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commonware_coding/zoda/
mod.rs

1//! This module implements the [ZODA](https://eprint.iacr.org/2025/034) coding scheme.
2//!
3//! At a high level, the scheme works like any other coding scheme: you start with
4//! a piece of data, and split it into shards, and a commitment. Each shard can
5//! be checked to belong to the commitment, and, given enough shards, the data can
6//! be reconstructed.
7//!
8//! What makes ZODA interesting is that upon receiving and checking one shard,
9//! you become convinced that there exists an original piece of data that will
10//! be reconstructable given enough shards. This fails in the case of, e.g.,
11//! plain Reed-Solomon coding. For example, if you give people random shards,
12//! instead of actually encoding data, then when they attempt to reconstruct the
13//! data, they can come to different results depending on which shards they use.
14//!
15//! Ultimately, this stems from the fact that you can't know if your shard comes
16//! from a valid encoding of the data until you have enough shards to reconstruct
17//! the data. With ZODA, you know that the shard comes from a valid encoding as
18//! soon as you've checked it.
19//!
20//! # Variant
21//!
22//! ZODA supports different configurations based on the coding scheme you use
23//! for sharding data, and for checking it.
24//!
25//! We use the Reed-Solomon and Hadamard variant of ZODA: in essence, this means
26//! that the shards are Reed-Solomon encoded, and we include additional checksum
27//! data which does not help reconstruct the data.
28//!
29//! ## Deviations
30//!
31//! In the paper, a sample consists of rows chosen at random from the encoding of
32//! the data. With multiple participants receiving samples, they might receive
33//! overlapping samples, which we don't want. Instead, we shuffle the rows of
34//! the encoded data, and each participant receives a different segment.
35//! From that participant's perspective, they've received a completely random
36//! choice of rows. The other participants' rows are less random, since they're
37//! guaranteed to not overlap. However, no guarantee on the randomness of the other
38//! rows is required: each sample is large enough to guarantee that the data
39//! has been validly encoded.
40//!
41//! We also use a Fiat-Shamir transform to make all randomness sampled
42//! non-interactively, based on the commitment to the encoded data.
43//!
44//! # Protocol
45//!
46//! Let n denote the minimum number of shards needed to recover the data.
47//! Let k denote the number of extra shards to generate.
48//!
49//! We consider the data as being an array of elements in a field F, of 64 bits.
50//!
51//! Given n and k, we have a certain number of required samples R.
52//! We can split these into row samples S, and column samples S',
53//! such that S * S' = R.
54//!
55//! Given a choice of S, our data will need to be arranged into a matrix of size
56//!
57//!   n S x c
58//!
59//! with c being >= 1.
60//!
61//! We choose S as close to R as possible without padding the data. We then
62//! choose S' so that S * S' >= R.
63//!
64//! We also then double S', because the field over which we compute checksums
65//! only has 64 bits. This effectively makes the checksum calculated over the
66//! extension field F^2. Because we don't actually need to multiply elements
67//! in F^2 together, but only ever take linear combinations with elements in F,
68//! we can effectively compute over the larger field simply by using 2 "virtual"
69//! checksum columns per required column.
70//!
71//! For technical reasons, the encoded data will have not have (n + k) S rows,
72//! but pad((n + k) S) rows, where pad returns the next power of two.
73//! This is to our advantage, in that given n shards, we will be able to reconstruct
74//! the data, but these shards consists of rows sampled at random from
75//! pad((n + k) S) rows, thus requiring fewer samples.
76//!
77//! ## Encoding
78//!
79//! 1. The data is arranged as a matrix X of size n S x c.
80//! 2. The data is Reed-Solomon encoded, turning it into a matrix X' of size pad((n + k) S) x c.
81//! 3. The rows of X' are committed to using a vector commitment V (concretely, a Merkle Tree).
82//! 4. V, along with the size of the data, in bytes, are committed to, producing Com.
83//! 5. Com is hashed to create randomness, first to generate a matrix H of size c x S',
84//!    and then to shuffle the rows of X'.
85//! 6. Z := X H, a matrix of size n S x S' is computed.
86//! 7. The ith shard (starting from 0) then consists of:
87//!    - the size of the data, in bytes,
88//!    - the vector commitment, V,
89//!    - the checksum Z,
90//!    - rows i * S..(i + 1) * S of Y, along with a proof of inclusion in V, at the original index.
91//!
92//! ## Weakening
93//!
94//! When transmitting a weak shard to other people, only the following are transmitted:
95//! - rows i * S..(i + 1) * S of Y, along with the inclusion proofs.
96//!
97//! ## Checking
98//!
99//! Let A_{S} denote the matrix formed by taking the rows in a given subset S.
100//!
101//! 1. Check that Com is the hash of V and the size of the data, in bytes.
102//! 2. Use Com to compute H of size c x S', and figure recompute the ith row sample S_i.
103//! 3. Check that Z is of size n S x S'.
104//! 4. Encode Z to get Z', a matrix of size pad((n + k) S) x S'.
105//!
106//! These steps now depend on the particular shard.
107//!
108//! 5. Check that X'_{S_i} (the shard's data) is a matrix of size S x c.
109//! 6. Use the inclusion proofs to check that each row of X'_{S_i} is included in V,
110//!    at the correct index.
111//! 7. Check that X'_{S_i} H = Z'_{S_i}
112//!
113//! ## Decoding
114//!
115//! 1. Given n checked shards, you have n S encoded rows, which can be Reed-Solomon decoded.
116
117use crate::{Config, PhasedScheme, ValidatingScheme};
118use bytes::BufMut;
119use commonware_codec::{Encode, EncodeSize, FixedSize, RangeCfg, Read, ReadExt, Write};
120use commonware_cryptography::{
121    transcript::{Summary, Transcript},
122    Digest, Hasher,
123};
124use commonware_math::{
125    fields::goldilocks::F,
126    ntt::{EvaluationVector, Matrix},
127};
128use commonware_parallel::Strategy;
129use commonware_storage::bmt::{Builder as BmtBuilder, Error as BmtError, Proof};
130use std::{marker::PhantomData, sync::Arc};
131use thiserror::Error;
132
133/// Create an iterator over the data of a buffer, interpreted as little-endian u64s.
134fn iter_u64_le(data: impl bytes::Buf) -> impl Iterator<Item = u64> {
135    struct Iter<B> {
136        remaining_u64s: usize,
137        tail: usize,
138        inner: B,
139    }
140
141    impl<B: bytes::Buf> Iter<B> {
142        fn new(inner: B) -> Self {
143            let remaining_u64s = inner.remaining() / 8;
144            let tail = inner.remaining() % 8;
145            Self {
146                remaining_u64s,
147                tail,
148                inner,
149            }
150        }
151    }
152
153    impl<B: bytes::Buf> Iterator for Iter<B> {
154        type Item = u64;
155
156        fn next(&mut self) -> Option<Self::Item> {
157            if self.remaining_u64s > 0 {
158                self.remaining_u64s -= 1;
159                return Some(self.inner.get_u64_le());
160            }
161            if self.tail > 0 {
162                let mut chunk = [0u8; 8];
163                self.inner.copy_to_slice(&mut chunk[..self.tail]);
164                self.tail = 0;
165                return Some(u64::from_le_bytes(chunk));
166            }
167            None
168        }
169    }
170    Iter::new(data)
171}
172
173fn collect_u64_le(max_length: usize, data: impl Iterator<Item = u64>) -> Vec<u8> {
174    let mut out = Vec::with_capacity(max_length);
175    for d in data {
176        out.extend_from_slice(&d.to_le_bytes());
177    }
178    out.truncate(max_length);
179    out
180}
181
182fn row_digest<H: Hasher>(row: &[F]) -> H::Digest {
183    let mut h = H::new();
184    for x in row {
185        h.update(&x.to_le_bytes());
186    }
187    h.finalize()
188}
189
190mod topology;
191use topology::Topology;
192
193/// A shard of data produced by the encoding scheme.
194#[derive(Clone, Debug)]
195pub struct StrongShard<D: Digest> {
196    data_bytes: usize,
197    root: D,
198    inclusion_proof: Proof<D>,
199    rows: Matrix<F>,
200    checksum: Arc<Matrix<F>>,
201}
202
203impl<D: Digest> PartialEq for StrongShard<D> {
204    fn eq(&self, other: &Self) -> bool {
205        self.data_bytes == other.data_bytes
206            && self.root == other.root
207            && self.inclusion_proof == other.inclusion_proof
208            && self.rows == other.rows
209            && self.checksum == other.checksum
210    }
211}
212
213impl<D: Digest> Eq for StrongShard<D> {}
214
215impl<D: Digest> EncodeSize for StrongShard<D> {
216    fn encode_size(&self) -> usize {
217        self.data_bytes.encode_size()
218            + self.root.encode_size()
219            + self.inclusion_proof.encode_size()
220            + self.rows.encode_size()
221            + self.checksum.encode_size()
222    }
223}
224
225impl<D: Digest> Write for StrongShard<D> {
226    fn write(&self, buf: &mut impl BufMut) {
227        self.data_bytes.write(buf);
228        self.root.write(buf);
229        self.inclusion_proof.write(buf);
230        self.rows.write(buf);
231        self.checksum.write(buf);
232    }
233}
234
235impl<D: Digest> Read for StrongShard<D> {
236    type Cfg = crate::CodecConfig;
237
238    fn read_cfg(
239        buf: &mut impl bytes::Buf,
240        cfg: &Self::Cfg,
241    ) -> Result<Self, commonware_codec::Error> {
242        let data_bytes = usize::read_cfg(buf, &RangeCfg::from(..=cfg.maximum_shard_size))?;
243        let max_els = cfg.maximum_shard_size / F::SIZE;
244        Ok(Self {
245            data_bytes,
246            root: ReadExt::read(buf)?,
247            inclusion_proof: Read::read_cfg(buf, &max_els)?,
248            rows: Read::read_cfg(buf, &(max_els, ()))?,
249            checksum: Arc::new(Read::read_cfg(buf, &(max_els, ()))?),
250        })
251    }
252}
253
254#[cfg(feature = "arbitrary")]
255impl<D: Digest> arbitrary::Arbitrary<'_> for StrongShard<D>
256where
257    D: for<'a> arbitrary::Arbitrary<'a>,
258{
259    fn arbitrary(u: &mut arbitrary::Unstructured<'_>) -> arbitrary::Result<Self> {
260        Ok(Self {
261            data_bytes: u.arbitrary::<u32>()? as usize,
262            root: u.arbitrary()?,
263            inclusion_proof: u.arbitrary()?,
264            rows: u.arbitrary()?,
265            checksum: Arc::new(u.arbitrary()?),
266        })
267    }
268}
269
270#[derive(Clone, Debug)]
271pub struct WeakShard<D: Digest> {
272    inclusion_proof: Proof<D>,
273    shard: Matrix<F>,
274}
275
276impl<D: Digest> PartialEq for WeakShard<D> {
277    fn eq(&self, other: &Self) -> bool {
278        self.inclusion_proof == other.inclusion_proof && self.shard == other.shard
279    }
280}
281
282impl<D: Digest> Eq for WeakShard<D> {}
283
284impl<D: Digest> EncodeSize for WeakShard<D> {
285    fn encode_size(&self) -> usize {
286        self.inclusion_proof.encode_size() + self.shard.encode_size()
287    }
288}
289
290impl<D: Digest> Write for WeakShard<D> {
291    fn write(&self, buf: &mut impl BufMut) {
292        self.inclusion_proof.write(buf);
293        self.shard.write(buf);
294    }
295}
296
297impl<D: Digest> Read for WeakShard<D> {
298    type Cfg = crate::CodecConfig;
299
300    fn read_cfg(
301        buf: &mut impl bytes::Buf,
302        cfg: &Self::Cfg,
303    ) -> Result<Self, commonware_codec::Error> {
304        let max_data_bits = cfg.maximum_shard_size.saturating_mul(8);
305        let max_data_els = F::bits_to_elements(max_data_bits).max(1);
306        Ok(Self {
307            // Worst case: every row is one data element, and the sample size is all rows.
308            inclusion_proof: Read::read_cfg(buf, &max_data_els)?,
309            shard: Read::read_cfg(buf, &(max_data_els, ()))?,
310        })
311    }
312}
313
314#[cfg(feature = "arbitrary")]
315impl<D: Digest> arbitrary::Arbitrary<'_> for WeakShard<D>
316where
317    D: for<'a> arbitrary::Arbitrary<'a>,
318{
319    fn arbitrary(u: &mut arbitrary::Unstructured<'_>) -> arbitrary::Result<Self> {
320        Ok(Self {
321            inclusion_proof: u.arbitrary()?,
322            shard: u.arbitrary()?,
323        })
324    }
325}
326
327/// A ZODA shard that has been checked for integrity already.
328#[derive(Clone)]
329pub struct CheckedShard {
330    index: usize,
331    shard: Matrix<F>,
332    commitment: Summary,
333}
334
335/// Take indices up to `total`, and shuffle them.
336///
337/// The shuffle depends, deterministically, on the transcript.
338///
339/// # Panics
340///
341/// Panics if `total` exceeds `u32::MAX`.
342fn shuffle_indices(transcript: &Transcript, total: usize) -> Vec<u32> {
343    let total: u32 = total
344        .try_into()
345        .expect("encoded_rows exceeds u32::MAX; data too large for ZODA");
346    let mut out = (0..total).collect::<Vec<_>>();
347    transcript.shuffle(b"shuffle", &mut out);
348    out
349}
350
351/// Create a checking matrix of the right shape.
352///
353/// This matrix is random, using the transcript as a deterministic source of randomness.
354fn checking_matrix(transcript: &Transcript, topology: &Topology) -> Matrix<F> {
355    Matrix::rand(
356        transcript.noise(b"checking matrix"),
357        topology.data_cols,
358        topology.column_samples,
359    )
360}
361
362/// Data used to check [WeakShard]s.
363#[derive(Clone, PartialEq)]
364pub struct CheckingData<D: Digest> {
365    commitment: Summary,
366    topology: Topology,
367    root: D,
368    checking_matrix: Matrix<F>,
369    encoded_checksum: Matrix<F>,
370    shuffled_indices: Vec<u32>,
371}
372
373impl<D: Digest> Eq for CheckingData<D> {}
374
375impl<D: Digest> CheckingData<D> {
376    /// Calculate the values of this struct, based on information received.
377    ///
378    /// We control `config`.
379    ///
380    /// We're provided with `commitment`, which should hash over `root`,
381    /// and `data_bytes`.
382    ///
383    /// We're also give a `checksum` matrix used to check the shards we receive.
384    fn reckon(
385        namespace: &[u8],
386        config: &Config,
387        commitment: &Summary,
388        data_bytes: usize,
389        root: D,
390        checksum: &Matrix<F>,
391    ) -> Result<Self, Error> {
392        let topology = Topology::reckon(config, data_bytes);
393        let mut transcript = Transcript::new(NAMESPACE);
394        transcript.commit(namespace);
395        transcript.commit((topology.data_bytes as u64).encode());
396        transcript.commit(root.encode());
397        let expected_commitment = transcript.summarize();
398        if *commitment != expected_commitment {
399            return Err(Error::InvalidShard);
400        }
401        let mut transcript = Transcript::resume(expected_commitment);
402        let checking_matrix = checking_matrix(&transcript, &topology);
403        if checksum.rows() != topology.data_rows || checksum.cols() != topology.column_samples {
404            return Err(Error::InvalidShard);
405        }
406        // Commit to the checksum before generating the indices to check.
407        //
408        // Nota bene: `checksum.encode()` is *serializing* the checksum, not
409        // Reed-Solomon encoding it.
410        //
411        // cf. the implementation of `Scheme::encode` for ZODA for why it's important
412        // that we do Reed-Solomon encoding of the checksum ourselves.
413        transcript.commit(checksum.encode());
414        let encoded_checksum = checksum
415            .as_polynomials(topology.encoded_rows)
416            .expect("checksum has too many rows")
417            .evaluate()
418            .data();
419        let shuffled_indices = shuffle_indices(&transcript, topology.encoded_rows);
420
421        Ok(Self {
422            commitment: expected_commitment,
423            topology,
424            root,
425            checking_matrix,
426            encoded_checksum,
427            shuffled_indices,
428        })
429    }
430
431    fn check<H: Hasher<Digest = D>>(
432        &self,
433        commitment: &Summary,
434        index: u16,
435        weak_shard: &WeakShard<D>,
436    ) -> Result<CheckedShard, Error> {
437        if self.commitment != *commitment {
438            return Err(Error::InvalidShard);
439        }
440        self.topology.check_index(index)?;
441        if weak_shard.shard.rows() != self.topology.samples
442            || weak_shard.shard.cols() != self.topology.data_cols
443        {
444            return Err(Error::InvalidWeakShard);
445        }
446        let index = index as usize;
447        let these_shuffled_indices = &self.shuffled_indices
448            [index * self.topology.samples..(index + 1) * self.topology.samples];
449
450        // Build elements for BMT multi-proof verification using the deterministically
451        // computed indices for this shard
452        let proof_elements: Vec<(H::Digest, u32)> = these_shuffled_indices
453            .iter()
454            .zip(weak_shard.shard.iter())
455            .map(|(&i, row)| (row_digest::<H>(row), i))
456            .collect();
457
458        // Verify the multi-proof
459        let mut hasher = H::new();
460        if weak_shard
461            .inclusion_proof
462            .verify_multi_inclusion(&mut hasher, &proof_elements, &self.root)
463            .is_err()
464        {
465            return Err(Error::InvalidWeakShard);
466        }
467
468        let shard_checksum = weak_shard.shard.mul(&self.checking_matrix);
469        // Check that the shard checksum rows match the encoded checksums
470        for (row, &i) in shard_checksum.iter().zip(these_shuffled_indices) {
471            if row != &self.encoded_checksum[i as usize] {
472                return Err(Error::InvalidWeakShard);
473            }
474        }
475        Ok(CheckedShard {
476            index,
477            shard: weak_shard.shard.clone(),
478            commitment: *commitment,
479        })
480    }
481}
482
483#[derive(Debug, Error)]
484pub enum Error {
485    #[error("invalid shard")]
486    InvalidShard,
487    #[error("invalid weak shard")]
488    InvalidWeakShard,
489    #[error("invalid index {0}")]
490    InvalidIndex(u16),
491    #[error("insufficient shards {0} < {1}")]
492    InsufficientShards(usize, usize),
493    #[error("insufficient unique rows {0} < {1}")]
494    InsufficientUniqueRows(usize, usize),
495    #[error("failed to create inclusion proof: {0}")]
496    FailedToCreateInclusionProof(BmtError),
497}
498
499const NAMESPACE: &[u8] = b"_COMMONWARE_CODING_ZODA";
500
501#[derive(Clone, Copy)]
502pub struct Zoda<H> {
503    _marker: PhantomData<H>,
504}
505
506impl<H> std::fmt::Debug for Zoda<H> {
507    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
508        write!(f, "Zoda")
509    }
510}
511
512impl<H: Hasher> PhasedScheme for Zoda<H> {
513    type Commitment = Summary;
514    type StrongShard = StrongShard<H::Digest>;
515    type WeakShard = WeakShard<H::Digest>;
516    type CheckingData = CheckingData<H::Digest>;
517    type CheckedShard = CheckedShard;
518    type Error = Error;
519
520    fn encode(
521        namespace: &[u8],
522        config: &Config,
523        data: impl bytes::Buf,
524        strategy: &impl Strategy,
525    ) -> Result<(Self::Commitment, Vec<Self::StrongShard>), Self::Error> {
526        // Step 1: arrange the data as a matrix.
527        let data_bytes = data.remaining();
528        let topology = Topology::reckon(config, data_bytes);
529        let data = Matrix::init(
530            topology.data_rows,
531            topology.data_cols,
532            F::stream_from_u64s(iter_u64_le(data)),
533        );
534
535        // Step 2: Encode the data.
536        let encoded_data = data
537            .as_polynomials(topology.encoded_rows)
538            .expect("data has too many rows")
539            .evaluate()
540            .data();
541
542        // Step 3: Commit to the rows of the data using a Binary Merkle Tree.
543        let row_hashes: Vec<H::Digest> = strategy.map_collect_vec(0..encoded_data.rows(), |i| {
544            row_digest::<H>(&encoded_data[i])
545        });
546        let mut bmt_builder = BmtBuilder::<H>::new(row_hashes.len());
547        for hash in &row_hashes {
548            bmt_builder.add(hash);
549        }
550        let bmt = bmt_builder.build();
551        let root = bmt.root();
552
553        // Step 4: Commit to the root, and the size of the data.
554        let mut transcript = Transcript::new(NAMESPACE);
555        transcript.commit(namespace);
556        transcript.commit((topology.data_bytes as u64).encode());
557        transcript.commit(root.encode());
558        let commitment = transcript.summarize();
559
560        // Step 5: Generate a checking matrix and checksum with the commitment.
561        let mut transcript = Transcript::resume(commitment);
562        let checking_matrix = checking_matrix(&transcript, &topology);
563        let checksum = Arc::new(data.mul(&checking_matrix));
564        // Bind index sampling to this checksum to prevent follower-specific malleability.
565        // It's important to commit to the checksum itself, rather than its encoding,
566        // because followers have to encode the checksum itself to prevent the leader from
567        // cheating.
568        transcript.commit(checksum.encode());
569        let shuffled_indices = shuffle_indices(&transcript, encoded_data.rows());
570
571        // Step 6: Produce the shards in parallel.
572        let shards = strategy.try_map_collect_vec(0..topology.total_shards, |shard_idx| {
573            let indices =
574                &shuffled_indices[shard_idx * topology.samples..(shard_idx + 1) * topology.samples];
575            let rows = Matrix::init(
576                indices.len(),
577                topology.data_cols,
578                indices
579                    .iter()
580                    .flat_map(|&i| encoded_data[i as usize].iter().copied()),
581            );
582            let inclusion_proof = bmt
583                .multi_proof(indices)
584                .map_err(Error::FailedToCreateInclusionProof)?;
585            Ok(StrongShard {
586                data_bytes,
587                root,
588                inclusion_proof,
589                rows,
590                checksum: checksum.clone(),
591            })
592        })?;
593        Ok((commitment, shards))
594    }
595
596    fn weaken(
597        namespace: &[u8],
598        config: &Config,
599        commitment: &Self::Commitment,
600        index: u16,
601        shard: Self::StrongShard,
602    ) -> Result<(Self::CheckingData, Self::CheckedShard, Self::WeakShard), Self::Error> {
603        let weak_shard = WeakShard {
604            inclusion_proof: shard.inclusion_proof,
605            shard: shard.rows,
606        };
607        let checking_data = CheckingData::reckon(
608            namespace,
609            config,
610            commitment,
611            shard.data_bytes,
612            shard.root,
613            shard.checksum.as_ref(),
614        )?;
615        let checked_shard = checking_data.check::<H>(commitment, index, &weak_shard)?;
616        Ok((checking_data, checked_shard, weak_shard))
617    }
618
619    fn check(
620        _config: &Config,
621        commitment: &Self::Commitment,
622        checking_data: &Self::CheckingData,
623        index: u16,
624        weak_shard: Self::WeakShard,
625    ) -> Result<Self::CheckedShard, Self::Error> {
626        checking_data.check::<H>(commitment, index, &weak_shard)
627    }
628
629    fn decode<'a>(
630        _config: &Config,
631        commitment: &Self::Commitment,
632        checking_data: Self::CheckingData,
633        shards: impl Iterator<Item = &'a Self::CheckedShard>,
634        _strategy: &impl Strategy,
635    ) -> Result<Vec<u8>, Self::Error> {
636        if checking_data.commitment != *commitment {
637            return Err(Error::InvalidShard);
638        }
639
640        let Topology {
641            encoded_rows,
642            data_cols,
643            samples,
644            data_rows,
645            data_bytes,
646            min_shards,
647            ..
648        } = checking_data.topology;
649        let mut evaluation = EvaluationVector::<F>::empty(encoded_rows.ilog2() as usize, data_cols);
650        let mut shard_count = 0usize;
651        for shard in shards {
652            shard_count += 1;
653            if shard.commitment != *commitment {
654                return Err(Error::InvalidShard);
655            }
656            let indices =
657                &checking_data.shuffled_indices[shard.index * samples..(shard.index + 1) * samples];
658            for (&i, row) in indices.iter().zip(shard.shard.iter()) {
659                evaluation.fill_row(u64::from(i) as usize, row);
660            }
661        }
662        if shard_count < min_shards {
663            return Err(Error::InsufficientShards(shard_count, min_shards));
664        }
665        // This should never happen, because we check each shard, and the shards
666        // should have distinct rows. But, as a sanity check, this doesn't hurt.
667        let filled_rows = evaluation.filled_rows();
668        if filled_rows < data_rows {
669            return Err(Error::InsufficientUniqueRows(filled_rows, data_rows));
670        }
671        Ok(collect_u64_le(
672            data_bytes,
673            F::stream_to_u64s(
674                evaluation
675                    .recover()
676                    .coefficients_up_to(data_rows)
677                    .flatten()
678                    .copied(),
679            ),
680        ))
681    }
682}
683
684impl<H: Hasher> ValidatingScheme for Zoda<H> {}
685
686#[cfg(test)]
687mod tests {
688    use super::*;
689    use crate::{Config, PhasedScheme};
690    use commonware_cryptography::Sha256;
691    use commonware_math::{
692        algebra::{FieldNTT as _, Ring as _},
693        ntt::PolynomialVector,
694    };
695    use commonware_parallel::Sequential;
696    use commonware_utils::NZU16;
697
698    const STRATEGY: Sequential = Sequential;
699
700    #[test]
701    fn decode_rejects_duplicate_indices() {
702        let config = Config {
703            minimum_shards: NZU16!(2),
704            extra_shards: NZU16!(1),
705        };
706        let data = b"duplicate shard coverage";
707        let (commitment, shards) =
708            Zoda::<Sha256>::encode(b"", &config, &data[..], &STRATEGY).unwrap();
709        let shard0 = shards[0].clone();
710        let (checking_data, checked_shard0, _weak_shard0) =
711            Zoda::<Sha256>::weaken(b"", &config, &commitment, 0, shard0).unwrap();
712        let duplicate = CheckedShard {
713            index: checked_shard0.index,
714            shard: checked_shard0.shard.clone(),
715            commitment: checked_shard0.commitment,
716        };
717        let shards = [checked_shard0, duplicate];
718        let result = Zoda::<Sha256>::decode(
719            &config,
720            &commitment,
721            checking_data,
722            shards.iter(),
723            &STRATEGY,
724        );
725        match result {
726            Err(Error::InsufficientUniqueRows(actual, expected)) => {
727                assert!(actual < expected);
728            }
729            other => panic!("expected insufficient unique rows error, got {other:?}"),
730        }
731    }
732
733    #[test]
734    fn checksum_malleability() {
735        /// Construct the vanishing polynomial over specific indices.
736        ///
737        /// When encoded, this will be 0 at those indices, and non-zero elsewhere.
738        fn vanishing(lg_domain: u8, vanish_indices: &[u32]) -> PolynomialVector<F> {
739            let w = F::root_of_unity(lg_domain).expect("domain too large for Goldilocks");
740            let mut domain = Vec::with_capacity(1usize << lg_domain);
741            let mut x = F::one();
742            for _ in 0..(1usize << lg_domain) {
743                domain.push(x);
744                x *= &w;
745            }
746            let roots: Vec<F> = vanish_indices.iter().map(|&i| domain[i as usize]).collect();
747            let mut out = EvaluationVector::empty(lg_domain as usize, 1);
748            domain.into_iter().enumerate().for_each(|(i, x)| {
749                let mut acc = F::one();
750                for root in &roots {
751                    acc *= &(x - root);
752                }
753                out.fill_row(i, &[acc]);
754            });
755            out.recover()
756        }
757
758        let config = Config {
759            minimum_shards: NZU16!(2),
760            extra_shards: NZU16!(1),
761        };
762        let data = vec![0x5Au8; 256 * 1024];
763        let (commitment, mut shards) =
764            Zoda::<Sha256>::encode(b"", &config, &data[..], &STRATEGY).unwrap();
765
766        let leader_i = 0usize;
767        let a_i = 1usize;
768        let b_i = 2usize;
769
770        // Apply a shift to the checksums
771        {
772            let (checking_data, _, _) = Zoda::<Sha256>::weaken(
773                b"",
774                &config,
775                &commitment,
776                leader_i as u16,
777                shards[leader_i].clone(),
778            )
779            .unwrap();
780
781            let samples = checking_data.topology.samples;
782            let a_indices =
783                checking_data.shuffled_indices[a_i * samples..(a_i + 1) * samples].to_vec();
784            let lg_rows = checking_data.topology.encoded_rows.ilog2() as usize;
785            let shift = vanishing(lg_rows as u8, &a_indices);
786            let mut checksum = (*shards[1].checksum).clone();
787            for (i, shift_i) in shift.coefficients_up_to(checksum.rows()).enumerate() {
788                for j in 0..checksum.cols() {
789                    checksum[(i, j)] += &shift_i[0];
790                }
791            }
792            shards[1].checksum = Arc::new(checksum);
793            shards[2].checksum = shards[1].checksum.clone();
794        }
795
796        assert!(matches!(
797            Zoda::<Sha256>::weaken(b"", &config, &commitment, b_i as u16, shards[b_i].clone()),
798            Err(Error::InvalidWeakShard)
799        ));
800
801        // Without robust Fiat-Shamir, this will succeed.
802        // This should be rejected once follower-specific challenge binding is fixed.
803        assert!(matches!(
804            Zoda::<Sha256>::weaken(b"", &config, &commitment, a_i as u16, shards[a_i].clone()),
805            Err(Error::InvalidWeakShard)
806        ));
807    }
808
809    #[cfg(feature = "arbitrary")]
810    mod conformance {
811        use super::*;
812        use commonware_codec::conformance::CodecConformance;
813        use commonware_conformance::Conformance;
814        use commonware_cryptography::sha256::Digest as Sha256Digest;
815
816        struct EncodeCheck;
817
818        impl Conformance for EncodeCheck {
819            async fn commit(seed: u64) -> Vec<u8> {
820                let config = Config {
821                    minimum_shards: NZU16!(2),
822                    extra_shards: NZU16!(1),
823                };
824                let data: Vec<_> = (0..seed as usize % 768)
825                    .map(|i| (seed as u8).wrapping_add(i as u8))
826                    .collect();
827
828                let (commitment, shards) =
829                    Zoda::<Sha256>::encode(b"conformance", &config, &data[..], &STRATEGY).unwrap();
830
831                let mut log = commitment.encode().to_vec();
832                for (i, shard) in shards.into_iter().enumerate() {
833                    let index: u16 = i.try_into().unwrap();
834                    let (checking_data, _, weak_shard) =
835                        Zoda::<Sha256>::weaken(b"conformance", &config, &commitment, index, shard)
836                            .unwrap();
837                    let checked_shard = Zoda::<Sha256>::check(
838                        &config,
839                        &commitment,
840                        &checking_data,
841                        index,
842                        weak_shard.clone(),
843                    )
844                    .unwrap();
845
846                    log.extend(index.encode());
847                    log.extend(weak_shard.encode());
848                    log.extend(checked_shard.shard.encode());
849                    log.extend(checked_shard.commitment.encode());
850                }
851                log
852            }
853        }
854
855        commonware_conformance::conformance_tests! {
856            EncodeCheck => 256,
857            CodecConformance<StrongShard<Sha256Digest>>,
858            CodecConformance<WeakShard<Sha256Digest>>,
859        }
860    }
861}