This repository argues, in its own README, that a patch against a named upstream commit is the honest way to publish a contribution to a million-line project: the diff is the contribution, the reader fetches the rest from upstream, and a patch fails loudly when upstream moves while a whole file overwrites in silence. The anchor was published as whole files only, which contradicted that argument. It is now both: patches/0003 to apply, anchor/ to read. Verified on a pristine d2032017 checkout rather than assumed: - git apply --check and git apply both returned 0 - the resulting tree is byte-identical to anchor/: 75 files compared, 0 differences - :consensus:common:test and :consensus:qbft:test returned 605 tests, 0 failures, the same count class by class as the same tree built from the files The README also said "no build file changes are required" in a place that now reads as if it covered all three patches. It covered the first two. Patch 0003 changes one build file by one line, and that line is named.
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Post-quantum certificate anchor for QBFT
This is the code that puts a post-quantum validator certificate under the block hash in Hyperledger Besu's QBFT consensus, as an overlay on a named upstream commit.
It is published so that the claim can be checked rather than believed. Everything below that is not demonstrable from these files is marked as not demonstrable from these files.
Scope boundary, stated first and not in a footnote
Consensus on Aere Network chain 2800 is classical secp256k1 ECDSA QBFT. Block proposal, validator identity and the QBFT vote messages are all classical elliptic-curve cryptography. A cryptographically relevant quantum computer would break them exactly as it would break any other ECDSA chain.
What this code adds is narrower and is the whole point: the block hash commits to a Falcon certificate signed by the validators. That is a binding, not a replacement. It does not make consensus post-quantum and is never described as such.
The threat it addresses is not "harvest now, decrypt later". A signature is public; there is nothing to harvest. The threat is retroactive rewriting: validator keys recovered later can be used to re-sign old blocks, and a chain whose history is authenticated only by ECDSA cannot distinguish the rewrite from the original. Binding a post-quantum certificate into the hash of every anchored header means a rewrite must also forge the post-quantum signatures. The reasoning follows Azouvi, Danezis, Nikolaenko, "Winkle" (IACR 2019/1440, AFT 2020).
The problem this solves, which is not obvious
In QBFT, extraData is an RLP list. The block hash is not computed over the stored bytes. It is
computed over a re-encoding of the decoded list, with the seal fields removed, so that every node
agrees on a hash before the seals exist.
That has a consequence that is easy to miss: anything the decoder does not know about is dropped before hashing. Append a certificate as a new element and it survives in storage, travels between nodes, and is entirely absent from the hash. Two nodes can hold different certificates for the same block and both consider it valid. The certificate would be decoration.
Four obvious designs were tried and all four died on that:
| Attempt | Why it died |
|---|---|
| new RLP element after the seals | dropped by the re-encode, never reaches keccak |
| extend the seal list | changes the seal encoding, so every existing node rejects the header |
a second extraData-like field |
not in the header schema; a header with it is not a header |
| commit in the state root | the state root is computed before the certificate exists |
The design that works uses a field that is already under keccak: vanityData, element 0 of the
list, 32 bytes, historically arbitrary. At an anchor height it carries the digest of the certificate
instead of the usual vanity string. The certificate itself still rides outside the hash, but it is
now pinned: change one byte of it and the digest no longer matches, and the header is rejected.
PqAnchor.java and PqAnchorDigestRule.java are where that lives. Read those two first.
What is in here
consensus/common/.../bft/— the anchor itself: configuration, the digest, the seal cache and store, the producer that attaches seals, the Falcon registry that maps a validator to a key.consensus/qbft/.../headervalidationrules/— the validation rules: the digest must match, the seals must verify, and the rules must actually be wired into the validator chain.app/.../controller/— where the rules are built and where the node refuses to start on a configuration that would produce headers its own fleet rejects.- tests — including the negative controls. A test that cannot fail is not a test, and several of these exist specifically to prove the guards can fail.
The same code is also delivered as ../patches/0003-aere-pq-anchor.patch, generated against
that commit. Applying the patch produces files byte-identical to the ones in this directory, which
was checked rather than assumed: 75 files compared, 0 differences. Use the patch to build; read the
files here to review. Whole files are convenient to read and dangerous to apply, and BASE.txt
explains why.
BASE.txt names the upstream commit. Applying these files to any other tree overwrites whatever
upstream added since, silently. That is stated there in more detail because it is a real hazard.
One build file changes, and it is one line. consensus/common/build.gradle gains
implementation 'org.bouncycastle:bcprov-jdk18on'. Falcon verification happens inside the consensus
module, so the module needs the library on its own compile path. No version is stated, because
upstream pins it: platform/build.gradle declares bcprov-jdk18on:1.83, and four upstream modules
already take the dependency in exactly this versionless form. So the line adds a compile-path entry
and no new artifact, and it does not move any version. That is the entire build change, and it is
called out here rather than left to be found in the diff.
No cryptography is implemented in this overlay. Falcon signature verification calls Bouncy Castle's implementation; what is ours is the framing, the registry that maps a validator to a key, the digest, and the validation rules.
What is proven, and by what
- The certificate is byte-identical across nodes. Measured on a test network, six nodes.
- A stripped certificate is rejected. 12 attempts, 12 rejections.
- The guards compile and pass together, and the negative control was run: with the guards removed the proofs go red. A guard that has never failed cannot be trusted, so each was made to fail on purpose.
- Arming does not halt the chain across a validator-set change. On a test network of ten processes, 1,110 blocks were produced across the arming height while four validator-set votes were driven through it, and the block rate did not change. The negative control for that run was separate and blunt: three nodes restarted without their Falcon key produced zero blocks in ninety seconds while every node was alive; with the keys restored, eighty-nine.
- The wiring is tested. An earlier version of this code registered a rule that could not be seen
from outside, because Besu's
BlockHeaderValidator.Builderwraps detached rules in a lambda. The rule was present and untested for that reason alone.QbftAnchorRuleWiringTestexists because of that, and its negative control is measured: comment out the registration line and it goes red.
What is not proven here
- This overlay has not been audited by a third party. No external security review of this code exists. If you are reading it as an auditor, you are the first.
- A rehearsal with a deliberately un-upgraded node has not been run. Every rehearsal so far upgraded every node.
- Nothing here demonstrates what is configured on any live network. These files show what the code does when armed. They are not evidence about any running fleet, and should not be read as any.
One claim we retracted, on purpose
An earlier version of our public material said that no public chain has a block hash covering a post-quantum validator certificate. That does not survive a hostile reading. Cellframe's ESBoCS signs blocks with keys that resolve to Dilithium, Falcon or SPHINCS+, and hashes the block with the signatures attached. The capability exists in their code today.
The defensible statement is narrower: no public chain has a post-quantum validator certificate under the block hash that is proven and independently verifiable. This repository is our half of that sentence. Someone else has to do the verifying, which is why it is here.
Terminology, used precisely
A certificate here is signed by f+1 validators, not by a quorum. With f Byzantine faults tolerated, f+1 signatures guarantee that at least one honest validator signed. That is a real property and it is not the same as a quorum, and we do not call it one. Anyone counting will notice, and they should.
The seal threshold is a floor, not a cap: nodes attach as many verified seals as arrive in time, which is at least the threshold and often more. A separate cap bounds how many are written, because each seal costs bytes in every header forever.
Licence
Apache 2.0, matching upstream Hyperledger Besu. See ../LICENSE and ../NOTICE. Files that modify
upstream carry the change notice required by section 4(b); files that are new are ours.