Minimizing Commit Rules for DAG-based Atomic Broadcast
Petr Kuznetsov, Maxence Perion, Sara Tucci-Piergiovanni
Abstract
A popular class of Byzantine fault-tolerant atomic broadcast protocols rely on directed acyclic graphs (DAGs) that represent causal relations between broadcast messages. Each process applies a protocol-specific commit rule on its local DAG to determine which vertices can be delivered in a total order. Intuitively, commit rules that impose fewer conditions on the DAG to order its vertices imply more efficient protocols, as the broadcast messages are delivered with lower latency. In this paper, we define commit rules on an uncertified round-based DAG construction, and introduce a sub-rule relation between them: a commit rule cr1 is a sub-rule of a commit rule cr2 if, for any DAG, the set of vertices committed by cr1 contains all vertices committed by cr2. We use the sub-rule relation to determine a minimal commit rule in an eventually synchronous model and a minimal commit rule in an asynchronous model, namely, two commit rules that require the least conditions on the DAG to safely commit any set of vertices in their respective models. To the best of our knowledge, no existing DAG-based atomic broadcast protocol relies on such minimal commit rules: we introduce Minnow, a new protocol for DAG-based atomic broadcast, which can be instantiated in both eventually synchronous (S-Minnow) and asynchronous networks (A-Minnow).
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