mirror of
https://github.com/priyanshujain/sanderling.git
synced 2026-10-02 11:07:10 +00:00
feat(android): read the application id out of an apk
parses the compiled AndroidManifest.xml rather than shelling out to aapt2, which lives in the versioned build-tools directory that hosts with only platform-tools never install. Claude-Session: https://claude.ai/code/session_012PVErdr3ZzyUASeVQDWsUc
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@@ -0,0 +1,228 @@
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package android
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import (
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"archive/zip"
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"encoding/binary"
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"errors"
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"fmt"
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"io"
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"unicode/utf16"
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)
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const (
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manifestEntry = "AndroidManifest.xml"
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chunkStringPool = 0x0001
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chunkStartElement = 0x0102
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stringPoolUTF8 = 1 << 8
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)
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var errStringPoolRange = errors.New("string pool entry runs past the chunk")
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// PackageName reads an APK's application id out of its compiled manifest,
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// which carries the id the package manager will know the app by, suffixes and
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// all. Parsing it here rather than shelling out to `aapt2 dump packagename`
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// keeps the read working on the many hosts that install platform-tools for adb
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// and never install the versioned build-tools directory aapt2 lives in.
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func PackageName(apkPath string) (string, error) {
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manifest, err := manifestFromAPK(apkPath)
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if err != nil {
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return "", err
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}
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name, err := manifestPackage(manifest)
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if err != nil {
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return "", fmt.Errorf("%s: %w", apkPath, err)
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}
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return name, nil
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}
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func manifestFromAPK(apkPath string) ([]byte, error) {
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archive, err := zip.OpenReader(apkPath)
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if err != nil {
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return nil, fmt.Errorf("open %s: %w", apkPath, err)
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}
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defer archive.Close()
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for _, file := range archive.File {
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if file.Name != manifestEntry {
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continue
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}
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entry, err := file.Open()
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if err != nil {
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return nil, fmt.Errorf("open %s in %s: %w", manifestEntry, apkPath, err)
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}
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defer entry.Close()
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manifest, err := io.ReadAll(entry)
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if err != nil {
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return nil, fmt.Errorf("read %s in %s: %w", manifestEntry, apkPath, err)
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}
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return manifest, nil
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}
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return nil, fmt.Errorf("%s holds no %s", apkPath, manifestEntry)
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}
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// manifestPackage walks the compiled manifest's chunks for the <manifest>
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// element and reports its package attribute. The string pool always precedes
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// the elements that index into it.
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func manifestPackage(manifest []byte) (string, error) {
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if len(manifest) < 8 {
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return "", errors.New("truncated binary xml")
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}
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var pool []string
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for offset := uint32(8); offset+8 <= uint32(len(manifest)); {
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size := binary.LittleEndian.Uint32(manifest[offset+4:])
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if size < 8 || uint64(offset)+uint64(size) > uint64(len(manifest)) {
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return "", errors.New("truncated chunk in binary xml")
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}
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chunk := manifest[offset : offset+size]
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switch binary.LittleEndian.Uint16(chunk) {
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case chunkStringPool:
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var err error
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if pool, err = poolStrings(chunk); err != nil {
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return "", err
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}
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case chunkStartElement:
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name, found, err := packageAttribute(chunk, pool)
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if err != nil || found {
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return name, err
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}
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}
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offset += size
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}
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return "", errors.New("no <manifest> element in binary xml")
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}
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// packageAttribute reports the package attribute of a start-element chunk, and
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// whether that chunk was the <manifest> element at all.
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func packageAttribute(chunk []byte, pool []string) (string, bool, error) {
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// The element's own fields start after the chunk header, line number and
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// comment index, and the attribute offsets are relative to there.
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const element = 16
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if len(chunk) < element+20 {
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return "", false, errors.New("truncated start-element chunk")
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}
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if poolString(pool, binary.LittleEndian.Uint32(chunk[element+4:])) != "manifest" {
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return "", false, nil
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}
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start := uint64(binary.LittleEndian.Uint16(chunk[element+8:]))
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stride := uint64(binary.LittleEndian.Uint16(chunk[element+10:]))
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count := uint64(binary.LittleEndian.Uint16(chunk[element+12:]))
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if stride < 20 {
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return "", false, fmt.Errorf("<manifest> attribute stride is %d bytes, want at least 20", stride)
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}
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for index := uint64(0); index < count; index++ {
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at := element + start + index*stride
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if at+20 > uint64(len(chunk)) {
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return "", false, errors.New("<manifest> attribute runs past the chunk")
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}
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if poolString(pool, binary.LittleEndian.Uint32(chunk[at+4:])) != "package" {
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continue
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}
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name := poolString(pool, binary.LittleEndian.Uint32(chunk[at+8:]))
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if name == "" {
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// aapt2 leaves the raw value unset and keeps the string in the
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// typed value's data word.
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name = poolString(pool, binary.LittleEndian.Uint32(chunk[at+16:]))
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}
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if name == "" {
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return "", false, errors.New("<manifest> package attribute is empty")
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}
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return name, true, nil
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}
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return "", false, errors.New("<manifest> has no package attribute")
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}
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func poolString(pool []string, index uint32) string {
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if uint64(index) >= uint64(len(pool)) {
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return ""
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}
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return pool[index]
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}
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func poolStrings(chunk []byte) ([]string, error) {
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const header = 28
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if len(chunk) < header {
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return nil, errors.New("truncated string pool")
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}
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count := uint64(binary.LittleEndian.Uint32(chunk[8:]))
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flags := binary.LittleEndian.Uint32(chunk[16:])
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start := uint64(binary.LittleEndian.Uint32(chunk[20:]))
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if header+4*count > uint64(len(chunk)) {
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return nil, errors.New("string pool offsets run past the chunk")
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}
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pool := make([]string, count)
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for index := uint64(0); index < count; index++ {
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at := start + uint64(binary.LittleEndian.Uint32(chunk[header+4*index:]))
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value, err := poolString8Or16(chunk, at, flags&stringPoolUTF8 != 0)
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if err != nil {
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return nil, err
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}
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pool[index] = value
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}
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return pool, nil
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}
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func poolString8Or16(chunk []byte, at uint64, utf8 bool) (string, error) {
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if utf8 {
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// The character count precedes the byte count; only the second governs
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// how far the string reaches.
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at, _, err := prefixLength8(chunk, at)
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if err != nil {
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return "", err
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}
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at, length, err := prefixLength8(chunk, at)
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if err != nil {
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return "", err
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}
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if at+length > uint64(len(chunk)) {
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return "", errStringPoolRange
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}
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return string(chunk[at : at+length]), nil
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}
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at, length, err := prefixLength16(chunk, at)
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if err != nil {
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return "", err
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}
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if at+2*length > uint64(len(chunk)) {
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return "", errStringPoolRange
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}
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units := make([]uint16, length)
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for index := range units {
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units[index] = binary.LittleEndian.Uint16(chunk[at+2*uint64(index):])
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}
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return string(utf16.Decode(units)), nil
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}
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// prefixLength8 reads a UTF-8 pool string's length prefix: one byte, or two
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// when the high bit marks the value as wider. It returns the offset past the
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// prefix.
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func prefixLength8(chunk []byte, at uint64) (uint64, uint64, error) {
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if at >= uint64(len(chunk)) {
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return 0, 0, errStringPoolRange
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}
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length := uint64(chunk[at])
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if length&0x80 == 0 {
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return at + 1, length, nil
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}
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if at+1 >= uint64(len(chunk)) {
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return 0, 0, errStringPoolRange
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}
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return at + 2, (length&0x7f)<<8 | uint64(chunk[at+1]), nil
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}
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// prefixLength16 reads a UTF-16 pool string's length prefix, in units rather
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// than bytes: one 16-bit word, or two when the high bit marks the value as
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// wider.
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func prefixLength16(chunk []byte, at uint64) (uint64, uint64, error) {
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if at+2 > uint64(len(chunk)) {
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return 0, 0, errStringPoolRange
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}
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length := uint64(binary.LittleEndian.Uint16(chunk[at:]))
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if length&0x8000 == 0 {
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return at + 2, length, nil
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}
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if at+4 > uint64(len(chunk)) {
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return 0, 0, errStringPoolRange
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}
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return at + 4, (length&0x7fff)<<16 | uint64(binary.LittleEndian.Uint16(chunk[at+2:])), nil
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}
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@@ -0,0 +1,173 @@
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package android
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import (
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"archive/zip"
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"bytes"
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"encoding/binary"
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"os"
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"path/filepath"
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"strings"
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"testing"
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)
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// folioAPK is the folio debug APK stripped to the one entry the reader looks
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// at, so the parse runs against a manifest aapt2 really produced.
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const folioAPK = "testdata/folio.apk"
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func TestPackageName_ReadsCompiledManifest(t *testing.T) {
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name, err := PackageName(folioAPK)
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if err != nil {
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t.Fatalf("unexpected error: %v", err)
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}
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if name != "app.folio" {
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t.Fatalf("package name: got %q, want app.folio", name)
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}
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}
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func TestPackageName_UTF8StringPool(t *testing.T) {
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name, err := PackageName(apkWithManifest(t, utf8PooledManifest("com.example.utf8")))
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if err != nil {
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t.Fatalf("unexpected error: %v", err)
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}
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if name != "com.example.utf8" {
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t.Fatalf("package name: got %q, want com.example.utf8", name)
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}
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}
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func TestPackageName_NotAnAPK(t *testing.T) {
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path := filepath.Join(t.TempDir(), "app.apk")
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if err := os.WriteFile(path, []byte("this is not a zip"), 0o600); err != nil {
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t.Fatalf("write file: %v", err)
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}
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_, err := PackageName(path)
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if err == nil || !strings.Contains(err.Error(), path) {
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t.Fatalf("expected an error naming %s, got %v", path, err)
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}
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}
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func TestPackageName_NoManifestEntry(t *testing.T) {
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path := filepath.Join(t.TempDir(), "app.apk")
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file, err := os.Create(path)
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if err != nil {
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t.Fatalf("create apk: %v", err)
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}
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archive := zip.NewWriter(file)
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if _, err := archive.Create("classes.dex"); err != nil {
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t.Fatalf("write entry: %v", err)
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}
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if err := archive.Close(); err != nil {
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t.Fatalf("close archive: %v", err)
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}
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if err := file.Close(); err != nil {
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t.Fatalf("close apk: %v", err)
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}
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_, err = PackageName(path)
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if err == nil || !strings.Contains(err.Error(), "AndroidManifest.xml") {
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t.Fatalf("expected a missing-manifest error, got %v", err)
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}
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}
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func TestPackageName_TruncatedManifest(t *testing.T) {
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manifest, err := manifestFromAPK(folioAPK)
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if err != nil {
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t.Fatalf("read fixture manifest: %v", err)
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}
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for _, keep := range []int{4, 40, 400} {
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if _, err := PackageName(apkWithManifest(t, manifest[:keep])); err == nil {
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t.Fatalf("expected an error from a manifest cut to %d bytes", keep)
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}
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}
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}
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func apkWithManifest(t *testing.T, manifest []byte) string {
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t.Helper()
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path := filepath.Join(t.TempDir(), "app.apk")
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file, err := os.Create(path)
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if err != nil {
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t.Fatalf("create apk: %v", err)
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}
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archive := zip.NewWriter(file)
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entry, err := archive.Create(manifestEntry)
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if err != nil {
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t.Fatalf("create manifest entry: %v", err)
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}
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if _, err := entry.Write(manifest); err != nil {
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t.Fatalf("write manifest entry: %v", err)
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}
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if err := archive.Close(); err != nil {
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t.Fatalf("close archive: %v", err)
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}
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if err := file.Close(); err != nil {
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t.Fatalf("close apk: %v", err)
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}
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return path
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}
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// utf8PooledManifest encodes the smallest manifest that carries a package
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// name, with the UTF-8 string pool that aapt2 does not emit and older builders
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// do. Without it the UTF-8 decoding path is never exercised: the compiled
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// manifests aapt2 writes all pool their strings as UTF-16.
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func utf8PooledManifest(packageName string) []byte {
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pool := []string{"manifest", "package", packageName}
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var pooled bytes.Buffer
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offsets := make([]uint32, len(pool))
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for index, value := range pool {
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offsets[index] = uint32(pooled.Len())
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pooled.WriteByte(byte(len(value)))
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pooled.WriteByte(byte(len(value)))
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pooled.WriteString(value)
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pooled.WriteByte(0)
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}
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stringsStart := uint32(28 + 4*len(pool))
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var poolChunk bytes.Buffer
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write16(&poolChunk, chunkStringPool)
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write16(&poolChunk, 28)
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write32(&poolChunk, stringsStart+uint32(pooled.Len()))
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write32(&poolChunk, uint32(len(pool)))
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write32(&poolChunk, 0)
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write32(&poolChunk, stringPoolUTF8)
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write32(&poolChunk, stringsStart)
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write32(&poolChunk, 0)
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for _, offset := range offsets {
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write32(&poolChunk, offset)
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}
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poolChunk.Write(pooled.Bytes())
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var element bytes.Buffer
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write16(&element, chunkStartElement)
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write16(&element, 16)
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write32(&element, 36+20)
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write32(&element, 1) // line number
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write32(&element, 0xFFFFFFFF) // comment
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write32(&element, 0xFFFFFFFF) // namespace
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write32(&element, 0) // name: "manifest"
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write16(&element, 20) // attributes start, past this header
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write16(&element, 20) // attribute stride
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write16(&element, 1) // attribute count
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write16(&element, 0) // id index
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write16(&element, 0) // class index
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write16(&element, 0) // style index
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write32(&element, 0xFFFFFFFF) // attribute namespace
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write32(&element, 1) // attribute name: "package"
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write32(&element, 2) // attribute raw value: the package name
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write16(&element, 8) // typed value size
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write16(&element, 3<<8) // res0, and TYPE_STRING
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write32(&element, 2)
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var manifest bytes.Buffer
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write16(&manifest, 3)
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write16(&manifest, 8)
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write32(&manifest, uint32(8+poolChunk.Len()+element.Len()))
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manifest.Write(poolChunk.Bytes())
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manifest.Write(element.Bytes())
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return manifest.Bytes()
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}
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func write16(buffer *bytes.Buffer, value uint16) {
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_ = binary.Write(buffer, binary.LittleEndian, value)
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}
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func write32(buffer *bytes.Buffer, value uint32) {
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_ = binary.Write(buffer, binary.LittleEndian, value)
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}
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