Files
vaultik/internal/blobgen/writer.go
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clawbot 3a58377127
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Parse age_recipients at config load and never echo the entry (closes #153)
Config.Validate now parses every age_recipients entry with age.ParseX25519Recipient, so a bad recipient fails at config load instead of deep in a backup after the snapshot row and tree walk. On failure the error names the position (age_recipients[N]) and never the value: a recipient string can itself be a secret key an operator pasted by mistake, and age's own error quotes its input. An entry starting with AGE-SECRET-KEY- gets a specific message.

The remaining parse sites (blobgen.NewWriter, crypto NewEncryptor and UpdateRecipients), reachable by callers that skip config.Load, likewise drop the value and age's wrapped error, naming only the position.

Model: opus-4-8
2026-09-22 13:01:00 +02:00

161 lines
4.6 KiB
Go

package blobgen
import (
"crypto/sha256"
"errors"
"fmt"
"hash"
"io"
"runtime"
"filippo.io/age"
"github.com/klauspost/compress/zstd"
)
// Zstd compression level bounds accepted by NewWriter.
const (
minCompressionLevel = 1
maxCompressionLevel = 19
)
// reservedCompressionCPUs is how many CPUs are left free of zstd
// compression work for I/O and hashing.
const reservedCompressionCPUs = 2
// ErrInvalidCompressionLevel is returned when the zstd compression level
// is outside the accepted 1-19 range.
var ErrInvalidCompressionLevel = errors.New(
"invalid compression level: must be between 1 and 19")
// errInvalidRecipient is returned when a recipient string does not parse as
// an X25519 age1... public key. It omits the value, which can be sensitive.
var errInvalidRecipient = errors.New(
"not a valid X25519 age1... recipient")
// Writer wraps compression and encryption with SHA256 hashing.
// Data flows: input -> tee(hasher, compressor -> encryptor -> destination)
// The hash is computed on the uncompressed input for deterministic content-addressing.
type Writer struct {
teeWriter io.Writer // Tee to hasher and compressor
compressor *zstd.Encoder // Compression layer
encryptor io.WriteCloser // Encryption layer
hasher hash.Hash // SHA256 hasher (on uncompressed input)
compressionLevel int
bytesWritten int64
}
// NewWriter creates a new Writer that compresses, encrypts, and hashes
// data. The hash is computed on the uncompressed input for deterministic
// content-addressing.
func NewWriter(
w io.Writer, compressionLevel int, recipients []string,
) (*Writer, error) {
// Validate compression level
err := validateCompressionLevel(compressionLevel)
if err != nil {
return nil, err
}
// Create SHA256 hasher for the uncompressed input
hasher := sha256.New()
// Parse recipients
var ageRecipients []age.Recipient
for i, recipient := range recipients {
// The recipient string can be sensitive (e.g. a secret key pasted by
// mistake), so the error names its position, never its value.
r, err := age.ParseX25519Recipient(recipient)
if err != nil {
return nil, fmt.Errorf("%w: recipient %d", errInvalidRecipient, i)
}
ageRecipients = append(ageRecipients, r)
}
// Create encryption writer that outputs to destination
encWriter, err := age.Encrypt(w, ageRecipients...)
if err != nil {
return nil, fmt.Errorf("creating encryption writer: %w", err)
}
// Calculate compression concurrency: CPUs - 2, minimum 1
concurrency := max(runtime.NumCPU()-reservedCompressionCPUs, 1)
// Create compression writer with encryption as destination
compressor, err := zstd.NewWriter(encWriter,
zstd.WithEncoderLevel(zstd.EncoderLevelFromZstd(compressionLevel)),
zstd.WithEncoderConcurrency(concurrency),
)
if err != nil {
_ = encWriter.Close()
return nil, fmt.Errorf("creating compression writer: %w", err)
}
// Create tee writer: input goes to both hasher and compressor
teeWriter := io.MultiWriter(hasher, compressor)
return &Writer{
teeWriter: teeWriter,
compressor: compressor,
encryptor: encWriter,
hasher: hasher,
compressionLevel: compressionLevel,
}, nil
}
// Write implements io.Writer
func (w *Writer) Write(p []byte) (int, error) {
n, err := w.teeWriter.Write(p)
w.bytesWritten += int64(n)
return n, err
}
// Close closes all layers and returns any errors
func (w *Writer) Close() error {
// Close compressor first
err := w.compressor.Close()
if err != nil {
return fmt.Errorf("closing compressor: %w", err)
}
// Then close encryptor
err = w.encryptor.Close()
if err != nil {
return fmt.Errorf("closing encryptor: %w", err)
}
return nil
}
// Sum256 returns the double SHA256 hash of the uncompressed input data.
// Double hashing (SHA256(SHA256(data))) prevents information leakage about
// the plaintext - an attacker cannot confirm existence of known content
// by computing its hash and checking for a matching blob filename.
func (w *Writer) Sum256() []byte {
// First hash: SHA256(plaintext)
firstHash := w.hasher.Sum(nil)
// Second hash: SHA256(firstHash) - this is the blob ID
secondHash := sha256.Sum256(firstHash)
return secondHash[:]
}
// BytesWritten returns the number of uncompressed bytes written
func (w *Writer) BytesWritten() int64 {
return w.bytesWritten
}
func validateCompressionLevel(level int) error {
// Zstd compression levels: 1-19 (default is 3)
// SpeedFastest = 1, SpeedDefault = 3, SpeedBetterCompression = 7,
// SpeedBestCompression = 11
if level < minCompressionLevel || level > maxCompressionLevel {
return fmt.Errorf("%w: got %d", ErrInvalidCompressionLevel, level)
}
return nil
}