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Practical Comparison of Distributed Ledger Technologies for IoT

机译:IOT分布式分区技术的实际比较

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Existing distributed ledger implementations - specifically, several blockchain implementations - embody a cacophony of divergent capabilities augmenting innovations of cryptographic hashes, consensus mechanisms, and asymmetric cryptography in a wide variety of applications. Whether specifically designed for cryptocurrency or otherwise, several distributed ledgers rely upon modular mechanisms such as consensus or smart contracts. These components, however, can vary substantially among implementations; differences involving proof-of-work, practical byzantine fault tolerance, and other consensus approaches exemplify distinct distributed ledger variations. Such divergence results in unique combinations of modules, performance, latency, and fault tolerance. As implementations continue to develop rapidly due to the emerging nature of blockchain technologies, this paper encapsulates a snapshot of sensor and internet of things (IoT) specific implementations of blockchain as of the end of 2016. Several technical risks and divergent approaches preclude standardization of a blockchain for sensors and IoT in the foreseeable future; such issues will be assessed alongside the practicality of IoT applications among Hyperledger, Iota, and Ethereum distributed ledger implementations suggested for IoT. This paper contributes a comparison of existing distributed ledger implementations intended for practical sensor and IoT utilization. A baseline for characterizing distributed ledger implementations in the context of IoT and sensors is proposed. Technical approaches and performance are compared considering IoT size, weight, and power limitations. Consensus and smart contracts, if applied, are also analyzed for the respective implementations' practicality and security. Overall, the maturity of distributed ledgers with respect to sensor and IoT applicability will be analyzed for enterprise interoperability.
机译:现有的分布式分类账实现 - 具体而言,多个区块链实现 - 体现了在各种应用中增强了加密哈希,共识机制和非对称密码的创新的传染性。无论是专门用于密码货币还是其他分布式解剖员,都依靠模块化机制,例如共识或智能合同。然而,这些组件可以在实施中显着变化;涉及工作验证,实用拜占庭容错等差异以及其他共识方法举例说明了不同的分布式分类帐变化。这种发散导致模块,性能,延迟和容错的独特组合。由于实施截至2016年底,由于区块链技术的新兴性,实现了截至2016年底,截至2016年底,截至2016年底,截至2016年底,截至2016年底,截至2016年底,截至2016年底,截至2016年底,截至2016年底。在可预见的未来区区间为传感器和物联网;除了为IOT中建议的超级载体,IOTA和Ethereum分布式分类账的实用性,将评估此类问题。本文有助于实际传感器和IOT利用率的现有分布式分区实现的比较。提出了一种在IOT和传感器的上下文中表征分布式分类帐实现的基线。考虑到IOT规模,重量和功率限制的比较技术方法和性能。如果申请,共识和智能合同也分析了各自的实施的实用性和安全性。总的来说,对于传感器和物联网适用性的分布式分区的成熟将被分析企业互操作性。

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