No functional change) Review URL: http://codereview.chromium.org/149181 git-svn-id: svn://svn.chromium.org/chrome/trunk/src@19943 0039d316-1c4b-4281-b951-d872f2087c98
318 linhas
9.9 KiB
C++
318 linhas
9.9 KiB
C++
// Copyright (c) 2006-2008 The Chromium Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include "printing/emf_win.h"
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#include "base/gfx/rect.h"
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#include "base/logging.h"
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namespace printing {
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Emf::Emf() : emf_(NULL), hdc_(NULL) {
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}
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Emf::~Emf() {
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CloseEmf();
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DCHECK(!emf_ && !hdc_);
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}
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bool Emf::CreateDc(HDC sibling, const RECT* rect) {
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DCHECK(!emf_ && !hdc_);
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hdc_ = CreateEnhMetaFile(sibling, NULL, rect, NULL);
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DCHECK(hdc_);
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return hdc_ != NULL;
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}
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bool Emf::CreateFromData(const void* buffer, size_t size) {
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DCHECK(!emf_ && !hdc_);
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emf_ = SetEnhMetaFileBits(static_cast<unsigned>(size),
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reinterpret_cast<const BYTE*>(buffer));
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DCHECK(emf_);
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return emf_ != NULL;
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}
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bool Emf::CloseDc() {
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DCHECK(!emf_ && hdc_);
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emf_ = CloseEnhMetaFile(hdc_);
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DCHECK(emf_);
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hdc_ = NULL;
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return emf_ != NULL;
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}
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void Emf::CloseEmf() {
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DCHECK(!hdc_);
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if (emf_) {
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DeleteEnhMetaFile(emf_);
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emf_ = NULL;
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}
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}
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bool Emf::Playback(HDC hdc, const RECT* rect) const {
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DCHECK(emf_ && !hdc_);
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RECT bounds;
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if (!rect) {
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// Get the natural bounds of the EMF buffer.
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bounds = GetBounds().ToRECT();
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rect = &bounds;
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}
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return PlayEnhMetaFile(hdc, emf_, rect) != 0;
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}
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bool Emf::SafePlayback(HDC context) const {
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DCHECK(emf_ && !hdc_);
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XFORM base_matrix;
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if (!GetWorldTransform(context, &base_matrix)) {
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NOTREACHED();
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return false;
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}
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return EnumEnhMetaFile(context,
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emf_,
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&Emf::SafePlaybackProc,
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reinterpret_cast<void*>(&base_matrix),
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&GetBounds().ToRECT()) != 0;
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}
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gfx::Rect Emf::GetBounds() const {
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DCHECK(emf_ && !hdc_);
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ENHMETAHEADER header;
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if (GetEnhMetaFileHeader(emf_, sizeof(header), &header) != sizeof(header)) {
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NOTREACHED();
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return gfx::Rect();
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}
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if (header.rclBounds.left == 0 &&
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header.rclBounds.top == 0 &&
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header.rclBounds.right == -1 &&
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header.rclBounds.bottom == -1) {
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// A freshly created EMF buffer that has no drawing operation has invalid
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// bounds. Instead of having an (0,0) size, it has a (-1,-1) size. Detect
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// this special case and returns an empty Rect instead of an invalid one.
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return gfx::Rect();
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}
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return gfx::Rect(header.rclBounds.left,
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header.rclBounds.top,
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header.rclBounds.right - header.rclBounds.left,
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header.rclBounds.bottom - header.rclBounds.top);
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}
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unsigned Emf::GetDataSize() const {
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DCHECK(emf_ && !hdc_);
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return GetEnhMetaFileBits(emf_, 0, NULL);
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}
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bool Emf::GetData(void* buffer, size_t size) const {
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DCHECK(emf_ && !hdc_);
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DCHECK(buffer && size);
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unsigned size2 = GetEnhMetaFileBits(emf_, static_cast<unsigned>(size),
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reinterpret_cast<BYTE*>(buffer));
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DCHECK(size2 == size);
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return size2 == size && size2 != 0;
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}
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bool Emf::GetData(std::vector<uint8>* buffer) const {
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unsigned size = GetDataSize();
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if (!size)
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return false;
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buffer->resize(size);
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if (!GetData(&buffer->front(), size))
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return false;
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return true;
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}
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bool Emf::SaveTo(const std::wstring& filename) const {
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HANDLE file = CreateFile(filename.c_str(), GENERIC_WRITE,
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FILE_SHARE_READ | FILE_SHARE_WRITE, NULL,
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CREATE_ALWAYS, 0, NULL);
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if (file == INVALID_HANDLE_VALUE)
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return false;
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bool success = false;
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std::vector<uint8> buffer;
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if (GetData(&buffer)) {
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DWORD written = 0;
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if (WriteFile(file, &*buffer.begin(), static_cast<DWORD>(buffer.size()),
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&written, NULL) &&
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written == buffer.size()) {
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success = true;
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}
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}
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CloseHandle(file);
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return success;
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}
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int CALLBACK Emf::SafePlaybackProc(HDC hdc,
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HANDLETABLE* handle_table,
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const ENHMETARECORD* record,
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int objects_count,
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LPARAM param) {
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const XFORM* base_matrix = reinterpret_cast<const XFORM*>(param);
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EnumerationContext context;
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context.handle_table = handle_table;
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context.objects_count = objects_count;
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context.hdc = hdc;
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Record record_instance(&context, record);
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bool success = record_instance.SafePlayback(base_matrix);
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DCHECK(success);
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return 1;
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}
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Emf::Record::Record() {
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}
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Emf::Record::Record(const EnumerationContext* context,
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const ENHMETARECORD* record)
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: record_(record),
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context_(context) {
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DCHECK(record_);
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}
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bool Emf::Record::Play() const {
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return 0 != PlayEnhMetaFileRecord(context_->hdc,
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context_->handle_table,
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record_,
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context_->objects_count);
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}
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bool Emf::Record::SafePlayback(const XFORM* base_matrix) const {
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// For EMF field description, see [MS-EMF] Enhanced Metafile Format
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// Specification.
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//
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// This is the second major EMF breakage I get; the first one being
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// SetDCBrushColor/SetDCPenColor/DC_PEN/DC_BRUSH being silently ignored.
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//
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// This function is the guts of the fix for bug 1186598. Some printer drivers
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// somehow choke on certain EMF records, but calling the corresponding
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// function directly on the printer HDC is fine. Still, playing the EMF record
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// fails. Go figure.
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//
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// The main issue is that SetLayout is totally unsupported on these printers
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// (HP 4500/4700). I used to call SetLayout and I stopped. I found out this is
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// not sufficient because GDI32!PlayEnhMetaFile internally calls SetLayout(!)
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// Damn.
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//
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// So I resorted to manually parse the EMF records and play them one by one.
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// The issue with this method compared to using PlayEnhMetaFile to play back
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// an EMF buffer is that the later silently fixes the matrix to take in
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// account the matrix currently loaded at the time of the call.
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// The matrix magic is done transparently when using PlayEnhMetaFile but since
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// I'm processing one field at a time, I need to do the fixup myself. Note
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// that PlayEnhMetaFileRecord doesn't fix the matrix correctly even when
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// called inside an EnumEnhMetaFile loop. Go figure (bis).
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//
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// So when I see a EMR_SETWORLDTRANSFORM and EMR_MODIFYWORLDTRANSFORM, I need
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// to fix the matrix according to the matrix previously loaded before playing
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// back the buffer. Otherwise, the previously loaded matrix would be ignored
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// and the EMF buffer would always be played back at its native resolution.
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// Duh.
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//
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// I also use this opportunity to skip over eventual EMR_SETLAYOUT record that
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// could remain.
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//
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// Note: I should probably care about view ports and clipping, eventually.
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bool res;
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switch (record()->iType) {
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case EMR_SETWORLDTRANSFORM: {
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DCHECK_EQ(record()->nSize, sizeof(DWORD) * 2 + sizeof(XFORM));
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const XFORM* xform = reinterpret_cast<const XFORM*>(record()->dParm);
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HDC hdc = context_->hdc;
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if (base_matrix) {
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res = 0 != SetWorldTransform(hdc, base_matrix) &&
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ModifyWorldTransform(hdc, xform, MWT_LEFTMULTIPLY);
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} else {
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res = 0 != SetWorldTransform(hdc, xform);
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}
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break;
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}
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case EMR_MODIFYWORLDTRANSFORM: {
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DCHECK_EQ(record()->nSize,
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sizeof(DWORD) * 2 + sizeof(XFORM) + sizeof(DWORD));
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const XFORM* xform = reinterpret_cast<const XFORM*>(record()->dParm);
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const DWORD* option = reinterpret_cast<const DWORD*>(xform + 1);
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HDC hdc = context_->hdc;
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switch (*option) {
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case MWT_IDENTITY:
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if (base_matrix) {
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res = 0 != SetWorldTransform(hdc, base_matrix);
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} else {
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res = 0 != ModifyWorldTransform(hdc, xform, MWT_IDENTITY);
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}
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break;
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case MWT_LEFTMULTIPLY:
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case MWT_RIGHTMULTIPLY:
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res = 0 != ModifyWorldTransform(hdc, xform, *option);
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break;
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case 4: // MWT_SET
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if (base_matrix) {
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res = 0 != SetWorldTransform(hdc, base_matrix) &&
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ModifyWorldTransform(hdc, xform, MWT_LEFTMULTIPLY);
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} else {
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res = 0 != SetWorldTransform(hdc, xform);
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}
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break;
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default:
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res = false;
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break;
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}
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break;
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}
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case EMR_SETLAYOUT:
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// Ignore it.
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res = true;
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break;
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default: {
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res = Play();
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break;
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}
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}
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return res;
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}
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Emf::Enumerator::Enumerator(const Emf& emf, HDC context, const RECT* rect) {
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context_.handle_table = NULL;
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context_.objects_count = 0;
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context_.hdc = NULL;
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items_.clear();
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if (!EnumEnhMetaFile(context,
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emf.emf(),
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&Emf::Enumerator::EnhMetaFileProc,
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reinterpret_cast<void*>(this),
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rect)) {
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NOTREACHED();
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items_.clear();
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}
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DCHECK_EQ(context_.hdc, context);
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}
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Emf::Enumerator::const_iterator Emf::Enumerator::begin() const {
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return items_.begin();
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}
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Emf::Enumerator::const_iterator Emf::Enumerator::end() const {
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return items_.end();
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}
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int CALLBACK Emf::Enumerator::EnhMetaFileProc(HDC hdc,
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HANDLETABLE* handle_table,
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const ENHMETARECORD* record,
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int objects_count,
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LPARAM param) {
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Enumerator& emf = *reinterpret_cast<Enumerator*>(param);
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if (!emf.context_.handle_table) {
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DCHECK(!emf.context_.handle_table);
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DCHECK(!emf.context_.objects_count);
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emf.context_.handle_table = handle_table;
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emf.context_.objects_count = objects_count;
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emf.context_.hdc = hdc;
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} else {
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DCHECK_EQ(emf.context_.handle_table, handle_table);
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DCHECK_EQ(emf.context_.objects_count, objects_count);
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DCHECK_EQ(emf.context_.hdc, hdc);
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}
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emf.items_.push_back(Record(&emf.context_, record));
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return 1;
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}
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} // namespace printing
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