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// Pacakage oae2 implements “Online Authenticated-Encryption” based on the
// influential paper
// “[Online Authenticated-Encryption and its Nonce-Reuse Misuse-Resistance]” by
// Hoang et al.
//
// Please do not use this package; it likely has critical
// security vulnerabilities.
//
// [Online Authenticated-Encryption and its Nonce-Reuse Misuse-Resistance]: https://eprint.iacr.org/2015/189.pdf
package oae2
import (
"crypto/aes"
"crypto/cipher"
"crypto/hkdf"
"crypto/rand"
"crypto/sha256"
"encoding/binary"
"errors"
"fmt"
"io"
"math"
)
const (
nonceSize = 12
aeadOverhead = 16
saltSize = 32
)
type segmentEncrypter struct {
key []byte
aead cipher.AEAD
nonce [nonceSize]byte
}
func (e *segmentEncrypter) init(salt []byte) error {
key, err := hkdf.Key(sha256.New, e.key, salt, "", 32)
if err != nil {
return err
}
block, err := aes.NewCipher(key)
if err != nil {
return err
}
e.aead, err = cipher.NewGCM(block)
return err
}
func (e *segmentEncrypter) nextNonce(lastSegment bool) ([]byte, error) {
for i := 0; ; i++ {
if i == nonceSize-1 {
return nil, errors.New("oae2: nonce counter overflowed")
}
e.nonce[i]++
if e.nonce[i] != 0 {
break
}
}
if lastSegment {
e.nonce[nonceSize-1] = 1
}
return e.nonce[:], nil
}
func (e *segmentEncrypter) encryptSegment(segment []byte, lastSegment bool) ([]byte, error) {
nonce, err := e.nextNonce(lastSegment)
if err != nil {
return nil, err
}
return e.aead.Seal(segment[:len(segment)+aeadOverhead][:0], nonce, segment, nil), nil
}
func (e *segmentEncrypter) decryptSegment(segment []byte, lastSegment bool) ([]byte, error) {
nonce, err := e.nextNonce(lastSegment)
if err != nil {
return nil, err
}
return e.aead.Open(segment[:0], nonce, segment, nil)
}
// A Writer wraps an io.Writer and encrypts the data in segments. Make sure to
// call [Writer.Close] once all the data is written.
type Writer struct {
initialized bool
err error
w io.Writer
segmentSize int
encrypter segmentEncrypter
buf []byte
}
// NewWriter returns a Writer that encrypts data using key and writes the
// encrypted data to w in chunks of approximately segmentSize bytes. NewWriter
// panics if segmentSize <= 0.
//
// Make sure to call [Writer.Close] to flush the final segment.
func NewWriter(w io.Writer, key []byte, segmentSize int) *Writer {
if segmentSize <= 0 {
panic("oae2.NewWriter: segmentSize must be strictly greater than 0")
}
return &Writer{
w: w,
segmentSize: segmentSize,
encrypter: segmentEncrypter{key: key},
buf: make([]byte, 0, segmentSize+aeadOverhead),
}
}
func (w *Writer) initialize() error {
w.initialized = true
salt := make([]byte, saltSize)
rand.Read(salt)
if w.err = w.encrypter.init(salt); w.err != nil {
return w.err
}
_, w.err = w.w.Write(salt)
return w.err
}
func (w *Writer) init() error {
if !w.initialized {
return w.initialize()
}
return w.err
}
func (w *Writer) writeBuf(lastSegment bool) error {
var encrypted []byte
if encrypted, w.err = w.encrypter.encryptSegment(w.buf, lastSegment); w.err != nil {
return w.err
}
if _, w.err = w.w.Write(encrypted); w.err != nil {
return w.err
}
w.buf = w.buf[:0]
return nil
}
// Write implements io.Writer.
func (w *Writer) Write(buf []byte) (int, error) {
if err := w.init(); err != nil {
return 0, err
}
nn := 0
for len(buf) > 0 {
if len(w.buf) == w.segmentSize {
if err := w.writeBuf(false); err != nil {
return nn, err
}
}
n := copy(w.buf[len(w.buf):w.segmentSize], buf)
w.buf = w.buf[:len(w.buf)+n]
buf = buf[n:]
nn += n
}
return nn, nil
}
// ReadFrom implements io.ReaderFrom.
func (w *Writer) ReadFrom(r io.Reader) (int64, error) {
if err := w.init(); err != nil {
return 0, err
}
var nn int64
for {
n, err := r.Read(w.buf[len(w.buf) : w.segmentSize+1])
w.buf = w.buf[:len(w.buf)+n]
nn += int64(n)
if len(w.buf) == w.segmentSize+1 {
nextByte := w.buf[w.segmentSize]
w.buf = w.buf[:w.segmentSize]
if err := w.writeBuf(false); err != nil {
return nn, err
}
w.buf = w.buf[:1]
w.buf[0] = nextByte
}
if err != nil {
if err == io.EOF {
return nn, nil
}
return nn, err
}
}
}
var errClosed = errors.New("oae2.Writer: writer closed")
// Close flushes the final segment. Failure to call Close will result in a
// truncated stream.
func (w *Writer) Close() error {
if err := w.init(); err != nil {
return err
}
if err := w.writeBuf(true); err != nil {
return err
}
w.err = errClosed
return nil
}
type bufReader struct {
r io.Reader
nextByte byte
buffered bool
}
func (r *bufReader) Read(buf []byte) (int, error) {
if r.buffered && len(buf) > 0 {
buf[0] = r.nextByte
r.buffered = false
return 1, nil
}
n, err := r.r.Read(buf)
if n > 0 {
r.nextByte = buf[n-1]
}
return n, err
}
func (r *bufReader) unreadByte() {
r.buffered = true
}
func (r *bufReader) seek(offset int64, whence int) (int64, error) {
n, err := r.r.(io.Seeker).Seek(offset, whence)
if err != nil {
return n, err
}
r.buffered = false
return n, nil
}
// A Reader wraps an io.Reader and decrypts the underlying data stream.
type Reader struct {
initialized bool
err error
r bufReader
segmentSize int
decrypter segmentEncrypter
buf []byte
nRead int
}
// NewReader returns a Reader that wraps r and decrypts the data using key in
// chunks of size segmentSize. NewReader panics if segmentSize <= 0.
func NewReader(r io.Reader, key []byte, segmentSize int) *Reader {
if segmentSize <= 0 {
panic("oae2.NewReader: segmentSize must be strictly greater than 0")
}
return &Reader{
r: bufReader{r: r},
segmentSize: segmentSize,
decrypter: segmentEncrypter{key: key},
buf: make([]byte, 0, segmentSize+aeadOverhead+1),
}
}
func (r *Reader) initialize() error {
r.initialized = true
buf := make([]byte, saltSize+1)
if _, r.err = io.ReadFull(&r.r, buf); r.err != nil {
if r.err == io.EOF {
r.err = io.ErrUnexpectedEOF
}
return r.err
}
r.r.unreadByte()
r.err = r.decrypter.init(buf[:saltSize])
return r.err
}
func (r *Reader) init() error {
if !r.initialized {
return r.initialize()
}
return r.err
}
func (r *Reader) fillBuf() error {
n, err := io.ReadFull(&r.r, r.buf[:r.segmentSize+aeadOverhead+1])
if err != nil && err != io.ErrUnexpectedEOF {
if err != io.EOF {
r.err = err
}
return err
}
buf := r.buf[:n]
if n == r.segmentSize+aeadOverhead+1 {
r.r.unreadByte()
buf = buf[:r.segmentSize+aeadOverhead]
}
if r.buf, r.err = r.decrypter.decryptSegment(buf, err == io.ErrUnexpectedEOF); r.err != nil {
return r.err
}
r.nRead = 0
return nil
}
// Read implements io.Reader.
func (r *Reader) Read(buf []byte) (int, error) {
if err := r.init(); err != nil {
return 0, err
}
if r.nRead == len(r.buf) {
if err := r.fillBuf(); err != nil {
return 0, err
}
if len(r.buf) == 0 {
return 0, io.EOF
}
}
n := copy(buf, r.buf[r.nRead:])
r.nRead += n
return n, nil
}
// WriteTo implements io.WriterTo.
func (r *Reader) WriteTo(w io.Writer) (int64, error) {
if err := r.init(); err != nil {
return 0, err
}
var nn int64
for {
if r.nRead < len(r.buf) {
n, err := w.Write(r.buf[r.nRead:])
r.nRead += n
nn += int64(n)
if err != nil {
return nn, err
}
}
if err := r.fillBuf(); err != nil {
if err == io.EOF {
return nn, nil
}
return nn, err
}
}
}
func (r *Reader) encryptedToPlaintextSize(offset int64) int64 {
segments := (offset - saltSize) / int64(r.segmentSize+aeadOverhead)
if (offset-saltSize)%int64(r.segmentSize+aeadOverhead) != 0 {
segments++
}
return offset - saltSize - segments*aeadOverhead
}
func (r *Reader) seek(offset int64) (int64, error) {
if offset < 0 {
return 0, fmt.Errorf("oae2.Reader.Seek: absolute offset is negative or would overflow")
}
segment := offset / int64(r.segmentSize)
segmentOffset := offset % int64(r.segmentSize)
if segment > math.MaxInt64/int64(r.segmentSize+aeadOverhead) {
return 0, fmt.Errorf("oae2.Reader.Seek: seek offset would overflow int64")
}
streamOffset := saltSize + segment*int64(r.segmentSize+aeadOverhead)
if streamOffset < 0 {
return 0, fmt.Errorf("oae2.Reader.Seek: seek offset would overflow int64")
}
n, err := r.r.seek(streamOffset, io.SeekStart)
if err != nil {
return 0, err
}
r.buf = r.buf[:0]
binary.LittleEndian.PutUint64(r.decrypter.nonce[:], uint64(segment))
clear(r.decrypter.nonce[8:])
if err := r.fillBuf(); err != nil && err != io.EOF {
return 0, err
}
r.nRead = min(int(segmentOffset), len(r.buf))
return r.encryptedToPlaintextSize(n) + int64(r.nRead), nil
}
// Seek implements io.Seeker. If the underlying reader does not implement
// io.Seeker, Seek returns [errors.ErrUnsupported].
func (r *Reader) Seek(offset int64, whence int) (int64, error) {
if _, ok := r.r.r.(io.Seeker); !ok {
return 0, errors.ErrUnsupported
}
if err := r.init(); err != nil {
return 0, err
}
switch whence {
case io.SeekStart:
return r.seek(offset)
case io.SeekCurrent:
if r.decrypter.nonce[8]|r.decrypter.nonce[9]|r.decrypter.nonce[10] != 0 {
return 0, fmt.Errorf("oae2.Reader.Seek: internal error: current stream position would overflow int64")
}
currentSegment := binary.LittleEndian.Uint64(r.decrypter.nonce[:8])
if currentSegment > 0 {
currentSegment--
}
if currentSegment > math.MaxInt64/uint64(r.segmentSize) {
return 0, fmt.Errorf("oae2.Reader.Seek: internal error: current stream position would overflow int64")
}
currentOffset := int64(currentSegment)*int64(r.segmentSize) + int64(r.nRead)
if currentOffset < 0 {
return 0, fmt.Errorf("oae2.Reader.Seek: internal error: current stream position would overflow int64")
}
return r.seek(currentOffset + offset)
case io.SeekEnd:
// Unfortunately we have to do an additional seek for SeekEnd
// in the general case to determine the total size of the
// underlying stream. Fortunately, the most common case for
// SeekEnd is with offset 0 and we can avoid the additional
// seek in that case.
encryptedSize, err := r.r.seek(0, io.SeekEnd)
if err != nil {
return 0, err
}
plaintextSize := r.encryptedToPlaintextSize(encryptedSize)
if offset == 0 {
return plaintextSize, nil
}
return r.seek(plaintextSize + offset)
default:
return 0, errors.New("oae2.Reader.Seek: invalid whence")
}
}
|