2011-04-15 22:18:39 +00:00
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{- git-annex crypto
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2011-04-16 17:25:27 +00:00
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-
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- Currently using gpg; could later be modified to support different
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- crypto backends if neccessary.
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2011-04-15 22:18:39 +00:00
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-
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2012-04-29 18:02:18 +00:00
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- Copyright 2011-2012 Joey Hess <joey@kitenet.net>
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2011-04-15 22:18:39 +00:00
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-
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- Licensed under the GNU GPL version 3 or higher.
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-}
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module Crypto (
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Cipher,
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KeyIds(..),
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StorableCipher(..),
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genEncryptedCipher,
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genSharedCipher,
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updateEncryptedCipher,
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describeCipher,
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decryptCipher,
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encryptKey,
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feedFile,
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feedBytes,
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readBytes,
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encrypt,
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decrypt,
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2013-03-11 01:33:13 +00:00
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GpgOpts(..),
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getGpgOpts,
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2011-04-21 20:56:24 +00:00
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2013-03-29 16:06:02 +00:00
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prop_HmacSha1WithCipher_sane
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) where
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2012-06-20 17:13:40 +00:00
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import qualified Data.ByteString.Lazy as L
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import Data.ByteString.Lazy.UTF8 (fromString)
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2011-08-25 04:28:55 +00:00
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import Control.Applicative
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2011-10-05 20:02:51 +00:00
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import Common.Annex
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2011-12-21 01:47:56 +00:00
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import qualified Utility.Gpg as Gpg
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import Utility.Gpg.Types
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import Types.Key
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import Types.Crypto
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{- The beginning of a Cipher is used for MAC'ing; the remainder is used
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- as the GPG symmetric encryption passphrase. Note that the cipher
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- itself is base-64 encoded, hence the string is longer than
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- 'cipherSize': 683 characters, padded to 684.
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-
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- The 256 first characters that feed the MAC represent at best 192
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- bytes of entropy. However that's more than enough for both the
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- default MAC algorithm, namely HMAC-SHA1, and the "strongest"
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- currently supported, namely HMAC-SHA512, which respectively need
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- (ideally) 64 and 128 bytes of entropy.
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-
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- The remaining characters (320 bytes of entropy) is enough for GnuPG's
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- symetric cipher; unlike weaker public key crypto, the key does not
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- need to be too large.
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-}
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cipherBeginning :: Int
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cipherBeginning = 256
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cipherSize :: Int
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cipherSize = 512
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cipherPassphrase :: Cipher -> String
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cipherPassphrase (Cipher c) = drop cipherBeginning c
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cipherMac :: Cipher -> String
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cipherMac (Cipher c) = take cipherBeginning c
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{- Creates a new Cipher, encrypted to the specified key id. -}
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genEncryptedCipher :: String -> IO StorableCipher
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genEncryptedCipher keyid = do
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ks <- Gpg.findPubKeys keyid
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random <- Gpg.genRandom cipherSize
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encryptCipher (Cipher random) ks
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{- Creates a new, shared Cipher. -}
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genSharedCipher :: IO StorableCipher
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genSharedCipher = SharedCipher <$> Gpg.genRandom cipherSize
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{- Updates an existing Cipher, re-encrypting it to add a keyid. -}
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updateEncryptedCipher :: String -> StorableCipher -> IO StorableCipher
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updateEncryptedCipher _ (SharedCipher _) = undefined
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updateEncryptedCipher keyid encipher@(EncryptedCipher _ ks) = do
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ks' <- Gpg.findPubKeys keyid
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cipher <- decryptCipher encipher
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encryptCipher cipher (merge ks ks')
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where
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merge (KeyIds a) (KeyIds b) = KeyIds $ a ++ b
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describeCipher :: StorableCipher -> String
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describeCipher (SharedCipher _) = "shared cipher"
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describeCipher (EncryptedCipher _ (KeyIds ks)) =
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"with gpg " ++ keys ks ++ " " ++ unwords ks
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where
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keys [_] = "key"
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keys _ = "keys"
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{- Encrypts a Cipher to the specified KeyIds. -}
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encryptCipher :: Cipher -> KeyIds -> IO StorableCipher
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encryptCipher (Cipher c) (KeyIds ks) = do
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-- gpg complains about duplicate recipient keyids
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let ks' = nub $ sort ks
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encipher <- Gpg.pipeStrict (Params "--encrypt" : recipients ks') c
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return $ EncryptedCipher encipher (KeyIds ks')
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where
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recipients l = force_recipients :
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concatMap (\k -> [Param "--recipient", Param k]) l
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-- Force gpg to only encrypt to the specified
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-- recipients, not configured defaults.
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force_recipients = Params "--no-encrypt-to --no-default-recipient"
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{- Decrypting an EncryptedCipher is expensive; the Cipher should be cached. -}
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decryptCipher :: StorableCipher -> IO Cipher
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decryptCipher (SharedCipher t) = return $ Cipher t
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decryptCipher (EncryptedCipher t _) =
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Cipher <$> Gpg.pipeStrict [ Param "--decrypt" ] t
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{- Generates an encrypted form of a Key. The encryption does not need to be
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- reversable, nor does it need to be the same type of encryption used
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- on content. It does need to be repeatable. -}
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encryptKey :: Mac -> Cipher -> Key -> Key
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encryptKey mac c k = Key
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{ keyName = macWithCipher mac c (key2file k)
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, keyBackendName = "GPG" ++ showMac mac
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, keySize = Nothing -- size and mtime omitted
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, keyMtime = Nothing -- to avoid leaking data
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}
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type Feeder = Handle -> IO ()
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type Reader a = Handle -> IO a
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feedFile :: FilePath -> Feeder
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feedFile f h = L.hPut h =<< L.readFile f
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feedBytes :: L.ByteString -> Feeder
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feedBytes = flip L.hPut
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readBytes :: (L.ByteString -> IO a) -> Reader a
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readBytes a h = L.hGetContents h >>= a
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2013-03-11 01:33:13 +00:00
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{- Runs a Feeder action, that generates content that is symmetrically encrypted
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- with the Cipher using the given GnuPG options, and then read by the Reader
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- action. -}
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encrypt :: GpgOpts -> Cipher -> Feeder -> Reader a -> IO a
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encrypt opts = Gpg.feedRead ( Params "--symmetric --force-mdc" : toParams opts )
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. cipherPassphrase
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{- Runs a Feeder action, that generates content that is decrypted with the
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- Cipher, and read by the Reader action. -}
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decrypt :: Cipher -> Feeder -> Reader a -> IO a
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decrypt = Gpg.feedRead [Param "--decrypt"] . cipherPassphrase
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macWithCipher :: Mac -> Cipher -> String -> String
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macWithCipher mac c = macWithCipher' mac (cipherMac c)
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macWithCipher' :: Mac -> String -> String -> String
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macWithCipher' mac c s = calcMac mac (fromString c) (fromString s)
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2011-04-21 20:56:24 +00:00
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2013-03-29 16:06:02 +00:00
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{- Ensure that macWithCipher' returns the same thing forevermore. -}
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prop_HmacSha1WithCipher_sane :: Bool
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prop_HmacSha1WithCipher_sane = known_good == macWithCipher' HmacSha1 "foo" "bar"
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where
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known_good = "46b4ec586117154dacd49d664e5d63fdc88efb51"
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