eeb601cbe2
All Go files lived flat in backend/ as one package main. Move store,
latest-chapter polling, sessions, HTTP middleware, the JSON API, the
userscript handler, and the web UI (with its templates/static assets)
into backend/internal/{store,latest,session,httpmw,api,userscript,web},
each with an exported API. main.go becomes the composition root wiring
them into newRouter; root-level tests cover the assembled router while
package-local tests cover unit behavior. Update Dockerfile/.dockerignore
for the new internal/ tree and CLAUDE.md to describe the layout.
Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
189 lines
5.9 KiB
Go
189 lines
5.9 KiB
Go
package session
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import (
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"crypto/hmac"
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"crypto/sha256"
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"crypto/subtle"
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"encoding/base64"
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"net"
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"net/http"
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"strconv"
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"strings"
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"sync"
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"time"
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)
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const (
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CookieName = "mangabm_session"
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// 60 days: long enough that a phone stays logged in between reading spells.
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sessionTTL = 60 * 24 * time.Hour
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// Domain separation, so the session key can never collide with any other
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// use of the secrets it is derived from. Changing this string logs
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// everyone out.
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sessionKeyPurpose = "mangabm-web-session-v1"
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)
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// Key derives the cookie-signing key from both secrets. Sessions are
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// stateless — there is no session table — so rotating either API_TOKEN or
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// WEB_PASSWORD invalidates every outstanding cookie at once. The \x00
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// separator prevents the concatenation ambiguity a bare apiToken+webPassword
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// would have (e.g. "ab"+"c" colliding with "a"+"bc").
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func Key(apiToken, webPassword string) []byte {
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sum := sha256.Sum256([]byte(apiToken + "\x00" + webPassword + sessionKeyPurpose))
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return sum[:]
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}
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// Sign encodes "<expiryMs>.<base64url HMAC(expiryMs)>".
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func Sign(key []byte, expiryMs int64) string {
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payload := strconv.FormatInt(expiryMs, 10)
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return payload + "." + sessionMAC(key, payload)
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}
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func sessionMAC(key []byte, payload string) string {
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mac := hmac.New(sha256.New, key)
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mac.Write([]byte(payload))
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return base64.RawURLEncoding.EncodeToString(mac.Sum(nil))
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}
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// Verify checks shape, then expiry, then the signature — in that order.
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// The signature comparison is constant-time; the checks before it only look at
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// data the holder already supplied, so their timing leaks nothing.
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func Verify(key []byte, value string, nowMs int64) bool {
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payload, sig, ok := strings.Cut(value, ".")
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if !ok {
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return false
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}
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expiry, err := strconv.ParseInt(payload, 10, 64)
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if err != nil || expiry <= nowMs {
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return false
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}
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want := sessionMAC(key, payload)
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return subtle.ConstantTimeCompare([]byte(sig), []byte(want)) == 1
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}
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// isHTTPS reports whether the browser's connection is encrypted. Behind Traefik
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// the Go server itself speaks plain HTTP, so the forwarded header is the only
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// signal; without this check the Secure cookie would never be set in
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// production, and setting it unconditionally would break http://localhost dev.
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func isHTTPS(r *http.Request) bool {
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return r.TLS != nil || r.Header.Get("X-Forwarded-Proto") == "https"
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}
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func SetCookie(w http.ResponseWriter, r *http.Request, key []byte) {
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http.SetCookie(w, &http.Cookie{
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Name: CookieName,
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Value: Sign(key, time.Now().Add(sessionTTL).UnixMilli()),
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Path: "/",
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MaxAge: int(sessionTTL / time.Second),
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HttpOnly: true,
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Secure: isHTTPS(r),
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SameSite: http.SameSiteLaxMode,
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})
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}
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func ClearCookie(w http.ResponseWriter, r *http.Request) {
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http.SetCookie(w, &http.Cookie{
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Name: CookieName,
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Value: "",
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Path: "/",
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MaxAge: -1,
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HttpOnly: true,
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Secure: isHTTPS(r),
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SameSite: http.SameSiteLaxMode,
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})
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}
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const (
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MaxFailures = 10
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Window = 20 * time.Minute
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)
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// ClientIP returns the address the reverse proxy actually observed.
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//
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// Traefik appends the peer address to whatever X-Forwarded-For the client sent,
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// so the leftmost entry is attacker-controlled and the rightmost is not. Go's
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// Header.Get would only read the first header line, which a client can preempt
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// by sending its own; Values covers every line so the true last hop is found.
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// RemoteAddr is useless behind the proxy — it is always the Traefik container —
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// so it serves only as the direct-connection fallback for local development.
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func ClientIP(r *http.Request) string {
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if vals := r.Header.Values("X-Forwarded-For"); len(vals) > 0 {
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hops := strings.Split(vals[len(vals)-1], ",")
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if ip := strings.TrimSpace(hops[len(hops)-1]); ip != "" {
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return ip
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}
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}
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host, _, err := net.SplitHostPort(r.RemoteAddr)
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if err != nil {
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return r.RemoteAddr
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}
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return host
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}
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// LoginLimiter throttles password guessing: MaxFailures failures inside a
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// rolling Window blocks further attempts from that IP until the oldest one
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// ages out. There is no permanent ban and no unlock step.
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//
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// Behind carrier-grade NAT this budget is shared with every other subscriber on
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// the same public address, so a stranger can lock the owner out for up to one
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// window. That is accepted: the block self-heals, and ten attempts is generous
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// for a mistyped password.
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//
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// State is in memory and per-process, so a restart clears it. Entries are
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// pruned lazily on access; for a single-user deployment the map cannot grow
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// past the handful of addresses that ever attempt a login.
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type LoginLimiter struct {
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mu sync.Mutex
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failures map[string][]time.Time
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}
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func NewLoginLimiter() *LoginLimiter {
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return &LoginLimiter{failures: make(map[string][]time.Time)}
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}
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// retryAfter returns how long ip must wait, or zero when it may try now.
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func (l *LoginLimiter) RetryAfter(ip string, now time.Time) time.Duration {
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l.mu.Lock()
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defer l.mu.Unlock()
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recent := l.pruneLocked(ip, now)
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if len(recent) < MaxFailures {
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return 0
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}
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return recent[0].Add(Window).Sub(now)
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}
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func (l *LoginLimiter) Fail(ip string, now time.Time) {
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l.mu.Lock()
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defer l.mu.Unlock()
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l.failures[ip] = append(l.pruneLocked(ip, now), now)
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}
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func (l *LoginLimiter) Reset(ip string) {
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l.mu.Lock()
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defer l.mu.Unlock()
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delete(l.failures, ip)
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}
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// pruneLocked drops attempts older than the window and returns what is left.
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// The caller must hold l.mu.
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func (l *LoginLimiter) pruneLocked(ip string, now time.Time) []time.Time {
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cutoff := now.Add(-Window)
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// In-place filter: kept reuses the backing array of the slice being
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// ranged over. Safe to alias because append writes at index len(kept),
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// which is always <= the range index i, and element i is read before
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// that write — the write cursor can never overtake the read cursor.
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kept := l.failures[ip][:0]
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for _, at := range l.failures[ip] {
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if at.After(cutoff) {
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kept = append(kept, at)
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}
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}
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if len(kept) == 0 {
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delete(l.failures, ip)
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return nil
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}
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l.failures[ip] = kept
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return kept
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}
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