Investigating shocking events in the Ethereum stablecoin ecosystem through temporal multilayer graph structure
Cheick Tidiane Ba, Richard G. Clegg, Ben A. Steer, Matteo Zignani

TL;DR
This paper introduces a novel temporal multilayer graph approach to analyze shock events in the Ethereum stablecoin ecosystem, revealing pre- and post-crash signals and interlayer correlations during the TerraUSD and LUNA collapse.
Contribution
It pioneers the use of temporal, cross-chain graph analysis for studying cryptocurrency crashes, highlighting the importance of multi-scale temporal analysis in blockchain data.
Findings
Strong interconnections among stablecoins pre-crash
Significant structural changes post-crash
Anomalous signals detected before, during, and after collapse
Abstract
In the dynamic landscape of the Web, we are witnessing the emergence of the Web3 paradigm, which dictates that platforms should rely on blockchain technology and cryptocurrencies to sustain themselves and their profitability. Cryptocurrencies are characterised by high market volatility and susceptibility to substantial crashes, issues that require temporal analysis methodologies able to tackle the high temporal resolution, heterogeneity and scale of blockchain data. While existing research attempts to analyse crash events, fundamental questions persist regarding the optimal time scale for analysis, differentiation between long-term and short-term trends, and the identification and characterisation of shock events within these decentralised systems. This paper addresses these issues by examining cryptocurrencies traded on the Ethereum blockchain, with a spotlight on the crash of the…
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Taxonomy
TopicsOpinion Dynamics and Social Influence · Complex Network Analysis Techniques
