stenoxide_core/pipeline/mod.rs
1//! Layer 5 — pipeline orchestration.
2//!
3//! Chains layers 1 to 4 with explicit ownership transfer at every step, so
4//! each sensitive buffer is dropped and zeroed at the earliest possible point.
5//! The extraction path needs no cost map: STC decoding operates on the
6//! syndrome of all pixels rather than on a stored position list.
7//!
8//! # The ownership chain
9//!
10//! Every step of [`EmbedPipeline::embed`] carries a comment explaining what it
11//! hands over and what the borrow checker guarantees at that point. Two of those
12//! guarantees are the reason this layer is written the way it is:
13//!
14//! - **Nothing sensitive outlives its use.** The password dies with the master
15//! key derivation, the master key with its expansion, the plaintext with its
16//! encryption, the ciphertext and the subkeys with the trellis pass. Each is
17//! moved into a scope that ends at that point rather than kept in a variable
18//! the rest of the function could still read.
19//! - **The cost map and the samples cannot disagree.** `CostMap<'img>` holds the
20//! borrow of the image, so `pixels_mut()` does not compile while the map is
21//! alive. Embedding into pixels whose costs were computed from different
22//! samples is exactly the mistake that would steer changes into the wrong
23//! regions, and here it is a compile error rather than a convention.
24//!
25//! # What travels in the container
26//!
27//! Nothing but bits. No metadata, no salt, no nonce, no length prefix outside
28//! the frame described in `frame`: the salt is recomputed from the image, the
29//! nonce and the permutation seed are derived from it, and the only thing the
30//! receiver is told is how many ciphertext bytes to decode.
31
32pub mod error;
33
34mod frame;
35
36use std::path::Path;
37
38use zeroize::Zeroizing;
39
40use crate::cost::hill::{CostError, HillCostProvider};
41use crate::cost::CostProvider;
42use crate::crypto::aead::{
43 compress_and_encrypt, decrypt_and_decompress, AEADCipher, AEADError, CryptoError,
44 XChaCha20Poly1305Cipher,
45};
46use crate::crypto::expand::expand_master_key;
47use crate::crypto::kdf::{Argon2Kdf, KeyDeriver};
48use crate::image_io::buffer::{CoverSource, ImageBuffer};
49use crate::image_io::phash::{
50 compute_stable_phash, phash_salt_hypotheses, recover_phash_salt, PHashError, PHashSalt,
51};
52use crate::image_io::validate::load_and_validate;
53use crate::stego::permute::generate_pixel_permutation;
54use crate::stego::sizer::{compute_capacity, validate_payload_fits, EmbeddingMode, SizerError};
55use crate::stego::stc::{stc_decode_safe, stc_encode_safe, StcConfig};
56
57pub use crate::pipeline::error::{OutputError, PipelineError};
58
59/// Ciphertext bytes decoded provisionally to tell two salt hypotheses apart.
60///
61/// The figure comes from [`recover_phash_salt`], which decrypts the head of this
62/// prefix with the raw XChaCha20 keystream and looks for a Zstandard frame magic
63/// number. Sixty-four bytes is one XChaCha20 block, and nothing shorter would
64/// let the discriminator seek past the block the AEAD reserves for its one-time
65/// MAC key.
66const PROVISIONAL_PREFIX_BYTES: usize = 64;
67
68/// What one embedding operation did to the container.
69///
70/// A measurement of the finished stego image, not a receipt the receiver needs:
71/// none of these numbers travels with the payload, and the extraction path
72/// recomputes everything it needs from the image itself.
73#[derive(Debug)]
74pub struct EmbedReport {
75 /// Positions whose carrier bit the trellis flipped, across both regions of
76 /// the frame.
77 pub pixels_modified: usize,
78 /// Ciphertext bytes embedded, tag included.
79 ///
80 /// The compressed and encrypted size, not the length of the message the
81 /// caller handed in: the plaintext length is not something the container
82 /// carries, and reporting it here would suggest otherwise.
83 pub payload_bytes: usize,
84 /// Bits embedded per pixel of the container, frame header included.
85 ///
86 /// The figure the security of the scheme rests on. It is bounded by
87 /// [`crate::stego::stc::MAX_BPP`] on each region of the frame, so it can
88 /// never reach that ceiling over the image as a whole.
89 pub effective_bpp: f32,
90 /// Dimensions of the container as `(width, height)`, in pixels.
91 pub image_dimensions: (u32, u32),
92}
93
94/// What one extraction operation recovered.
95#[derive(Debug)]
96pub struct ExtractReport {
97 /// Ciphertext bytes recovered from the container, tag included.
98 ///
99 /// Counted before decryption and decompression, so it measures how much of
100 /// the container was in use rather than how long the message is — the caller
101 /// already holds the plaintext and can measure that itself.
102 pub payload_bytes: usize,
103}
104
105/// The orchestrator of layers 1 to 4.
106///
107/// Generic over the three components that have a choice of implementation, so
108/// that a test can substitute a cheap key deriver or a stub cost model without
109/// any of the code below knowing. The production instantiation is built by
110/// [`EmbedPipeline::default_secure`].
111pub struct EmbedPipeline<KDF, AEAD, COST> {
112 /// Password stretching. Argon2id in production.
113 kdf: KDF,
114 /// Authenticated encryption. XChaCha20-Poly1305 in production.
115 aead: AEAD,
116 /// Per-pixel embedding costs. HILL in production.
117 cost: COST,
118}
119
120impl<KDF, AEAD, COST> EmbedPipeline<KDF, AEAD, COST> {
121 /// Assembles a pipeline from its three components.
122 ///
123 /// Unconstrained on purpose: the bounds belong on the operations, not on
124 /// construction, so that a caller can hold a pipeline built from anything
125 /// and only meet the requirements when it embeds or extracts.
126 pub fn new(kdf: KDF, aead: AEAD, cost: COST) -> Self {
127 Self { kdf, aead, cost }
128 }
129}
130
131impl EmbedPipeline<Argon2Kdf, XChaCha20Poly1305Cipher, HillCostProvider> {
132 /// Builds the pipeline this project considers secure: Argon2id at 128 MiB
133 /// and four passes, XChaCha20-Poly1305, and the HILL cost model.
134 ///
135 /// There is no constructor that weakens any of the three. A pipeline whose
136 /// components were chosen at run time would look identical at the API
137 /// surface to this one and behave nothing like it.
138 pub fn default_secure() -> Self {
139 Self::new(
140 Argon2Kdf::default_secure(),
141 XChaCha20Poly1305Cipher::new(),
142 HillCostProvider::new(),
143 )
144 }
145}
146
147/// Result of one extraction attempt under a single salt hypothesis.
148///
149/// A rejection is not an error: with an uncertain hash bit there are two
150/// hypotheses, and the first one being wrong is an ordinary step of the
151/// protocol, not a failure to report.
152enum Attempt {
153 /// The payload authenticated and decompressed.
154 Recovered {
155 /// The recovered message.
156 plaintext: Zeroizing<Vec<u8>>,
157 /// Ciphertext bytes that were decoded to produce it.
158 ciphertext_bytes: usize,
159 },
160 /// The payload did not authenticate under this hypothesis.
161 ///
162 /// Carries the provisionally decoded ciphertext prefix, which is what
163 /// [`recover_phash_salt`] needs to decide whether the hypothesis or the
164 /// password was at fault. The prefix is empty when the length header itself
165 /// decoded to nonsense, in which case the discriminator rejects both
166 /// hypotheses and the caller moves on to the alternative.
167 Rejected(Zeroizing<Vec<u8>>),
168}
169
170impl<KDF, AEAD, COST> EmbedPipeline<KDF, AEAD, COST>
171where
172 KDF: KeyDeriver,
173 AEAD: AEADCipher,
174 COST: CostProvider<Error = CostError>,
175{
176 /// Hides `plaintext` in the container at `image_path` and writes the result
177 /// to `output_path`.
178 ///
179 /// Both secrets are taken by value in a [`Zeroizing`] wrapper: the pipeline
180 /// becomes their owner and wipes them at the point in the chain where they
181 /// stop being needed, which a borrow could not guarantee.
182 ///
183 /// # Errors
184 ///
185 /// Returns a [`PipelineError`] wrapping the error of whichever layer refused
186 /// the operation: an unusable container, an unstable perceptual hash, a
187 /// smooth image, a payload that does not fit, a failure of the coder, or a
188 /// file that could not be written.
189 pub fn embed(
190 &self,
191 image_path: &Path,
192 plaintext: Zeroizing<Vec<u8>>,
193 password: Zeroizing<Vec<u8>>,
194 output_path: &Path,
195 ) -> Result<EmbedReport, PipelineError> {
196 // Step 1 — the container enters the chain. `load_and_validate` is the
197 // only producer of an `ImageBuffer`, so from here on the type itself is
198 // the proof that every validation gate ran. The pipeline owns it, and
199 // will still own it when it is written back out.
200 let mut image_buffer = load_and_validate(image_path)?;
201 let image_dimensions = image_buffer.dimensions();
202 let pixel_count = image_buffer.pixel_count();
203
204 // Step 2 — the salt is a function of the container. Only a shared borrow
205 // is taken, so `image_buffer` is untouched and still owned by us.
206 let phash_salt = compute_stable_phash(&image_buffer)?;
207
208 // Step 3 — the password is consumed here and nowhere else. Both it and
209 // the salt are dropped as soon as the derivation returns: `Zeroizing`
210 // wipes the password bytes and `ZeroizeOnDrop` wipes the salt, so
211 // neither survives the statement that used it.
212 let master_key = self.kdf.derive(password.as_slice(), &phash_salt)?;
213 drop(password);
214 drop(phash_salt);
215
216 // Step 4 — the master key is expanded and immediately destroyed. It is
217 // passed by reference, so `expand_master_key` never owns key material it
218 // did not create and the wipe happens here, at the earliest point the
219 // chain allows.
220 let derived_keys = expand_master_key(&master_key)?;
221 drop(master_key);
222
223 // Step 5 — the message becomes ciphertext. The intermediate compressed
224 // buffer lives and dies inside `compress_and_encrypt`; the plaintext is
225 // dropped the moment it returns, which is the last instant it is needed.
226 let ciphertext = compress_and_encrypt(
227 plaintext.as_slice(),
228 derived_keys.enc_key(),
229 derived_keys.nonce(),
230 &self.aead,
231 )?;
232 drop(plaintext);
233
234 // Step 6 — the cost map borrows the image for as long as it lives.
235 // INVARIANT: from this line until `drop(cost_map)` the compiler refuses
236 // every call to `image_buffer.pixels_mut()`. The samples the map was
237 // computed from and the samples the coder will modify are therefore the
238 // same samples, and that is checked, not assumed.
239 let cost_map = self.cost.compute(&image_buffer)?;
240
241 // Step 7 — capacity is measured and the payload is checked against it
242 // before a single position is touched. The frame overhead is charged to
243 // the payload here because the sizer measures the container as a whole
244 // and knows nothing about the header region.
245 let capacity = compute_capacity(&cost_map, EmbeddingMode::Symmetric);
246 validate_payload_fits(ciphertext.len() + frame::FRAME_OVERHEAD_BYTES, &capacity)?;
247
248 // Step 8 — the secret visiting order. It depends only on the seed and on
249 // the pixel count, both of which the receiver can reproduce.
250 let permutation = generate_pixel_permutation(pixel_count, derived_keys.stc_seed());
251
252 // Step 9 — everything the coder needs is copied out of the image and the
253 // map, in embedding order. Both reads are shared borrows and coexist
254 // happily; what matters is that they are the *last* reads, because the
255 // next statement releases the map's borrow and the one after that takes
256 // a unique borrow of the samples.
257 let mut cover_symbols = frame::gather_cover_symbols(&image_buffer, &permutation);
258 let cost_reordered = frame::reorder_costs(cost_map.costs(), &permutation);
259
260 // The copy above is what makes this drop possible, and the drop is what
261 // makes `image_buffer` mutable again.
262 drop(cost_map);
263
264 // Step 10 — two trellis passes over disjoint regions of the permuted
265 // positions: the length header first, then the ciphertext. See
266 // [`frame`] for why the length cannot simply ride inside the payload.
267 let length_header = frame::encode_length_header(ciphertext.len()).ok_or_else(|| {
268 // Unreachable after the capacity check: a container able to carry a
269 // ciphertext this long does not exist. Reported as an oversized
270 // payload because that is exactly what it is.
271 SizerError::PayloadTooLarge {
272 payload: ciphertext.len(),
273 available: u32::MAX as usize,
274 deficit: ciphertext.len().saturating_sub(u32::MAX as usize),
275 }
276 })?;
277
278 let stc_config = StcConfig::new(*derived_keys.stc_seed());
279
280 let (header_costs, payload_costs) = frame::split_regions(&cost_reordered);
281 let (header_cover, payload_cover) = frame::split_regions_mut(&mut cover_symbols);
282
283 let header_changes =
284 stc_encode_safe(header_cover, header_costs, &length_header, &stc_config)?;
285 let payload_changes = stc_encode_safe(
286 payload_cover,
287 payload_costs,
288 ciphertext.as_slice(),
289 &stc_config,
290 )?;
291
292 let payload_bytes = ciphertext.len();
293
294 // The coder has taken everything it needed from them, so the ciphertext
295 // and every derived key leave memory here: `Zeroizing` wipes the first,
296 // `ZeroizeOnDrop` the other two.
297 drop(ciphertext);
298 drop(derived_keys);
299 drop(stc_config);
300 drop(cost_reordered);
301
302 // Step 11 — the stego symbols go back into the carrier bits. This is the
303 // unique borrow that the cost map was standing in the way of, and it is
304 // the only mutation of the container in the whole crate.
305 frame::apply_cover_symbols(&mut image_buffer, &permutation, &cover_symbols);
306 drop(permutation);
307 drop(cover_symbols);
308
309 frame::write_png(&image_buffer, output_path)?;
310
311 // Step 12 — the report is pure metadata. `image_buffer` is dropped as
312 // this returns and is deliberately not wiped: its contents are the file
313 // just written to disk, so there is nothing in it an attacker could not
314 // read there instead.
315 let embedded_bits = frame::LENGTH_HEADER_BITS + payload_bytes * 8;
316
317 Ok(EmbedReport {
318 pixels_modified: header_changes + payload_changes,
319 payload_bytes,
320 effective_bpp: embedded_bits as f32 / pixel_count.max(1) as f32,
321 image_dimensions,
322 })
323 }
324
325 /// Recovers the message hidden in the stego image at `stego_path`.
326 ///
327 /// # Why extraction needs no cost map
328 ///
329 /// STC decoding operates on the syndrome `H x stego (mod 2)` taken over
330 /// *all* the positions of a region. The receiver does not need to know which
331 /// pixels were modified, and there is no position list to transmit or store:
332 /// it only has to reproduce the permutation, which follows from the same
333 /// `stc_seed` derived from the same `MasterKey` derived from the same
334 /// password and the same image. That is the whole reason the container
335 /// carries no metadata at all — and the reason the expensive half of
336 /// embedding, the HILL analysis, has no counterpart here.
337 ///
338 /// # Errors
339 ///
340 /// Returns a [`PipelineError`] wrapping the error of whichever layer
341 /// refused: an unusable file, a hash too unstable to reproduce, a coder
342 /// failure, or [`AEADError::AuthenticationFailed`] — which collapses a wrong
343 /// password, a wrong image and a damaged payload into one answer on purpose.
344 pub fn extract(
345 &self,
346 stego_path: &Path,
347 password: Zeroizing<Vec<u8>>,
348 ) -> Result<(Zeroizing<Vec<u8>>, ExtractReport), PipelineError> {
349 // Step 1 — the stego image goes through the same gates as a cover. A
350 // container that would have been refused for embedding cannot be one
351 // this crate produced.
352 let stego_image = load_and_validate(stego_path)?;
353
354 // Step 2 — the salt hypotheses. One when every hash bit is stable, two
355 // when embedding may have pushed a coefficient across the median. The
356 // password is not consumed yet: with `k == 1` it may have to stretch
357 // more than once, so it is kept until every hypothesis is spent.
358 let hypotheses = phash_salt_hypotheses(&stego_image)?;
359
360 // Steps 3 to 8 under the hypothesis the image itself suggests.
361 match self.attempt_extract(&stego_image, &hypotheses.primary, password.as_slice())? {
362 Attempt::Recovered {
363 plaintext,
364 ciphertext_bytes,
365 } => {
366 drop(password);
367
368 Ok((
369 plaintext,
370 ExtractReport {
371 payload_bytes: ciphertext_bytes,
372 },
373 ))
374 }
375 Attempt::Rejected(prefix) => {
376 let Some(alternative) = hypotheses.alternative else {
377 // Every hash bit was stable, so the salt was certainly the
378 // right one and the failure is genuine.
379 drop(password);
380
381 return Err(PipelineError::Crypto(CryptoError::AEADError(
382 AEADError::AuthenticationFailed,
383 )));
384 };
385
386 // `k == 1`. The prefix was decoded under the primary hypothesis,
387 // so `recover_phash_salt` can only confirm that hypothesis — and
388 // that is precisely the question being asked. A confirmation
389 // means the seed was right and the payload really is unusable; a
390 // rejection means the uncertain bit measured the other way on
391 // the cover, and the alternative deserves a full attempt.
392 let verdict = recover_phash_salt(
393 &stego_image,
394 password.as_slice(),
395 &self.kdf,
396 prefix.as_slice(),
397 );
398 drop(prefix);
399
400 let outcome = match verdict {
401 Ok(confirmed) => {
402 drop(confirmed);
403 drop(password);
404
405 return Err(PipelineError::Crypto(CryptoError::AEADError(
406 AEADError::AuthenticationFailed,
407 )));
408 }
409 Err(PHashError::RecoveryFailed) => {
410 self.attempt_extract(&stego_image, &alternative, password.as_slice())
411 }
412 Err(err) => Err(PipelineError::PHash(err)),
413 };
414
415 drop(password);
416
417 match outcome? {
418 Attempt::Recovered {
419 plaintext,
420 ciphertext_bytes,
421 } => Ok((
422 plaintext,
423 ExtractReport {
424 payload_bytes: ciphertext_bytes,
425 },
426 )),
427 Attempt::Rejected(_) => Err(PipelineError::Crypto(CryptoError::AEADError(
428 AEADError::AuthenticationFailed,
429 ))),
430 }
431 }
432 }
433 }
434
435 /// Runs the extraction chain once, under one candidate salt.
436 ///
437 /// The inverse of steps 3 to 10 of [`EmbedPipeline::embed`], and the unit the
438 /// hypothesis search repeats. Everything it derives — master key, subkeys,
439 /// permutation — is local and dropped before it returns, so a failed attempt
440 /// leaves nothing behind for the next one to trip over.
441 ///
442 /// # Errors
443 ///
444 /// Returns a [`PipelineError`] only for failures that no other hypothesis
445 /// could repair. A payload that does not authenticate is reported as
446 /// [`Attempt::Rejected`], because with an uncertain hash bit that is a
447 /// question about the salt and not yet an error.
448 fn attempt_extract(
449 &self,
450 stego_image: &ImageBuffer,
451 salt: &PHashSalt,
452 password: &[u8],
453 ) -> Result<Attempt, PipelineError> {
454 // Steps 3 and 4 — the same derivation the sender ran, in the same order.
455 // Both intermediates are wiped as soon as the next value exists.
456 let master_key = self.kdf.derive(password, salt)?;
457 let derived_keys = expand_master_key(&master_key)?;
458 drop(master_key);
459
460 // Step 5 — the visiting order, reproduced rather than transmitted.
461 let permutation =
462 generate_pixel_permutation(stego_image.pixel_count(), derived_keys.stc_seed());
463 let cover_symbols = frame::gather_cover_symbols(stego_image, &permutation);
464 drop(permutation);
465
466 let stc_config = StcConfig::new(*derived_keys.stc_seed());
467 let (header_region, payload_region) = frame::split_regions(&cover_symbols);
468
469 // Step 6 — the length header. Its region is a constant number of
470 // positions, which is what makes this decode possible at all.
471 let header = stc_decode_safe(header_region, frame::LENGTH_HEADER_BITS, &stc_config)?;
472
473 // Step 7 — a header decoded under the wrong seed is uniformly random, so
474 // the length it announces has to be judged before it is acted on. An
475 // implausible one ends the attempt with an empty prefix, which the
476 // discriminator upstream reads as "this hypothesis explains nothing".
477 let announced = frame::decode_length_header(&header).unwrap_or(0);
478 if announced < frame::MIN_CIPHERTEXT_BYTES
479 || announced.saturating_mul(8) > stc_config.capacity_bits(payload_region.len())
480 {
481 return Ok(Attempt::Rejected(Zeroizing::new(Vec::new())));
482 }
483
484 // Step 8 — the payload region, decoded to the exact length announced.
485 let ciphertext =
486 Zeroizing::new(stc_decode_safe(payload_region, announced * 8, &stc_config)?);
487 drop(cover_symbols);
488 drop(stc_config);
489
490 // Step 9 — authentication, then decompression. Nothing reaches the
491 // Zstandard decoder that the Poly1305 tag has not already vouched for.
492 let outcome = decrypt_and_decompress(
493 ciphertext.as_slice(),
494 derived_keys.enc_key(),
495 derived_keys.nonce(),
496 &self.aead,
497 );
498 drop(derived_keys);
499
500 match outcome {
501 Ok(plaintext) => Ok(Attempt::Recovered {
502 plaintext,
503 ciphertext_bytes: announced,
504 }),
505 // Step 10 — the tag rejected the payload. Under a hypothesis that
506 // may be wrong this says nothing yet, so the head of the ciphertext
507 // is handed back for the discriminator to judge.
508 Err(CryptoError::AEADError(_)) => Ok(Attempt::Rejected(Zeroizing::new(
509 ciphertext
510 .iter()
511 .copied()
512 .take(PROVISIONAL_PREFIX_BYTES)
513 .collect(),
514 ))),
515 // Decompression failed *after* the tag verified: the key was right
516 // and the data is genuinely broken. No other hypothesis can help.
517 Err(err) => Err(PipelineError::Crypto(err)),
518 }
519 }
520}