区块链在工业物联网中的深度学习应用

Vipul Masal, P. Pavithra, Shivesh Tiwari, Rajesh Singh, Jeidy Panduro-Ramirez, Durgaprasad Gangodkar
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引用次数: 0

摘要

一些国家对制造业再生和增长的雄心壮志,以及工业物联网(IIoT)架构可能带来的速度、灵活性或成本优势,正吸引着相当大的兴趣。虽然区块链或机器学习技术,特别是深度学习,可能会为工业物联网提供最新的可行用例,但它们的运作方式相当对立。在信息保护等信息监管标准的假设下,区块链有助于机器学习的关键信息收集。然而,由于使用机器学习的大信息洞察,它可能容易受到数据泄露的影响。为了使机器学习/区块链与各种工业化应用相关并适用,在工业物联网框架内彻底掌握它们的演变是至关重要的。在本文中,我们对区块链和机器学习在工业物联网中的机会进行了总结和分析,重点是协议方法、保存或传输。本研究从机器学习的角度更好地了解了区块链重要方面的保护和保密问题,这有利于为工业物联网创建可行的区块链替代方案。
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Deep Learning Applications for Blockchain in Industrial IoT
The engaging ambitions of regeneration & growth of manufacturing in several nations, as well as the speed, flexibility, or expense benefits that might arise from the architecture of the industrial Internet of Things (IIoT), are attracting considerable interest. While blockchain or machine learning techniques, particularly deep learning, might offer the latest viable use cases for IIoT, they operate in a rather antagonistic manner. Underneath the assumption of information regulatory standards such as information protections, blockchain helps the crucial information collecting for machine learning. However, it may be susceptible to a data breach as a result of big information insights using machine learning. To enable machine learning/blockchain relevant & applicable for a variety of industrialized applications, it is of the utmost essential to have a thorough grasp of their evolution within the framework of IIoT. In this paper, we present a summary & analytics of the opportunity of blockchain as well as machine learning in the IIoT, focusing on the agreement method, preservation, or transmission. This study gives a better knowledge of the protection & confidentiality issues of a blockchain’s vital aspects from the viewpoint of machine learning, and that is beneficial for the creation of viable blockchain alternatives for IIoT.
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