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Purpose

This paper aims to investigate how financial leverage in cryptocurrency perpetual swap markets generates and transmits systemic risk.

Design/methodology/approach

Using daily and hourly derivatives data for 10 major cryptocurrencies on Binance’s USDT-margined perpetual swap market (2023–2024), the authors apply four complementary methods: a panel logit early-warning model, generalized forecast error variance decomposition, event-study cascade analysis and circuit-breaker counterfactual simulations.

Findings

Bitcoin open interest changes are the strongest crash predictor (odds ratio = 1.48, out-of-sample area under the receiver operating characteristic curve = 0.677). Ethereum emerges as the dominant net transmitter of risk in the connectedness network (total connectedness = 79.8%). Liquidation cascades propagate across 6 of 10 assets within 2 h. Circuit breakers could reduce crash severity by 6–12 percentage points.

Research limitations/implications

The analysis covers a single exchange and 10 assets; results may not generalize to multi-exchange or decentralized settings. The model is best suited as one component of a broader surveillance system.

Practical implications

Binance, the sampled exchange and comparable centralized derivatives venues can implement real-time leverage dashboards, adaptive margin requirements linked to aggregate open interest and pilot open-interest-based circuit breakers.

Social implications

Mitigating leverage-driven crashes protects retail investors disproportionately affected by liquidation cascades and strengthens confidence in digital asset markets.

Originality/value

To the best of the authors’ knowledge, this study provides the first integrated framework for analyzing leverage-driven systemic risk in crypto derivatives and the first quantitative evidence supporting leverage-based circuit breakers.

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