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A blockchain is a distributed ledger for recording transactions, maintained by many nodes without central authority through a distributed cryptographic protocol.
Reaching agreement in the presence of faults
M. Pease, R. Shostak, and L. Lamport · 1980
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The Byzantine generals problem
L. Lamport, R. Shostak, and M. Pease · 1982
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Impossibility of distributed consensus with one faulty process
M. J. Fischer, N. A. Lynch, and M. S. Paterson · 1985
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Asynchronous Byzantine agreement protocols
G. Bracha · 1987
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Simulating authenticated broadcasts to derive simple fault-tolerant algorithms
T. K. Srikanth and S. Toueg · 1987
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Consensus in the presence of partial synchrony
C. Dwork, N. Lynch, and L. Stockmeyer · 1988
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Viewstamped replication: A new primary copy method to support highly-available distributed systems
B. M. Oki and B. Liskov · 1988
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Implementing fault-tolerant services using the state machine approach: A tutorial
F. B. Schneider · 1990
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Fault-tolerant broadcasts and related problems
V. Hadzilacos and S. Toueg · 1994
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The part-time parliament
L. Lamport · 1998
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Byzantine quorum systems
D. Malkhi and M. K. Reiter · 1998
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Snake oil
B. Schneier · 1999
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The load and availability of Byzantine quorum systems
D. Malkhi, M. K. Reiter, and A. Wool · 2000
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Distributing trust on the Internet
C. Cachin · 2001
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Secure and efficient asynchronous broadcast protocols (extended abstract)
C. Cachin, K. Kursawe, F. Petzold, and V. Shoup · 2001
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Group communication specifications: A comprehensive study
G. V. Chockler, I. Keidar, and R. Vitenberg · 2001
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Paxos made simple
L. Lamport · 2001
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The ABCD’s of Paxos
B. Lampson · 2001
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Secure intrusion-tolerant replication on the Internet
C. Cachin and J. A. Poritz · 2002
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Practical Byzantine fault tolerance and proactive recovery
M. Castro and B. Liskov · 2002
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Distributed Computing: Fundamentals, Simulations and Advanced Topics
H. Attiya and J. Welch · 2004
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Basic concepts and taxonomy of dependable and secure computing
A. Avizienis, J.-C. Laprie, B. Randell, and C. Landwehr · 2004
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Chain replication for supporting high throughput and availability
R. van Renesse and F. B. Schneider · 2004
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Random oracles in Constantinople: Practical asynchronous Byzantine agreement using cryptography
C. Cachin, K. Kursawe, and V. Shoup · 2005
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Paxos made live: An engineering perspective
T. D. Chandra, R. Griesemer, and J. Redstone · 2007
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Yet another visit to Paxos
C. Cachin · 2009
Cited alongside, same era.
Making Byzantine fault tolerant systems tolerate Byzantine faults
A. Clement, E. L. Wong, L. Alvisi, M. Dahlin, and M. Marchetti · 2009
Cited alongside, same era.
Bitcoin: A peer-to-peer electronic cash system
S. Nakamoto · 2009
Cited alongside, same era.
Spin one’s wheels? Byzantine fault tolerance with a spinning primary
G. Santos Veronese, M. Correia, A. N. Bessani, and L. C. Lung · 2009
Cited alongside, same era.
Replication: Theory and Practice
B. Charron-Bost, F. Pedone, and A. Schiper, editors · 2010
Cited alongside, same era.
Throughput optimal total order broadcast for cluster environments
R. Guerraoui, R. R. Levy, B. Pochon, and V. Quéma · 2010
Cited alongside, same era.
Consensus-as-a-service: A brief report on the emergence of permissioned, distributed ledger systems
T. Swanson · 2015
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Vive la différence: Paxos vs. viewstamped replication vs. zab
R. van Renesse, N. Schiper, and F. B. Schneider · 2015
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Next consensus architecture proposal
E. Androulaki, C. Cachin, K. Christidis, C. Murthy, B. Nguyen, and M. Vukolić · 2016
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The Swirlds hashgraph consensus algorithm: Fair, fast, Byzantine fault tolerance
L. Baird · 2016
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Site Reliability Engineering: How Google Runs Production Systems
B. Beyer, C. Jones, J. Petoff, and N. R. Murphy, editors · 2016
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Tendermint: Byzantine fault tolerance in the age of blockchains
E. Buchman · 2016
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ZooKeeper: Wait-free coordination for internet-scale systems
P. Hunt, M. Konar, F. P. Junqueira, and B. Reed · 2010
Cited alongside, same era.
From viewstamped replication to Byzantine fault tolerance
B. Liskov · 2010
Cited alongside, same era.
Communication and Agreement Abstractions for Fault-Tolerant Asynchronous Distributed Systems
M. Raynal · 2010
Cited alongside, same era.
Introduction to Reliable and Secure Distributed Programming (Second Edition)
C. Cachin, R. Guerraoui, and L. Rodrigues · 2011
Cited alongside, same era.
Zab: High-performance broadcast for primary-backup systems
F. Junqueira, B. Reed, and M. Serafini · 2011
Cited alongside, same era.
From Byzantine consensus to BFT state machine replication: A latency-optimal transformation
A. Bessani and J. Sousa · 2012
Cited alongside, same era.
Later among the works it cites.
Architecture of the Hyperledger blockchain fabric
C. Cachin · 2016
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Hype cycle for blockchain technologies and the programmable economy, 2016
D. Furlonger and R. Valdes · 2016
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Multichain private blockchain — white paper
G. Greenspan · 2016
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Corda: A distributed ledger
M. Hearn · 2016
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Kadena — the first scalable, high performance private blockchain
W. Martino · 2016
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The Stellar consensus protocol: A federated model for Internet-level consensus
D. Mazières · 2016
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The honey badger of BFT protocols
A. Miller, Y. Xia, K. Croman, E. Shi, and D. Song · 2016
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The tangle
S. Popov · 2016
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Kadena: The first real private blockchain
G. Samman · 2016
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Ripple consensus ledger can sustain 1000 transactions per second
W. Anderson · 2017
Closest in time.
M. Brandenburger, C. Cachin, M. Lorenz, and R. Kapitza · 2017
Closest in time.
Private discussion, 2017
E. Buchman and J. Kwon · 2017
Closest in time.
Available online, https://chain.com/docs/1.2/protocol/papers/whitepaper
Chain protocol whitepaper · 2017
Closest in time.
Designing Data-Intensive Applications
M. Kleppmann · 2017
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Operating rippled servers
Ripple · 2017
Closest in time.
The Ripple protocol consensus algorithm
D. Schwartz, N. Youngs, and A. Britto · 2017
Closest in time.
Malware guard extension: Using SGX to conceal cache attacks
M. Schwarz, S. Weiser, D. Gruss, C. Maurice, and S. Mangard · 2017
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Rethinking permissioned blockchains
M. Vukolić · 2017
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