296 lines
10 KiB
C++
296 lines
10 KiB
C++
#include "ImageBlock.h"
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#include <FontCacheManager.h>
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#include <GfxRenderer.h>
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#include <Logging.h>
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#include <Serialization.h>
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#include <cstdlib>
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#include "Epub/converters/DirectPixelWriter.h"
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#include "Epub/converters/ImageDecoderFactory.h"
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// Cache file format:
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// - uint16_t width
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// - uint16_t height
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// - uint8_t pixels[...] - 2 bits per pixel, packed (4 pixels per byte), row-major order
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ImageBlock::ImageBlock(const std::string& imagePath, int16_t width, int16_t height)
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: imagePath(imagePath), width(width), height(height) {}
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bool ImageBlock::imageExists() const { return Storage.exists(imagePath.c_str()); }
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namespace {
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std::string getCachePath(const std::string& imagePath) {
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// Replace extension with .pxc (pixel cache)
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size_t dotPos = imagePath.rfind('.');
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if (dotPos != std::string::npos) {
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return imagePath.substr(0, dotPos) + ".pxc";
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}
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return imagePath + ".pxc";
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}
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bool readValidCacheHeader(HalFile& cacheFile, const int expectedWidth, const int expectedHeight, uint16_t& cachedWidth,
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uint16_t& cachedHeight) {
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if (cacheFile.read(&cachedWidth, 2) != 2 || cacheFile.read(&cachedHeight, 2) != 2) {
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return false;
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}
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const int widthDiff = abs(cachedWidth - expectedWidth);
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const int heightDiff = abs(cachedHeight - expectedHeight);
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if (widthDiff > 1 || heightDiff > 1) {
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return false;
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}
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const size_t bytesPerRow = (cachedWidth + 3) / 4;
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const size_t expectedSize = 4 + bytesPerRow * cachedHeight;
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return cacheFile.size() >= expectedSize;
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}
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// Pages are deserialized afresh on each visit. Keep a bounded, allocation-free
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// record so an image that failed renders its placeholder directly for the rest
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// of the reader session instead of paying another placeholder refresh and
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// decode. The reader clears this on entry so transient memory/storage failures
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// are retried.
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constexpr size_t MAX_SESSION_IMAGE_FAILURES = 16;
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uint64_t failedImageHashes[MAX_SESSION_IMAGE_FAILURES];
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size_t failedImageCount = 0;
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uint64_t imagePathHash(const std::string& path) {
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uint64_t hash = 14695981039346656037ull;
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for (const char c : path) {
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hash ^= static_cast<uint8_t>(c);
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hash *= 1099511628211ull;
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}
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return hash;
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}
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bool imageFailedThisSession(const std::string& path) {
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const uint64_t hash = imagePathHash(path);
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for (size_t i = 0; i < failedImageCount; i++) {
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if (failedImageHashes[i] == hash) return true;
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}
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return false;
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}
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void rememberImageFailure(const std::string& path) {
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if (failedImageCount == MAX_SESSION_IMAGE_FAILURES || imageFailedThisSession(path)) return;
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failedImageHashes[failedImageCount++] = imagePathHash(path);
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}
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bool renderFromCache(GfxRenderer& renderer, const std::string& cachePath, int x, int y, int expectedWidth,
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int expectedHeight) {
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HalFile cacheFile;
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if (!Storage.openFileForRead("IMG", cachePath, cacheFile)) {
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return false;
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}
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uint16_t cachedWidth, cachedHeight;
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if (!readValidCacheHeader(cacheFile, expectedWidth, expectedHeight, cachedWidth, cachedHeight)) {
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LOG_ERR("IMG", "Invalid image cache: %s", cachePath.c_str());
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return false;
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}
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// Use cached dimensions for rendering (they're the actual decoded size)
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expectedWidth = cachedWidth;
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expectedHeight = cachedHeight;
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LOG_DBG("IMG", "Loading from cache: %s (%dx%d)", cachePath.c_str(), cachedWidth, cachedHeight);
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// Read several rows per SD access. A full-page image is re-rendered on every
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// grayscale strip pass (~14x per page), and a one-row-per-read loop here means
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// cachedHeight (~728) tiny reads through the storage mutex + SdFat each time —
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// the dominant cost of displaying an image page. Batching rows into a ~4KB
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// buffer cuts that to ~20 reads per pass without holding the whole image.
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const int bytesPerRow = (cachedWidth + 3) / 4; // 2 bits per pixel, 4 pixels per byte
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int rowsPerRead = 4096 / bytesPerRow;
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if (rowsPerRead < 1) rowsPerRead = 1;
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if (rowsPerRead > cachedHeight) rowsPerRead = cachedHeight;
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uint8_t* readBuffer = (uint8_t*)malloc((size_t)rowsPerRead * bytesPerRow);
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if (!readBuffer) {
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// Fall back to a single-row buffer under memory pressure.
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rowsPerRead = 1;
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readBuffer = (uint8_t*)malloc(bytesPerRow);
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}
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if (!readBuffer) {
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LOG_ERR("IMG", "Failed to allocate row buffer");
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return false;
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}
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DirectPixelWriter pw;
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pw.init(renderer);
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int rowsInBuffer = 0;
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int bufferRow = 0;
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for (int row = 0; row < cachedHeight; row++) {
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if (bufferRow >= rowsInBuffer) {
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const int toRead = (cachedHeight - row < rowsPerRead) ? (cachedHeight - row) : rowsPerRead;
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const size_t bytes = (size_t)toRead * bytesPerRow;
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if (cacheFile.read(readBuffer, bytes) != static_cast<int>(bytes)) {
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LOG_ERR("IMG", "Cache read error at row %d", row);
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free(readBuffer);
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return false;
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}
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rowsInBuffer = toRead;
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bufferRow = 0;
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}
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const uint8_t* rowBuffer = readBuffer + (size_t)bufferRow * bytesPerRow;
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bufferRow++;
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const int destY = y + row;
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pw.beginRow(destY);
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// On a grayscale strip pass only a narrow column window of the image is in
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// the active band; skip the rest instead of unpacking+clipping every pixel.
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int colStart, colEnd;
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pw.bandColRange(x, cachedWidth, colStart, colEnd);
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for (int col = colStart; col < colEnd; col++) {
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const int byteIdx = col >> 2; // col / 4
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const int bitShift = 6 - (col & 3) * 2; // MSB first within byte
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uint8_t pixelValue = (rowBuffer[byteIdx] >> bitShift) & 0x03;
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pw.writePixel(x + col, pixelValue);
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}
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}
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free(readBuffer);
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LOG_DBG("IMG", "Cache render complete");
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return true;
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}
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} // namespace
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bool ImageBlock::hasValidCache() const {
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const auto cachePath = getCachePath(imagePath);
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HalFile cacheFile;
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if (!Storage.openFileForRead("IMG", cachePath, cacheFile)) {
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return false;
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}
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uint16_t cachedWidth, cachedHeight;
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return readValidCacheHeader(cacheFile, width, height, cachedWidth, cachedHeight);
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}
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bool ImageBlock::needsDecode() const { return !imageFailedThisSession(imagePath) && !hasValidCache(); }
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void ImageBlock::clearSessionRenderFailures() { failedImageCount = 0; }
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void ImageBlock::renderPlaceholder(GfxRenderer& renderer, const int x, const int y) const {
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renderer.fillRect(x, y, width, height, true);
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if (width > 2 && height > 2) {
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renderer.fillRect(x + 1, y + 1, width - 2, height - 2, false);
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}
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}
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void ImageBlock::render(GfxRenderer& renderer, const int x, const int y) {
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// The font-prewarm scan pass only accumulates glyphs; an image contributes
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// none, and its DirectPixelWriter output bypasses the renderer's scan-mode
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// suppression, so it would otherwise do a full (discarded) cache render every
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// page view. Skip it here. The image still draws in the real BW/grayscale
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// passes; on first view this just moves the one-time decode to the BW pass.
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FontCacheManager* fcm = renderer.getFontCacheManager();
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if (fcm && fcm->isScanning()) return;
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LOG_DBG("IMG", "Rendering image at %d,%d: %s (%dx%d)", x, y, imagePath.c_str(), width, height);
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const int screenWidth = renderer.getScreenWidth();
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const int screenHeight = renderer.getScreenHeight();
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// Bounds check render position using logical screen dimensions
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if (x < 0 || y < 0 || x + width > screenWidth || y + height > screenHeight) {
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LOG_ERR("IMG", "Invalid render position: (%d,%d) size (%dx%d) screen (%dx%d)", x, y, width, height, screenWidth,
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screenHeight);
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return;
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}
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// Tiled grayscale (#2190): skip the whole image when it doesn't touch the
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// active band. The per-pixel writer already clips off-band pixels, but without
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// this each of the ~7 bands per plane re-ran the full cache load / pixel walk
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// and discarded the result — the dominant cost of AA on image pages. The check
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// is orientation-aware and returns true when no strip is active, so the BW
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// pass and non-tiled controllers render the image exactly as before.
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if (!renderer.glyphIntersectsStrip(x, y, x + width - 1, y + height - 1)) {
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return;
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}
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if (imageFailedThisSession(imagePath)) {
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renderPlaceholder(renderer, x, y);
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return;
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}
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// Try to render from cache first
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std::string cachePath = getCachePath(imagePath);
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if (renderFromCache(renderer, cachePath, x, y, width, height)) {
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return; // Successfully rendered from cache
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}
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// No cache - need to decode the image
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// Check if image file exists
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HalFile file;
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if (!Storage.openFileForRead("IMG", imagePath, file)) {
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LOG_ERR("IMG", "Image file not found: %s", imagePath.c_str());
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rememberImageFailure(imagePath);
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renderPlaceholder(renderer, x, y);
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return;
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}
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size_t fileSize = file.size();
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file.close();
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if (fileSize == 0) {
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LOG_ERR("IMG", "Image file is empty: %s", imagePath.c_str());
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rememberImageFailure(imagePath);
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renderPlaceholder(renderer, x, y);
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return;
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}
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LOG_DBG("IMG", "Decoding and caching: %s", imagePath.c_str());
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RenderConfig config;
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config.x = x;
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config.y = y;
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config.maxWidth = width;
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config.maxHeight = height;
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config.useGrayscale = true;
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config.useDithering = true;
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config.performanceMode = false;
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config.useExactDimensions = true; // Use pre-calculated dimensions to avoid rounding mismatches
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config.cachePath = cachePath; // Enable caching during decode
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ImageToFramebufferDecoder* decoder = ImageDecoderFactory::getDecoder(imagePath);
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if (!decoder) {
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LOG_ERR("IMG", "No decoder found for image: %s", imagePath.c_str());
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rememberImageFailure(imagePath);
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renderPlaceholder(renderer, x, y);
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return;
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}
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LOG_DBG("IMG", "Using %s decoder", decoder->getFormatName());
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bool success = decoder->decodeToFramebuffer(imagePath, renderer, config);
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if (!success) {
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LOG_ERR("IMG", "Failed to decode image: %s", imagePath.c_str());
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rememberImageFailure(imagePath);
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renderPlaceholder(renderer, x, y);
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return;
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}
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LOG_DBG("IMG", "Decode successful");
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}
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bool ImageBlock::serialize(HalFile& file) {
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serialization::writeString(file, imagePath);
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serialization::writePod(file, width);
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serialization::writePod(file, height);
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return true;
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}
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std::unique_ptr<ImageBlock> ImageBlock::deserialize(HalFile& file) {
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std::string path;
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serialization::readString(file, path);
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int16_t w, h;
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serialization::readPod(file, w);
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serialization::readPod(file, h);
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return std::unique_ptr<ImageBlock>(new ImageBlock(path, w, h));
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}
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