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Main Author: Fujihara, Akihiro
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2407.14299
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author Fujihara, Akihiro
author_facet Fujihara, Akihiro
contents Some blockchain networks employ a distributed consensus algorithm featuring Byzantine fault tolerance. Notably, certain public chains, such as Cosmos and Tezos, which operate on a proof-of-stake mechanism, have adopted this algorithm. While it is commonly assumed that these blockchains maintain a nearly constant block creation time, empirical analysis reveals fluctuations in this interval; this phenomenon has received limited attention. In this paper, we propose a mathematical model to account for the processes of block propagation and validation within Byzantine fault-tolerant consensus blockchains, aiming to theoretically analyze the probability distribution of block time. First, we propose stochastic processes governing the broadcasting communications among validator nodes. Consequently, we theoretically demonstrate that the probability distribution of broadcast time among validator nodes adheres to the Gumbel distribution. This finding indicates that the distribution of block time typically arises from convolving multiple Gumbel distributions. Additionally, we derive an approximate formula for the block time distribution suitable for data analysis purposes. By fitting this approximation to real-world block time data, we demonstrate the consistent estimation of block time distribution parameters.
format Preprint
id arxiv_https___arxiv_org_abs_2407_14299
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Theoretical Analysis on Block Time Distributions in Byzantine Fault-Tolerant Consensus Blockchains
Fujihara, Akihiro
Distributed, Parallel, and Cluster Computing
Cryptography and Security
Data Analysis, Statistics and Probability
Some blockchain networks employ a distributed consensus algorithm featuring Byzantine fault tolerance. Notably, certain public chains, such as Cosmos and Tezos, which operate on a proof-of-stake mechanism, have adopted this algorithm. While it is commonly assumed that these blockchains maintain a nearly constant block creation time, empirical analysis reveals fluctuations in this interval; this phenomenon has received limited attention. In this paper, we propose a mathematical model to account for the processes of block propagation and validation within Byzantine fault-tolerant consensus blockchains, aiming to theoretically analyze the probability distribution of block time. First, we propose stochastic processes governing the broadcasting communications among validator nodes. Consequently, we theoretically demonstrate that the probability distribution of broadcast time among validator nodes adheres to the Gumbel distribution. This finding indicates that the distribution of block time typically arises from convolving multiple Gumbel distributions. Additionally, we derive an approximate formula for the block time distribution suitable for data analysis purposes. By fitting this approximation to real-world block time data, we demonstrate the consistent estimation of block time distribution parameters.
title Theoretical Analysis on Block Time Distributions in Byzantine Fault-Tolerant Consensus Blockchains
topic Distributed, Parallel, and Cluster Computing
Cryptography and Security
Data Analysis, Statistics and Probability
url https://arxiv.org/abs/2407.14299