REVIEW 2 major objections 5 minor 41 references
Consensus is collapse under evidence: protocols differ by how they make communication history safe to project into a value or prefix.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · grok-4.5
2026-07-14 13:53 UTC pith:QL35A4LC
load-bearing objection A careful denotational vocabulary for reading consensus as collapse of communication evidence; useful comparison frame, not a theorem. the 2 major comments →
Consensus as Collapse Policy: Communication Evidence, Horizons, and Prefix Decisions
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
Nontrivial consensus is lawful projection from communication history. Protocols differ less in their terminal artifact than in their policy for making accumulated communication evidence legitimate, visible, and stable enough to collapse into an order-1 output. The paper’s claim is that consensus is collapse under evidence: safety lives in the communication carrier and the conditions under which distinctions may stop mattering, not in the decided value alone.
What carries the argument
Collapse-policy specification in normal form Ht —L→ Et —R→ Et|R —C→ P: a communication carrier, legitimacy extraction, evidence horizon, and partial collapse rule that emits a value or prefix only when the visible evidence determines an invariant observation (or refuses and repairs/defers). Collapse debt names the gap when the chosen horizon still admits refinements that could change the output.
Load-bearing premise
That this shared normal form of carriers, legitimacy, horizons, and collapse rules is a faithful semantic lens for comparing crash, Byzantine, randomized, stake-weighted, sampling, and DAG protocols without distorting their actual safety arguments.
What would settle it
Exhibit a representative consensus or atomic-broadcast protocol whose safety argument cannot be stated as legitimacy-plus-horizon-plus-collapse-or-repair without adding essential structure the framework discards, or show that two protocols the paper treats as the same collapse policy have incompatible safety conditions under that encoding.
If this is right
- Protocol comparison can be stated in shared terms—legitimacy, horizon width, compression, collapse, and repair—rather than only by terminal artifacts or phase names.
- FLP, set agreement, and topological results read as constraints on guaranteed terminal collapse and output-carrier width, not as denials that communication history can grow.
- Fallback, view-change, undecided-slot, and random-leader mechanisms become explicit management of collapse debt rather than incidental engineering.
- Design can begin by choosing the evidence carrier and when collapse is allowed, including adaptive horizons and carrier-preserving finality with prefixes as projections.
- Leader-mediated certificate compression and full-gossip DAG visibility sit on a spectrum of how much order-2 evidence is disseminated before collapse.
Where Pith is reading between the lines
- If the framework holds, performance and safety debates that only count rounds or message complexity may mis-rank protocols that differ mainly in when they discard evidence.
- The same lens could be applied to reconfiguration, light-client verification, and cross-chain bridges, which also collapse remote evidence into a local trusted prefix.
- A machine-checkable encoding of the normal form would let implementers state and compare collapse policies independently of protocol-specific proofs.
- Protocols that expose undecided or skip outcomes (as in the Mysticeti case) may be the clearest operational tests of whether collapse debt is a useful design primitive.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper proposes a denotational comparison framework for fault-tolerant consensus and atomic-broadcast protocols. It treats distributed execution as an order-2 communication-induced evidence carrier and classical consensus outputs (values, logs, finalized prefixes) as order-1 projections of that carrier. Protocols are specified in a shared normal form H → L → E → R → V → C → P (evidence domain, legitimacy extraction, horizon, collapse, and repair/deferral), with classical impossibility results reread as constraints on guaranteed terminal collapse rather than on evidence accumulation. Main case studies (Lamport ordering, Byzantine Generals, Paxos, HotStuff, CBC Casper, Cordial Miners, Mysticeti-C) and a broad appendix catalog instantiate the form; the author explicitly disclaims new impossibility theorems and replacement of protocol-specific proofs.
Significance. If accepted as a semantic specification layer rather than a theorem paper, the contribution is useful: it cleanly separates legitimacy (quorums, certificates, slices, sampling, estimators, DAG support) from collapse policy (horizon, projection, repair), and it gives a shared vocabulary for comparing crash, Byzantine, randomized, PoS, sampling, and DAG protocols. The collapse-debt reading of Mysticeti-C’s direct/indirect rules and the Cordial Miners comparison are concrete comparative payoffs, as is the communication-surface analysis distinguishing full-gossip DAG visibility from leader/QC compression. The manuscript is careful about non-claims (FLP is not refuted; model-identical reductions are not asserted). Strengths are interpretive clarity and breadth of coverage rather than machine-checked proofs or new lower bounds.
major comments (2)
- [§3, Def. 3.2; §2.3, Def. 2.6] Def. 3.2 (Realization law) and Def. 2.6 (Semantic collapse) are stated as denotational obligations, but the manuscript never discharges them for any protocol with an explicit denotation map [[·]] and a non-vacuous Adm/obs pair. The case studies remain schematic normal-form readings. For a claim of denotational specification (not only informal taxonomy), at least one fully worked instance—e.g., single-slot Paxos or the Mysticeti-C slot derivation in §7.9—should exhibit carriers, L/R/C, Adm, obs, and a check that emitted outputs preserve the specified meaning. Without that, the central “specification framework” claim stays aspirational.
- [§8 Synthesis] The comparative force of the normal form needs a sharper criterion for sameness vs. difference of collapse policies. §8.2–8.3 give useful axes (legitimacy locus, horizon width, refusal of collapse, discarded distinctions), but it remains unclear when two protocols are judged equivalent under the framework versus merely rewritable into the same template by construction. A short subsection stating what would count as a non-trivial equivalence or distinction (e.g., same L and C but different R, or same carrier with different repair) would make the contribution falsifiable as a comparison method rather than only a rewriting scheme.
minor comments (5)
- [§1 Introduction; Order terminology] The terms “order-2” and “order-1” conflict with standard distributed-computing usage (partial/total orders, topological order). A brief note early in §1 or §2 that these are semantic labels for carrier vs. projection, not algebraic order theory, would reduce confusion.
- [§3.1 Protocol vocabulary dictionary] Table in §3.1 maps protocol terms to semantic roles but is not numbered or captioned; give it a formal table number and caption for citation.
- [Appendix A] Appendix entries are explicitly schematic; a one-sentence header reminder that they are coverage checks, not proofs, would help readers who land on the appendix first.
- [§4 FLP as Order-Collapse Constraint] In §4, the translation of bivalence to fibers of C is clear; a single sentence linking univalence to Def. 2.6’s invariance under ↑Adm would tighten the bridge between FLP and the semantic-collapse definition.
- [References] References are thorough; consider adding a pointer to recent formalizations of HotStuff/Jolteon or CBC Casper if space allows, since the paper leans on those mechanisms as witnesses of invariance.
Circularity Check
No significant circularity: denotational framework is definitional by design, with no fitted predictions, self-citation chains, or uniqueness imports that force the central claim.
full rationale
The paper's contribution is explicitly scoped as a denotational vocabulary and normal form (Ht L o Et R o Et|R C o P; Defs. 2.1–3.2) for re-reading existing protocols and the FLP–set-agreement–topology lineage as collapse policies. It repeatedly disclaims new theorems, model subsumption, or replacement of protocol proofs (Abstract; §1 Non-contributions; §6; §9). Instantiations (Lamport, BGP, Paxos, HotStuff, CBC Casper, Cordial Miners, Mysticeti-C, appendix) are interpretive mappings that fit the form by construction once the carriers and maps are named; this is expected for a specification framework and does not reduce any external prediction or uniqueness claim to its own inputs. There are no free parameters fitted to data and then re-presented as predictions, no load-bearing self-citations of prior uniqueness theorems by the same author, and no ansatz smuggled via citation. Realization law (Def. 3.2) and semantic-collapse invariance (Def. 2.6) are stated as obligations, not derived results that loop. Mild definitional packaging of the thesis (“consensus is collapse under evidence”) is present but does not constitute circular derivation of a first-principles claim. Score remains at the low end of the 0–2 band for honest non-finding on a self-contained interpretive paper.
Axiom & Free-Parameter Ledger
axioms (5)
- domain assumption FLP impossibility for deterministic consensus under full asynchrony with one crash failure remains valid as stated.
- domain assumption Classical protocol safety mechanisms (quorum intersection, certificates, locks, estimators, DAG support, sampling confidence, etc.) correctly supply decision-grade evidence in their published models.
- ad hoc to paper Distributed execution can be treated as an order-2 communication/evidence carrier whose terminal consensus outputs are order-1 projections.
- ad hoc to paper A protocol’s essential comparative structure is captured by legitimacy extraction L, horizon R, collapse C, and repair/deferral when C is undefined.
- domain assumption Topological and set-agreement results constrain structure-preserving maps from history/view carriers to output carriers.
invented entities (3)
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Collapse-policy specification (carriers H,E,V,P and maps L,R,C)
no independent evidence
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Collapse debt
no independent evidence
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Order-2 evidence state / order-1 terminal artifact distinction
no independent evidence
read the original abstract
Consensus protocols are usually specified by their terminal artifact: a decided value, replicated log, or finalized prefix. This output-first view hides the communication-derived evidence that makes such artifacts safe. This paper makes that carrier explicit: distributed execution is read as an order-2 evidence state induced by communication, while classical consensus outputs are order-1 projections of that state. Under this view, consensus protocols can be compared as collapse policies. A protocol specifies which evidence is legitimate, which finite horizon it inspects, when it projects communication evidence into a value or prefix, and how it repairs or defers collapse when the visible evidence is insufficient. The impossibility lineage supports the same distinction. FLP is not a statement that communication cannot accumulate structure; it constrains deterministic guaranteed collapse to a terminal decision under full asynchrony with one crash failure. Set agreement then exposes the width of the output carrier, and topological distributed computing asks when a history/view carrier admits a structure-preserving map to an output carrier. The contribution is not a new impossibility theorem or a replacement for protocol-specific proofs, but a denotational specification framework: consensus is collapse under evidence.
Reference graph
Works this paper leans on
-
[1]
Leslie Lamport. Time, Clocks, and the Ordering of Events in a Distributed System.Communi- cations of the ACM21(7):558–565, 1978. DOI:https://doi.org/10.1145/359545.359563. URL:https://lamport.azurewebsites.net/pubs/time-clocks.pdf
-
[2]
The Part-Time Parliament.ACM Transactions on Computer Systems 16(2):133–169, 1998
Leslie Lamport. The Part-Time Parliament.ACM Transactions on Computer Systems 16(2):133–169, 1998. DOI:https://doi.org/10.1145/279227.279229
-
[3]
Paxos Made Simple.ACM SIGACT News32(4):51–58, 2001
Leslie Lamport. Paxos Made Simple.ACM SIGACT News32(4):51–58, 2001. URL:https: //lamport.azurewebsites.net/pubs/paxos-simple.pdf
2001
-
[4]
In Search of an Understandable Consensus Algorithm
Diego Ongaro and John Ousterhout. In Search of an Understandable Consensus Algorithm. InProceedings of the 2014 USENIX Annual Technical Conference, 2014. URL:https://www. usenix.org/conference/atc14/technical-sessions/presentation/ongaro
2014
-
[5]
Michael J. Fischer, Nancy A. Lynch, and Michael S. Paterson. Impossibility of distributed consensus with one faulty process.Journal of the ACM32(2):374–382, 1985. DOI:https: //doi.org/10.1145/3149.214121. URL:https://groups.csail.mit.edu/tds/papers/ Lynch/jacm85.pdf
-
[6]
Agreement is harder than consensus: Set consensus problems in totally asynchronous systems
Soma Chaudhuri. Agreement is harder than consensus: Set consensus problems in totally asynchronous systems. InProceedings of the 9th Annual ACM Symposium on Principles of Distributed Computing, pages 311–324, 1990. DOI:https://doi.org/10.1145/93385.93428
-
[7]
Generalized FLP impossibility result for t-resilient asyn- chronous computations
Elizabeth Borowsky and Eli Gafni. Generalized FLP impossibility result for t-resilient asyn- chronous computations. InProceedings of the 25th Annual ACM Symposium on Theory of Computing, pages 91–100, 1993. DOI:https://doi.org/10.1145/167088.167119
-
[8]
The topological structure of asynchronous computabil- ity.Journal of the ACM46(6):858–923, 1999
Maurice Herlihy and Nir Shavit. The topological structure of asynchronous computabil- ity.Journal of the ACM46(6):858–923, 1999. DOI:https://doi.org/10.1145/331524. 331529. URL:https://www.cs.yale.edu/homes/aspnes/pinewiki/attachments/CS425% 282f%29Schedule/HerlihyShavit1999.pdf
doi:10.1145/331524 1999
-
[9]
Wait-free k-set agreement is impossible: The topol- ogy of public knowledge
Michael Saks and Fotios Zaharoglou. Wait-free k-set agreement is impossible: The topol- ogy of public knowledge. InProceedings of the 25th Annual ACM Symposium on Theory of Computing, pages 101–110, 1993. DOI:https://doi.org/10.1145/167088.167122. 45
-
[10]
Leslie Lamport, Robert Shostak, and Marshall Pease. The Byzantine Generals Problem.ACM Transactions on Programming Languages and Systems4(3):382–401, 1982. DOI:https:// doi.org/10.1145/357172.357176
-
[11]
Consensus in the presence of par- tial synchrony.Journal of the ACM35(2):288–323, 1988
Cynthia Dwork, Nancy Lynch, and Larry Stockmeyer. Consensus in the presence of par- tial synchrony.Journal of the ACM35(2):288–323, 1988. DOI:https://doi.org/10.1145/ 42282.42283. URL:https://groups.csail.mit.edu/tds/papers/Lynch/jacm88.pdf
arXiv 1988
-
[12]
Unreliable failure detectors for reliable distributed systems.Journal of the ACM43(2):225–267, 1996
Tushar Deepak Chandra and Sam Toueg. Unreliable failure detectors for reliable distributed systems.Journal of the ACM43(2):225–267, 1996. DOI:https://doi.org/10.1145/226643. 226647
-
[13]
Another Advantage of Free Choice: Completely Asynchronous Agreement Protocols
Michael Ben-Or. Another Advantage of Free Choice: Completely Asynchronous Agreement Protocols. InProceedings of the 2nd Annual ACM Symposium on Principles of Distributed Computing, pages 27–30, 1983. DOI:https://doi.org/10.1145/800221.806707
-
[14]
Michael O. Rabin. Randomized Byzantine Generals. InProceedings of the 24th Annual Sym- posium on Foundations of Computer Science, pages 403–409, 1983. DOI:https://doi.org/ 10.1109/SFCS.1983.48
-
[15]
FastAsynchronousByzantineAgreement with OptimalResilience
Ran Canettiand TalRabin. FastAsynchronousByzantineAgreement with OptimalResilience. InProceedings of the 25th Annual ACM Symposium on Theory of Computing, pages 42–51,
-
[16]
DOI:https://doi.org/10.1145/167088.167105
-
[17]
The Honey Badger of BFT Protocols
Andrew Miller, Yu Xia, Kyle Croman, Elaine Shi, and Dawn Song. The Honey Badger of BFT Protocols. InProceedings of the 2016 ACM SIGSAC Conference on Computer and Communications Security, pages 31–42, 2016. DOI:https://doi.org/10.1145/2976749. 2978399. URL:https://eprint.iacr.org/2016/199
doi:10.1145/2976749 2016
-
[18]
Practical Byzantine Fault Tolerance
Miguel Castro and Barbara Liskov. Practical Byzantine Fault Tolerance. In Proceedings of the 3rd Symposium on Operating Systems Design and Implemen- tation, 1999. URL:https://www.usenix.org/conference/osdi-99/presentation/ practical-byzantine-fault-tolerance
1999
-
[19]
The Stellar Consensus Protocol: A Federated Model for Internet-level Consensus
David Mazieres. The Stellar Consensus Protocol: A Federated Model for Internet-level Consensus. Stellar Development Foundation, 2015. URL:https://stellar.org/papers/ stellar-consensus-protocol.pdf
2015
-
[20]
Reiter, Guy Golan Gueta, and Ittai Abraham
Maofan Yin, Dahlia Malkhi, Michael K. Reiter, Guy Golan Gueta, and Ittai Abraham. Hot- Stuff: BFT Consensus in the Lens of Blockchain. InProceedings of the 2019 ACM Sym- posium on Principles of Distributed Computing, 2019. arXiv:1803.05069. URL:https: //arxiv.org/abs/1803.05069. DOI:https://doi.org/10.1145/3293611.3331591
-
[21]
Tendermint: Consensus without Mining
Jae Kwon. Tendermint: Consensus without Mining. Technical report, 2014. URL:https: //tendermint.com/static/docs/tendermint.pdf
2014
-
[22]
Benjamin Y. Chan and Elaine Shi. Streamlet: Textbook Streamlined Blockchains. InPro- ceedings of the 2nd ACM Conference on Advances in Financial Technologies, 2020. DOI: https://doi.org/10.1145/3419614.3423256. URL:https://eprint.iacr.org/2020/088
-
[23]
Algorand: Scaling Byzantine Agreements for Cryptocurrencies
Yossi Gilad, Rotem Hemo, Silvio Micali, Georgios Vlachos, and Nickolai Zeldovich. Algorand: Scaling Byzantine Agreements for Cryptocurrencies. InProceedings of the 26th Symposium on 46 Operating Systems Principles, pages 51–68, 2017. DOI:https://doi.org/10.1145/3132747. 3132757. URL:https://eprint.iacr.org/2017/454
doi:10.1145/3132747 2017
-
[24]
Jolteon and Ditto: Network-Adaptive Efficient Consensus with Asynchronous Fallback
Rati Gelashvili, Lefteris Kokoris-Kogias, Alberto Sonnino, Alexander Spiegelman, and Zhuolun Xiang. Jolteon and Ditto: Network-Adaptive Efficient Consensus with Asynchronous Fall- back. InFinancial Cryptography and Data Security, pages 296–315, 2022. DOI:https: //doi.org/10.1007/978-3-031-18283-9_14. arXiv:2106.10362v4. URL:https://arxiv. org/abs/2106.10362
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1007/978-3-031-18283-9_14 2022
-
[25]
HotStuff-2: Optimal Two-Phase Responsive BFT
Dahlia Malkhi and Kartik Nayak. HotStuff-2: Optimal Two-Phase Responsive BFT. Cryptol- ogy ePrint Archive, Paper 2023/397, 2023. URL:https://eprint.iacr.org/2023/397
2023
-
[26]
Ouroboros: A Provably Secure Proof-of-Stake Blockchain Protocol
Aggelos Kiayias, Alexander Russell, Bernardo David, and Roman Oliynykov. Ouroboros: A Provably Secure Proof-of-Stake Blockchain Protocol. InAdvances in Cryptology – CRYPTO 2017, pages 357–388, 2017. DOI:https://doi.org/10.1007/978-3-319-63688-7_12. URL: https://eprint.iacr.org/2016/889
-
[27]
Ouroboros Praos: An Adaptively-Secure, Semi-synchronous Proof-of-Stake Blockchain
Bernardo David, Peter Gazi, Aggelos Kiayias, and Alexander Russell. Ouroboros Praos: An Adaptively-Secure, Semi-synchronous Proof-of-Stake Blockchain. InAdvances in Cryp- tology – EUROCRYPT 2018, pages 66–98, 2018. DOI:https://doi.org/10.1007/ 978-3-319-78375-8_3. URL:https://eprint.iacr.org/2017/573
2018
-
[28]
GRANDPA: a Byzantine Finality Gadget
Alistair Stewart and Eleftherios Kokoris-Kogias. GRANDPA: a Byzantine Finality Gadget. arXiv:2007.01560, 2020. DOI:https://doi.org/10.48550/arXiv.2007.01560. URL:https: //arxiv.org/abs/2007.01560
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.2007.01560 2007
-
[29]
Casper the Friendly Finality Gadget
Vitalik Buterin and Virgil Griffith. Casper the Friendly Finality Gadget. arXiv:1710.09437,
-
[30]
URL:https://arxiv.org/ abs/1710.09437
DOI:https://doi.org/10.48550/arXiv.1710.09437. URL:https://arxiv.org/ abs/1710.09437
-
[31]
Scal- able and Probabilistic Leaderless BFT Consensus through Metastability
Team Rocket, Maofan Yin, Kevin Sekniqi, Robbert van Renesse, and Emin Gun Sirer. Scal- able and Probabilistic Leaderless BFT Consensus through Metastability. arXiv:1906.08936,
Pith/arXiv arXiv 1906
-
[32]
URL:https://arxiv.org/ abs/1906.08936
DOI:https://doi.org/10.48550/arXiv.1906.08936. URL:https://arxiv.org/ abs/1906.08936
-
[33]
Casper the Friendly Ghost: A Correct-by-Construction Blockchain Consensus Protocol
Vlad Zamfir. Casper the Friendly Ghost: A Correct-by-Construction Blockchain Consensus Protocol. Draft v0.1, Ethereum Foundation, 2017. URL:https://raw.githubusercontent. com/vladzamfir/research/master/papers/CasperTFG/CasperTFG.pdf
2017
-
[34]
Idit Keidar, Eleftherios Kokoris-Kogias, Oded Naor, and Alexander Spiegelman. All You Need is DAG. arXiv:2102.08325v2, 2021. URL:https://arxiv.org/abs/2102.08325
Pith/arXiv arXiv 2021
-
[35]
The Swirlds Hashgraph Consensus Algorithm: Fair, Fast, Byzantine Fault Tol- erance
Leemon Baird. The Swirlds Hashgraph Consensus Algorithm: Fair, Fast, Byzantine Fault Tol- erance. Swirlds Technical Report SWIRLDS-TR-2016-01, 2016. URL:https://www.swirlds. com/downloads/SWIRLDS-TR-2016-01.pdf
2016
-
[36]
Aleph: Efficient Atomic Broadcast in Asynchronous Networks with Byzantine Nodes
Adam Gagol, Damian Lesniak, Damian Straszak, and Michal Swietek. Aleph: Efficient Atomic Broadcast in Asynchronous Networks with Byzantine Nodes. InProceedings of the 1st ACM Conference on Advances in Financial Technologies, pages 214–228, 2019. DOI:https://doi. org/10.1145/3318041.3355467. URL:https://arxiv.org/abs/1908.05156. 47
-
[37]
Narwhal and Tusk: A DAG-based Mempool and Efficient BFT Consensus
George Danezis, Lefteris Kokoris-Kogias, Alberto Sonnino, and Alexander Spiegelman. Nar- whal and Tusk: A DAG-based Mempool and Efficient BFT Consensus. InProceedings of EuroSys 2022, 2022. arXiv:2105.11827v4. URL:https://arxiv.org/abs/2105.11827. DOI: https://doi.org/10.1145/3492321.3519594
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1145/3492321.3519594 2022
-
[38]
Bull- shark: DAG BFT Protocols Made Practical
Alexander Spiegelman, Neil Giridharan, Alberto Sonnino, and Lefteris Kokoris-Kogias. Bull- shark: DAG BFT Protocols Made Practical. arXiv:2201.05677v3, 2022. URL:https: //arxiv.org/abs/2201.05677
Pith/arXiv arXiv 2022
-
[39]
Mysticeti: Reaching the Limits of Latency with Uncertified DAGs
Kushal Babel, Andrey Chursin, George Danezis, Anastasios Kichidis, Lefteris Kokoris-Kogias, Arun Koshy, Alberto Sonnino, and Mingwei Tian. Mysticeti: Reaching the Limits of Latency with Uncertified DAGs. arXiv:2310.14821v6, 2025. URL:https://arxiv.org/abs/2310. 14821
arXiv 2025
-
[40]
Cordial Miners: Fast and Efficient Consensus for Every Eventuality
Idit Keidar, Oded Naor, Ouri Poupko, and Ehud Shapiro. Cordial Miners: Fast and Efficient Consensus for Every Eventuality. In37th International Symposium on Distributed Comput- ing, LIPIcs 281:26:1–26:22, 2023. arXiv:2205.09174v6. URL:https://arxiv.org/abs/2205. 09174. DOI:https://doi.org/10.4230/LIPIcs.DISC.2023.26
work page internal anchor Pith review Pith/arXiv arXiv doi:10.4230/lipics.disc.2023.26 2023
-
[41]
The Blocklace: A Byzantine-repelling and Universal Conflict-free Replicated Data Type
Paulo Sérgio Almeida and Ehud Shapiro. The Blocklace: A Byzantine-repelling and Universal Conflict-free Replicated Data Type. arXiv:2402.08068, 2024. URL:https://arxiv.org/abs/ 2402.08068. 48
Pith/arXiv arXiv 2024
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