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DeepLinQ: Distributed Multi-Layer Ledgers for Privacy-Preserving Data Sharing

机译:DEEPLINQ:分布式多层LEGGERS,用于保护保留数据共享

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This paper presents requirements to DeepLinQ and its architecture. DeepLinQ proposes a multi-layer blockchain architecture to improve flexibility, accountability, and scalability through on-demand queries, proxy appointment, subgroup signatures, granular access control, and smart contracts in order to support privacy-preserving distributed data sharing. In this data-driven AI era where big data is the prerequisite for training an effective deep learning model, DeepLinQ provides a trusted infrastructure to enable training data collection in a privacy-preserved way. This paper uses healthcare data sharing as an application example to illustrate key properties and design of DeepLinQ.
机译:本文提出了Deeplinq及其架构的要求。 DeeplinQ提出了一种多层区块链架构,通过按需查询,代理预约,子组签名,粒度访问控制和智能合同来提高灵活性,责任和可扩展性,以支持隐私保留分布式数据共享。在这种数据驱动的AI时代,其中大数据是培训有效的深度学习模型的先决条件,DeeplinQ提供了可信赖的基础架构,以便以隐私保存的方式培训数据收集。本文使用医疗保健数据共享作为应用示例,以说明deeplinq的关键属性和设计。

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