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segment_buffer/
cipher.rs

1//! Pluggable encryption for segment files at rest.
2//!
3//! The [`SegmentCipher`] trait abstracts the encrypt/decrypt operations so
4//! callers can bring any AEAD (AES-GCM, ChaCha20-Poly1305, etc.). When the
5//! `encryption` feature is enabled, a ready-made [`AesGcmCipher`] is provided.
6//!
7//! Cipher implementations return the lightweight [`CipherError`] so they don't
8//! need to know about segment paths or the wider [`crate::SegmentError`]
9//! hierarchy. The segment I/O layer attaches path context when promoting a
10//! [`CipherError`] to a [`crate::SegmentError::Cipher`].
11
12use std::fmt;
13use std::sync::Arc;
14
15/// Helper trait that lets a `dyn Error + Send + Sync` trait object be upcast
16/// to `&dyn Error` without requiring Rust 1.86's trait-upcasting coercion.
17/// The crate's MSRV is 1.85; once it moves to 1.86+ this can be removed and
18/// `source()` can be a plain `self.source.as_deref()`.
19trait ErrorExt: fmt::Debug + std::error::Error {
20    /// Upcast this error to a `dyn std::error::Error` reference.
21    fn as_std_error(&self) -> &(dyn std::error::Error + 'static);
22}
23
24impl<T: std::error::Error + 'static> ErrorExt for T {
25    fn as_std_error(&self) -> &(dyn std::error::Error + 'static) {
26        self
27    }
28}
29
30/// Error returned by [`SegmentCipher`] implementations.
31///
32/// Deliberately minimal: the cipher operates on bytes, not files, so it has no
33/// path or sequence context to carry. The segment I/O layer enriches this into
34/// a [`crate::SegmentError::Cipher`] with the offending file's path.
35///
36/// Construct with [`CipherError::msg`] for a plain message, or
37/// [`CipherError::with_source`] when you want to preserve the underlying AEAD
38/// (or other) error type for `std::error::Error::source()` chaining. The
39/// fields are private so that adding context later is non-breaking.
40#[derive(Debug, Clone)]
41pub struct CipherError {
42    /// Human-readable description of what went wrong.
43    message: String,
44    /// Optional underlying cause (e.g. the AEAD crate's opaque error).
45    /// `Arc` (not `Box`) so [`CipherError`] stays [`Clone`]. Surfaced via
46    /// [`std::error::Error::source`].
47    source: Option<Arc<dyn ErrorExt + Send + Sync>>,
48}
49
50impl CipherError {
51    /// Construct a [`CipherError`] from anything displayable, with no
52    /// underlying cause.
53    pub fn msg(message: impl fmt::Display) -> Self {
54        Self {
55            message: message.to_string(),
56            source: None,
57        }
58    }
59
60    /// Construct a [`CipherError`] that preserves the underlying error so
61    /// operators can inspect it via [`std::error::Error::source`].
62    ///
63    /// Use this when wrapping a typed error from an AEAD implementation
64    /// (`aes_gcm::Error`, `chacha20poly1305::Error`, …) so the original
65    /// failure is not erased behind a `format!`.
66    ///
67    /// # Example
68    ///
69    /// ```
70    /// use segment_buffer::CipherError;
71    /// use std::fmt;
72    /// use std::error::Error;
73    ///
74    /// /// A tiny typed error an AEAD crate might expose.
75    /// #[derive(Debug)]
76    /// struct AeadError;
77    /// impl fmt::Display for AeadError {
78    ///     fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
79    ///         f.write_str("tag mismatch")
80    ///     }
81    /// }
82    /// impl std::error::Error for AeadError {}
83    ///
84    /// let err = CipherError::with_source("AES-GCM decryption failed", AeadError);
85    /// assert_eq!(err.to_string(), "AES-GCM decryption failed");
86    /// // The underlying cause is preserved via `source()`:
87    /// let src = err.source().expect("source should be set by with_source");
88    /// assert_eq!(src.to_string(), "tag mismatch");
89    /// ```
90    pub fn with_source<E>(message: impl fmt::Display, source: E) -> Self
91    where
92        E: std::error::Error + Send + Sync + 'static,
93    {
94        Self {
95            message: message.to_string(),
96            source: Some(Arc::new(source)),
97        }
98    }
99}
100
101impl fmt::Display for CipherError {
102    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
103        f.write_str(&self.message)
104    }
105}
106
107impl std::error::Error for CipherError {
108    fn source(&self) -> Option<&(dyn std::error::Error + 'static)> {
109        // `Arc<dyn ErrorExt + Send + Sync>` cannot be coerced to
110        // `&dyn Error` until trait-upcasting stabilises for our MSRV (1.86+);
111        // `ErrorExt::as_std_error` does the upcast explicitly.
112        self.source.as_ref().map(|s| s.as_std_error())
113    }
114}
115
116/// Encrypts and decrypts segment file payloads.
117///
118/// Implementations must be [`Send`] + [`Sync`] because the buffer is shared
119/// across threads via `Arc<SegmentBuffer>`.
120///
121/// The ciphertext format is implementation-defined but must be self-describing:
122/// [`decrypt`](Self::decrypt) must be able to recover the plaintext from the
123/// exact bytes returned by [`encrypt`](Self::encrypt) without external state.
124///
125/// # Example
126///
127/// ```
128/// use segment_buffer::{CipherError, SegmentCipher};
129///
130/// struct Rot13;
131///
132/// impl SegmentCipher for Rot13 {
133///     fn encrypt(&self, plaintext: &[u8]) -> Result<Vec<u8>, CipherError> {
134///         Ok(plaintext.iter().map(|b| b.wrapping_add(13)).collect())
135///     }
136///     fn decrypt(&self, ciphertext: &[u8]) -> Result<Vec<u8>, CipherError> {
137///         Ok(ciphertext.iter().map(|b| b.wrapping_sub(13)).collect())
138///     }
139/// }
140/// ```
141pub trait SegmentCipher: Send + Sync {
142    /// Encrypt `plaintext`, returning self-describing ciphertext.
143    fn encrypt(&self, plaintext: &[u8]) -> Result<Vec<u8>, CipherError>;
144
145    /// Decrypt previously-produced ciphertext back to the original plaintext.
146    fn decrypt(&self, ciphertext: &[u8]) -> Result<Vec<u8>, CipherError>;
147}
148
149// ---------------------------------------------------------------------------
150// AES-256-GCM implementation (behind the `encryption` feature)
151// ---------------------------------------------------------------------------
152
153#[cfg(feature = "encryption")]
154mod private {
155    use super::{CipherError, SegmentCipher};
156    use std::fmt;
157    use std::sync::Arc;
158
159    /// Wrapper that turns any `Display`able AEAD error (e.g. the opaque
160    /// `aes_gcm::Error`, which intentionally does not impl `std::error::Error`)
161    /// into something that does, so it can flow through
162    /// [`std::error::Error::source`] chains without losing the original
163    /// diagnostic message.
164    #[derive(Debug, Clone)]
165    struct AeadError(String);
166
167    impl fmt::Display for AeadError {
168        fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
169            f.write_str(&self.0)
170        }
171    }
172
173    impl std::error::Error for AeadError {}
174
175    fn wrap<E: fmt::Display>(message: &'static str, e: E) -> CipherError {
176        CipherError {
177            message: message.to_string(),
178            source: Some(Arc::new(AeadError(e.to_string()))),
179        }
180    }
181
182    /// AES-256-GCM cipher with a random 12-byte nonce prepended to each ciphertext.
183    ///
184    /// The on-disk payload format is: `[12-byte nonce][ciphertext + 16-byte GCM tag]`.
185    /// This is byte-compatible with monitor365's `EncryptionKey` segment format,
186    /// so existing encrypted segments can be read without migration. (The segment
187    /// file envelope, if present, is stripped before the cipher sees the bytes.)
188    pub struct AesGcmCipher {
189        cipher: aes_gcm::Aes256Gcm,
190    }
191
192    impl AesGcmCipher {
193        /// Create a new cipher from a 32-byte AES-256 key.
194        ///
195        /// # Errors
196        ///
197        /// Returns [`CipherError`] if the key length is not 32 bytes.
198        pub fn from_slice(key_bytes: &[u8]) -> Result<Self, CipherError> {
199            use aes_gcm::KeyInit;
200            let cipher = aes_gcm::Aes256Gcm::new_from_slice(key_bytes)
201                .map_err(|e| wrap("invalid AES-256 key", e))?;
202            Ok(Self { cipher })
203        }
204
205        /// Create a new cipher from a 32-byte AES-256 key (const-sized input).
206        pub fn new(key_bytes: &[u8; 32]) -> Self {
207            use aes_gcm::KeyInit;
208            Self {
209                cipher: aes_gcm::Aes256Gcm::new_from_slice(key_bytes)
210                    .expect("32-byte key is always valid for AES-256"),
211            }
212        }
213    }
214
215    impl SegmentCipher for AesGcmCipher {
216        fn encrypt(&self, plaintext: &[u8]) -> Result<Vec<u8>, CipherError> {
217            use aes_gcm::aead::Aead;
218            use rand::RngCore;
219
220            let mut nonce_bytes = [0u8; 12];
221            rand::thread_rng().fill_bytes(&mut nonce_bytes);
222            let nonce = aes_gcm::Nonce::from_slice(&nonce_bytes);
223
224            let ciphertext = self
225                .cipher
226                .encrypt(nonce, plaintext)
227                .map_err(|e| wrap("AES-GCM encryption failed", e))?;
228
229            let mut out = Vec::with_capacity(12 + ciphertext.len());
230            out.extend_from_slice(&nonce_bytes);
231            out.extend_from_slice(&ciphertext);
232            Ok(out)
233        }
234
235        fn decrypt(&self, ciphertext: &[u8]) -> Result<Vec<u8>, CipherError> {
236            use aes_gcm::aead::Aead;
237
238            if ciphertext.len() < 12 {
239                return Err(CipherError::msg("ciphertext too small for nonce prefix"));
240            }
241            let (nonce_bytes, encrypted) = ciphertext.split_at(12);
242            let nonce = aes_gcm::Nonce::from_slice(nonce_bytes);
243
244            self.cipher
245                .decrypt(nonce, encrypted)
246                .map_err(|e| wrap("AES-GCM decryption failed", e))
247        }
248    }
249}
250
251#[cfg(feature = "encryption")]
252pub use private::AesGcmCipher;