DeXposure: A Dataset and Benchmarks for Inter-protocol Credit Exposure in Decentralized Financial Networks
Wenbin Wu, Kejiang Qian, Alexis Lui, Christopher Jack, Yue Wu, Peter McBurney, Fengxiang He, Bryan Zhang

TL;DR
DeXposure introduces the first large-scale dataset for inter-protocol credit exposure in DeFi, enabling new machine learning benchmarks and insights into network evolution, sector dynamics, and shock propagation.
Contribution
It provides a comprehensive dataset and benchmarks for analyzing inter-protocol credit exposure in DeFi, facilitating research in network measurement, dynamic modeling, and risk analysis.
Findings
Rapid growth of credit exposure networks
Concentration of activity in key protocols
Distinct shock propagation patterns across sectors
Abstract
We curate the DeXposure dataset, the first large-scale dataset for inter-protocol credit exposure in decentralized financial networks, covering global markets of 43.7 million entries across 4.3 thousand protocols, 602 blockchains, and 24.3 thousand tokens, from 2020 to 2025. A new measure, value-linked credit exposure between protocols, is defined as the inferred financial dependency relationships derived from changes in Total Value Locked (TVL). We develop a token-to-protocol model using DefiLlama metadata to infer inter-protocol credit exposure from the token's stock dynamics, as reported by the protocols. Based on the curated dataset, we develop three benchmarks for machine learning research with financial applications: (1) graph clustering for global network measurement, tracking the structural evolution of credit exposure networks, (2) vector autoregression for sector-level credit…
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Taxonomy
TopicsFinancial Distress and Bankruptcy Prediction · Banking stability, regulation, efficiency · Blockchain Technology Applications and Security
