mirror of
https://tangled.org/evan.jarrett.net/at-container-registry
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A read-only app password authenticates fine via createSession but cannot call com.atproto.server.getServiceAuth, which is privileged — the PDS answers 403 InsufficientScope. That fell through to the generic non-200 path and became a 503, which invites the client to retry a request that can never succeed, with no indication of what is actually wrong. Classify it with a sentinel error and map it to a 403 at /auth/token, carrying text that names the fix: use a full-access app password. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
600 lines
24 KiB
Go
600 lines
24 KiB
Go
package token
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import (
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"context"
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"encoding/json"
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"errors"
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"fmt"
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"log/slog"
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"net/http"
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"strings"
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"time"
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"atcr.io/pkg/appview/db"
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"atcr.io/pkg/atproto"
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"atcr.io/pkg/auth"
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"github.com/distribution/distribution/v3/registry/api/errcode"
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"github.com/go-chi/render"
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)
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// PostAuthCallback is called after successful Basic Auth authentication.
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// Parameters: ctx, did, handle, pdsEndpoint, accessToken
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// This allows AppView to perform business logic (profile creation, etc.)
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// without coupling the token package to AppView-specific dependencies.
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type PostAuthCallback func(ctx context.Context, did, handle, pdsEndpoint, accessToken string) error
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// OAuthSessionValidator validates OAuth sessions before issuing tokens
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// This interface allows the token handler to verify OAuth sessions are usable
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// (not just that they exist) without depending directly on the OAuth implementation.
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type OAuthSessionValidator interface {
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// ValidateSession checks if OAuth session is usable by attempting to load/refresh it
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// Returns nil if session is valid, error if session is invalid/expired/needs re-auth
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ValidateSession(ctx context.Context, did string) error
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}
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// Authorizer gates issuance of registry JWTs at the auth phase.
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// Implementations decide which sub-checks apply based on `access`:
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// crew reconciliation runs for any token request (so first-time CLI users
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// can pull from a private hold), while membership and quota enforcement
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// only apply to non-wildcard push scopes. The Docker spec model is to
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// embed authorization in the JWT and trust it for its short lifetime; this
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// is the single point where those gates run.
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type Authorizer interface {
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// Authorize is called once per token issuance, after the requester's
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// ATProto credentials have been validated. Returns nil if `access` is
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// allowed, or an error describing the denial reason. The error message
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// surfaces to the OCI client inside the distribution error JSON body.
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//
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// Implementations may narrow `access` in place (dropping actions from an
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// entry) to grant a subset rather than deny the whole request, and the
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// issued JWT carries whatever survives. They must not widen it: every
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// entry has already cleared ValidateAccess. The handler reads `access`
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// only after draining the gate, so the narrowing is ordered before the
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// JWT is signed — keep it that way if this call site moves.
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//
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// authMethod is one of AuthMethodOAuth or AuthMethodAppPassword and lets
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// the implementation pick the right service-token fetcher when it needs
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// to talk to the hold (e.g. for crew reconciliation).
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Authorize(ctx context.Context, did, authMethod string, access []auth.AccessEntry) error
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}
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// ServiceAuthFetcher pre-mints the AppView↔hold service-auth at /auth/token
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// time so the registry JWT can be bound to its lifetime. JWT and service-auth
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// then expire concurrently; when Docker hits 401, the next /auth/token call
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// mints both fresh in lockstep.
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type ServiceAuthFetcher interface {
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// Fetch ensures a service-auth exists for (did, hold derived from did)
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// and returns its expiry. Returns (zero time, nil) when the user has no
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// hold configured — caller falls back to the issuer's default exp.
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Fetch(ctx context.Context, did, authMethod string) (expiresAt time.Time, err error)
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}
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// Handler handles /auth/token requests
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type Handler struct {
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issuer *Issuer
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validator *auth.SessionValidator
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deviceStore *db.DeviceStore // For validating device secrets
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postAuthCallback PostAuthCallback
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oauthSessionValidator OAuthSessionValidator
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authorizer Authorizer
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serviceAuthFetcher ServiceAuthFetcher
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// services is the set of registry domains this AppView fronts, keyed by
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// normalized hostname. Nil means single-domain: the lookups in
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// resolveService miss and every token gets the issuer's own service.
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services map[string]bool
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}
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// NewHandler creates a new token handler
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func NewHandler(issuer *Issuer, deviceStore *db.DeviceStore) *Handler {
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return &Handler{
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issuer: issuer,
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validator: auth.NewSessionValidator(),
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deviceStore: deviceStore,
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}
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}
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// SetPostAuthCallback sets the callback to be invoked after successful Basic Auth authentication
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// This allows AppView to inject business logic without coupling the token package
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func (h *Handler) SetPostAuthCallback(callback PostAuthCallback) {
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h.postAuthCallback = callback
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}
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// SetOAuthSessionValidator sets the OAuth session validator for validating device auth
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// When set, the handler will validate OAuth sessions are usable before issuing tokens for device auth
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// This prevents the flood of errors that occurs when a stale session is discovered during push
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func (h *Handler) SetOAuthSessionValidator(validator OAuthSessionValidator) {
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h.oauthSessionValidator = validator
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}
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// SetAuthorizer wires the auth-phase gate. When set, every token request
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// runs Authorize after credentials validate; a non-nil error is returned to
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// the client as a 403 (distribution error JSON) and the JWT is not issued.
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func (h *Handler) SetAuthorizer(authorizer Authorizer) {
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h.authorizer = authorizer
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}
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// SetServiceAuthFetcher binds JWT issuance to the AppView↔hold service-auth.
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// When set, the handler pre-mints the service-auth and stamps the JWT's exp
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// from the cached expiry, so both tokens expire concurrently.
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func (h *Handler) SetServiceAuthFetcher(fetcher ServiceAuthFetcher) {
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h.serviceAuthFetcher = fetcher
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}
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// SetServices declares the registry domains this AppView fronts, e.g.
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// ["buoy.cr", "seamark.cr", "atcr.io"]. Each issued JWT is stamped with
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// whichever of these the client is authenticating against, so the audience
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// names the front door actually used (see pkg/appview/registryauth). Unset
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// leaves every token on the issuer's configured service, which is correct for
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// a single-domain deployment.
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func (h *Handler) SetServices(services []string) {
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if len(services) == 0 {
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h.services = nil
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return
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}
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set := make(map[string]bool, len(services))
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for _, s := range services {
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if n := NormalizeService(s); n != "" {
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set[n] = true
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}
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}
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h.services = set
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}
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// resolveService picks the registry domain to stamp as the JWT's audience.
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//
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// The requested service is the primary signal: Docker echoes back whatever the
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// WWW-Authenticate challenge advertised, and that challenge is built per front
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// door. It arrives in the ?service= query parameter on the GET form and in the
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// service form field on the POST form, so callers extract it per method and
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// pass it in. The request's own host is the fallback, which covers clients that
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// reach /auth/token directly on a registry domain rather than via the realm.
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// Both are client-influenced, so both are only honoured when they name a
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// configured registry domain; anything else falls back to the issuer's service.
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// That makes the worst case a token scoped to the primary domain, not a
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// caller-chosen audience.
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func (h *Handler) resolveService(r *http.Request, requested string) string {
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if s := NormalizeService(requested); h.services[s] {
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return s
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}
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if s := NormalizeService(r.Host); h.services[s] {
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return s
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}
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return h.issuer.service
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}
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// TokenResponse represents the response from /auth/token
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type TokenResponse struct {
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Token string `json:"token,omitempty"` // Legacy field
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AccessToken string `json:"access_token,omitempty"` // Standard field
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ExpiresIn int `json:"expires_in,omitempty"`
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IssuedAt string `json:"issued_at,omitempty"`
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}
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// getBaseURL extracts the base URL from the request, handling proxies
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func getBaseURL(r *http.Request) string {
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baseURL := r.Header.Get("X-Forwarded-Host")
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if baseURL == "" {
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baseURL = r.Host
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}
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if !strings.HasPrefix(baseURL, "http") {
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// Add scheme
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if r.TLS != nil || r.Header.Get("X-Forwarded-Proto") == "https" {
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baseURL = "https://" + baseURL
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} else {
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baseURL = "http://" + baseURL
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}
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}
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return baseURL
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}
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// sendAuthError sends a formatted authentication error response
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func sendAuthError(w http.ResponseWriter, r *http.Request, message string) {
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baseURL := getBaseURL(r)
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w.Header().Set("WWW-Authenticate", `Basic realm="ATCR Registry"`)
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http.Error(w, fmt.Sprintf(`%s
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To authenticate:
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1. Install credential helper: %s/install
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2. Or run: docker login %s
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(use your ATProto handle + app-password)`, message, baseURL, r.Host), http.StatusUnauthorized)
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}
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// AuthErrorResponse is returned when authentication fails in a way the credential helper can handle
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type AuthErrorResponse struct {
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Error string `json:"error"`
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Message string `json:"message"`
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LoginURL string `json:"login_url,omitempty"`
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}
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// sendOAuthSessionExpiredError sends a JSON error response when OAuth session is missing
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// This allows the credential helper to detect this specific error and open the browser
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func sendOAuthSessionExpiredError(w http.ResponseWriter, r *http.Request) {
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baseURL := getBaseURL(r)
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loginURL := baseURL + "/auth/oauth/login"
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w.Header().Set("WWW-Authenticate", `Basic realm="ATCR Registry"`)
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w.Header().Set("Content-Type", "application/json")
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w.WriteHeader(http.StatusUnauthorized)
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resp := AuthErrorResponse{
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Error: "oauth_session_expired",
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Message: "OAuth session expired or invalidated. Please re-authenticate in your browser.",
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LoginURL: loginURL,
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}
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render.JSON(w, r, resp)
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}
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// slowPhaseThreshold flags /auth/token phases that take long enough to risk
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// the Docker client's ~15s deadline; production incidents showed ~14s stalls
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// before the first PDS call, and these phase timings exist to attribute them.
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const slowPhaseThreshold = 5 * time.Second
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// oauthError is the RFC 6749 section 5.2 error body used by the POST form.
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type oauthError struct {
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Error string `json:"error"`
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ErrorDescription string `json:"error_description,omitempty"`
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}
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// writeOAuthError responds in the shape the OAuth2 token spec defines. Only the
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// POST form uses it; the GET form keeps its plain-text guidance, which is what
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// users actually see when they run docker login by hand.
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func writeOAuthError(w http.ResponseWriter, status int, code, description string) {
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w.Header().Set("Content-Type", "application/json")
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w.WriteHeader(status)
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if err := json.NewEncoder(w).Encode(oauthError{Error: code, ErrorDescription: description}); err != nil {
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slog.Warn("failed to write OAuth error response", "error", err)
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}
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}
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// ServeHTTP handles the token request.
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//
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// Both Docker token specs land here. The original spec is GET with HTTP Basic
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// and the scope in the query string. The OAuth2 spec is POST with a form-encoded
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// body; containerd and Docker try it first whenever they hold a secret and only
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// fall back to the GET form on 404/401/405, so answering it saves every such
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// client a wasted round trip. Once credentials and scope are extracted the two
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// paths are identical.
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func (h *Handler) ServeHTTP(w http.ResponseWriter, r *http.Request) {
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phaseStart := time.Now()
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slog.Debug("Received token request", "method", r.Method, "path", r.URL.Path)
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var username, password, scopeParam, requestedService string
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switch r.Method {
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case http.MethodGet:
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var ok bool
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username, password, ok = r.BasicAuth()
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if !ok {
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slog.Debug("No Basic auth credentials provided")
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sendAuthError(w, r, "authentication required")
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return
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}
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scopeParam = r.URL.Query().Get("scope")
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requestedService = r.URL.Query().Get("service")
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case http.MethodPost:
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if err := r.ParseForm(); err != nil {
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writeOAuthError(w, http.StatusBadRequest, "invalid_request", "malformed request body")
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return
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}
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// Only the password grant is supported, and no refresh token is issued.
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// The registry JWT's lifetime is deliberately pinned to the AppView<->hold
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// service-auth (see SetServiceAuthFetcher), so a refresh token would be a
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// fourth long-lived credential with its own storage and revocation.
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// Clients handle its absence by continuing to use the credential they hold.
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//
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// The status here is deliberately 401 rather than the 400 that RFC 6749
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// section 5.2 prescribes. containerd only sends grant_type=refresh_token
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// when it has no username, which is the same condition that disables its
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// 405 fallback, so a 400 would hard-fail those clients. 401 is on its
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// retry list, sending them to the GET form, where a device secret
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// authenticates off the password alone and succeeds.
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if grant := r.PostFormValue("grant_type"); grant != "" && grant != "password" {
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writeOAuthError(w, http.StatusUnauthorized, "unsupported_grant_type",
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fmt.Sprintf("grant_type %q is not supported, use password", grant))
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return
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}
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username = r.PostFormValue("username")
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password = r.PostFormValue("password")
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if username == "" || password == "" {
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// 401 is one of the statuses clients retry on the GET form, where the
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// plain-text guidance in sendAuthError is waiting for them.
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writeOAuthError(w, http.StatusUnauthorized, "invalid_client",
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"username and password are required")
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return
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}
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scopeParam = r.PostFormValue("scope")
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requestedService = r.PostFormValue("service")
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default:
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http.Error(w, "method not allowed", http.StatusMethodNotAllowed)
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return
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}
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// Reconstruct DID usernames that were mangled by BasicAuth's colon split.
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// Form bodies carry the username as a discrete field so only the
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// hyphen-encoding case can fire there, but running both keeps the two paths
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// accepting exactly the same set of usernames.
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username, password = parseBasicAuthDID(username, password)
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slog.Debug("Got credentials", "username", username, "passwordLength", len(password))
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// The service names the front door the client is authenticating against and
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// becomes the JWT's audience; resolveService validates it against the
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// configured registry domains.
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service := h.resolveService(r, requestedService)
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// Parse scopes
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var scopes []string
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if scopeParam != "" {
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scopes = strings.Split(scopeParam, " ")
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}
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access, err := auth.ParseScope(scopes)
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if err != nil {
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http.Error(w, fmt.Sprintf("invalid scope: %v", err), http.StatusBadRequest)
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return
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}
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var did string
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var handle string
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var accessToken string
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var authMethod string
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// 1. Check if it's a device secret (starts with "atcr_device_")
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if strings.HasPrefix(password, "atcr_device_") {
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device, err := h.deviceStore.ValidateDeviceSecret(password)
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if err != nil {
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slog.Debug("Device secret validation failed", "error", err)
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sendAuthError(w, r, "authentication failed")
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return
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}
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// Validate OAuth session is usable (not just exists)
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// Device secrets are permanent, but they require a working OAuth session to push
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// By validating here, we prevent the flood of errors that occurs when a stale
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// session is discovered during parallel layer uploads
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if h.oauthSessionValidator != nil {
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if err := h.oauthSessionValidator.ValidateSession(r.Context(), device.DID); err != nil {
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slog.Debug("OAuth session validation failed", "did", device.DID, "error", err)
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sendOAuthSessionExpiredError(w, r)
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return
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}
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}
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did = device.DID
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handle = device.Handle
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authMethod = AuthMethodOAuth
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// Device is linked to OAuth session via DID
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// OAuth refresher will provide access token when needed via middleware
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} else {
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// 2. Try app password (direct PDS authentication)
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slog.Debug("Trying app password authentication", "username", username)
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did, handle, accessToken, err = h.validator.CreateSessionAndGetToken(r.Context(), username, password)
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if err != nil {
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// Log at WARN level with specific error type
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if errors.Is(err, auth.ErrIdentityResolution) {
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slog.Warn("Identity resolution failed", "error", err, "username", username)
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sendAuthError(w, r, "authentication failed: could not resolve handle")
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} else if errors.Is(err, auth.ErrInvalidCredentials) {
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slog.Warn("Invalid credentials", "username", username)
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sendAuthError(w, r, "authentication failed: invalid credentials")
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} else if errors.Is(err, auth.ErrPDSUnavailable) {
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slog.Warn("PDS unavailable", "error", err, "username", username)
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sendAuthError(w, r, "authentication failed: PDS unavailable")
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} else {
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slog.Warn("Authentication failed", "error", err, "username", username)
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sendAuthError(w, r, "authentication failed")
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}
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return
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}
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authMethod = AuthMethodAppPassword
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slog.Debug("App password validated successfully",
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"did", did,
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"handle", handle,
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"accessTokenLength", len(accessToken))
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// Cache the access token for later use (e.g., when pushing manifests)
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// TTL of 2 hours (ATProto tokens typically last longer)
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auth.GetGlobalTokenCache().Set(did, accessToken, 2*time.Hour)
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slog.Debug("Cached access token", "did", did)
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// Call post-auth callback for AppView business logic (profile management, etc.)
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if h.postAuthCallback != nil {
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// Resolve PDS endpoint for callback
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_, _, pdsEndpoint, err := atproto.ResolveIdentity(r.Context(), username)
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if err != nil {
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// Log error but don't fail auth - profile management is not critical
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slog.Warn("Failed to resolve PDS for callback", "error", err, "username", username)
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} else {
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if err := h.postAuthCallback(r.Context(), did, handle, pdsEndpoint, accessToken); err != nil {
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// Log error but don't fail auth - business logic is non-critical
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slog.Warn("Post-auth callback failed", "error", err, "did", did)
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}
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}
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}
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}
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// Credential phase covers device-secret/app-password validation including
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// any OAuth session validation (and its lazy token refresh).
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credDur := time.Since(phaseStart)
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if credDur > slowPhaseThreshold {
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slog.Warn("slow /auth/token phase",
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"phase", "credentials",
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"did", did,
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"authMethod", authMethod,
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"duration", credDur.Round(time.Millisecond))
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}
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// Validate that the user has permission for the requested access
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// Use the actual handle from the validated credentials, not the Basic Auth username
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if err := auth.ValidateAccess(did, handle, access); err != nil {
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slog.Debug("Access validation failed", "error", err, "did", did)
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http.Error(w, fmt.Sprintf("access denied: %v", err), http.StatusForbidden)
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return
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}
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// Auth-phase gate (crew reconciliation, plus membership/quota for
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// non-wildcard push) and service-auth pre-mint are independent network
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// paths — one talks to the hold, the other to the PDS. Run them in
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// parallel so a cold /auth/token pays max(both) instead of sum(both).
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// Nil-authorizer / nil-fetcher configurations short-circuit each branch
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// independently. The gate runs for pull too: first-time CLI users on a
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// private hold need crew reconciliation before the hold-side read check
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// will accept the resulting JWT.
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runGate := h.authorizer != nil
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|
runFetch := h.serviceAuthFetcher != nil
|
|
|
|
type gateRes struct{ err error }
|
|
type fetchRes struct {
|
|
expiresAt time.Time
|
|
err error
|
|
}
|
|
var (
|
|
gateCh chan gateRes
|
|
fetchCh chan fetchRes
|
|
)
|
|
if runGate {
|
|
gateCh = make(chan gateRes, 1)
|
|
go func() {
|
|
gateCh <- gateRes{err: h.authorizer.Authorize(r.Context(), did, authMethod, access)}
|
|
}()
|
|
}
|
|
if runFetch {
|
|
fetchCh = make(chan fetchRes, 1)
|
|
go func() {
|
|
exp, err := h.serviceAuthFetcher.Fetch(r.Context(), did, authMethod)
|
|
fetchCh <- fetchRes{expiresAt: exp, err: err}
|
|
}()
|
|
}
|
|
|
|
// Drain the gate first so a denial wins over a transient fetch error.
|
|
drainStart := time.Now()
|
|
var gateDur time.Duration
|
|
if runGate {
|
|
res := <-gateCh
|
|
gateDur = time.Since(drainStart)
|
|
if gateDur > slowPhaseThreshold {
|
|
slog.Warn("slow /auth/token phase",
|
|
"phase", "gate",
|
|
"did", did,
|
|
"duration", gateDur.Round(time.Millisecond))
|
|
}
|
|
if res.err != nil {
|
|
slog.Info("Authorization denied", "did", did, "error", res.err)
|
|
_ = errcode.ServeJSON(w, errcode.ErrorCodeDenied.WithMessage(res.err.Error()))
|
|
return
|
|
}
|
|
}
|
|
|
|
// Bind JWT lifetime to the AppView↔hold service-auth: pre-mint it now and
|
|
// stamp the JWT's exp from the cached expiry. They expire concurrently;
|
|
// when Docker hits 401, the next /auth/token call mints both fresh.
|
|
issueExp := h.issuer.expiration
|
|
var fetchDur time.Duration
|
|
if runFetch {
|
|
res := <-fetchCh
|
|
// Both goroutines started together, so measure from the drain start,
|
|
// not after the gate drain, to reflect the fetch's real wall time.
|
|
fetchDur = time.Since(drainStart)
|
|
if fetchDur > slowPhaseThreshold {
|
|
slog.Warn("slow /auth/token phase",
|
|
"phase", "service-auth-fetch",
|
|
"did", did,
|
|
"duration", fetchDur.Round(time.Millisecond))
|
|
}
|
|
if res.err != nil {
|
|
// A read-only app password can authenticate (createSession) but can't
|
|
// mint the hold service-auth token that pulls and pushes require. That
|
|
// is a permanent authorization failure, not a transient outage, so
|
|
// return a 403 with actionable guidance instead of a retry-inviting 503.
|
|
if errors.Is(res.err, auth.ErrAppPasswordInsufficientScope) {
|
|
slog.Info("service-auth pre-mint denied: app-password lacks scope", "did", did, "error", res.err)
|
|
_ = errcode.ServeJSON(w, errcode.ErrorCodeDenied.WithMessage(
|
|
"your app password lacks the permissions ATCR needs. A read-only app password cannot mint the service token used to authenticate with your storage hold. Use a standard (full-access) app password."))
|
|
return
|
|
}
|
|
slog.Warn("service-auth pre-mint failed", "did", did, "error", res.err)
|
|
_ = errcode.ServeJSON(w, errcode.ErrorCodeUnavailable.WithMessage(fmt.Sprintf("service-auth fetch failed: %v", res.err)))
|
|
return
|
|
}
|
|
if !res.expiresAt.IsZero() {
|
|
// Cap JWT lifetime at the service-auth's expiry. The cache's
|
|
// expiresAt already includes a 10s safety margin
|
|
// (pkg/auth/cache.go:71), so this guarantees the service-auth
|
|
// is still cache-valid for any /v2/* request the JWT can
|
|
// authorize. We never extend beyond the configured default.
|
|
until := time.Until(res.expiresAt)
|
|
if until < issueExp {
|
|
issueExp = until
|
|
}
|
|
}
|
|
}
|
|
|
|
// Issue JWT token
|
|
tokenString, err := h.issuer.IssueWithExpiration(did, access, authMethod, issueExp, service)
|
|
if err != nil {
|
|
slog.Error("Failed to issue token", "error", err, "did", did)
|
|
http.Error(w, fmt.Sprintf("failed to issue token: %v", err), http.StatusInternalServerError)
|
|
return
|
|
}
|
|
|
|
slog.Debug("Issued JWT token",
|
|
"tokenLength", len(tokenString),
|
|
"did", did,
|
|
"authMethod", authMethod,
|
|
"credentialsDur", credDur.Round(time.Millisecond),
|
|
"gateDur", gateDur.Round(time.Millisecond),
|
|
"fetchDur", fetchDur.Round(time.Millisecond),
|
|
"totalDur", time.Since(phaseStart).Round(time.Millisecond))
|
|
|
|
// Return token response
|
|
now := time.Now()
|
|
expiresIn := int(issueExp.Seconds())
|
|
|
|
resp := TokenResponse{
|
|
Token: tokenString,
|
|
AccessToken: tokenString,
|
|
ExpiresIn: expiresIn,
|
|
IssuedAt: now.Format(time.RFC3339),
|
|
}
|
|
|
|
render.JSON(w, r, resp)
|
|
}
|
|
|
|
// parseBasicAuthDID fixes DID usernames that are mangled by HTTP Basic Auth.
|
|
//
|
|
// This handles two cases:
|
|
// 1. Hyphen-encoded DIDs (did-plc-abc123) — converted to did:plc:abc123.
|
|
// This is the recommended format for tools like helm that reject colons in usernames.
|
|
// 2. Raw DIDs split by BasicAuth — "did:plc:abc123" gets split on the first colon
|
|
// into username="did", password="plc:abc123:<real-password>". Reconstructed here.
|
|
func parseBasicAuthDID(username, password string) (string, string) {
|
|
// Case 1: Hyphen-encoded DID (e.g., did-plc-abc123 or did-web-example.com)
|
|
if did, ok := auth.DecodeDIDFromHyphens(username); ok {
|
|
return did, password
|
|
}
|
|
|
|
// Case 2: Raw DID was split by BasicAuth on the first colon
|
|
// username="did", password="plc:<id>:<real-password>" or "web:<host>:<real-password>"
|
|
if username != "did" {
|
|
return username, password
|
|
}
|
|
|
|
if after, ok := strings.CutPrefix(password, "plc:"); ok {
|
|
rest := after
|
|
if idx := strings.Index(rest, ":"); idx > 0 {
|
|
return "did:plc:" + rest[:idx], rest[idx+1:]
|
|
}
|
|
} else if after, ok := strings.CutPrefix(password, "web:"); ok {
|
|
rest := after
|
|
if idx := strings.Index(rest, ":"); idx > 0 {
|
|
return "did:web:" + rest[:idx], rest[idx+1:]
|
|
}
|
|
}
|
|
|
|
return username, password
|
|
}
|