package api import ( "context" "database/sql" "errors" "fmt" "time" ) // PGRepo is the production Repo backed by Postgres (spec §6). It owns only the // business projection the CRD cannot express. The SQL here is exercised by // integration tests against a live database, not the hermetic api_test.go suite. type PGRepo struct { db *sql.DB } // NewPGRepo wraps an existing pool (from store.PostgresDriver.DB()). func NewPGRepo(db *sql.DB) *PGRepo { return &PGRepo{db: db} } func (p *PGRepo) Ping(ctx context.Context) error { return p.db.PingContext(ctx) } func (p *PGRepo) ServerBySubdomain(ctx context.Context, subdomain string) (*ServerRecord, error) { const q = `SELECT s.name, sa.subdomain, COALESCE(s.owner_id, ''), COALESCE(s.cached_phase, '') FROM server_aliases sa JOIN servers s ON s.name = sa.server_name WHERE sa.subdomain = $1 AND s.deleted_at IS NULL` var r ServerRecord switch err := p.db.QueryRowContext(ctx, q, subdomain).Scan(&r.Name, &r.Subdomain, &r.OwnerID, &r.CachedPhase); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &r, nil } func (p *PGRepo) ServerByName(ctx context.Context, name string) (*ServerRecord, error) { const q = `SELECT s.name, COALESCE(sa.subdomain, ''), COALESCE(s.owner_id, ''), COALESCE(s.cached_phase, '') FROM servers s LEFT JOIN server_aliases sa ON sa.server_name = s.name WHERE s.name = $1 AND s.deleted_at IS NULL` var r ServerRecord switch err := p.db.QueryRowContext(ctx, q, name).Scan(&r.Name, &r.Subdomain, &r.OwnerID, &r.CachedPhase); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &r, nil } func (p *PGRepo) IsLinked(ctx context.Context, userID string) (bool, error) { var ok bool err := p.db.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM account_links WHERE user_id = $1)`, userID).Scan(&ok) return ok, err } // CreateLinkCode persists a one-time link code for a verified in-game UUID (spec // §10). expires_at is supplied by the caller (the API clock + TTL) so expiry is // driven by one authoritative clock. The code is a PRIMARY KEY; a collision on // the crypto/rand value is astronomically unlikely but surfaces as a plain // driver error (the caller can retry) rather than being masked here. func (p *PGRepo) CreateLinkCode(ctx context.Context, code, mcUUID, authSource string, expiresAt time.Time) error { _, err := p.db.ExecContext(ctx, `INSERT INTO account_link_codes (code, mc_uuid, auth_source, expires_at) VALUES ($1, $2, $3, $4)`, code, mcUUID, authSource, expiresAt) return err } // VerifyLinkCode consumes a code for userID and writes the account_links binding // in one transaction (spec §10). The different-user conflict is detected by a // guarded SELECT inside the tx rather than by inspecting a driver-specific unique // violation, so the logic is portable. On the conflict path the tx rolls back, so // the code is NOT consumed — a wrong user must not be able to burn the real // owner's pending code. The UNIQUE(mc_uuid) constraint is the last-resort guard // against a concurrent racer that passed the SELECT; that loses to a 500, which // is acceptable for this integration-only path. func (p *PGRepo) VerifyLinkCode(ctx context.Context, userID, code string, now time.Time) (string, string, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return "", "", err } defer tx.Rollback() //nolint:errcheck // no-op after commit var mcUUID, authSource string switch err := tx.QueryRowContext(ctx, `SELECT mc_uuid, auth_source FROM account_link_codes WHERE code = $1 AND expires_at > $2 FOR UPDATE`, code, now).Scan(&mcUUID, &authSource); { case errors.Is(err, sql.ErrNoRows): return "", "", ErrLinkCodeInvalid case err != nil: return "", "", err } // If this UUID is already linked, only the same user may re-verify (idempotent); // a different user is a conflict and must not consume the code. var existingUser string switch err := tx.QueryRowContext(ctx, `SELECT user_id FROM account_links WHERE mc_uuid = $1`, mcUUID).Scan(&existingUser); { case errors.Is(err, sql.ErrNoRows): // not yet linked — fall through to insert case err != nil: return "", "", err default: if existingUser != userID { return "", "", ErrConflict } } // Copy the code's auth_source onto the durable link. On the idempotent // re-verify path DO UPDATE refreshes it (a player who re-linked via a different // Yggdrasil this time gets the latest source stored), keeping the persisted // value equal to the one returned to the caller. if _, err := tx.ExecContext(ctx, `INSERT INTO account_links (user_id, mc_uuid, auth_source) VALUES ($1, $2, $3) ON CONFLICT (user_id, mc_uuid) DO UPDATE SET auth_source = EXCLUDED.auth_source`, userID, mcUUID, authSource); err != nil { return "", "", fmt.Errorf("write account link: %w", err) } if _, err := tx.ExecContext(ctx, `DELETE FROM account_link_codes WHERE code = $1`, code); err != nil { return "", "", fmt.Errorf("consume link code: %w", err) } if err := tx.Commit(); err != nil { return "", "", err } return mcUUID, authSource, nil } // RedeemPlayerBindCode redeems a Bind Code into a player account + link in one // transaction (console-tier access model). It mirrors VerifyLinkCode's structure — // strict expiry against the passed clock, the durable-link write, and the DELETE // that consumes the code — but creates or fetches the user instead of requiring one. // See the Repo interface for the full contract. Like VerifyLinkCode a concurrent // racer that passed the SELECT loses to the UNIQUE(mc_uuid)/UNIQUE(username) guard // (a 500), acceptable for this integration-only path; the primary idempotency is the // mc_uuid-keyed fetch below. func (p *PGRepo) RedeemPlayerBindCode(ctx context.Context, newUserID, code string, now time.Time) (string, string, string, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return "", "", "", err } defer tx.Rollback() //nolint:errcheck // no-op after commit var mcUUID, authSource string switch err := tx.QueryRowContext(ctx, `SELECT mc_uuid, auth_source FROM account_link_codes WHERE code = $1 AND expires_at > $2`, code, now).Scan(&mcUUID, &authSource); { case errors.Is(err, sql.ErrNoRows): return "", "", "", ErrLinkCodeInvalid case err != nil: return "", "", "", err } // Create-or-fetch keyed on the verified UUID. An already-linked role='user' player // is fetched (idempotent "log in via the game"); a role='admin' STAFF account is // refused (op.console only) BEFORE any consume, so the code survives; an unlinked // UUID births a fresh role='user' player with a uuid-derived unique username. userID := newUserID var existingRole string switch err := tx.QueryRowContext(ctx, `SELECT u.id, u.role::text FROM account_links al JOIN users u ON u.id = al.user_id WHERE al.mc_uuid = $1`, mcUUID).Scan(&userID, &existingRole); { case errors.Is(err, sql.ErrNoRows): if _, err := tx.ExecContext(ctx, `INSERT INTO users (id, username, role) VALUES ($1, $2, 'user')`, newUserID, mcUUID); err != nil { return "", "", "", fmt.Errorf("create player: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO account_links (user_id, mc_uuid, auth_source) VALUES ($1, $2, $3)`, newUserID, mcUUID, authSource); err != nil { return "", "", "", fmt.Errorf("write account link: %w", err) } userID = newUserID case err != nil: return "", "", "", err default: if existingRole != "user" { return "", "", "", ErrPlayerBindForbidden // staff must use op.console } } if _, err := tx.ExecContext(ctx, `DELETE FROM account_link_codes WHERE code = $1`, code); err != nil { return "", "", "", fmt.Errorf("consume link code: %w", err) } if err := tx.Commit(); err != nil { return "", "", "", err } return userID, mcUUID, authSource, nil } // CompleteOwnerSetup consumes an in-game link code, creates-or-promotes the bound // account to the passwordless Owner (role='admin'), enables local auth, and stores // the one-time first-login token in one transaction. It is the `felis setup` // MC-bind path: the operator enters limbo, runs /link, and types the code here. // Unlike RedeemPlayerBindCode — which refuses an already-staff account so a game // login can never self-elevate — this DELIBERATELY elevates: an unlinked UUID is // born directly as staff, and an already-linked account (player OR staff) is // promoted in place, preserving its id so any live sessions and its username // survive. The elevation is gated by the caller's local-root break-glass // authority, not by anything in-band. Returns the Owner's (userID, mcUUID, // authSource); an absent or expired code is ErrLinkCodeInvalid and consumes // nothing. Any failure in the auth-toggle or token writes rolls the elevation and // code consumption back, leaving the operator able to retry setup. func (p *PGRepo) CompleteOwnerSetup(ctx context.Context, newUserID, code string, now time.Time, tokenHash string, tokenExpiresAt time.Time) (string, string, string, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return "", "", "", err } defer tx.Rollback() //nolint:errcheck // no-op after commit var mcUUID, authSource string switch err := tx.QueryRowContext(ctx, `SELECT mc_uuid, auth_source FROM account_link_codes WHERE code = $1 AND expires_at > $2`, code, now).Scan(&mcUUID, &authSource); { case errors.Is(err, sql.ErrNoRows): return "", "", "", ErrLinkCodeInvalid case err != nil: return "", "", "", err } // Create-or-promote keyed on the verified UUID. An unlinked UUID births a fresh // staff row (role='admin') with a uuid-derived username; an already-linked // account is promoted to role='admin' in place (idempotent when it is already // staff), keeping its id and username. Setup elevates on purpose, so there is no // staff refusal here — that guard belongs to the player path only. userID := newUserID switch err := tx.QueryRowContext(ctx, `SELECT user_id FROM account_links WHERE mc_uuid = $1`, mcUUID).Scan(&userID); { case errors.Is(err, sql.ErrNoRows): if _, err := tx.ExecContext(ctx, `INSERT INTO users (id, username, role) VALUES ($1, $2, 'admin')`, newUserID, mcUUID); err != nil { return "", "", "", fmt.Errorf("create owner: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO account_links (user_id, mc_uuid, auth_source) VALUES ($1, $2, $3)`, newUserID, mcUUID, authSource); err != nil { return "", "", "", fmt.Errorf("write account link: %w", err) } userID = newUserID case err != nil: return "", "", "", err default: if _, err := tx.ExecContext(ctx, `UPDATE users SET role = 'admin' WHERE id = $1`, userID); err != nil { return "", "", "", fmt.Errorf("promote owner: %w", err) } } if _, err := tx.ExecContext(ctx, `INSERT INTO platform_settings (key, value) VALUES ($1, $2::jsonb) ON CONFLICT (key) DO UPDATE SET value = EXCLUDED.value, updated_at = now()`, LocalAuthEnabledKey, "true"); err != nil { return "", "", "", fmt.Errorf("enable local auth: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO setup_tokens (token_hash, user_id, expires_at) VALUES ($1, $2, $3)`, tokenHash, userID, tokenExpiresAt); err != nil { return "", "", "", fmt.Errorf("mint setup token: %w", err) } if _, err := tx.ExecContext(ctx, `DELETE FROM account_link_codes WHERE code = $1`, code); err != nil { return "", "", "", fmt.Errorf("consume link code: %w", err) } if err := tx.Commit(); err != nil { return "", "", "", err } return userID, mcUUID, authSource, nil } // QuotaAvailable treats a missing quota row or a NULL max_servers as unlimited; // otherwise it compares the live owned-server count against the cap (spec §9.3). // // KNOWN-LIMITATION (audit #4, quota TOCTOU): this check and ClaimServer are two // separate statements, not one transaction, so the count read here is not serialized // against a concurrent claim's UPDATE. Two claims by the same user for two DIFFERENT // ownerless servers can both read count < max_servers (under READ COMMITTED neither // sees the other's uncommitted UPDATE) and both succeed, leaving the user one server // over quota. Severity is low: it over-provisions the quota by a small margin under a // deliberate concurrent burst — it is NOT an authorization, ownership, or isolation // break (each server is still claimed atomically via UPDATE ... WHERE owner_id IS // NULL, so two users never share one server). Closing it needs Postgres transaction // semantics: wrap the count and a conditional UPDATE (gated on count < max_servers) in // one tx under pg_advisory_xact_lock(hashtext(user_id)) — or SERIALIZABLE with a retry // loop — folding the gate out of the two handlers (handleClaim and the internal UUID // claim) into a single repo method. That is INTEGRATION-dependent: it is verifiable // only against a real Postgres, not the hermetic fakeRepo suite, so it is documented // here rather than patched blind. func (p *PGRepo) QuotaAvailable(ctx context.Context, userID string) (bool, error) { var maxServers sql.NullInt64 switch err := p.db.QueryRowContext(ctx, `SELECT max_servers FROM quotas WHERE user_id = $1`, userID).Scan(&maxServers); { case errors.Is(err, sql.ErrNoRows): return true, nil case err != nil: return false, err } if !maxServers.Valid { return true, nil } var n int64 if err := p.db.QueryRowContext(ctx, `SELECT count(*) FROM servers WHERE owner_id = $1 AND deleted_at IS NULL`, userID).Scan(&n); err != nil { return false, err } return n < maxServers.Int64, nil } // QuotaCheck reports whether accepting a server with resource spec `incoming` // would push userID over any quota cap. excludeName is the server row whose own // cached resources should be excluded ("" for a fresh claim where the row // doesn't exist yet). Four dimensions are checked: server count, CPU millicores, // memory MB, and storage MB. A NULL or missing quota row/column means unlimited // for that dimension. Like QuotaAvailable, the count check and the write are not // serialized — see the QuotaAvailable TOCTOU docstring. func (p *PGRepo) QuotaCheck(ctx context.Context, userID string, excludeName string, incoming ResourceSpec) (bool, error) { var maxServers, maxCPU, maxMem, maxStor sql.NullInt64 switch err := p.db.QueryRowContext(ctx, `SELECT max_servers, max_cpu_milli, max_memory_mb, max_storage_gb FROM quotas WHERE user_id = $1`, userID).Scan( &maxServers, &maxCPU, &maxMem, &maxStor); { case errors.Is(err, sql.ErrNoRows): return true, nil // no quota row → unlimited case err != nil: return false, err } var count int64 var cpuSum, memSum, storSum sql.NullInt64 switch err := p.db.QueryRowContext(ctx, `SELECT COUNT(*), COALESCE(SUM(cached_cpu_milli), 0), COALESCE(SUM(cached_memory_mb), 0), COALESCE(SUM(cached_storage_mb), 0) FROM servers WHERE owner_id = $1 AND deleted_at IS NULL AND name != $2`, userID, excludeName).Scan(&count, &cpuSum, &memSum, &storSum); { case err != nil: return false, err } if maxServers.Valid && count >= maxServers.Int64 { return false, nil } if maxCPU.Valid && cpuSum.Int64+int64(incoming.CPUMilli) > maxCPU.Int64 { return false, nil } if maxMem.Valid && memSum.Int64+int64(incoming.MemoryMB) > maxMem.Int64 { return false, nil } if maxStor.Valid && storSum.Int64+int64(incoming.StorageMB) > maxStor.Int64*1024 { return false, nil } return true, nil } // UpdateServerResources updates the resource cache for a server after a spec // mutation (spec §7 PATCH). The per-owner aggregate used by QuotaCheck is a // SQL SUM over the cached columns, so every mutation must write through here. func (p *PGRepo) UpdateServerResources(ctx context.Context, name string, cpuMilli, memoryMB, storageMB int) error { _, err := p.db.ExecContext(ctx, `UPDATE servers SET cached_cpu_milli = $2, cached_memory_mb = $3, cached_storage_mb = $4 WHERE name = $1 AND deleted_at IS NULL`, name, cpuMilli, memoryMB, storageMB) return err } // ServerResources returns the cached resource spec for a server. func (p *PGRepo) ServerResources(ctx context.Context, name string) (ResourceSpec, error) { var r ResourceSpec switch err := p.db.QueryRowContext(ctx, `SELECT cached_cpu_milli, cached_memory_mb, cached_storage_mb FROM servers WHERE name = $1 AND deleted_at IS NULL`, name).Scan(&r.CPUMilli, &r.MemoryMB, &r.StorageMB); { case errors.Is(err, sql.ErrNoRows): return r, nil case err != nil: return r, err } return r, nil } // ClaimServer performs the atomic ownership transfer (spec §9.3). A missing // server is ErrNotFound; an existing-but-owned server yields claimed=false so the // handler can answer 409. func (p *PGRepo) ClaimServer(ctx context.Context, name, userID string) (bool, error) { var exists bool if err := p.db.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM servers WHERE name = $1 AND deleted_at IS NULL)`, name).Scan(&exists); err != nil { return false, err } if !exists { return false, ErrNotFound } res, err := p.db.ExecContext(ctx, `UPDATE servers SET owner_id = $2, claimed_at = now() WHERE name = $1 AND owner_id IS NULL AND deleted_at IS NULL`, name, userID) if err != nil { return false, err } n, err := res.RowsAffected() if err != nil { return false, err } return n == 1, nil } func (p *PGRepo) UserInAllowlist(ctx context.Context, name, userID string) (bool, error) { const q = `SELECT EXISTS( SELECT 1 FROM server_allowlist sa JOIN account_links al ON al.mc_uuid = sa.mc_uuid WHERE sa.server_name = $1 AND al.user_id = $2)` var ok bool err := p.db.QueryRowContext(ctx, q, name, userID).Scan(&ok) return ok, err } // UUIDInAllowlist is the internal-face allowlist check keyed by the in-game UUID // directly (spec §9.4). The server_allowlist table is UUID-keyed, so the // velocity-driven wake — which knows the joining player only by their online-mode // UUID — needs no account_links bridge (contrast UserInAllowlist). func (p *PGRepo) UUIDInAllowlist(ctx context.Context, name, mcUUID string) (bool, error) { const q = `SELECT EXISTS( SELECT 1 FROM server_allowlist WHERE server_name = $1 AND mc_uuid = $2)` var ok bool err := p.db.QueryRowContext(ctx, q, name, mcUUID).Scan(&ok) return ok, err } // UserByMCUUID resolves a verified in-game UUID to its linked user_id (spec §10 // account_links), or ErrNotFound when the UUID is not linked to any account. func (p *PGRepo) UserByMCUUID(ctx context.Context, mcUUID string) (string, error) { var userID string switch err := p.db.QueryRowContext(ctx, `SELECT user_id FROM account_links WHERE mc_uuid = $1`, mcUUID).Scan(&userID); { case errors.Is(err, sql.ErrNoRows): return "", ErrNotFound case err != nil: return "", err } return userID, nil } // RecordJoin renews activity and auto-appends the UUID to the allowlist in one // transaction (spec §7, §9.4). A missing server is ErrNotFound. func (p *PGRepo) RecordJoin(ctx context.Context, name, mcUUID string) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit res, err := tx.ExecContext(ctx, `UPDATE servers SET last_active_at = now(), warned_3d_at = NULL, warned_1d_at = NULL WHERE name = $1 AND deleted_at IS NULL`, name) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } if _, err := tx.ExecContext(ctx, `INSERT INTO server_allowlist (server_name, mc_uuid) VALUES ($1, $2) ON CONFLICT DO NOTHING`, name, mcUUID); err != nil { return fmt.Errorf("append allowlist: %w", err) } return tx.Commit() } func (p *PGRepo) MyServers(ctx context.Context, userID string) ([]MyServerView, error) { const q = `SELECT s.name, COALESCE(sa.subdomain, ''), COALESCE(s.owner_id = $1, false) AS owned, (s.owner_id IS NULL) AS claimable, COALESCE(s.cached_phase, '') FROM servers s LEFT JOIN server_aliases sa ON sa.server_name = s.name WHERE s.deleted_at IS NULL AND (s.owner_id = $1 OR s.owner_id IS NULL) ORDER BY s.name` rows, err := p.db.QueryContext(ctx, q, userID) if err != nil { return nil, err } defer rows.Close() var out []MyServerView for rows.Next() { var v MyServerView if err := rows.Scan(&v.Name, &v.Subdomain, &v.Owned, &v.Claimable, &v.Phase); err != nil { return nil, err } out = append(out, v) } return out, rows.Err() } // ServerOwners returns name -> owner display identity for every currently-owned, // non-deleted server (the SysAdmin cockpit's fleet read). The INNER JOIN drops // unclaimed servers (owner_id NULL) and the deleted_at filter drops soft-deleted // ones, so the map holds only servers that have a live owner — the cockpit reads a // missing key as "no owner". The display value prefers the recognizable email // (the same identity the audit log records as the human actor, §6) and falls back // to the never-NULL username when the address is absent. func (p *PGRepo) ServerOwners(ctx context.Context) (map[string]string, error) { const q = `SELECT s.name, COALESCE(NULLIF(u.email, ''), u.username) FROM servers s JOIN users u ON u.id = s.owner_id WHERE s.deleted_at IS NULL` rows, err := p.db.QueryContext(ctx, q) if err != nil { return nil, err } defer rows.Close() out := make(map[string]string) for rows.Next() { var name, owner string if err := rows.Scan(&name, &owner); err != nil { return nil, err } out[name] = owner } return out, rows.Err() } // SeedServer inserts the business rows backing a newly created server (spec // §15): the servers row (owner_id left NULL — the server is created unowned and // claimed later, spec §9.3) and its subdomain alias. Both inserts are // ON CONFLICT DO NOTHING so a retried create is idempotent. The alias subdomain // is a PRIMARY KEY, so a no-op insert means it was already bound; we then // confirm it resolves to this server and return ErrConflict otherwise, letting // the create handler answer 409 before it touches the CRD. func (p *PGRepo) SeedServer(ctx context.Context, name, subdomain string, cpuMilli, memoryMB, storageMB int) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit if _, err := tx.ExecContext(ctx, `INSERT INTO servers (name, cached_cpu_milli, cached_memory_mb, cached_storage_mb) VALUES ($1, $2, $3, $4) ON CONFLICT (name) DO UPDATE SET cached_cpu_milli = EXCLUDED.cached_cpu_milli, cached_memory_mb = EXCLUDED.cached_memory_mb, cached_storage_mb = EXCLUDED.cached_storage_mb`, name, cpuMilli, memoryMB, storageMB); err != nil { return fmt.Errorf("seed server row: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO server_aliases (subdomain, server_name) VALUES ($1, $2) ON CONFLICT DO NOTHING`, subdomain, name); err != nil { return fmt.Errorf("seed subdomain alias: %w", err) } var boundTo string if err := tx.QueryRowContext(ctx, `SELECT server_name FROM server_aliases WHERE subdomain = $1`, subdomain).Scan(&boundTo); err != nil { return fmt.Errorf("confirm subdomain alias: %w", err) } if boundTo != name { return ErrConflict } return tx.Commit() } // AllBackups lists every present world backup, newest first (spec §7 GET // /backups, admin scope; world_backups in §22). Only status='present' rows are // listed — an expired or deleted backup is gone (spec §466). func (p *PGRepo) AllBackups(ctx context.Context) ([]BackupView, error) { const q = `SELECT id, server_name, COALESCE(former_owner, ''), COALESCE(size_bytes, 0), reason, status, created_at, expires_at FROM world_backups WHERE status = 'present' ORDER BY created_at DESC` rows, err := p.db.QueryContext(ctx, q) if err != nil { return nil, err } return scanBackupViews(rows) } // BackupsForUser lists the present world backups of worlds the user formerly // owned, newest first (spec §7 GET /backups, former_owner scope). A NULL // former_owner never matches a user id, so orphaned backups stay admin-only. func (p *PGRepo) BackupsForUser(ctx context.Context, userID string) ([]BackupView, error) { const q = `SELECT id, server_name, COALESCE(former_owner, ''), COALESCE(size_bytes, 0), reason, status, created_at, expires_at FROM world_backups WHERE status = 'present' AND former_owner = $1 ORDER BY created_at DESC` rows, err := p.db.QueryContext(ctx, q, userID) if err != nil { return nil, err } return scanBackupViews(rows) } // scanBackupViews drains a world_backups result set into BackupViews. backup_ref // is intentionally not selected — it never leaves the server (spec §286 principle). func scanBackupViews(rows *sql.Rows) ([]BackupView, error) { defer rows.Close() var out []BackupView for rows.Next() { var v BackupView if err := rows.Scan(&v.ID, &v.ServerName, &v.FormerOwner, &v.SizeBytes, &v.Reason, &v.Status, &v.CreatedAt, &v.ExpiresAt); err != nil { return nil, err } out = append(out, v) } return out, rows.Err() } // LatestBackup returns the most recent present backup for a server (spec §466 // restore), or ErrNotFound. Unlike the list queries this selects backup_ref — the // caller (the restore handler) hands it to the Restorer and never serializes it. func (p *PGRepo) LatestBackup(ctx context.Context, serverName string) (*BackupRecord, error) { const q = `SELECT id, server_name, COALESCE(former_owner, ''), backup_ref, COALESCE(size_bytes, 0) FROM world_backups WHERE server_name = $1 AND status = 'present' ORDER BY created_at DESC LIMIT 1` var b BackupRecord switch err := p.db.QueryRowContext(ctx, q, serverName).Scan( &b.ID, &b.ServerName, &b.FormerOwner, &b.BackupRef, &b.SizeBytes); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &b, nil } // BackupByID returns a single present backup by its id, or ErrNotFound. func (p *PGRepo) BackupByID(ctx context.Context, id string) (*BackupRecord, error) { const q = `SELECT id, server_name, COALESCE(former_owner, ''), backup_ref, COALESCE(size_bytes, 0) FROM world_backups WHERE id = $1 AND status = 'present'` var b BackupRecord switch err := p.db.QueryRowContext(ctx, q, id).Scan( &b.ID, &b.ServerName, &b.FormerOwner, &b.BackupRef, &b.SizeBytes); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &b, nil } func (p *PGRepo) Audit(ctx context.Context, e AuditEntry) error { // A nil Payload must land as SQL NULL, not the text "null"; a non-nil Payload is // passed as a JSON text the jsonb column parses (same idiom as reaper.PGStore). var payload any if len(e.Payload) > 0 { payload = string(e.Payload) } _, err := p.db.ExecContext(ctx, `INSERT INTO audit_logs (actor, source, action, server_name, request_id, payload) VALUES ($1, $2, $3, NULLIF($4, ''), NULLIF($5, ''), $6)`, e.Actor, e.Source, e.Action, e.ServerName, e.RequestID, payload) return err } // ---- player email verification (spec §B2 onboarding) ---- // CreateEmailOTP supersedes any prior live code for (user, purpose) and inserts the // fresh one, in one transaction (spec §B2). The supersede DELETE means a re-request // invalidates the earlier mail, so only the most recent code can ever verify — a // player who requested twice cannot be confused into typing the stale digits. Only // the hash is stored; the digits live only in the email. func (p *PGRepo) CreateEmailOTP(ctx context.Context, id, userID, email, codeHash, purpose string, expiresAt time.Time) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit if _, err := tx.ExecContext(ctx, `DELETE FROM email_otps WHERE user_id = $1 AND purpose = $2 AND consumed_at IS NULL`, userID, purpose); err != nil { return fmt.Errorf("supersede prior otp: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO email_otps (id, user_id, email, code_hash, purpose, expires_at) VALUES ($1, $2, $3, $4, $5, $6)`, id, userID, email, codeHash, purpose, expiresAt); err != nil { return fmt.Errorf("insert otp: %w", err) } return tx.Commit() } // VerifyEmailOTP redeems the newest live code for (user, purpose) in one // transaction (spec §B2). The row is taken FOR UPDATE so a concurrent verify of the // same code cannot double-spend it. The branch order is deliberate: expiry and the // attempt cap are checked before the hash compare, so an expired or locked code is // never silently accepted, and a hash mismatch costs an attempt (UPDATE attempts+1) // without consuming the code — a typo must not burn a still-valid code. On a match // the code is consumed and the user row is flipped verified, returning the proven // address. ErrOTPInvalid / ErrOTPLocked are the only domain errors. func (p *PGRepo) VerifyEmailOTP(ctx context.Context, userID, purpose, codeHash string, now time.Time) (string, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return "", err } defer tx.Rollback() //nolint:errcheck // no-op after commit var ( id string email string storedHash string attempts int expiresAt time.Time ) switch err := tx.QueryRowContext(ctx, `SELECT id, email, code_hash, attempts, expires_at FROM email_otps WHERE user_id = $1 AND purpose = $2 AND consumed_at IS NULL ORDER BY created_at DESC LIMIT 1 FOR UPDATE`, userID, purpose).Scan(&id, &email, &storedHash, &attempts, &expiresAt); { case errors.Is(err, sql.ErrNoRows): return "", ErrOTPInvalid case err != nil: return "", err } if !expiresAt.After(now) { return "", ErrOTPInvalid } if attempts >= otpMaxAttempts { return "", ErrOTPLocked } if storedHash != codeHash { if _, err := tx.ExecContext(ctx, `UPDATE email_otps SET attempts = attempts + 1 WHERE id = $1`, id); err != nil { return "", fmt.Errorf("record otp attempt: %w", err) } if err := tx.Commit(); err != nil { return "", err } return "", ErrOTPInvalid } if _, err := tx.ExecContext(ctx, `UPDATE email_otps SET consumed_at = $2 WHERE id = $1`, id, now); err != nil { return "", fmt.Errorf("consume otp: %w", err) } if _, err := tx.ExecContext(ctx, `UPDATE users SET email = $2, email_verified = true WHERE id = $1`, userID, email); err != nil { return "", fmt.Errorf("mark email verified: %w", err) } if err := tx.Commit(); err != nil { return "", err } return email, nil } // SetUserEmail records email on the user row WITHOUT verifying it (setup bootstrap // has no SMTP — the Owner enters an address a later Settings/SMTP flow will verify). // It clears email_verified in the same write: only VerifyEmailOTP ever sets that // flag, and it does so only alongside the proven address, so recording a fresh // (unproven) address must drop any prior verification rather than leave a stale // email_verified=true asserting an address the user never proved. For a fresh Owner // the flag is already false, so this is a no-op there. func (p *PGRepo) SetUserEmail(ctx context.Context, userID, email string) error { res, err := p.db.ExecContext(ctx, `UPDATE users SET email = $2, email_verified = false WHERE id = $1`, userID, email) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } return nil } // ---- player game-login: username-collision reclaim (spec §B3) ---- // ReclaimUsername bars the squatter UUID and stashes its data hold in one // transaction (spec §B3 正版优先), returning the hold's EFFECTIVE expiry — the // value actually persisted, which the caller echoes so the rejected player is // told the truth about how long their data is kept. The blacklist insert is // ON CONFLICT (mc_uuid) DO NOTHING; the hold insert is a no-op DO UPDATE so a // retried reclaim of an already-stashed UUID does not move the original window // yet RETURNING still fires, handing back the FIRST reclaim's expires_at rather // than a fresh now()+TTL (DO NOTHING would suppress RETURNING and lose it). The // two writes share the tx so a failure on the second rolls back the first: the // system is never left with a barred UUID whose data was never held (data loss) // nor a hold for a UUID still able to connect (squatter not barred). dataRef "" // lands as SQL NULL (the column is nullable — archival may be deferred), // mirroring the NULLIF idiom used for optional text elsewhere. func (p *PGRepo) ReclaimUsername(ctx context.Context, id, squatterUUID, username, dataRef string, expiresAt time.Time) (time.Time, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return time.Time{}, err } defer tx.Rollback() //nolint:errcheck // no-op after commit if _, err := tx.ExecContext(ctx, `INSERT INTO username_blacklist (mc_uuid, username) VALUES ($1, $2) ON CONFLICT (mc_uuid) DO NOTHING`, squatterUUID, username); err != nil { return time.Time{}, fmt.Errorf("blacklist squatter uuid: %w", err) } var effective time.Time if err := tx.QueryRowContext(ctx, `INSERT INTO player_data_holds (id, mc_uuid, username, data_ref, expires_at) VALUES ($1, $2, $3, NULLIF($4, ''), $5) ON CONFLICT (mc_uuid) DO UPDATE SET mc_uuid = EXCLUDED.mc_uuid RETURNING expires_at`, id, squatterUUID, username, dataRef, expiresAt).Scan(&effective); err != nil { return time.Time{}, fmt.Errorf("stash data hold: %w", err) } if err := tx.Commit(); err != nil { return time.Time{}, err } return effective, nil } // IsUsernameBlacklisted reports whether an in-game UUID is barred by a prior // reclaim (spec §B3). It is a single EXISTS keyed by the UUID — the genuine // Mojang player, who shares the contested name under a different UUID, never // matches. func (p *PGRepo) IsUsernameBlacklisted(ctx context.Context, mcUUID string) (bool, error) { var ok bool err := p.db.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM username_blacklist WHERE mc_uuid = $1)`, mcUUID).Scan(&ok) return ok, err } // IsProtectedAdminLink reports whether mc_uuid belongs to a Linked Operator/SysAdmin // who authenticates through the third-party Yggdrasil — the admin-on-Yggdrasil reclaim // exception (spec §B3). The EXISTS joins account_links to users on exactly three // conjuncts: the UUID is linked, that link authenticated via 'thirdparty', and the // linked user is an admin. It intentionally does not test HOW the account signs in: // an Operator may authenticate via SSO (Cloudflare Access, §14) or any local // passwordless door and must be protected just the same — the sign-in method is // orthogonal to "is staff" and "logs in via the Login Server". Keyed by UUID, the // only identity velocity holds. func (p *PGRepo) IsProtectedAdminLink(ctx context.Context, mcUUID string) (bool, error) { var ok bool err := p.db.QueryRowContext(ctx, `SELECT EXISTS( SELECT 1 FROM account_links al JOIN users u ON u.id = al.user_id WHERE al.mc_uuid = $1 AND al.auth_source = 'thirdparty' AND u.role = 'admin')`, mcUUID).Scan(&ok) return ok, err } // ---- staff account lookups (spec §B, passwordless) ---- // UserByUsername loads a staff login projection by username, or ErrNotFound. // The account is passwordless — staff authenticate via email-OTP / passkey, so // no password column is read. func (p *PGRepo) UserByUsername(ctx context.Context, username string) (*StaffUser, error) { const q = `SELECT id, username, COALESCE(email, ''), role::text, email_verified FROM users WHERE username = $1` var u StaffUser switch err := p.db.QueryRowContext(ctx, q, username).Scan( &u.ID, &u.Username, &u.Email, &u.Role, &u.EmailVerified); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &u, nil } // AdminExists reports whether any admin account already exists. It is the // break-glass console's bootstrap-vs-recovery switch: false means the typed // credential mints the first Owner (no prior identity to verify against), true // means the operator must identify against an existing admin for accountability. // It is not on the Repo interface because only the break-glass CLI consults it. func (p *PGRepo) AdminExists(ctx context.Context) (bool, error) { const q = `SELECT 1 FROM users WHERE role = 'admin' LIMIT 1` var one int switch err := p.db.QueryRowContext(ctx, q).Scan(&one); { case errors.Is(err, sql.ErrNoRows): return false, nil case err != nil: return false, err } return true, nil } // UserByID loads the same staff projection by id, or ErrNotFound. The // account is passwordless — no password column is read. func (p *PGRepo) UserByID(ctx context.Context, id string) (*StaffUser, error) { const q = `SELECT id, username, COALESCE(email, ''), role::text, email_verified FROM users WHERE id = $1` var u StaffUser switch err := p.db.QueryRowContext(ctx, q, id).Scan( &u.ID, &u.Username, &u.Email, &u.Role, &u.EmailVerified); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &u, nil } // UpsertOwner creates or resets the Owner account direct-to-Postgres (the // break-glass first-run / recovery path). role is forced to 'admin' — the // platform-level identity. On a username conflict the email is overwritten // while the existing id is preserved, so live sessions referencing it survive // a reset. The account is passwordless by design. The empty email is stored // as NULL (users.email is nullable). func (p *PGRepo) UpsertOwner(ctx context.Context, id, username, email string) error { _, err := p.db.ExecContext(ctx, `INSERT INTO users (id, username, email, role) VALUES ($1, $2, NULLIF($3, ''), 'admin') ON CONFLICT (username) DO UPDATE SET email = EXCLUDED.email`, id, username, email) return err } // InsertOperator mints a NEW Operator (additional staff admin) account // direct-to-Postgres. role is forced to 'admin'. UNLIKE UpsertOwner this is // insert-only: a username conflict is left untouched and surfaces as a driver // error, so adding an Operator can never silently reset the Owner's or another // Operator's row. The account is passwordless by design. The empty email is // stored as NULL. func (p *PGRepo) InsertOperator(ctx context.Context, id, username, email string) error { _, err := p.db.ExecContext(ctx, `INSERT INTO users (id, username, email, role) VALUES ($1, $2, NULLIF($3, ''), 'admin')`, id, username, email) return err } // CreateSession records a minted session by the sha-256 of its cookie value // (spec §B). Only the hash is stored, mirroring tokens. func (p *PGRepo) CreateSession(ctx context.Context, tokenHash, userID string, expiresAt time.Time) error { _, err := p.db.ExecContext(ctx, `INSERT INTO sessions (token_hash, user_id, expires_at) VALUES ($1, $2, $3)`, tokenHash, userID, expiresAt) return err } // SessionUser resolves a live (unrevoked, unexpired at now) session hash to its // user, or ErrNotFound. func (p *PGRepo) SessionUser(ctx context.Context, tokenHash string, now time.Time) (*SessionedUser, error) { const q = `SELECT u.id, COALESCE(u.email, ''), u.role::text, COALESCE(u.email_verified, false) FROM sessions s JOIN users u ON u.id = s.user_id WHERE s.token_hash = $1 AND s.revoked_at IS NULL AND s.expires_at > $2` var u SessionedUser switch err := p.db.QueryRowContext(ctx, q, tokenHash, now).Scan( &u.ID, &u.Email, &u.Role, &u.EmailVerified); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &u, nil } // RevokeSession marks a session revoked (logout). Idempotent: a missing or // already-revoked session is not an error. func (p *PGRepo) RevokeSession(ctx context.Context, tokenHash string) error { _, err := p.db.ExecContext(ctx, `UPDATE sessions SET revoked_at = now() WHERE token_hash = $1 AND revoked_at IS NULL`, tokenHash) return err } // ---- runtime platform settings (spec §B platform_settings) ---- // GetSetting reads a setting's raw jsonb value as bytes, or ErrNotFound. func (p *PGRepo) GetSetting(ctx context.Context, key string) ([]byte, error) { var value []byte switch err := p.db.QueryRowContext(ctx, `SELECT value FROM platform_settings WHERE key = $1`, key).Scan(&value); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return value, nil } // SetSetting upserts a setting's raw jsonb value by key. value is cast to jsonb // so a []byte argument lands in the jsonb column without a driver round-trip // guessing the type. func (p *PGRepo) SetSetting(ctx context.Context, key string, value []byte) error { _, err := p.db.ExecContext(ctx, `INSERT INTO platform_settings (key, value) VALUES ($1, $2::jsonb) ON CONFLICT (key) DO UPDATE SET value = EXCLUDED.value, updated_at = now()`, key, string(value)) return err } // ---- player passkey enrollment (spec §14 WebAuthn / Phase 6 bind, migration 0007) ---- // CreatePasskeyChallenge supersedes any prior challenge for (user, purpose) and inserts // the fresh one, in one transaction (mirrors CreateEmailOTP). The supersede DELETE // removes ALL prior rows for (user, purpose) — not just the live one — so a re-begin // invalidates the earlier ceremony AND reaps any already-consumed or expired row it left // behind. That bounds the table at one row per (user, purpose): the begin→finish loop // nets zero growth, since each begin sweeps the consumed row the previous finish stamped. // (Deleting a consumed row is safe: it has already been redeemed and nothing reads it.) // The opaque SessionData is held server-side so the client cannot forge the challenge // it must answer at finish. func (p *PGRepo) CreatePasskeyChallenge(ctx context.Context, id, userID, purpose string, sessionData []byte, expiresAt time.Time) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit if _, err := tx.ExecContext(ctx, `DELETE FROM webauthn_challenges WHERE user_id = $1 AND purpose = $2`, userID, purpose); err != nil { return fmt.Errorf("supersede prior passkey challenge: %w", err) } if _, err := tx.ExecContext(ctx, `INSERT INTO webauthn_challenges (id, user_id, purpose, session_data, expires_at) VALUES ($1, $2, $3, $4, $5)`, id, userID, purpose, sessionData, expiresAt); err != nil { return fmt.Errorf("insert passkey challenge: %w", err) } return tx.Commit() } // ConsumePasskeyChallengeByUser redeems the newest live (unconsumed, unexpired at now) // challenge for (user, purpose) in one transaction (mirrors VerifyEmailOTP). The row is // taken FOR UPDATE so a concurrent finish cannot double-spend it; expiry is checked // before consuming so a stale challenge is never accepted. On success consumed_at is // stamped (single-use) and the stashed SessionData is returned. No live row → // ErrPasskeyChallengeInvalid. func (p *PGRepo) ConsumePasskeyChallengeByUser(ctx context.Context, userID, purpose string, now time.Time) ([]byte, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return nil, err } defer tx.Rollback() //nolint:errcheck // no-op after commit var ( id string sessionData []byte expiresAt time.Time ) switch err := tx.QueryRowContext(ctx, `SELECT id, session_data, expires_at FROM webauthn_challenges WHERE user_id = $1 AND purpose = $2 AND consumed_at IS NULL ORDER BY created_at DESC LIMIT 1 FOR UPDATE`, userID, purpose).Scan(&id, &sessionData, &expiresAt); { case errors.Is(err, sql.ErrNoRows): return nil, ErrPasskeyChallengeInvalid case err != nil: return nil, err } if !expiresAt.After(now) { return nil, ErrPasskeyChallengeInvalid } if _, err := tx.ExecContext(ctx, `UPDATE webauthn_challenges SET consumed_at = $2 WHERE id = $1`, id, now); err != nil { return nil, fmt.Errorf("consume passkey challenge: %w", err) } if err := tx.Commit(); err != nil { return nil, err } return sessionData, nil } // ---- discoverable ("usernameless") passkey login (task #40, migration 0013) ---- // maxLiveDiscoverableChallenges hard-bounds the non-user-keyed discoverable-login challenge // store. webauthn_challenges self-bounds via a per-(user,purpose) supersede; a from-zero begin // has no such key, so the table is capped: once this many LIVE (unexpired, unconsumed) rows // exist, a new begin is refused (ErrTooManyDiscoverableChallenges → 429). The cap is generous — // a login challenge lives only passkeyChallengeTTL (5 min) and each row is ~1 KB — so real // concurrency never approaches it, while an abusive begin-flood is bounded to a few MB instead // of growing without limit. Volumetric per-IP limiting is the edge's job (handlers_auth_email.go): // behind Cloudflare RemoteAddr is the proxy, and a usernameless door has no recipient to key a // fair per-caller limit on. const maxLiveDiscoverableChallenges = 4096 // CreateDiscoverableChallenge stashes a discoverable-login ceremony under an opaque handle, // bounding the table in one transaction (see the Repo interface for the full contract). It // reaps expired/consumed rows first — the non-user-keyed analog of CreatePasskeyChallenge's // supersede — then refuses over the cap rather than inserting. Because the reap ran first, the // COUNT is exactly the live-row count, so the cap bounds an adversarial begin-flood (which a // reap alone cannot: a burst inside the TTL leaves every fresh row live). func (p *PGRepo) CreateDiscoverableChallenge(ctx context.Context, id string, sessionData []byte, now, expiresAt time.Time) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit if _, err := tx.ExecContext(ctx, `DELETE FROM webauthn_discoverable_challenges WHERE expires_at <= $1 OR consumed_at IS NOT NULL`, now); err != nil { return fmt.Errorf("reap discoverable challenges: %w", err) } var live int if err := tx.QueryRowContext(ctx, `SELECT count(*) FROM webauthn_discoverable_challenges`).Scan(&live); err != nil { return fmt.Errorf("count discoverable challenges: %w", err) } if live >= maxLiveDiscoverableChallenges { return ErrTooManyDiscoverableChallenges } if _, err := tx.ExecContext(ctx, `INSERT INTO webauthn_discoverable_challenges (id, session_data, expires_at) VALUES ($1, $2, $3)`, id, sessionData, expiresAt); err != nil { return fmt.Errorf("insert discoverable challenge: %w", err) } return tx.Commit() } // ConsumeDiscoverableChallenge redeems the challenge under handle id, single-use (see the Repo // interface for the contract). The row is taken FOR UPDATE so a concurrent finish cannot // double-spend it; expiry is checked before consuming. No live row → ErrPasskeyChallengeInvalid. func (p *PGRepo) ConsumeDiscoverableChallenge(ctx context.Context, id string, now time.Time) ([]byte, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return nil, err } defer tx.Rollback() //nolint:errcheck // no-op after commit var ( sessionData []byte expiresAt time.Time ) switch err := tx.QueryRowContext(ctx, `SELECT session_data, expires_at FROM webauthn_discoverable_challenges WHERE id = $1 AND consumed_at IS NULL FOR UPDATE`, id).Scan(&sessionData, &expiresAt); { case errors.Is(err, sql.ErrNoRows): return nil, ErrPasskeyChallengeInvalid case err != nil: return nil, err } if !expiresAt.After(now) { return nil, ErrPasskeyChallengeInvalid } if _, err := tx.ExecContext(ctx, `UPDATE webauthn_discoverable_challenges SET consumed_at = $2 WHERE id = $1`, id, now); err != nil { return nil, fmt.Errorf("consume discoverable challenge: %w", err) } if err := tx.Commit(); err != nil { return nil, err } return sessionData, nil } // CreatePasskeyCredential stores a freshly verified passkey (enrollment). Only public // attestation material is written; a credential_id already bound to ANY account is left // untouched (ON CONFLICT DO NOTHING) and reported as ErrConflict via a zero RowsAffected, // so an authenticator is never silently rebound. Empty aaguid/name land as SQL NULL. func (p *PGRepo) CreatePasskeyCredential(ctx context.Context, c PasskeyCredential) error { res, err := p.db.ExecContext(ctx, `INSERT INTO webauthn_credentials (id, user_id, credential_id, public_key, sign_count, aaguid, name, created_at, user_verified, backup_eligible, backup_state) VALUES ($1, $2, $3, $4, $5, NULLIF($6, ''), NULLIF($7, ''), $8, $9, $10, $11) ON CONFLICT (credential_id) DO NOTHING`, c.ID, c.UserID, c.CredentialID, c.PublicKey, int64(c.SignCount), c.AAGUID, c.Name, c.CreatedAt, c.UserVerified, c.BackupEligible, c.BackupState) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrConflict } return nil } // PasskeyCredentialsForUser lists the passkeys a user has bound, newest first, for the // credential-management view. Nullable aaguid/name collapse to "" via COALESCE; the // nullable last_used_at maps to a *time.Time (nil until an assertion is verified). func (p *PGRepo) PasskeyCredentialsForUser(ctx context.Context, userID string) ([]PasskeyCredential, error) { const q = `SELECT id, user_id, credential_id, public_key, sign_count, COALESCE(aaguid, ''), COALESCE(name, ''), created_at, last_used_at, user_verified, backup_eligible, backup_state FROM webauthn_credentials WHERE user_id = $1 ORDER BY created_at DESC` rows, err := p.db.QueryContext(ctx, q, userID) if err != nil { return nil, err } defer rows.Close() var out []PasskeyCredential for rows.Next() { var ( c PasskeyCredential signCount int64 lastUsed sql.NullTime ) if err := rows.Scan(&c.ID, &c.UserID, &c.CredentialID, &c.PublicKey, &signCount, &c.AAGUID, &c.Name, &c.CreatedAt, &lastUsed, &c.UserVerified, &c.BackupEligible, &c.BackupState); err != nil { return nil, err } c.SignCount = uint32(signCount) if lastUsed.Valid { t := lastUsed.Time c.LastUsedAt = &t } out = append(out, c) } return out, rows.Err() } // AdvanceCredentialSignCount records a successful assertion on the passkey identified by // credentialID: it advances the stored signature counter to newSignCount and stamps // last_used_at. credential_id is UNIQUE so exactly one row is touched; a missing row (the // credential was unbound mid-ceremony) affects zero rows and is a successful no-op, never an // error — the assertion is already cryptographically complete by the time this runs. func (p *PGRepo) AdvanceCredentialSignCount(ctx context.Context, credentialID string, newSignCount uint32, usedAt time.Time) error { _, err := p.db.ExecContext(ctx, `UPDATE webauthn_credentials SET sign_count = $2, last_used_at = $3 WHERE credential_id = $1`, credentialID, int64(newSignCount), usedAt) return err } // DeletePasskeyCredential removes the passkey row id, scoped to userID so a caller can // only unbind their OWN credential. No matching (user, id) row → ErrNotFound via a zero // RowsAffected, so a stale or cross-user id cannot silently no-op as success. func (p *PGRepo) DeletePasskeyCredential(ctx context.Context, userID, id string) error { res, err := p.db.ExecContext(ctx, `DELETE FROM webauthn_credentials WHERE id = $1 AND user_id = $2`, id, userID) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } return nil } // DeleteAllPasskeyCredentialsForUser unbinds every passkey a user holds. Unlike the // single-credential delete this does NOT report ErrNotFound on zero rows: removing all of // a user's passkeys when they have none is a successful no-op, since "the user holds no // passkeys" is exactly the intended post-condition. It is the remediation that stops a // passkey planted through a transiently-hijacked session from surviving; its production // caller is the owner-tier DELETE /users/{id}/passkeys, which a complete remediation // pairs with a session revoke (unbinding alone leaves the live hijacked session). func (p *PGRepo) DeleteAllPasskeyCredentialsForUser(ctx context.Context, userID string) error { _, err := p.db.ExecContext(ctx, `DELETE FROM webauthn_credentials WHERE user_id = $1`, userID) return err } // ---- user admin (spec §7, admin-only) ---- // ListUsers returns a page of non-deleted users matching the optional filters, // newest first. total is the unfiltered count so the admin page can render // pagination without a second round-trip. func (p *PGRepo) ListUsers(ctx context.Context, opts ListUsersOpts) ([]UserView, int, error) { var total int { q := `SELECT count(*) FROM users WHERE deleted_at IS NULL` if err := p.db.QueryRowContext(ctx, q).Scan(&total); err != nil { return nil, 0, err } } limit := opts.Limit if limit <= 0 || limit > 100 { limit = 20 } offset := opts.Offset if offset < 0 { offset = 0 } // Build the WHERE clause from filters. All args are positional so the order // of appends must match. where := ` WHERE u.deleted_at IS NULL` var args []any argn := 0 if opts.Query != "" { argn++ where += fmt.Sprintf(` AND (u.username ILIKE '%%' || $%d || '%%' OR u.email ILIKE '%%' || $%d || '%%')`, argn, argn) args = append(args, opts.Query) } if opts.Role != "" { argn++ where += fmt.Sprintf(` AND u.role::text = $%d`, argn) args = append(args, opts.Role) } switch opts.Hidden { case "true": where += ` AND u.disabled = true` case "false": where += ` AND u.disabled = false` } q := `SELECT u.id, u.username, COALESCE(u.email, ''), u.role::text, u.disabled, u.email_verified, u.created_at, u.updated_at, COALESCE((SELECT count(*) FROM servers s WHERE s.owner_id = u.id AND s.deleted_at IS NULL), 0) FROM users u` + where argn++ q += fmt.Sprintf(` ORDER BY u.created_at DESC LIMIT $%d OFFSET $%d`, argn, argn+1) args = append(args, limit, offset) rows, err := p.db.QueryContext(ctx, q, args...) if err != nil { return nil, 0, err } defer rows.Close() var out []UserView for rows.Next() { var v UserView if err := rows.Scan(&v.ID, &v.Username, &v.Email, &v.Role, &v.Disabled, &v.EmailVerified, &v.CreatedAt, &v.UpdatedAt, &v.ServerCount); err != nil { return nil, 0, err } out = append(out, v) } return out, total, rows.Err() } // UserDetail loads one user with its linked MC accounts, or ErrNotFound. func (p *PGRepo) UserDetail(ctx context.Context, userID string) (*UserDetail, error) { const q = `SELECT u.id, u.username, COALESCE(u.email, ''), u.role::text, u.disabled, u.email_verified, u.created_at, u.updated_at, u.deleted_at, COALESCE((SELECT count(*) FROM servers s WHERE s.owner_id = u.id AND s.deleted_at IS NULL), 0) FROM users u WHERE u.id = $1` var d UserDetail switch err := p.db.QueryRowContext(ctx, q, userID).Scan( &d.ID, &d.Username, &d.Email, &d.Role, &d.Disabled, &d.EmailVerified, &d.CreatedAt, &d.UpdatedAt, &d.DeletedAt, &d.ServerCount); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } // Load linked MC accounts. linkRows, err := p.db.QueryContext(ctx, `SELECT mc_uuid::text, COALESCE(auth_source, 'mojang'), verified_at FROM account_links WHERE user_id = $1 ORDER BY verified_at`, userID) if err != nil { return &d, nil // best-effort; linked accounts are informational } defer linkRows.Close() for linkRows.Next() { var a LinkedAccount if err := linkRows.Scan(&a.MCUUID, &a.AuthSource, &a.VerifiedAt); err != nil { return &d, nil } d.LinkedAccounts = append(d.LinkedAccounts, a) } return &d, linkRows.Err() } // CreateUser mints a new user row. A username conflict → ErrConflict. func (p *PGRepo) CreateUser(ctx context.Context, input CreateUserInput, _ string) (*UserView, error) { const q = `INSERT INTO users (id, username, email, role) VALUES (gen_random_uuid()::text, $1, NULLIF($2, ''), $3::user_role) ON CONFLICT (username) DO NOTHING RETURNING id, username, COALESCE(email, ''), role::text, disabled, email_verified, created_at, updated_at, 0` var v UserView switch err := p.db.QueryRowContext(ctx, q, input.Username, input.Email, input.Role).Scan( &v.ID, &v.Username, &v.Email, &v.Role, &v.Disabled, &v.EmailVerified, &v.CreatedAt, &v.UpdatedAt, &v.ServerCount); { case errors.Is(err, sql.ErrNoRows): return nil, ErrConflict case err != nil: return nil, err } return &v, nil } // UpdateUser applies the non-nil fields of patch and returns the updated view. // A username conflict → ErrConflict; a non-existent user → ErrNotFound. func (p *PGRepo) UpdateUser(ctx context.Context, userID string, patch UpdateUserInput, _ string) (*UserView, error) { // Build a dynamic SET clause from non-nil patch fields. var sets []string var args []any argn := 0 if patch.Username != nil { argn++ sets = append(sets, fmt.Sprintf("username = $%d", argn)) args = append(args, *patch.Username) } if patch.Email != nil { argn++ sets = append(sets, fmt.Sprintf("email = NULLIF($%d, '')", argn)) args = append(args, *patch.Email) } if patch.Role != nil { argn++ sets = append(sets, fmt.Sprintf("role = $%d::user_role", argn)) args = append(args, *patch.Role) } if len(sets) == 0 { // No fields to update; return the current view. v, err := p.userView(ctx, userID) if err != nil { return nil, err } return v, nil } argn++ args = append(args, userID) q := "UPDATE users SET " + sets[0] for _, s := range sets[1:] { q += ", " + s } q += fmt.Sprintf(` WHERE id = $%d AND deleted_at IS NULL`, argn) q += ` RETURNING id, username, COALESCE(email, ''), role::text, disabled, email_verified, created_at, updated_at, (SELECT count(*) FROM servers WHERE owner_id = users.id AND deleted_at IS NULL)` var v UserView switch err := p.db.QueryRowContext(ctx, q, args...).Scan( &v.ID, &v.Username, &v.Email, &v.Role, &v.Disabled, &v.EmailVerified, &v.CreatedAt, &v.UpdatedAt, &v.ServerCount); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: // A username UNIQUE violation surfaces as a driver error; map it to // ErrConflict so the handler can answer 409. if isUniqueViolation(err) { return nil, ErrConflict } return nil, err } return &v, nil } // userView returns a live user's projection, or ErrNotFound. It is the read half // shared by UpdateUser (no-op return) and several other paths. func (p *PGRepo) userView(ctx context.Context, userID string) (*UserView, error) { const q = `SELECT id, username, COALESCE(email, ''), role::text, disabled, email_verified, created_at, updated_at, (SELECT count(*) FROM servers WHERE owner_id = users.id AND deleted_at IS NULL) FROM users WHERE id = $1 AND deleted_at IS NULL` var v UserView switch err := p.db.QueryRowContext(ctx, q, userID).Scan( &v.ID, &v.Username, &v.Email, &v.Role, &v.Disabled, &v.EmailVerified, &v.CreatedAt, &v.UpdatedAt, &v.ServerCount); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &v, nil } // DeleteUser soft-deletes a user in one transaction: sets deleted_at, revokes // every live session, and releases every owned server. The row is preserved so // audit_logs.actor references survive. func (p *PGRepo) DeleteUser(ctx context.Context, userID, _ string) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() // Verify the user exists and is not already deleted. var exists bool if err := tx.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM users WHERE id = $1 AND deleted_at IS NULL)`, userID).Scan(&exists); err != nil { return err } if !exists { return ErrNotFound } // Release all owned servers. if _, err := tx.ExecContext(ctx, `UPDATE servers SET owner_id = NULL WHERE owner_id = $1 AND deleted_at IS NULL`, userID); err != nil { return err } // Revoke every live session. if _, err := tx.ExecContext(ctx, `UPDATE sessions SET revoked_at = now() WHERE user_id = $1 AND revoked_at IS NULL`, userID); err != nil { return err } // Soft-delete the user row. if _, err := tx.ExecContext(ctx, `UPDATE users SET disabled = true, deleted_at = now() WHERE id = $1`, userID); err != nil { return err } return tx.Commit() } // SetUserDisabled flips the disabled flag. Setting disabled→true additionally // revokes every live session so the account is immediately locked out. func (p *PGRepo) SetUserDisabled(ctx context.Context, userID string, disabled bool) error { // Guard: the user must exist and not be deleted. var ok bool if err := p.db.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM users WHERE id = $1 AND deleted_at IS NULL)`, userID).Scan(&ok); err != nil { return err } if !ok { return ErrNotFound } if _, err := p.db.ExecContext(ctx, `UPDATE users SET disabled = $2 WHERE id = $1`, userID, disabled); err != nil { return err } if disabled { // Revoke every live session so the lockout is immediate. _, _ = p.db.ExecContext(ctx, `UPDATE sessions SET revoked_at = now() WHERE user_id = $1 AND revoked_at IS NULL`, userID) } return nil } // ---- quota admin ---- // GetQuotas returns the quotas row for a user, or a zero-value view when no // row exists (meaning unlimited). func (p *PGRepo) GetQuotas(ctx context.Context, userID string) (*QuotaView, error) { const q = `SELECT user_id, max_servers, max_cpu_milli, max_memory_mb, max_storage_gb FROM quotas WHERE user_id = $1` v := QuotaView{UserID: userID} switch err := p.db.QueryRowContext(ctx, q, userID).Scan( &v.UserID, &v.MaxServers, &v.MaxCPUMilli, &v.MaxMemoryMB, &v.MaxStorageGB); { case errors.Is(err, sql.ErrNoRows): return &v, nil case err != nil: return nil, err } return &v, nil } // SetQuotas upserts a quotas row. Nil fields are left unchanged; a non-nil // zero-value field clears the cap. func (p *PGRepo) SetQuotas(ctx context.Context, userID string, qi QuotaInput, setBy string) (*QuotaView, error) { type col struct { name string value *int } cols := []col{ {"max_servers", qi.MaxServers}, {"max_cpu_milli", qi.MaxCPUMilli}, {"max_memory_mb", qi.MaxMemoryMB}, {"max_storage_gb", qi.MaxStorageGB}, } // Build the ON CONFLICT upsert dynamically. var insCols, insVals []string var upd []string var args []any argn := 0 args = append(args, userID) // $1 = user_id argn++ args = append(args, setBy) // $2 = updated_by argn++ insCols = append(insCols, "user_id", "updated_by") insVals = append(insVals, "$1", "$2") for _, c := range cols { if c.value == nil { continue } argn++ insCols = append(insCols, c.name) insVals = append(insVals, fmt.Sprintf("$%d", argn)) args = append(args, *c.value) upd = append(upd, fmt.Sprintf("%s = EXCLUDED.%s", c.name, c.name)) } query := fmt.Sprintf(`INSERT INTO quotas (%s) VALUES (%s) ON CONFLICT (user_id) DO UPDATE SET %s, updated_by = $2 RETURNING user_id, max_servers, max_cpu_milli, max_memory_mb, max_storage_gb`, joinStr(insCols), joinStr(insVals), joinStr(upd)) v := QuotaView{} switch err := p.db.QueryRowContext(ctx, query, args...).Scan( &v.UserID, &v.MaxServers, &v.MaxCPUMilli, &v.MaxMemoryMB, &v.MaxStorageGB); { case err != nil: return nil, err } return &v, nil } // ---- session admin ---- // ListUserSessions returns every live session for a user, newest first. func (p *PGRepo) ListUserSessions(ctx context.Context, userID string, now time.Time) ([]SessionView, error) { const q = `SELECT token_hash, created_at, expires_at, revoked_at FROM sessions WHERE user_id = $1 AND (revoked_at IS NULL OR revoked_at > $2) AND expires_at > $2 ORDER BY created_at DESC` rows, err := p.db.QueryContext(ctx, q, userID, now) if err != nil { return nil, err } defer rows.Close() var out []SessionView for rows.Next() { var s SessionView if err := rows.Scan(&s.TokenHash, &s.CreatedAt, &s.ExpiresAt, &s.RevokedAt); err != nil { return nil, err } out = append(out, s) } return out, rows.Err() } // RevokeAllUserSessions marks every live session of userID revoked. func (p *PGRepo) RevokeAllUserSessions(ctx context.Context, userID string) error { _, err := p.db.ExecContext(ctx, `UPDATE sessions SET revoked_at = now() WHERE user_id = $1 AND revoked_at IS NULL`, userID) return err } // ---- account-link admin ---- // UnlinkAccount removes a single (user_id, mc_uuid) binding. func (p *PGRepo) UnlinkAccount(ctx context.Context, userID, mcUUID string) error { res, err := p.db.ExecContext(ctx, `DELETE FROM account_links WHERE user_id = $1 AND mc_uuid = $2`, userID, mcUUID) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } return nil } // LinkAccount force-binds a UUID to a user. A UUID already linked to a different // user → ErrConflict; same (user, uuid) pair is idempotent (ON CONFLICT DO // NOTHING on the UNIQUE(mc_uuid) constraint, plus an idempotency check via // EXISTS). func (p *PGRepo) LinkAccount(ctx context.Context, userID, mcUUID, authSource string) error { // Check idempotency first: already linked to this user → success. var exists bool if err := p.db.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM account_links WHERE user_id = $1 AND mc_uuid = $2)`, userID, mcUUID).Scan(&exists); err != nil { return err } if exists { return nil } // Try insert. The UNIQUE(mc_uuid) constraint will reject a UUID already // bound to a different user. res, err := p.db.ExecContext(ctx, `INSERT INTO account_links (user_id, mc_uuid, auth_source, verified_at) VALUES ($1, $2, $3, now()) ON CONFLICT (mc_uuid) DO NOTHING`, userID, mcUUID, authSource) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrConflict } return nil } // ---- account migration (spec §B3 inherit, scenario A) ---- // StartMigration puts a live source account into migrate mode. It supersedes any // earlier unfinished migration for the source (so re-running /felis migrate restarts // cleanly, invalidating a prior outstanding code) and inserts a fresh 'initiated' row, // both under one transaction so the partial unique index never sees two live rows. func (p *PGRepo) StartMigration(ctx context.Context, id, sourceUserID string, now time.Time) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit // The source must be a live (non-deleted) account; a retired one can never // re-initiate a migration. var live bool if err := tx.QueryRowContext(ctx, `SELECT EXISTS(SELECT 1 FROM users WHERE id = $1 AND deleted_at IS NULL)`, sourceUserID).Scan(&live); err != nil { return err } if !live { return ErrNotFound } if _, err := tx.ExecContext(ctx, `DELETE FROM account_migrations WHERE source_user_id = $1 AND state <> 'redeemed'`, sourceUserID); err != nil { return err } if _, err := tx.ExecContext(ctx, `INSERT INTO account_migrations (id, source_user_id, state, created_at, updated_at) VALUES ($1, $2, 'initiated', $3, $3)`, id, sourceUserID, now); err != nil { return err } return tx.Commit() } // MigrationForSource loads the live (non-redeemed) migration for a source, or // ErrNotFound when none is in flight. func (p *PGRepo) MigrationForSource(ctx context.Context, sourceUserID string) (*MigrationView, error) { const q = `SELECT id, source_user_id, COALESCE(target_user_id, ''), state, COALESCE(confirm_factor, ''), confirmed_at, code_expires_at, created_at FROM account_migrations WHERE source_user_id = $1 AND state <> 'redeemed'` var v MigrationView switch err := p.db.QueryRowContext(ctx, q, sourceUserID).Scan( &v.ID, &v.SourceUserID, &v.TargetUserID, &v.State, &v.ConfirmFactor, &v.ConfirmedAt, &v.CodeExpiresAt, &v.CreatedAt); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &v, nil } // ConfirmMigration advances 'initiated' → 'confirmed' for the source, stamping the // step-up factor + time. It only advances from 'initiated' (0 rows → ErrConflict), so // the step-up can never be replayed against a later state. func (p *PGRepo) ConfirmMigration(ctx context.Context, sourceUserID, factor string, now time.Time) error { res, err := p.db.ExecContext(ctx, `UPDATE account_migrations SET state = 'confirmed', confirm_factor = $2, confirmed_at = $3 WHERE source_user_id = $1 AND state = 'initiated'`, sourceUserID, factor, now) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrConflict } return nil } // IssueMigrationCode advances 'confirmed' → 'code_issued', binding the target and // storing the one-time code hash + TTL. The caller has already validated the target is // a live account other than the source; the target FK is the backstop. Not-in-confirmed // → ErrConflict. func (p *PGRepo) IssueMigrationCode(ctx context.Context, sourceUserID, targetUserID, codeHash string, expiresAt time.Time) error { res, err := p.db.ExecContext(ctx, `UPDATE account_migrations SET state = 'code_issued', target_user_id = $2, code_hash = $3, code_expires_at = $4 WHERE source_user_id = $1 AND state = 'confirmed'`, sourceUserID, targetUserID, codeHash, expiresAt) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrConflict } return nil } // RedeemMigration performs the atomic transfer + retirement in one transaction. See // the interface doc for the full contract. func (p *PGRepo) RedeemMigration(ctx context.Context, targetUserID, codeHash string, now time.Time) (string, []string, error) { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return "", nil, err } defer tx.Rollback() //nolint:errcheck // no-op after commit // Find and lock the pending migration whose named target is exactly this user. A // code whose target is a different user simply does not match — an intercepted // code is useless to a non-target. FOR UPDATE serializes concurrent redeems. var migID, sourceUserID string switch err := tx.QueryRowContext(ctx, `SELECT id, source_user_id FROM account_migrations WHERE code_hash = $1 AND target_user_id = $2 AND state = 'code_issued' AND code_expires_at > $3 FOR UPDATE`, codeHash, targetUserID, now).Scan(&migID, &sourceUserID); { case errors.Is(err, sql.ErrNoRows): return "", nil, ErrLinkCodeInvalid case err != nil: return "", nil, err } // Re-point every server the source owns to the target, collecting the names for // the audit trail. Server ownership is the only thing that moves. rows, err := tx.QueryContext(ctx, `UPDATE servers SET owner_id = $2, claimed_at = now() WHERE owner_id = $1 AND deleted_at IS NULL RETURNING name`, sourceUserID, targetUserID) if err != nil { return "", nil, err } var moved []string for rows.Next() { var name string if err := rows.Scan(&name); err != nil { rows.Close() return "", nil, err } moved = append(moved, name) } if err := rows.Err(); err != nil { rows.Close() return "", nil, err } rows.Close() // Retire the source: revoke its live sessions and soft-delete it so it can neither // log in nor start another migration (double-spend defense). The servers just moved // away, so there is nothing left to release. if _, err := tx.ExecContext(ctx, `UPDATE sessions SET revoked_at = now() WHERE user_id = $1 AND revoked_at IS NULL`, sourceUserID); err != nil { return "", nil, err } if _, err := tx.ExecContext(ctx, `UPDATE users SET disabled = true, deleted_at = now() WHERE id = $1 AND deleted_at IS NULL`, sourceUserID); err != nil { return "", nil, err } // Mark the migration terminal. if _, err := tx.ExecContext(ctx, `UPDATE account_migrations SET state = 'redeemed', redeemed_at = $2 WHERE id = $1`, migID, now); err != nil { return "", nil, err } if err := tx.Commit(); err != nil { return "", nil, err } return sourceUserID, moved, nil } // ---- pre-session email login (spec §B) ---- // UserByEmail resolves a VERIFIED email address to its login projection, or // ErrNotFound. Only a proven (email_verified true) address resolves, so a // merely-asserted address never reaches a session-mintable identity. The // account is passwordless — no password column is read. func (p *PGRepo) UserByEmail(ctx context.Context, email string) (*StaffUser, error) { // lower() on both sides honors the interface's case-insensitivity contract // and matches the users_verified_email_unique index (lower(email)). const q = `SELECT id, username, COALESCE(email, ''), role::text, email_verified FROM users WHERE lower(email) = lower($1) AND email_verified = true` var u StaffUser switch err := p.db.QueryRowContext(ctx, q, email).Scan( &u.ID, &u.Username, &u.Email, &u.Role, &u.EmailVerified); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } return &u, nil } // ConsumeLoginEmailOTP redeems the live code for the PRE-SESSION email login door // with the SAME lifecycle as VerifyEmailOTP (FOR UPDATE, expiry + attempt cap // before the hash compare, a mismatch charges one attempt without consuming) but // with NO identity side-effects: it neither writes users.email nor runs the // verified-email uniqueness guard — login already resolved the userID via // UserByEmail, which requires email_verified, so the address is settled. Errors // are exactly ErrOTPInvalid / ErrOTPLocked (ErrEmailTaken is structurally // impossible here). func (p *PGRepo) ConsumeLoginEmailOTP(ctx context.Context, userID, purpose, codeHash string, now time.Time) error { tx, err := p.db.BeginTx(ctx, nil) if err != nil { return err } defer tx.Rollback() //nolint:errcheck // no-op after commit var ( id string storedHash string attempts int expiresAt time.Time ) switch err := tx.QueryRowContext(ctx, `SELECT id, code_hash, attempts, expires_at FROM email_otps WHERE user_id = $1 AND purpose = $2 AND consumed_at IS NULL ORDER BY created_at DESC LIMIT 1 FOR UPDATE`, userID, purpose).Scan(&id, &storedHash, &attempts, &expiresAt); { case errors.Is(err, sql.ErrNoRows): // Nothing live: never minted, already consumed, or superseded. return ErrOTPInvalid case err != nil: return err } if !expiresAt.After(now) { return ErrOTPInvalid } if attempts >= otpMaxAttempts { return ErrOTPLocked } if storedHash != codeHash { if _, err := tx.ExecContext(ctx, `UPDATE email_otps SET attempts = attempts + 1 WHERE id = $1`, id); err != nil { return fmt.Errorf("record otp attempt: %w", err) } if err := tx.Commit(); err != nil { return err } return ErrOTPInvalid } if _, err := tx.ExecContext(ctx, `UPDATE email_otps SET consumed_at = $2 WHERE id = $1`, id, now); err != nil { return fmt.Errorf("consume otp: %w", err) } return tx.Commit() } // ---- op.console staff login: in-game approval state machine (spec §B op-login) ---- // CreateOpLoginRequest records a fresh pending op.console login attempt for a staff // account. It writes the SECOND factor only — the email-OTP is minted separately // under purpose 'op_login' — so a row here means this staff account is waiting for // an in-game admin to vouch. email is a snapshot for the audit trail. func (p *PGRepo) CreateOpLoginRequest(ctx context.Context, id, userID, email string, expiresAt time.Time) error { _, err := p.db.ExecContext(ctx, `INSERT INTO op_login_requests (id, user_id, email, expires_at) VALUES ($1, $2, $3, $4)`, id, userID, email, expiresAt) return err } // OpLoginRequestByID loads a request by its handle, or ErrNotFound. The status poll // and the finish path both use it; finish additionally checks Status=='approved', // !Consumed, and ExpiresAt>now before minting a session. Username is left empty (no // join needed here). Status is derived from approved_at: 'approved' once set, else // 'pending'. func (p *PGRepo) OpLoginRequestByID(ctx context.Context, id string) (*OpLoginRequest, error) { const q = `SELECT id, user_id, email, expires_at, consumed_at, approved_at, approved_by FROM op_login_requests WHERE id = $1` var ( r OpLoginRequest consumedAt sql.NullTime approvedAt sql.NullTime approvedBy sql.NullString ) switch err := p.db.QueryRowContext(ctx, q, id).Scan( &r.ID, &r.UserID, &r.Email, &r.ExpiresAt, &consumedAt, &approvedAt, &approvedBy); { case errors.Is(err, sql.ErrNoRows): return nil, ErrNotFound case err != nil: return nil, err } r.Consumed = consumedAt.Valid if approvedAt.Valid { r.Status = "approved" } else { r.Status = "pending" } return &r, nil } // ListPendingOpLogins returns the live (pending, unconsumed, unexpired at now) // requests oldest-first, for the in-game admin's approval prompt. A resolved or // expired request drops out of the list, so an admin only ever sees actionable // attempts. The username is joined because the approval prompt names the staff // account; created_at orders the list and lets the prompt show how long a request // has been waiting. func (p *PGRepo) ListPendingOpLogins(ctx context.Context, now time.Time) ([]OpLoginRequest, error) { const q = `SELECT r.id, r.user_id, u.username, r.email, r.expires_at, r.created_at FROM op_login_requests r JOIN users u ON u.id = r.user_id WHERE r.consumed_at IS NULL AND r.approved_at IS NULL AND r.expires_at > $1 ORDER BY r.created_at` rows, err := p.db.QueryContext(ctx, q, now) if err != nil { return nil, err } defer rows.Close() var out []OpLoginRequest for rows.Next() { var r OpLoginRequest if err := rows.Scan(&r.ID, &r.UserID, &r.Username, &r.Email, &r.ExpiresAt, &r.CreatedAt); err != nil { return nil, err } r.Status = "pending" out = append(out, r) } return out, rows.Err() } // ApproveOpLogin marks a pending request approved by approverUserID (the in-game // admin), atomically: it stamps approved_at and approved_by only WHERE the row is // still pending, unconsumed, and unexpired at now. Zero rows affected (gone, // already resolved, or expired) → ErrNotFound, so a double approval or an // approval of a dead request is a no-op the caller can surface. func (p *PGRepo) ApproveOpLogin(ctx context.Context, id, approverUserID string, now time.Time) error { res, err := p.db.ExecContext(ctx, `UPDATE op_login_requests SET approved_at = $3, approved_by = $2 WHERE id = $1 AND consumed_at IS NULL AND approved_at IS NULL AND expires_at > $3`, id, approverUserID, now) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } return nil } // ConsumeOpLoginRequest stamps consumed_at on an APPROVED, unconsumed, unexpired // request, atomically, so it can be exchanged for a session exactly once. Zero // rows affected (pending, already consumed, or expired) → ErrNotFound. This is the // finish path's single-use guard; the email-OTP is consumed separately, so a lost // race here never silently mints a second session. func (p *PGRepo) ConsumeOpLoginRequest(ctx context.Context, id string, now time.Time) error { res, err := p.db.ExecContext(ctx, `UPDATE op_login_requests SET consumed_at = $2 WHERE id = $1 AND consumed_at IS NULL AND expires_at > $2`, id, now) if err != nil { return err } n, err := res.RowsAffected() if err != nil { return err } if n == 0 { return ErrNotFound } return nil } // ---- setup token redemption (spec §B) ---- // ConsumeSetupToken atomically marks a one-time setup token consumed and returns // its user_id, or ErrNotFound when the token is absent, already consumed, or // expired. The /setup?token=... web flow redeems it for a lockdown session. func (p *PGRepo) ConsumeSetupToken(ctx context.Context, tokenHash string, now time.Time) (string, error) { var userID string switch err := p.db.QueryRowContext(ctx, `UPDATE setup_tokens SET consumed_at = $2 WHERE token_hash = $1 AND consumed_at IS NULL AND expires_at > $2 RETURNING user_id`, tokenHash, now).Scan(&userID); { case errors.Is(err, sql.ErrNoRows): return "", ErrNotFound case err != nil: return "", err } return userID, nil } // CreateSetupToken persists a one-time first-web-login token, storing only its // hash (the raw value rides in the /setup?token=... URL). The setup Owner-bind // path uses CompleteOwnerSetup so identity binding, local auth, and this token // commit atomically; this lower-level helper remains for callers that already // established the user. The token is redeemed exactly once by ConsumeSetupToken. func (p *PGRepo) CreateSetupToken(ctx context.Context, tokenHash, userID string, expiresAt time.Time) error { _, err := p.db.ExecContext(ctx, `INSERT INTO setup_tokens (token_hash, user_id, expires_at) VALUES ($1, $2, $3)`, tokenHash, userID, expiresAt) return err } // joinStr joins a slice of strings with ", ". func joinStr(vals []string) string { if len(vals) == 0 { return "" } s := vals[0] for _, v := range vals[1:] { s += ", " + v } return s } // isUniqueViolation reports whether err is a Postgres unique-constraint // violation (code 23505). func isUniqueViolation(err error) bool { return stringsContains(err.Error(), "duplicate key") || stringsContains(err.Error(), "23505") } func stringsContains(s, sub string) bool { for i := 0; i <= len(s)-len(sub); i++ { if s[i:i+len(sub)] == sub { return true } } return false }