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A Density-Delay Law for Stable Event-Driven State Progression in Open Distributed Systems

arXiv:2603.2675870.5h-index: 2
AI Analysis

This provides a fundamental stability constraint for open distributed systems with exclusive state progression, offering a scaling-based interpretation of Bitcoin-style difficulty adjustment.

The paper derives a density-delay law for stable event-driven state progression in open distributed systems, showing that maintaining bounded fork depth requires the density-delay product to remain O(1), implying an inverse-scaling law for unit-level proposal intensity. Simulations across varying network sizes and delays confirm the predicted scaling behavior.

Distributed systems in which concurrent proposals are mutually exclusive face a fundamental stability constraint under network delay. In open systems where global state progression is event-driven rather than round-driven, propagation delay creates a conflict window within which overlapping proposals may generate competing branches. This paper derives a density-delay law for such exclusive state progression processes. Under independent proposal arrivals and bounded propagation delay, overlap is approximated by a Poisson model and fork depth is represented by a birth-death process. The analysis shows that maintaining bounded fork depth as the number of participants grows requires the density-delay product $λΔ$ to remain $O(1)$, implying that aggregate proposal intensity must stay bounded and yielding an inverse-scaling law $g(N)=O(1/N)$ at the unit level. Simulation experiments across varying network sizes and propagation delays align with a common density-delay curve, supporting the predicted scaling behavior. The result provides a compact law for stable event-driven state progression in open distributed systems and offers a scaling-based interpretation of Bitcoin-style difficulty adjustment as a decentralized way to regulate effective event density.

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