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// Package cryptoutil contains friendly wrappers around the algorithms from the
// standard library's crypto package.
package cryptoutil
import (
"crypto/hkdf"
"crypto/hmac"
"crypto/pbkdf2"
"crypto/rand"
"crypto/sha512"
"crypto/subtle"
"encoding/hex"
"errors"
)
const (
defaultIterations = 4718580 // from cmd/finditers
oneSaltSize = 64
hashSize = 64
certSize = sha512.Size
)
// SaltSize is the expected salt length for HashIter.
const SaltSize = 2 * oneSaltSize
// A PasswordHash must be PasswordHashSize bytes.
const PasswordHashSize = SaltSize + hashSize
// A PasswordHash is derived from the user's password and can be passed to
// CheckPassword to verify if two passwords match. A PasswordHash must be
// PasswordHashSize bytes.
type PasswordHash []byte
func (h PasswordHash) String() string { return hex.EncodeToString(h) }
// A RawKey is generated from a password hash and can be used to derive further
// key material.
type RawKey struct {
key []byte
}
// An HMACKey must be HMACKeySize bytes.
const HMACKeySize = sha512.BlockSize
// An HMAC key can be used to symmetrically sign and verify messages
// using HMAC-SHA512. An HMACKey must be HMACKeyLen bytes.
type HMACKey []byte
// A SignedMessage is a message that has been cryptographically signed
// with HMAC-SHA512.
type SignedMessage []byte
// An EncryptedMessage is encrypted with AES-256-CTR-HMAC-SHA512.
type EncryptedMessage []byte
// HashIter runs PBKDF2-SHA512 for iter iterations. Useful for benchmarking. The
// salt must be SaltSize bytes.
func HashIter(password string, salt []byte, iter int) ([]byte, error) {
return pbkdf2.Key(sha512.New, password, salt, iter, sha512.Size)
}
func hashWithSalt(password string, salt []byte) (RawKey, []byte, error) {
hash, err := HashIter(password, salt[:oneSaltSize], defaultIterations)
if err != nil {
return RawKey{}, nil, err
}
key, err := hkdf.Extract(sha512.New, hash, salt[oneSaltSize:])
if err != nil {
return RawKey{}, nil, err
}
pwHash, err := hkdf.Expand(sha512.New, key, "pwhash", hashSize)
if err != nil {
return RawKey{}, nil, err
}
return RawKey{key}, pwHash, nil
}
// Hash hashes a user password using PBKDF2-SHA512.
func Hash(password string) (PasswordHash, error) {
salt := make([]byte, SaltSize, SaltSize+hashSize)
rand.Read(salt)
_, pwHash, err := hashWithSalt(password, salt)
if err != nil {
return nil, err
}
return append(salt, pwHash...), nil
}
// CheckPassword verifies password against a PasswordHash and returns an
// EncryptionKey derived from the password if successful.
func (h PasswordHash) CheckPassword(password string) (RawKey, error) {
salt, expectedHash := h[:SaltSize], h[SaltSize:]
key, pwHash, err := hashWithSalt(password, salt)
if err != nil {
return RawKey{}, err
}
if subtle.ConstantTimeCompare(pwHash, expectedHash) == 0 {
return RawKey{}, errors.New("incorrect password")
}
return key, nil
}
// Sign generates an HMAC-SHA512 signature and appends it to msg.
func (k HMACKey) Sign(msg []byte) SignedMessage {
mac := hmac.New(sha512.New, k)
mac.Write(msg)
return mac.Sum(msg)
}
// Verify checks whether the given message has a valid signature, and returns
// the raw message if it does.
func (k HMACKey) Verify(msg SignedMessage) ([]byte, bool) {
if len(msg) < certSize {
return nil, false
}
msg, sig := msg[:len(msg)-certSize], msg[len(msg)-certSize:]
mac := hmac.New(sha512.New, k)
mac.Write(msg)
if !hmac.Equal(sig, mac.Sum(nil)) {
return nil, false
}
return msg, true
}
// EncryptionKey derives an EncryptionKey.
func (k RawKey) EncryptionKey() (EncryptionKey, error) {
return hkdf.Expand(sha512.New, k.key, "encrypt", sha512.Size)
}
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