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On a LAN the login form is reachable by people you already trust. Exposed, it is reachable by everyone, and nothing in front of it was counting. Three credential routes — /login, /register and /device-login — now throttle. Every attempt is counted against BOTH the account and the calling address, and either can refuse it. The account key is the one that matters and the one that cannot be forged: it stops stuffing against a known email no matter how many addresses the attempts arrive from. The address key bounds one source spraying many accounts, and is best-effort by nature — behind a proxy it comes from X-Forwarded-For, which a caller can set to anything if the app is exposed directly. That is exactly why it isn't the only key. The check runs BEFORE the password is verified, which is the other half of what this protects. bcrypt is deliberately slow; an unauthenticated caller who can trigger it without limit has a CPU exhaustion primitive as well as a guessing one. Sliding rather than fixed windows, because a fixed one lets twice the limit through across a boundary. Bucket count is capped so a rotating forged header can't turn the limiter into the exhaustion it prevents. A sign-in against an email with no account now spends a real bcrypt against a throwaway hash first. Without it "no such account" returned in microseconds while a wrong password took ~100ms, which is a reliable oracle for which emails are registered here. Every response carries a CSP with script-src 'self', object-src 'none' and frame-ancestors 'none', plus nosniff, a referrer policy and a permissions policy. The app has no inline and no third-party scripts, so this concedes nothing; the exceptions are honest — inline STYLE (Vue writes it itself for v-show and the FLIP), and remote images (a link preview renders the og:image of an arbitrary host, over either scheme, since a LAN install is served over http). HSTS only where the request already arrived over TLS, and scoped to the one host: no includeSubDomains, no preload, neither of which is this app's to commit. X-Forwarded-Proto detection moved into one `_is_https()` — the session cookie's Secure flag and HSTS are the same question, and answering it twice is how the two drift apart. docs/public-hosting.md is the rest of it: the four things only the operator can do (close registration, terminate TLS and forward the scheme, stop publishing the app port, back up the attachment volume as well as the database), and an honest list of what the app does NOT have — no email verification, no password reset, no second factor, no per-user quota, no audit log. Those aren't blockers for an instance whose accounts are people you know. They're the reason not to leave signups open to strangers.
51 lines
1.9 KiB
Python
51 lines
1.9 KiB
Python
from __future__ import annotations
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import hashlib
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import secrets
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import bcrypt
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# bcrypt hashes at most 72 bytes and bcrypt>=4 raises on longer input, so we
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# truncate defensively — long passphrases stay valid instead of erroring.
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_MAX_BCRYPT_BYTES = 72
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def hash_password(password: str) -> str:
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return bcrypt.hashpw(password.encode("utf-8")[:_MAX_BCRYPT_BYTES], bcrypt.gensalt()).decode("utf-8")
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# A real bcrypt hash of a value nobody can present, used only to spend the time a
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# verification would have. Computed once at import — generating it per call would
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# cost a gensalt+hash on top of the checkpw and make the "no such user" path SLOWER
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# than the real one, which is the same oracle pointing the other way.
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_DUMMY_HASH = bcrypt.hashpw(secrets.token_bytes(32), bcrypt.gensalt())
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def dummy_verify(password: str) -> None:
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"""Burn one password verification against a throwaway hash.
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For the sign-in path when the email has no account: it makes "no such user" cost
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what "wrong password" costs, so response time stops answering the question of
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which emails are registered here.
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"""
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bcrypt.checkpw(password.encode("utf-8")[:_MAX_BCRYPT_BYTES], _DUMMY_HASH)
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def verify_password(password: str, password_hash: str) -> bool:
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try:
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return bcrypt.checkpw(password.encode("utf-8")[:_MAX_BCRYPT_BYTES], password_hash.encode("utf-8"))
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except (ValueError, TypeError):
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return False
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def generate_token() -> str:
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"""A high-entropy opaque device (bearer) token, URL-safe so it pastes cleanly."""
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return secrets.token_urlsafe(32)
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def hash_token(token: str) -> str:
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"""One-way hash for device-token LOOKUP. A device token is already high-entropy
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random, so a plain SHA-256 is enough (no slow KDF like passwords need) — which
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keeps per-request bearer auth cheap. Only this hash is stored server-side."""
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return hashlib.sha256(token.encode("utf-8")).hexdigest()
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