Blockchain and general purpose distributed ledgers are foundational technologies which bring significant innovation in the infrastructures and other underpinnings of our socio-economic systems. These P2P technologies are able to securely diffuse information within and across networks, without need for trustees or central authorities to enforce consensus. In this contribution, we propose a minimalistic stochastic model to understand the dynamics of blockchain-based consensus. By leveraging on random-walk theory, we model block propagation delay on different network topologies and provide a classification of blockchain systems in terms of two emergent properties. Firstly, we identify two performing regimes: a functional regime corresponding to an optimal system function; and a non-functional regime characterised by a congested or branched state of sub-optimal blockchains. Secondly, we discover a phase transition during the emergence of consensus and numerically investigate the corresponding critical point. Our results provide important insights into the consensus mechanism and sub-optimal states in decentralised systems.
翻译:这些P2P技术能够在网络内部和网络之间确保信息的安全传播,而不需要受托人或中央当局执行共识。在这个贡献中,我们提出一个最起码的随机随机分析模型,以了解基于街区链的共识的动态。我们利用随机行走理论,在不同的网络地形上封住传播延迟的模型,并按两种新出现的特性对块链系统进行分类。首先,我们确定两种绩效制度:一种与最佳系统功能相对应的功能制度;一种非功能性制度,其特征是次最佳系统链的凝聚或分支状态。第二,我们在形成共识时发现了一个阶段过渡,并对相应的临界点进行了数字调查。我们的结果为共识机制和分散系统中的次优化国家提供了重要的见解。