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SYSTEM AND METHOD FOR SELF-HEALING IN DECENTRALIZED MODEL BUILDING FOR MACHINE LEARNING USING BLOCKCHAIN

机译:基于区块链的机器学习分散模型构建自修复系统及方法

摘要

Decentralized machine learning to build models is performed at nodes where local training datasets are generated. A blockchain platform may be used to coordinate decentralized machine learning (ML) over a series of iterations. For each iteration, a distributed ledger may be used to coordinate the nodes communicating via a blockchain network. A node can include self-healing features to recover from a fault condition within the blockchain network in manner that does not negatively impact the overall learning ability of the decentralized ML system. During self-healing, the node can determine that a local ML state is not consistent with the global ML state and trigger a corrective action to recover the local ML state. Thereafter, the node can generate a blockchain transaction indicating that it is in-sync with the most recent iteration of training, and informing other nodes to reintegrate the node into ML.
机译:在生成本地训练数据集的节点上执行去中心化机器学习以建立模型。区块链平台可用于在一系列迭代中协调去中心化机器学习(ML)。对于每次迭代,可使用分布式分类帐来协调通过区块链网络进行通信的节点。节点可以包含自我修复功能,以不会对分散式ML系统的整体学习能力产生负面影响的方式从区块链网络中的故障状况中恢复。在自我修复期间,节点可以确定本地ML状态与全局ML状态不一致,并触发纠正措施以恢复本地ML状态。此后,该节点可以生成一个区块链事务,指示它与最新的训练迭代不同步,并通知其他节点将其重新集成到ML中。

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