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  4. CrystalBall: Predicting and Preventing Inconsistencies in Deployed Distributed Systems
 
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CrystalBall: Predicting and Preventing Inconsistencies in Deployed Distributed Systems

Yabandeh, Maysam  
•
Knezevic, Nikola
•
Kostic, Dejan  
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2008

We propose a new approach for developing and deploying distributed systems, in which nodes predict distributed consequences of their actions, and use this information to detect and avoid errors. Each node continuously runs a state exploration algorithm on a recent consistent snapshot of its neighborhood and predicts possible future violations of specified safety properties. We describe a new state exploration algorithm, consequence prediction, which explores causally related chains of events that lead to property violation. This paper describes the design and the implementation of this approach, termed CrystalBall. We evaluate CrystalBall on RandTree, BulletPrime, Paxos, and Chord distributed system implementations. We identified new bugs in mature Mace implementations of three systems. Furthermore, we show that if the bug is not corrected during system development, CrystalBall is effective in steering the execution away from inconsistent states at run-time.

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Type
report
Author(s)
Yabandeh, Maysam  
Knezevic, Nikola
Kostic, Dejan  
Kuncak, Viktor  
Date Issued

2008

Subjects

software reliability

•

distributed systems

•

model checking

•

distributed hash table

Written at

EPFL

EPFL units
LARA  
NSL  
Available on Infoscience
May 29, 2008
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/26006
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