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@ -305,6 +305,7 @@ class User(Base, Email):
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"""
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__tablename__ = "user"
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_ctx = None
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_credential_cache = {}
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domain = db.relationship(Domain,
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backref=db.backref('users', cascade='all, delete-orphan'))
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@ -382,6 +383,17 @@ class User(Base, Email):
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return User._ctx
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def check_password(self, password):
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cache_result = self._credential_cache.get(self.get_id())
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current_salt = self.password.split('$')[3] if len(self.password.split('$')) == 5 else None
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if cache_result and current_salt:
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cache_salt, cache_hash = cache_result
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if cache_salt == current_salt:
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return hash.pbkdf2_sha256.verify(password, cache_hash)
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else:
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# the cache is local per gunicorn; the password has changed
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# so the local cache can be invalidated
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del self._credential_cache[self.get_id()]
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reference = self.password
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# strip {scheme} if that's something mailu has added
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# passlib will identify *crypt based hashes just fine
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@ -396,6 +408,17 @@ class User(Base, Email):
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self.password = new_hash
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db.session.add(self)
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db.session.commit()
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if result:
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"""The credential cache uses a low number of rounds to be fast.
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While it's not meant to be persisted to cold-storage, no additional measures
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are taken to ensure it isn't (mlock(), encrypted swap, ...) on the basis that
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we have little control over GC and string interning anyways.
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An attacker that can dump the process' memory is likely to find credentials
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in clear-text regardless of the presence of the cache.
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"""
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self._credential_cache[self.get_id()] = (self.password.split('$')[3], hash.pbkdf2_sha256.using(rounds=1).hash(password))
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return result
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def set_password(self, password, hash_scheme=None, raw=False):
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