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首页> 外文期刊>Fractals: An interdisciplinary journal on the complex geometry of nature >A NONLINEAR MODEL FOR A SMART SEMANTIC BROWSER BUT FOR A TEXT ATTRIBUTE RECOGNITION
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A NONLINEAR MODEL FOR A SMART SEMANTIC BROWSER BUT FOR A TEXT ATTRIBUTE RECOGNITION

机译:智能语义浏览器的非线性模型,但是对于文本属性识别

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摘要

In spite of the advances in the state of the art in semantic artificial intelligence applications, there is still a long way to go to bring it to a level of mass adoption. Thus, in order to contribute to the advancement of this topic, this study develops a feasible model with a potential scalability for semantic applications' mass adoption, specifically for news or statement cluster attribute identification, either positive, negative or neutral. This paper proposes a disruptive system based on Blockchain using a Semantic Browser Expert System Bot with artificial intelligence called Blockchain Semantic Browser Expert System (BSBES) to look for and analyze relevant information that significantly represents the cryptocurrencies adoption patterns. The artificial intelligence in this study consists of a deep learning neural network to process the input information to identify the news pattern in a semantic way using deep learning based on two aspects of the news: technical aspect and adoption aspect of the cryptocurrencies. BSBES performance is achieved based on deep learning tools, and scalability is supported by a blockchain system including a stability study.
机译:尽管最先进的语义人工智能应用的技术进步,但仍有很长的路要能把它带到批量采用水平。因此,为了促进该主题的进步,本研究开发了一种可行的模型,具有对语义应用程序的巨大采用的潜在可扩展性,特别是对于新闻或语句群集属性识别,为正,负或中性。本文提出了一种基于区块链的破坏性系统,使用具有名为BloctChain语义浏览器专家系统(BSBES)的人工智能的语义浏览器专家系统机器人来寻找和分析相关信息,该信息显着代表了加密货币采用模式。本研究中的人工智能由深度学习神经网络组成,用于根据新闻的两个方面处理输入信息以使用深度学习的语义方式来识别新闻模式:技术方面和收养货的采用方面。基于深度学习工具实现了BSBES性能,并通过包括稳定性研究的区块链系统支持可扩展性。

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