exr: cosmetics: reindent
Signed-off-by: Paul B Mahol <onemda@gmail.com>
This commit is contained in:
188
libavcodec/exr.c
188
libavcodec/exr.c
@@ -525,108 +525,108 @@ static int decode_frame(AVCodecContext *avctx,
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// Process the actual scan line blocks
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// Process the actual scan line blocks
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for (y = ymin; y <= ymax; y += scan_lines_per_block) {
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for (y = ymin; y <= ymax; y += scan_lines_per_block) {
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uint16_t *ptr_x;
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uint16_t *ptr_x;
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const uint8_t *red_channel_buffer, *green_channel_buffer, *blue_channel_buffer, *alpha_channel_buffer = 0;
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const uint8_t *red_channel_buffer, *green_channel_buffer, *blue_channel_buffer, *alpha_channel_buffer = 0;
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const uint64_t line_offset = bytestream_get_le64(&buf);
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const uint64_t line_offset = bytestream_get_le64(&buf);
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int32_t data_size, line;
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int32_t data_size, line;
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// Check if the buffer has the required bytes needed from the offset
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// Check if the buffer has the required bytes needed from the offset
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if (line_offset > (uint64_t)buf_size - 8)
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if (line_offset > (uint64_t)buf_size - 8)
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return AVERROR_INVALIDDATA;
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return AVERROR_INVALIDDATA;
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src = avpkt->data + line_offset + 8;
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src = avpkt->data + line_offset + 8;
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line = AV_RL32(src - 8);
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line = AV_RL32(src - 8);
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if (line < ymin || line > ymax)
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if (line < ymin || line > ymax)
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return AVERROR_INVALIDDATA;
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return AVERROR_INVALIDDATA;
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data_size = AV_RL32(src - 4);
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data_size = AV_RL32(src - 4);
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if (data_size <= 0 || data_size > buf_size)
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if (data_size <= 0 || data_size > buf_size)
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return AVERROR_INVALIDDATA;
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return AVERROR_INVALIDDATA;
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if ((s->compr == EXR_RAW && (data_size != uncompressed_size ||
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if ((s->compr == EXR_RAW && (data_size != uncompressed_size ||
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line_offset > buf_size - uncompressed_size)) ||
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line_offset > buf_size - uncompressed_size)) ||
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(s->compr != EXR_RAW && line_offset > buf_size - data_size)) {
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(s->compr != EXR_RAW && line_offset > buf_size - data_size)) {
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return AVERROR_INVALIDDATA;
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return AVERROR_INVALIDDATA;
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}
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if (scan_lines_per_block > 1)
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uncompressed_size = scan_line_size * FFMIN(scan_lines_per_block, ymax - y + 1);
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if ((s->compr == EXR_ZIP1 || s->compr == EXR_ZIP16) && data_size < uncompressed_size) {
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unsigned long dest_len = uncompressed_size;
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if (uncompress(s->tmp, &dest_len, src, data_size) != Z_OK ||
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dest_len != uncompressed_size) {
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av_log(avctx, AV_LOG_ERROR, "error during zlib decompression\n");
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return AVERROR(EINVAL);
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}
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} else if (s->compr == EXR_RLE && data_size < uncompressed_size) {
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if (rle_uncompress(src, data_size, s->tmp, uncompressed_size)) {
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av_log(avctx, AV_LOG_ERROR, "error during rle decompression\n");
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return AVERROR(EINVAL);
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}
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}
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if (s->compr != EXR_RAW && data_size < uncompressed_size) {
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predictor(s->tmp, uncompressed_size);
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reorder_pixels(s->tmp, s->uncompressed_data, uncompressed_size);
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red_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[0];
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green_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[1];
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blue_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[2];
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if (s->channel_offsets[3] >= 0)
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alpha_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[3];
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} else {
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red_channel_buffer = src + xdelta * s->channel_offsets[0];
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green_channel_buffer = src + xdelta * s->channel_offsets[1];
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blue_channel_buffer = src + xdelta * s->channel_offsets[2];
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if (s->channel_offsets[3] >= 0)
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alpha_channel_buffer = src + xdelta * s->channel_offsets[3];
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}
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ptr = p->data[0] + line * stride;
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for (i = 0; i < scan_lines_per_block && y + i <= ymax; i++, ptr += stride) {
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const uint8_t *r, *g, *b, *a;
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r = red_channel_buffer;
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g = green_channel_buffer;
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b = blue_channel_buffer;
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if (alpha_channel_buffer)
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a = alpha_channel_buffer;
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ptr_x = (uint16_t *)ptr;
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// Zero out the start if xmin is not 0
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memset(ptr_x, 0, bxmin);
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ptr_x += xmin * desc->nb_components;
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if (s->bits_per_color_id == 2) {
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// 32-bit
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for (x = 0; x < xdelta; x++) {
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&r));
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&g));
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&b));
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if (alpha_channel_buffer)
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&a));
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}
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} else {
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// 16-bit
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for (x = 0; x < xdelta; x++) {
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&r));
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&g));
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&b));
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if (alpha_channel_buffer)
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&a));
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}
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}
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}
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if (scan_lines_per_block > 1)
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// Zero out the end if xmax+1 is not w
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uncompressed_size = scan_line_size * FFMIN(scan_lines_per_block, ymax - y + 1);
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memset(ptr_x, 0, axmax);
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if ((s->compr == EXR_ZIP1 || s->compr == EXR_ZIP16) && data_size < uncompressed_size) {
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unsigned long dest_len = uncompressed_size;
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if (uncompress(s->tmp, &dest_len, src, data_size) != Z_OK ||
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red_channel_buffer += scan_line_size;
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dest_len != uncompressed_size) {
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green_channel_buffer += scan_line_size;
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av_log(avctx, AV_LOG_ERROR, "error during zlib decompression\n");
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blue_channel_buffer += scan_line_size;
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return AVERROR(EINVAL);
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if (alpha_channel_buffer)
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}
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alpha_channel_buffer += scan_line_size;
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} else if (s->compr == EXR_RLE && data_size < uncompressed_size) {
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if (rle_uncompress(src, data_size, s->tmp, uncompressed_size)) {
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av_log(avctx, AV_LOG_ERROR, "error during rle decompression\n");
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return AVERROR(EINVAL);
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}
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}
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if (s->compr != EXR_RAW && data_size < uncompressed_size) {
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predictor(s->tmp, uncompressed_size);
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reorder_pixels(s->tmp, s->uncompressed_data, uncompressed_size);
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red_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[0];
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green_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[1];
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blue_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[2];
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if (s->channel_offsets[3] >= 0)
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alpha_channel_buffer = s->uncompressed_data + xdelta * s->channel_offsets[3];
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} else {
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red_channel_buffer = src + xdelta * s->channel_offsets[0];
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green_channel_buffer = src + xdelta * s->channel_offsets[1];
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blue_channel_buffer = src + xdelta * s->channel_offsets[2];
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if (s->channel_offsets[3] >= 0)
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alpha_channel_buffer = src + xdelta * s->channel_offsets[3];
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}
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ptr = p->data[0] + line * stride;
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for (i = 0; i < scan_lines_per_block && y + i <= ymax; i++, ptr += stride) {
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const uint8_t *r, *g, *b, *a;
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r = red_channel_buffer;
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g = green_channel_buffer;
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b = blue_channel_buffer;
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if (alpha_channel_buffer)
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a = alpha_channel_buffer;
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ptr_x = (uint16_t *)ptr;
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// Zero out the start if xmin is not 0
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memset(ptr_x, 0, bxmin);
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ptr_x += xmin * desc->nb_components;
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if (s->bits_per_color_id == 2) {
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// 32-bit
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for (x = 0; x < xdelta; x++) {
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&r));
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&g));
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&b));
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if (alpha_channel_buffer)
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*ptr_x++ = exr_flt2uint(bytestream_get_le32(&a));
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}
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} else {
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// 16-bit
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for (x = 0; x < xdelta; x++) {
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&r));
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&g));
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&b));
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if (alpha_channel_buffer)
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*ptr_x++ = exr_halflt2uint(bytestream_get_le16(&a));
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}
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}
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// Zero out the end if xmax+1 is not w
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memset(ptr_x, 0, axmax);
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red_channel_buffer += scan_line_size;
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green_channel_buffer += scan_line_size;
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blue_channel_buffer += scan_line_size;
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if (alpha_channel_buffer)
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alpha_channel_buffer += scan_line_size;
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}
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}
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}
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}
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// Zero out the end if ymax+1 is not h
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// Zero out the end if ymax+1 is not h
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for (y = ymax + 1; y < avctx->height; y++) {
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for (y = ymax + 1; y < avctx->height; y++) {
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