2bf11f052d
# Conflicts: # internal/ipc/api.go # internal/ipc/client.go # internal/llm/client.go
178 lines
6.0 KiB
Go
178 lines
6.0 KiB
Go
package ipc
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import (
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"bytes"
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"context"
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"encoding/json"
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"errors"
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"testing"
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)
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// The wire must carry the PRF secret, not the credential public key. This is
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// the field rename that fixes Vikunja #14: a v1 deployment sent "public_key",
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// and the value it sent was in passkeys.json next to the wrapped blob.
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func TestUnlockWireCarriesSecret(t *testing.T) {
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secret := bytes.Repeat([]byte{7}, 32)
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for _, p := range []any{unlockReq{Secret: secret}, storeEncryptionKeyReq{Secret: secret}} {
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b, err := json.Marshal(p)
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if err != nil {
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t.Fatalf("marshal %T: %v", p, err)
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}
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var m map[string]any
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if err := json.Unmarshal(b, &m); err != nil {
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t.Fatalf("unmarshal %T: %v", p, err)
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}
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if _, ok := m["secret"]; !ok {
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t.Errorf("%T has no \"secret\" field: %s", p, b)
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}
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if _, ok := m["public_key"]; ok {
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t.Errorf("%T still sends \"public_key\": %s", p, b)
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}
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}
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}
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// The secret must reach the daemon hook byte-for-byte through the socket.
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func TestUnlockDeliversSecretToHook(t *testing.T) {
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_, srv, cli, _ := newServerWithStore(t)
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secret := make([]byte, 32)
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for i := range secret {
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secret[i] = byte(i + 1)
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}
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var gotUnlock, gotWrap []byte
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var gotExplicit bool
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srv.UnlockFn = func(_ context.Context, s []byte) error { gotUnlock = bytes.Clone(s); return nil }
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srv.WrapKeyFn = func(_ context.Context, s []byte, explicit bool) error {
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gotWrap = bytes.Clone(s)
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gotExplicit = explicit
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return nil
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}
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ctx := context.Background()
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if err := cli.Unlock(ctx, secret); err != nil {
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t.Fatalf("Unlock: %v", err)
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}
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if !bytes.Equal(gotUnlock, secret) {
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t.Errorf("UnlockFn got %x, want %x", gotUnlock, secret)
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}
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if err := cli.StoreEncryptionKey(ctx, secret, true); err != nil {
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t.Fatalf("StoreEncryptionKey: %v", err)
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}
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if !bytes.Equal(gotWrap, secret) {
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t.Errorf("WrapKeyFn got %x, want %x", gotWrap, secret)
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}
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// The explicit flag rides the same request. Without it the daemon cannot
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// tell "he asked for the cold-start key to be rewritten" from "a passkey
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// was asserted", and rewrites the blob on every step-up.
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if !gotExplicit {
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t.Error("WrapKeyFn got explicit=false, want the flag to cross the wire")
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}
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if err := cli.StoreEncryptionKey(ctx, secret, false); err != nil {
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t.Fatalf("StoreEncryptionKey: %v", err)
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}
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if gotExplicit {
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t.Error("WrapKeyFn got explicit=true for an implicit wrap")
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}
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}
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// A refusal from the daemon hook — a wrong passkey, or no prior assertion —
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// must surface to the caller as an error, never be swallowed into success.
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func TestUnlockPropagatesRefusal(t *testing.T) {
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_, srv, cli, _ := newServerWithStore(t)
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srv.UnlockFn = func(context.Context, []byte) error {
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return errors.New("unlock: no verified passkey assertion (assert first)")
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}
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if err := cli.Unlock(context.Background(), bytes.Repeat([]byte{9}, 32)); err == nil {
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t.Fatal("a refused unlock reported success")
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}
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}
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// Without the hooks wired — the normal, unencrypted deployment — both methods
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// answer ErrUnknownMethod rather than pretending to have done something.
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func TestUnlockUnwiredIsUnknownMethod(t *testing.T) {
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_, _, cli, _ := newServerWithStore(t)
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ctx := context.Background()
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if err := cli.Unlock(ctx, bytes.Repeat([]byte{1}, 32)); err == nil {
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t.Error("Unlock succeeded with no UnlockFn wired")
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}
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if err := cli.StoreEncryptionKey(ctx, bytes.Repeat([]byte{1}, 32), false); err == nil {
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t.Error("StoreEncryptionKey succeeded with no WrapKeyFn wired")
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}
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}
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// Locked mode: Server.Check is the whole authorization surface, and it must
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// default-deny everything except the two methods the unlock flow needs.
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func TestLockedCheckDefaultDenies(t *testing.T) {
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_, srv, cli, _ := newServerWithStore(t)
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locked := errors.New("locked")
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srv.Check = func(_ context.Context, m Method, _ json.RawMessage) error {
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switch m {
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case MethodAssertStepUp, MethodUnlock:
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return nil
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default:
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return locked
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}
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}
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unlocked := false
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srv.UnlockFn = func(context.Context, []byte) error { unlocked = true; return nil }
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srv.StepUp = func(context.Context) error { return nil }
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srv.WrapKeyFn = func(context.Context, []byte, bool) error { return nil }
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ctx := context.Background()
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// A store method must be refused while locked.
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if _, err := cli.RecentNotes(ctx, 5); err == nil {
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t.Error("a store read went through while locked")
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}
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// Key wrapping is NOT on the allowlist: a locked daemon has no key to wrap.
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if err := cli.StoreEncryptionKey(ctx, bytes.Repeat([]byte{2}, 32), false); err == nil {
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t.Error("StoreEncryptionKey was allowed while locked")
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}
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// The unlock flow itself must still work.
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if err := cli.AssertStepUp(ctx); err != nil {
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t.Errorf("AssertStepUp refused while locked: %v", err)
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}
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if err := cli.Unlock(ctx, bytes.Repeat([]byte{3}, 32)); err != nil {
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t.Errorf("Unlock refused while locked: %v", err)
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}
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if !unlocked {
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t.Error("UnlockFn never ran")
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}
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}
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// A locked daemon has to be able to say it is alive. Every CoreAPI method is
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// refused before unlock, so a health check built on one of those cannot tell a
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// daemon waiting for a passkey apart from a daemon that failed to start. That
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// is what turned a good update into the manual-recovery case in
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// internal/update. MethodPing reaches no store, so it answers either way.
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func TestPingAnswersWhileLocked(t *testing.T) {
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_, srv, cli, _ := newServerWithStore(t)
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srv.LockedFn = func() bool { return true }
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locked := errors.New("daemon locked")
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srv.Check = func(_ context.Context, m Method, _ json.RawMessage) error {
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switch m {
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case MethodAssertStepUp, MethodUnlock, MethodPing:
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return nil
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default:
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return locked
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}
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}
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ctx := context.Background()
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p, err := cli.Ping(ctx)
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if err != nil {
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t.Fatalf("Ping while locked: %v", err)
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}
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if !p.Alive || !p.Locked {
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t.Errorf("Ping = %+v; want alive and locked", p)
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}
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// And the read it replaces is still refused, which is the whole point.
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if _, err := cli.Presence(ctx); err == nil {
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t.Error("Presence answered while locked")
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}
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srv.LockedFn = func() bool { return false }
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if p, err := cli.Ping(ctx); err != nil || p.Locked {
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t.Errorf("Ping after unlock = %+v, %v; want alive and not locked", p, err)
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}
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}
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