Files
Maven/cmd/mavweb/passkey_prf_test.go
T
kami 4eca20bd94 Derive the cold-start unlock key from the passkey PRF, not the public key (#14)
Cold-start unlock wrapped the database key under the credential *public* key.
A public key is public: mavweb writes it verbatim to passkeys.json, normally in
the same state dir as db_key.wrapped, so anyone holding both files recovered the
database key offline with no authenticator involved. The wrapped blob was a
plaintext key with extra steps.

The secret is now the WebAuthn PRF extension output — 32 bytes the authenticator
computes over a fixed salt and never stores anywhere. The blob gains a version:

  v2:  "MVNKW2\x00" || salt || nonce || AES-256-GCM(key), magic as AAD
  v1:  salt || nonce || AES-256-GCM(key)                  (read-only)

v1 still opens so an existing deployment is not bricked, and reports itself so
the daemon can log a SECURITY line telling him to re-enroll. Nothing writes v1.
The magic is authenticated, so a v2 blob cannot be stripped and re-read as v1.

Four other defects on the same path:

  - The locked-boot store was opened on an IPC goroutine inside UnlockFn and
    never closed. Close is what re-encrypts the tmpfs working copy back over
    the ciphertext, so every write of a cold-started session was lost silently
    on the next boot. daemonLock now owns the store and seals it at shutdown.
  - MethodUnlock was reachable by anything on the box; the socket is same-uid
    and cannot authenticate its caller. It now requires a passkey assertion
    that mavweb verified first.
  - Concurrent unlocks would each open a store and wire a daemon. One at a
    time, and never a second one.
  - The hand-rolled HKDF keyed the expand step with the salt instead of the
    PRK. Replaced with crypto/hkdf.

Key wrapping moves from enrolment to the first assertion, because create() does
not produce a PRF result on most authenticators — only a support flag. An
authenticator without PRF now writes no wrapped file at all rather than one
that looks protected and is not, and the page says so.

Verified: make build, make test. New tests cover the v2 round trip, a wrong
secret, every single-bit tamper, truncation, the v1 downgrade attempt, legacy
v1 reads, non-32-byte and all-zero secrets, the ipc wire field, locked-mode
default-deny, a forged assertion never reaching the unlock path, seal-on-
shutdown after a cold start, and that nothing in the state dir contains the
plaintext key. The PRF round trip against real hardware is a QA step.

Vikunja #14
2026-08-01 05:49:27 +04:00

294 lines
9.1 KiB
Go

package main
import (
"bytes"
"context"
"crypto/ecdsa"
"crypto/elliptic"
"crypto/rand"
"crypto/sha256"
"encoding/base64"
"encoding/binary"
"encoding/json"
"errors"
"net/http"
"net/http/httptest"
"path/filepath"
"strings"
"testing"
"github.com/kami/maven/internal/webauthn"
)
const prfTestOrigin = "https://maven.test"
const prfTestRPID = "maven.test"
// fakeKeyIPC stands in for the mavend socket and records exactly what secret
// each call received — the point of the whole test file is that it is the PRF
// output and never the credential public key.
type fakeKeyIPC struct {
unlockSecret []byte
wrapSecret []byte
unlockCalls int
wrapCalls int
unlockErr error
}
func (f *fakeKeyIPC) Unlock(_ context.Context, secret []byte) error {
f.unlockCalls++
f.unlockSecret = bytes.Clone(secret)
return f.unlockErr
}
func (f *fakeKeyIPC) StoreEncryptionKey(_ context.Context, secret []byte) error {
f.wrapCalls++
f.wrapSecret = bytes.Clone(secret)
return nil
}
func b64u(b []byte) string { return base64.RawURLEncoding.EncodeToString(b) }
// prfAuthenticator is a minimal software authenticator: a P-256 key plus the
// COSE encoding of its public half.
type prfAuthenticator struct {
key *ecdsa.PrivateKey
credID []byte
cose []byte
}
func newPRFAuthenticator(t *testing.T) *prfAuthenticator {
t.Helper()
key, err := ecdsa.GenerateKey(elliptic.P256(), rand.Reader)
if err != nil {
t.Fatalf("generate key: %v", err)
}
x := key.PublicKey.X.FillBytes(make([]byte, 32))
y := key.PublicKey.Y.FillBytes(make([]byte, 32))
// COSE_Key: {1: 2 (EC2), 3: -7 (ES256), -1: 1 (P-256), -2: x, -3: y}
var c []byte
c = append(c, 0xa5) // map(5)
c = append(c, 0x01, 0x02) // 1: 2
c = append(c, 0x03, 0x26) // 3: -7
c = append(c, 0x20, 0x01) // -1: 1
c = append(c, 0x21, 0x58, 0x20) // -2: bytes(32)
c = append(c, x...)
c = append(c, 0x22, 0x58, 0x20) // -3: bytes(32)
c = append(c, y...)
return &prfAuthenticator{key: key, credID: []byte("prf-cred"), cose: c}
}
func (a *prfAuthenticator) authData(flags byte, counter uint32, attested bool) []byte {
h := sha256.Sum256([]byte(prfTestRPID))
d := append([]byte{}, h[:]...)
d = append(d, flags)
cb := make([]byte, 4)
binary.BigEndian.PutUint32(cb, counter)
d = append(d, cb...)
if attested {
d = append(d, make([]byte, 16)...) // aaguid
l := make([]byte, 2)
binary.BigEndian.PutUint16(l, uint16(len(a.credID)))
d = append(d, l...)
d = append(d, a.credID...)
d = append(d, a.cose...)
}
return d
}
func clientDataJSON(typ, challenge string) []byte {
b, _ := json.Marshal(map[string]string{"type": typ, "challenge": challenge, "origin": prfTestOrigin})
return b
}
// register drives POST /register/finish with a valid attestation.
func (a *prfAuthenticator) register(t *testing.T, h *PasskeyHandle) {
t.Helper()
_, chal, err := h.rp.CreationOptions([]byte("u"), "user")
if err != nil {
t.Fatalf("CreationOptions: %v", err)
}
// {"fmt":"none","attStmt":{},"authData":<bytes>}
att := []byte{0xa3}
att = append(att, 0x63, 'f', 'm', 't', 0x64, 'n', 'o', 'n', 'e')
att = append(att, 0x67, 'a', 't', 't', 'S', 't', 'm', 't', 0xa0)
ad := a.authData(1<<6|0x05, 0, true)
att = append(att, 0x68, 'a', 'u', 't', 'h', 'D', 'a', 't', 'a')
att = append(att, 0x59, byte(len(ad)>>8), byte(len(ad)))
att = append(att, ad...)
body, _ := json.Marshal(map[string]any{
"challenge": chal,
"credential": map[string]any{
"id": b64u(a.credID),
"type": "public-key",
"response": map[string]any{
"clientDataJSON": b64u(clientDataJSON("webauthn.create", chal)),
"attestationObject": b64u(att),
},
},
})
w := httptest.NewRecorder()
h.RegisterFinish(w, httptest.NewRequest(http.MethodPost, "/auth/webauthn/register/finish", bytes.NewReader(body)))
if w.Code != http.StatusOK {
t.Fatalf("RegisterFinish: %d %s", w.Code, w.Body.String())
}
}
// assert drives POST /assert/finish with a valid assertion and the given
// base64url PRF result.
func (a *prfAuthenticator) assert(t *testing.T, h *PasskeyHandle, prf string) *httptest.ResponseRecorder {
t.Helper()
_, chal, err := h.rp.AssertionOptions()
if err != nil {
t.Fatalf("AssertionOptions: %v", err)
}
ad := a.authData(0x05, 7, false)
cdj := clientDataJSON("webauthn.get", chal)
hash := sha256.Sum256(cdj)
sig, err := ecdsa.SignASN1(rand.Reader, a.key, append(append([]byte{}, ad...), hash[:]...))
if err != nil {
t.Fatalf("sign: %v", err)
}
body, _ := json.Marshal(map[string]any{
"challenge": chal,
"prf": prf,
"credential": map[string]any{
"id": b64u(a.credID),
"type": "public-key",
"response": map[string]any{
"clientDataJSON": b64u(cdj),
"authenticatorData": b64u(ad),
"signature": b64u(sig),
},
},
})
w := httptest.NewRecorder()
h.AssertFinish(w, httptest.NewRequest(http.MethodPost, "/auth/webauthn/assert/finish", bytes.NewReader(body)))
return w
}
func newPRFHandle(t *testing.T, key *fakeKeyIPC) *PasskeyHandle {
t.Helper()
store, err := newCredentialStore(filepath.Join(t.TempDir(), "passkeys.json"))
if err != nil {
t.Fatalf("credential store: %v", err)
}
return &PasskeyHandle{
rp: webauthn.NewRP(webauthn.Config{Origin: prfTestOrigin, RPID: prfTestRPID, RPName: "maven"}),
encryptFn: key,
store: store,
session: webauthn.NewPasskeySession(0),
}
}
// The fix for Vikunja #14: what goes over IPC is the PRF secret from the
// authenticator, not the credential public key sitting in passkeys.json.
func TestAssertSendsPRFSecretNotPublicKey(t *testing.T) {
key := &fakeKeyIPC{}
h := newPRFHandle(t, key)
auth := newPRFAuthenticator(t)
auth.register(t, h)
// Enrolment must not wrap anything: create() yields no PRF result.
if key.wrapCalls != 0 || key.unlockCalls != 0 {
t.Fatalf("registration touched the key IPC (wrap=%d unlock=%d)", key.wrapCalls, key.unlockCalls)
}
secret := make([]byte, 32)
for i := range secret {
secret[i] = byte(i + 1)
}
if w := auth.assert(t, h, b64u(secret)); w.Code != http.StatusOK {
t.Fatalf("AssertFinish: %d %s", w.Code, w.Body.String())
}
if key.unlockCalls != 1 || key.wrapCalls != 1 {
t.Fatalf("unlock=%d wrap=%d, want 1 and 1", key.unlockCalls, key.wrapCalls)
}
if !bytes.Equal(key.unlockSecret, secret) {
t.Errorf("Unlock got %x, want the PRF secret %x", key.unlockSecret, secret)
}
if !bytes.Equal(key.wrapSecret, secret) {
t.Errorf("StoreEncryptionKey got %x, want the PRF secret %x", key.wrapSecret, secret)
}
// And explicitly: not the credential public key.
pub, _, err := h.store.Lookup(b64u(auth.credID))
if err != nil {
t.Fatalf("lookup: %v", err)
}
if bytes.Equal(key.unlockSecret, pub) {
t.Fatal("the credential public key was sent as the unlock secret")
}
}
// An authenticator without PRF must produce no unlock attempt at all — the
// assertion still succeeds (step-up works), but cold-start unlock stays off
// rather than falling back to something weaker.
func TestAssertWithoutPRFDoesNotUnlock(t *testing.T) {
for _, prf := range []string{"", "!!!not-base64!!!", b64u(make([]byte, 32)), b64u(make([]byte, 16))} {
key := &fakeKeyIPC{}
h := newPRFHandle(t, key)
auth := newPRFAuthenticator(t)
auth.register(t, h)
w := auth.assert(t, h, prf)
if w.Code != http.StatusOK {
t.Fatalf("prf=%q: AssertFinish %d %s", prf, w.Code, w.Body.String())
}
if key.unlockCalls != 0 || key.wrapCalls != 0 {
t.Errorf("prf=%q: unlock=%d wrap=%d, want no key IPC at all", prf, key.unlockCalls, key.wrapCalls)
}
}
}
// A failed unlock must not fail the assertion: step-up is independently valid,
// and a locked daemon degrades rather than breaking the login.
func TestAssertSucceedsWhenUnlockFails(t *testing.T) {
key := &fakeKeyIPC{unlockErr: errors.New("wrong credential")}
h := newPRFHandle(t, key)
auth := newPRFAuthenticator(t)
auth.register(t, h)
secret := bytes.Repeat([]byte{3}, 32)
if w := auth.assert(t, h, b64u(secret)); w.Code != http.StatusOK {
t.Fatalf("AssertFinish: %d %s", w.Code, w.Body.String())
}
if key.unlockCalls != 1 {
t.Errorf("unlock attempted %d times, want 1", key.unlockCalls)
}
}
// A forged assertion must never reach the unlock path.
func TestForgedAssertionNeverUnlocks(t *testing.T) {
key := &fakeKeyIPC{}
h := newPRFHandle(t, key)
auth := newPRFAuthenticator(t)
auth.register(t, h)
// A different key signing over the same credential id.
attacker := newPRFAuthenticator(t)
attacker.credID = auth.credID
w := attacker.assert(t, h, b64u(bytes.Repeat([]byte{4}, 32)))
if w.Code == http.StatusOK {
t.Fatal("an assertion signed by the wrong key was accepted")
}
if key.unlockCalls != 0 || key.wrapCalls != 0 {
t.Fatalf("a forged assertion reached the key IPC (unlock=%d wrap=%d)", key.unlockCalls, key.wrapCalls)
}
}
// The browser side is the only place the PRF result exists. If the page stops
// asking for it or stops reading it back, cold-start unlock silently dies with
// nothing failing, so the page source is asserted directly.
func TestPasskeyPageRequestsAndPostsPRF(t *testing.T) {
for _, want := range []string{
"getClientExtensionResults",
"ext.prf.results.first",
"body:JSON.stringify({challenge,prf,",
} {
if !strings.Contains(passkeyPageHTML, want) {
t.Errorf("the passkey page no longer contains %q", want)
}
}
}