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Sentiment Analysis Through Machine Learning for the Support on Decision-Making in Job Interviews

机译:通过机器学习进行情感分析以支持面试中的决策

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In this paper, we propose a sentiment analysis model using machine learning for the support on decision-making in the process of job interviews. To do this, a characterization of the analysis of sentiments, job interviews and machine learning algorithms is first performed. Then, supervised machine learning with artificial neural networks is implemented in a prototype, due to the non-linear behavior described in the variables taken in the study and applying the Eye tracking technique. Finally, tests are carried out with people, in which, by asking questions of these, the involuntary movements of the pupil of the eye are analyzed, through the processing of a volume of data and the results of the ocular patterns are interpreted. Correlated with the questions of the test and with it, a final judgment is presented for the support of the decision making.
机译:在本文中,我们提出了一种使用机器学习的情绪分析模型,以在面试过程中为决策提供支持。为此,首先要进行情绪分析,工作面试和机器学习算法的表征。然后,由于在研究中采用的变量和应用眼动追踪技术所描述的非线性行为,在原型中实施了带有人工神经网络的监督机器学习。最后,对人进行测试,通过询问这些问题,通过处理大量数据来分析眼睛瞳孔的非自愿运动,并解释眼图的结果。与测试问题及其相关联,提出最终判决以支持决策。

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