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How the interplay between power concentration, competition, and propagation affects the resource efficiency of
Paolo Barucca1, Carlo Campajola2, Jiahua Xu1,3
1Centre for Blockchain Technologies, Department of Computer Science, University College London, Gower Street, London WC1E 6BT, United Kingdom.
None:
Forks in the Bitcoin network arise as a natural consequence of competition within its Proof-of-Work consensus protocol, but lead to resource inefficiencies and compromise network security. The frequency of forks, therefore, serves as a critical indicator of a distributed ledger's operational efficiency. We model the fork rate in a network of heterogeneous miners as a function of the number of miners, their hash rate distribution, and block propagation times within the peer-to-peer infrastructure. Empirical evidence demonstrates that fork rates are well-approximated by the ratio of the median block propagation time to mining time. Our model provides a theoretical foundation for this relationship while also capturing the fork rate's additional dependency on miner heterogeneity. Our work establishes a robust mathematical setting for investigating factors often unobservable from existing empirical data, such as power concentration, competition, and asymmetric propagation times in distributed networks. Using this as a null model, we can detect anomalies in the historical fork rate-e.g. around 2016-indicating either high concentration of mining power or strongly heterogeneous latency in the Bitcoin network. We also estimate the mining power wasted in mining blocks on top of a nonlatest block, which potentiates accidental forks. The wastage amounts to approximately 16,000 MW in the most recent year, equivalent to half of the power generated in the United Kingdom.
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