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A Semantic Approach to Emotion Recognition Using IBM Watson Bluemix tone Analyzer and translator Language

机译:使用IBM Watson Bluemix音调分析器和翻译器语言的语义识别方法

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Artificial intelligence has been a far-flung goal of computing since the conception of the computer, but we may be getting closer than ever with new cognitive computing models. Personal Assistant Agents (PAAs) can assist users to deal with the task of selecting news items and making decisions. The term cognitive computing is typically used to describe AI systems that aim to simulate human thought. Sentiment analysis and emotion detection that aim to build intelligent systems able to recognize and interpret human emotions. Emotions are considered a very important area because they impact interactions, thinking and behaviors. IBM Watson is one of the most famous company, among others, a lot of services for Natural Language Processing. The IBM Watson Developer cloud provides a library of cognitive services as REST APIs which are available on IBM Bluemix. A machine learning information retrieval tool and building on related work in this area which suggests a powerful correlation between the people, emotions, attitude and cognitive processes which shows more documentation that profiling and predicting user's identity is feasible. We introduce an E-ANRS as a solution to problem of cold-start by using IBM Bluemix server for first time, which provides two services are (language translator and tone analyzer). The experimental results obtained from research are, evaluation of RS which gives three parameters being precision (86%), recall (87%), and F1-score (86%). In another side we have two ways to measure accuracy of emotion for our model by using EEG and Self-Assessment-Manikin techniques. By the use of EEG signals as (attention and meditation), electrical activity of neurons within the brain EEG is used. The results of IBM service Language translation and tone analyzer accuracy for 40 tests are 42%. The main objective of this work is to demonstrate the feasibility of a translation-based approach to emotion recognition in texts.
机译:自从计算机概念诞生以来,人工智能一直是计算的远大目标,但是使用新的认知计算模型可能会比以往更加紧密。个人助理代理(PAA)可以帮助用户处理选择新闻项目和制定决策的任务。术语认知计算通常用于描述旨在模拟人类思想的AI系统。情感分析和情感检测旨在构建能够识别和解释人类情感的智能系统。情感被认为是非常重要的领域,因为它们会影响互动,思维和行为。 IBM Watson是最著名的公司之一,其中包括大量的Natural Language Processing服务。 IBM Watson Developer云提供了认知服务库作为REST API,可在IBM Bluemix上使用。一种机器学习信息检索工具,并以该领域的相关工作为基础,这表明人,情绪,态度和认知过程之间具有强大的关联性,这显示出更多的文件,表明对用户身份进行概要分析和预测是可行的。我们首次使用IBM Bluemix服务器引入了E-ANRS作为冷启动问题的解决方案,该服务器提供两种服务(语言翻译器和音调分析器)。从研究中获得的实验结果是对RS的评估,它给出了三个参数:精度(86%),召回率(87%)和F1得分(86%)。另一方面,我们有两种方法可以通过使用EEG和自我评估-人体模型技术来测量模型的情绪准确性。通过将EEG信号用作(注意力和冥想),可以使用大脑EEG中神经元的电活动。 IBM服务40项测试的语言翻译和语调分析器准确性的结果是42%。这项工作的主要目的是证明文本中基于翻译的情感识别方法的可行性。

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