mirror of
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539 lines
14 KiB
Go
539 lines
14 KiB
Go
// Copyright 2011 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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// Package gif implements a GIF image decoder and encoder.
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//
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// The GIF specification is at http://www.w3.org/Graphics/GIF/spec-gif89a.txt.
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package gif
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import (
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"bufio"
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"compress/lzw"
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"errors"
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"fmt"
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"image"
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"image/color"
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"io"
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)
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var (
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errNotEnough = errors.New("gif: not enough image data")
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errTooMuch = errors.New("gif: too much image data")
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errBadPixel = errors.New("gif: invalid pixel value")
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)
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// If the io.Reader does not also have ReadByte, then decode will introduce its own buffering.
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type reader interface {
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io.Reader
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io.ByteReader
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}
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// Masks etc.
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const (
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// Fields.
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fColorTable = 1 << 7
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fInterlace = 1 << 6
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fColorTableBitsMask = 7
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// Graphic control flags.
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gcTransparentColorSet = 1 << 0
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gcDisposalMethodMask = 7 << 2
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)
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// Disposal Methods.
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const (
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DisposalNone = 0x01
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DisposalBackground = 0x02
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DisposalPrevious = 0x03
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)
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// Section indicators.
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const (
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sExtension = 0x21
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sImageDescriptor = 0x2C
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sTrailer = 0x3B
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)
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// Extensions.
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const (
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eText = 0x01 // Plain Text
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eGraphicControl = 0xF9 // Graphic Control
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eComment = 0xFE // Comment
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eApplication = 0xFF // Application
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)
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func readFull(r io.Reader, b []byte) error {
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_, err := io.ReadFull(r, b)
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if err == io.EOF {
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err = io.ErrUnexpectedEOF
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}
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return err
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}
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func readByte(r io.ByteReader) (byte, error) {
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b, err := r.ReadByte()
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if err == io.EOF {
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err = io.ErrUnexpectedEOF
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}
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return b, err
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}
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// decoder is the type used to decode a GIF file.
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type decoder struct {
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r reader
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// From header.
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vers string
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width int
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height int
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loopCount int
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delayTime int
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backgroundIndex byte
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disposalMethod byte
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// From image descriptor.
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imageFields byte
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// From graphics control.
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transparentIndex byte
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hasTransparentIndex bool
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// Computed.
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globalColorTable color.Palette
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// Used when decoding.
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delay []int
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disposal []byte
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image []*image.Paletted
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tmp [1024]byte // must be at least 768 so we can read color table
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}
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// blockReader parses the block structure of GIF image data, which
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// comprises (n, (n bytes)) blocks, with 1 <= n <= 255. It is the
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// reader given to the LZW decoder, which is thus immune to the
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// blocking. After the LZW decoder completes, there will be a 0-byte
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// block remaining (0, ()), which is consumed when checking that the
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// blockReader is exhausted.
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type blockReader struct {
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r reader
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slice []byte
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err error
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tmp [256]byte
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}
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func (b *blockReader) Read(p []byte) (int, error) {
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if b.err != nil {
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return 0, b.err
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}
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if len(p) == 0 {
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return 0, nil
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}
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if len(b.slice) == 0 {
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var blockLen uint8
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blockLen, b.err = b.r.ReadByte()
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if b.err != nil {
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return 0, b.err
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}
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if blockLen == 0 {
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b.err = io.EOF
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return 0, b.err
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}
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b.slice = b.tmp[:blockLen]
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if b.err = readFull(b.r, b.slice); b.err != nil {
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return 0, b.err
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}
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}
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n := copy(p, b.slice)
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b.slice = b.slice[n:]
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return n, nil
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}
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// decode reads a GIF image from r and stores the result in d.
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func (d *decoder) decode(r io.Reader, configOnly bool) error {
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// Add buffering if r does not provide ReadByte.
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if rr, ok := r.(reader); ok {
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d.r = rr
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} else {
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d.r = bufio.NewReader(r)
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}
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err := d.readHeaderAndScreenDescriptor()
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if err != nil {
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return err
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}
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if configOnly {
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return nil
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}
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for {
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c, err := readByte(d.r)
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if err != nil {
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return fmt.Errorf("gif: reading frames: %v", err)
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}
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switch c {
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case sExtension:
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if err = d.readExtension(); err != nil {
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return err
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}
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case sImageDescriptor:
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m, err := d.newImageFromDescriptor()
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if err != nil {
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return err
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}
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useLocalColorTable := d.imageFields&fColorTable != 0
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if useLocalColorTable {
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m.Palette, err = d.readColorTable(d.imageFields)
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if err != nil {
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return err
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}
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} else {
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if d.globalColorTable == nil {
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return errors.New("gif: no color table")
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}
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m.Palette = d.globalColorTable
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}
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if d.hasTransparentIndex {
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if !useLocalColorTable {
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// Clone the global color table.
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m.Palette = append(color.Palette(nil), d.globalColorTable...)
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}
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if ti := int(d.transparentIndex); ti < len(m.Palette) {
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m.Palette[ti] = color.RGBA{}
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} else {
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// The transparentIndex is out of range, which is an error
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// according to the spec, but Firefox and Google Chrome
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// seem OK with this, so we enlarge the palette with
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// transparent colors. See golang.org/issue/15059.
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p := make(color.Palette, ti+1)
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copy(p, m.Palette)
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for i := len(m.Palette); i < len(p); i++ {
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p[i] = color.RGBA{}
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}
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m.Palette = p
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}
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}
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litWidth, err := readByte(d.r)
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if err != nil {
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return fmt.Errorf("gif: reading image data: %v", err)
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}
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if litWidth < 2 || litWidth > 8 {
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return fmt.Errorf("gif: pixel size in decode out of range: %d", litWidth)
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}
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// A wonderfully Go-like piece of magic.
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br := &blockReader{r: d.r}
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lzwr := lzw.NewReader(br, lzw.LSB, int(litWidth))
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defer lzwr.Close()
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if err = readFull(lzwr, m.Pix); err != nil {
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if err != io.ErrUnexpectedEOF {
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return fmt.Errorf("gif: reading image data: %v", err)
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}
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return errNotEnough
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}
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// Both lzwr and br should be exhausted. Reading from them should
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// yield (0, io.EOF).
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//
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// The spec (Appendix F - Compression), says that "An End of
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// Information code... must be the last code output by the encoder
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// for an image". In practice, though, giflib (a widely used C
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// library) does not enforce this, so we also accept lzwr returning
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// io.ErrUnexpectedEOF (meaning that the encoded stream hit io.EOF
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// before the LZW decoder saw an explicit end code), provided that
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// the io.ReadFull call above successfully read len(m.Pix) bytes.
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// See https://golang.org/issue/9856 for an example GIF.
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if n, err := lzwr.Read(d.tmp[:1]); n != 0 || (err != io.EOF && err != io.ErrUnexpectedEOF) {
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if err != nil {
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return fmt.Errorf("gif: reading image data: %v", err)
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}
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return errTooMuch
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}
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if n, err := br.Read(d.tmp[:1]); n != 0 || err != io.EOF {
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if err != nil {
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return fmt.Errorf("gif: reading image data: %v", err)
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}
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return errTooMuch
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}
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// Check that the color indexes are inside the palette.
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if len(m.Palette) < 256 {
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for _, pixel := range m.Pix {
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if int(pixel) >= len(m.Palette) {
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return errBadPixel
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}
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}
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}
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// Undo the interlacing if necessary.
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if d.imageFields&fInterlace != 0 {
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uninterlace(m)
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}
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d.image = append(d.image, m)
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d.delay = append(d.delay, d.delayTime)
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d.disposal = append(d.disposal, d.disposalMethod)
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// The GIF89a spec, Section 23 (Graphic Control Extension) says:
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// "The scope of this extension is the first graphic rendering block
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// to follow." We therefore reset the GCE fields to zero.
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d.delayTime = 0
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d.hasTransparentIndex = false
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case sTrailer:
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if len(d.image) == 0 {
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return fmt.Errorf("gif: missing image data")
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}
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return nil
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default:
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return fmt.Errorf("gif: unknown block type: 0x%.2x", c)
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}
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}
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}
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func (d *decoder) readHeaderAndScreenDescriptor() error {
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err := readFull(d.r, d.tmp[:13])
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if err != nil {
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return fmt.Errorf("gif: reading header: %v", err)
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}
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d.vers = string(d.tmp[:6])
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if d.vers != "GIF87a" && d.vers != "GIF89a" {
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return fmt.Errorf("gif: can't recognize format %q", d.vers)
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}
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d.width = int(d.tmp[6]) + int(d.tmp[7])<<8
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d.height = int(d.tmp[8]) + int(d.tmp[9])<<8
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if fields := d.tmp[10]; fields&fColorTable != 0 {
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d.backgroundIndex = d.tmp[11]
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// readColorTable overwrites the contents of d.tmp, but that's OK.
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if d.globalColorTable, err = d.readColorTable(fields); err != nil {
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return err
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}
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}
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// d.tmp[12] is the Pixel Aspect Ratio, which is ignored.
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return nil
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}
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func (d *decoder) readColorTable(fields byte) (color.Palette, error) {
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n := 1 << (1 + uint(fields&fColorTableBitsMask))
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err := readFull(d.r, d.tmp[:3*n])
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if err != nil {
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return nil, fmt.Errorf("gif: reading color table: %s", err)
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}
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j, p := 0, make(color.Palette, n)
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for i := range p {
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p[i] = color.RGBA{d.tmp[j+0], d.tmp[j+1], d.tmp[j+2], 0xFF}
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j += 3
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}
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return p, nil
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}
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func (d *decoder) readExtension() error {
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extension, err := readByte(d.r)
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if err != nil {
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return fmt.Errorf("gif: reading extension: %v", err)
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}
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size := 0
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switch extension {
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case eText:
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size = 13
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case eGraphicControl:
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return d.readGraphicControl()
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case eComment:
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// nothing to do but read the data.
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case eApplication:
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b, err := readByte(d.r)
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if err != nil {
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return fmt.Errorf("gif: reading extension: %v", err)
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}
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// The spec requires size be 11, but Adobe sometimes uses 10.
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size = int(b)
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default:
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return fmt.Errorf("gif: unknown extension 0x%.2x", extension)
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}
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if size > 0 {
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if err := readFull(d.r, d.tmp[:size]); err != nil {
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return fmt.Errorf("gif: reading extension: %v", err)
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}
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}
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// Application Extension with "NETSCAPE2.0" as string and 1 in data means
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// this extension defines a loop count.
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if extension == eApplication && string(d.tmp[:size]) == "NETSCAPE2.0" {
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n, err := d.readBlock()
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if err != nil {
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return fmt.Errorf("gif: reading extension: %v", err)
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}
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if n == 0 {
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return nil
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}
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if n == 3 && d.tmp[0] == 1 {
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d.loopCount = int(d.tmp[1]) | int(d.tmp[2])<<8
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}
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}
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for {
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n, err := d.readBlock()
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if err != nil {
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return fmt.Errorf("gif: reading extension: %v", err)
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}
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if n == 0 {
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return nil
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}
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}
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}
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func (d *decoder) readGraphicControl() error {
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if err := readFull(d.r, d.tmp[:6]); err != nil {
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return fmt.Errorf("gif: can't read graphic control: %s", err)
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}
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if d.tmp[0] != 4 {
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return fmt.Errorf("gif: invalid graphic control extension block size: %d", d.tmp[0])
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}
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flags := d.tmp[1]
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d.disposalMethod = (flags & gcDisposalMethodMask) >> 2
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d.delayTime = int(d.tmp[2]) | int(d.tmp[3])<<8
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if flags&gcTransparentColorSet != 0 {
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d.transparentIndex = d.tmp[4]
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d.hasTransparentIndex = true
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}
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if d.tmp[5] != 0 {
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return fmt.Errorf("gif: invalid graphic control extension block terminator: %d", d.tmp[5])
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}
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return nil
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}
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func (d *decoder) newImageFromDescriptor() (*image.Paletted, error) {
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if err := readFull(d.r, d.tmp[:9]); err != nil {
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return nil, fmt.Errorf("gif: can't read image descriptor: %s", err)
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}
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left := int(d.tmp[0]) + int(d.tmp[1])<<8
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top := int(d.tmp[2]) + int(d.tmp[3])<<8
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width := int(d.tmp[4]) + int(d.tmp[5])<<8
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height := int(d.tmp[6]) + int(d.tmp[7])<<8
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d.imageFields = d.tmp[8]
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// The GIF89a spec, Section 20 (Image Descriptor) says:
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// "Each image must fit within the boundaries of the Logical
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// Screen, as defined in the Logical Screen Descriptor."
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bounds := image.Rect(left, top, left+width, top+height)
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if bounds != bounds.Intersect(image.Rect(0, 0, d.width, d.height)) {
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return nil, errors.New("gif: frame bounds larger than image bounds")
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}
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return image.NewPaletted(bounds, nil), nil
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}
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func (d *decoder) readBlock() (int, error) {
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n, err := readByte(d.r)
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if n == 0 || err != nil {
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return 0, err
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}
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if err := readFull(d.r, d.tmp[:n]); err != nil {
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return 0, err
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}
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return int(n), nil
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}
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// interlaceScan defines the ordering for a pass of the interlace algorithm.
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type interlaceScan struct {
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skip, start int
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}
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// interlacing represents the set of scans in an interlaced GIF image.
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var interlacing = []interlaceScan{
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{8, 0}, // Group 1 : Every 8th. row, starting with row 0.
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{8, 4}, // Group 2 : Every 8th. row, starting with row 4.
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{4, 2}, // Group 3 : Every 4th. row, starting with row 2.
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{2, 1}, // Group 4 : Every 2nd. row, starting with row 1.
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}
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// uninterlace rearranges the pixels in m to account for interlaced input.
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func uninterlace(m *image.Paletted) {
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var nPix []uint8
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dx := m.Bounds().Dx()
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dy := m.Bounds().Dy()
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nPix = make([]uint8, dx*dy)
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offset := 0 // steps through the input by sequential scan lines.
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for _, pass := range interlacing {
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nOffset := pass.start * dx // steps through the output as defined by pass.
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for y := pass.start; y < dy; y += pass.skip {
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copy(nPix[nOffset:nOffset+dx], m.Pix[offset:offset+dx])
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offset += dx
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nOffset += dx * pass.skip
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}
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}
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m.Pix = nPix
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}
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// Decode reads a GIF image from r and returns the first embedded
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// image as an image.Image.
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func Decode(r io.Reader) (image.Image, error) {
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var d decoder
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if err := d.decode(r, false); err != nil {
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return nil, err
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}
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return d.image[0], nil
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}
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// GIF represents the possibly multiple images stored in a GIF file.
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type GIF struct {
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Image []*image.Paletted // The successive images.
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Delay []int // The successive delay times, one per frame, in 100ths of a second.
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LoopCount int // The loop count.
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// Disposal is the successive disposal methods, one per frame. For
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// backwards compatibility, a nil Disposal is valid to pass to EncodeAll,
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// and implies that each frame's disposal method is 0 (no disposal
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// specified).
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Disposal []byte
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// Config is the global color table (palette), width and height. A nil or
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// empty-color.Palette Config.ColorModel means that each frame has its own
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// color table and there is no global color table. Each frame's bounds must
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// be within the rectangle defined by the two points (0, 0) and
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// (Config.Width, Config.Height).
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//
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// For backwards compatibility, a zero-valued Config is valid to pass to
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// EncodeAll, and implies that the overall GIF's width and height equals
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// the first frame's bounds' Rectangle.Max point.
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Config image.Config
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// BackgroundIndex is the background index in the global color table, for
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// use with the DisposalBackground disposal method.
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BackgroundIndex byte
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}
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// DecodeAll reads a GIF image from r and returns the sequential frames
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// and timing information.
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func DecodeAll(r io.Reader) (*GIF, error) {
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var d decoder
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if err := d.decode(r, false); err != nil {
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return nil, err
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}
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gif := &GIF{
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Image: d.image,
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LoopCount: d.loopCount,
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Delay: d.delay,
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Disposal: d.disposal,
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Config: image.Config{
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ColorModel: d.globalColorTable,
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Width: d.width,
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Height: d.height,
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},
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BackgroundIndex: d.backgroundIndex,
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}
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return gif, nil
|
|
}
|
|
|
|
// DecodeConfig returns the global color model and dimensions of a GIF image
|
|
// without decoding the entire image.
|
|
func DecodeConfig(r io.Reader) (image.Config, error) {
|
|
var d decoder
|
|
if err := d.decode(r, true); err != nil {
|
|
return image.Config{}, err
|
|
}
|
|
return image.Config{
|
|
ColorModel: d.globalColorTable,
|
|
Width: d.width,
|
|
Height: d.height,
|
|
}, nil
|
|
}
|
|
|
|
func init() {
|
|
image.RegisterFormat("gif", "GIF8?a", Decode, DecodeConfig)
|
|
}
|