Support really big images 50000px
This commit is contained in:
+19
-19
@@ -190,10 +190,10 @@ void ImageWidgetGL::zoom(int zoom, const QPointF &mousePos)
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if(!mousePos.isNull())
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focus = mousePos;
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if(width() > m_image->width() * m_scale)
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m_dx = -width() * 0.5f + m_image->width() * m_scale * 0.5f;
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if(height() > m_image->height() * m_scale)
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m_dy = -height() * 0.5f + m_image->height() * m_scale * 0.5f;
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if(width() > m_imgWidth * m_scale)
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m_dx = -width() * 0.5f + m_imgWidth * m_scale * 0.5f;
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if(height() > m_imgHeight * m_scale)
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m_dy = -height() * 0.5f + m_imgHeight * m_scale * 0.5f;
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float newScale = std::sqrt(std::pow(2.0f, (float)m_scaleStop));
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float r = newScale / m_scale;
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@@ -237,10 +237,10 @@ QVector2D ImageWidgetGL::getImagePixelCoord(const QVector2D &pos)
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{
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float dx = m_dx;
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float dy = m_dy;
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if(m_width > m_image->width()*m_scale)
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dx = -width()*0.5f + m_image->width()*m_scale*0.5f;
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if(m_height > m_image->height()*m_scale)
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dy = -height()*0.5f + m_image->height()*m_scale*0.5f;
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if(m_width > m_imgWidth * m_scale)
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dx = -width()*0.5f + m_imgWidth*m_scale * 0.5f;
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if(m_height > m_imgHeight * m_scale)
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dy = -height()*0.5f + m_imgHeight*m_scale * 0.5f;
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QVector2D offset(dx, dy);
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return (pos + offset) / m_scale;
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@@ -353,8 +353,8 @@ void swPaint(std::shared_ptr<RawImage> &rawImage, float dx, float dy, float scal
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int height = widget->height();
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QImage img(width, height, QImage::Format_RGB32);
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img.fill(Qt::gray);
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int ox = dx;
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int oy = dy;
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int64_t ox = dx;
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int64_t oy = dy;
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auto mtf = [&mtfParams](int i, float x)
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{
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@@ -376,18 +376,18 @@ void swPaint(std::shared_ptr<RawImage> &rawImage, float dx, float dy, float scal
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float r[4];
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float g[4];
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float b[4];
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for(int y = std::max(0, -oy); y < height; y++)
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for(int64_t y = std::max((int64_t)0, -oy); y < height; y++)
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{
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uint32_t *pixels = (uint32_t*)(img.scanLine(y));
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float iptr;
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float fy = std::modf((y + oy) * iscale - 0.5f, &iptr);
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int py = iptr;
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uint32_t w = py * rawImage->widthBytes();
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uint32_t w2 = w;
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int64_t py = iptr;
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int64_t w = py * rawImage->widthBytes();
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int64_t w2 = w;
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if(py+1 < imgHeight)w2 += rawImage->widthBytes();
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if(py >= imgHeight)break;
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for(int x = std::max(0, -ox); x < width; x++)
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for(int64_t x = std::max((int64_t)0, -ox); x < width; x++)
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{
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float fx = std::modf((x + ox) * iscale - 0.5f, &iptr);
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int px = iptr;
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@@ -467,10 +467,10 @@ void ImageWidgetGL::paintGL()
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{
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float dx = m_dx;
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float dy = m_dy;
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if(m_width > m_image->width() * m_scale)
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dx = -width() * 0.5f + m_image->width() * m_scale * 0.5f;
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if(m_height > m_image->height() * m_scale)
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dy = -height() * 0.5f + m_image->height() * m_scale * 0.5f;
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if(m_width > m_imgWidth * m_scale)
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dx = -width() * 0.5f + m_imgWidth * m_scale * 0.5f;
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if(m_height > m_imgHeight * m_scale)
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dy = -height() * 0.5f + m_imgHeight * m_scale * 0.5f;
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QBrush highlight = style()->standardPalette().highlight();
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f->glClear(GL_COLOR_BUFFER_BIT);
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+46
-28
@@ -45,7 +45,7 @@ void RawImage::allocate(uint32_t w, uint32_t h, uint32_t ch, DataType type)
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m_channels = ch;
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m_ch = ch == 3 ? 4 : ch;
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m_origType = m_type = type;
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m_pixels = std::make_unique<PixelType[]>(m_width * m_height * m_ch * typeSize(type));
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m_pixels = std::make_unique<PixelType[]>((size_t)m_width * m_height * m_ch * typeSize(type));
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}
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RawImage::RawImage()
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@@ -60,7 +60,7 @@ RawImage::RawImage(uint32_t w, uint32_t h, uint32_t ch, DataType type)
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RawImage::RawImage(const RawImage &d)
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{
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allocate(d.m_width, d.m_height, d.m_channels, d.m_type);
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std::memcpy(m_pixels.get(), d.m_pixels.get(), m_width * m_height * m_ch * typeSize(m_type));
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std::memcpy(m_pixels.get(), d.m_pixels.get(), (size_t)m_width * m_height * m_ch * typeSize(m_type));
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m_stats = d.m_stats;
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}
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@@ -118,6 +118,24 @@ RawImage::RawImage(const QImage &img)
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for(int i=0; i<img.height(); i++)
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std::memcpy(data(i), img.scanLine(i), img.width()*2);
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}
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else if(img.format() == QImage::Format_RGB32 || img.format() == QImage::Format_ARGB32)
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{
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allocate(img.width(), img.height(), 4, UINT8);
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for(int i=0; i<img.height(); i++)
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{
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uint32_t *src = (uint32_t*)img.scanLine(i);
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uint32_t *dst = (uint32_t*)data(i);
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for(int o=0; o<img.width(); o++)
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{
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uint32_t p = src[o];
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#if Q_BYTE_ORDER == Q_LITTLE_ENDIAN
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dst[o] = (p & 0xff000000) | (p >> 16 & 0xff) | (p & 0xff00) | (p << 16 & 0xff0000);
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#else
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dst[o] = (p >> 24) | (p << 8 & 0xffffff00);
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#endif
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}
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}
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}
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else
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{
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QImage tmp = img.convertToFormat(QImage::Format_RGBA8888);
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@@ -294,9 +312,9 @@ uint32_t RawImage::channels() const
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return m_channels;
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}
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uint32_t RawImage::size() const
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uint64_t RawImage::size() const
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{
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return width()*height();
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return (uint64_t)width()*height();
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}
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RawImage::DataType RawImage::type() const
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@@ -336,12 +354,12 @@ const void *RawImage::data() const
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void *RawImage::data(uint32_t row, uint32_t col)
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{
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return m_pixels.get() + (m_width * row * m_ch + col * m_ch) * typeSize(m_type);
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return m_pixels.get() + ((size_t)m_width * row * m_ch + (size_t)col * m_ch) * typeSize(m_type);
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}
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const void *RawImage::data(uint32_t row, uint32_t col) const
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{
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return m_pixels.get() + (m_width * row * m_ch + col * m_ch) * typeSize(m_type);
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return m_pixels.get() + ((size_t)m_width * row * m_ch + (size_t)col * m_ch) * typeSize(m_type);
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}
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const void *RawImage::origData() const
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@@ -356,12 +374,12 @@ const void *RawImage::origData(uint32_t row, uint32_t col) const
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{
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if(m_original)
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{
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col = col * m_origWidth / m_width;
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row = row * m_origHeight / m_height;
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return m_original.get() + (m_origWidth * row * m_ch + col * m_ch) * typeSize(m_origType);
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col = (uint64_t)col * m_origWidth / m_width;
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row = (uint64_t)row * m_origHeight / m_height;
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return m_original.get() + ((size_t)m_origWidth * row * m_ch + (size_t)col * m_ch) * typeSize(m_origType);
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}
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else
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return m_pixels.get() + (m_width * row * m_ch + col * m_ch) * typeSize(m_type);
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return m_pixels.get() + ((size_t)m_width * row * m_ch + (size_t)col * m_ch) * typeSize(m_type);
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}
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bool RawImage::planar() const
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@@ -381,12 +399,12 @@ void RawImage::convertToThumbnail()
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auto loop = [&](F16 *out, auto *in, float scale)
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{
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for(int i=0; i<THUMB_SIZE; i++)
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for(int64_t i=0; i<THUMB_SIZE; i++)
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{
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for(int o=0; o<THUMB_SIZE; o++)
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for(int64_t o=0; o<THUMB_SIZE; o++)
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{
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int idx = (i*THUMB_SIZE + o)*4;
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int idx2 = ((i * m_height / THUMB_SIZE * m_width) + (o * m_width / THUMB_SIZE)) * m_ch;
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int64_t idx = (i*THUMB_SIZE + o)*4;
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int64_t idx2 = ((i * m_height / THUMB_SIZE * m_width) + (o * m_width / THUMB_SIZE)) * m_ch;
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if(m_channels == 1)
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{
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@@ -442,21 +460,21 @@ void RawImage::convertToGLFormat()
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}
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template<typename T, typename U>
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void convertType2(uint32_t size, const T *src, U *dst)
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void convertType2(size_t size, const T *src, U *dst)
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{
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if constexpr((std::is_floating_point_v<T> || std::is_same_v<T, F16>) && (std::is_floating_point_v<U> || std::is_same_v<T, F16>))
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{
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for(uint32_t i = 0; i < size; i++)
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for(size_t i = 0; i < size; i++)
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dst[i] = src[i];
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}
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if constexpr(std::is_integral_v<T> && std::is_integral_v<U>)
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{
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if constexpr(sizeof(T) > sizeof(U))
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for(uint32_t i = 0; i < size; i++)
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for(size_t i = 0; i < size; i++)
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dst[i] = src[i] >> ((sizeof(T) - sizeof(U)) * 8);
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else
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for(uint32_t i = 0; i < size; i++)
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for(size_t i = 0; i < size; i++)
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dst[i] = static_cast<U>(src[i]) << ((sizeof(U) - sizeof(T)) * 8);
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}
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@@ -464,20 +482,20 @@ void convertType2(uint32_t size, const T *src, U *dst)
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{
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U max = std::numeric_limits<U>::max();
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T scale = (T)(max);
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for(uint32_t i = 0; i < size; i++)
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for(size_t i = 0; i < size; i++)
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dst[i] = src[i] * scale;
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}
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if constexpr(std::is_integral_v<T> && (std::is_floating_point_v<U> || std::is_same_v<U, F16>))
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{
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U scale = (U)(1.0 / (double)std::numeric_limits<T>::max());
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for(uint32_t i = 0; i < size; i++)
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for(size_t i = 0; i < size; i++)
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dst[i] = (U)src[i] * scale;
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}
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}
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template<typename T>
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void convertType(uint32_t size, RawImage::DataType dstType, const T *src, void *dst)
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void convertType(size_t size, RawImage::DataType dstType, const T *src, void *dst)
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{
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switch(dstType)
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{
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@@ -514,7 +532,7 @@ void RawImage::convertToType(DataType type)
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allocate(m_width, m_height, m_channels, type);
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m_origType = origType;
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uint32_t s = size() * m_ch;
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size_t s = size() * m_ch;
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switch(m_origType)
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{
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case UINT8:
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@@ -656,15 +674,15 @@ void boxResample(uint32_t w, uint32_t h, uint32_t ch, uint32_t oldw, uint32_t ol
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float sx = (float)w / oldw;
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float sy = (float)h / oldh;
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for(uint32_t y = 0; y < h; y++)//iterate over destination Y
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for(uint64_t y = 0; y < h; y++)//iterate over destination Y
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{
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for(uint32_t x = 0; x < w; x++)//iterate over destination X
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for(uint64_t x = 0; x < w; x++)//iterate over destination X
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{
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U p[4] = {0.0f};
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uint32_t xx = x * oldw / w;//calculate source rect
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uint32_t yy = y * oldh / h;
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uint32_t xe = std::min((x + 1) * oldw / w, oldw - 1);
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uint32_t ye = std::min((y + 1) * oldh / h, oldh - 1);
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uint64_t xx = x * oldw / w;//calculate source rect
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uint64_t yy = y * oldh / h;
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uint64_t xe = std::min((x + 1) * oldw / w, (uint64_t)oldw - 1);
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uint64_t ye = std::min((y + 1) * oldh / h, (uint64_t)oldh - 1);
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for(uint32_t o = yy; o <= ye; o++)//iterate over source Y
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{
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float cy = o * sy - y;
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+1
-1
@@ -89,7 +89,7 @@ public:
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uint32_t width() const;
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uint32_t height() const;
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uint32_t channels() const;
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uint32_t size() const;
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uint64_t size() const;
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DataType type() const;
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uint32_t norm() const;
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uint32_t widthBytes() const;
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