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A Data-Driven Approach to Automatic Extraction of Professional Figure Profiles from Resumes

机译:一种从简历中自动提取专业人物资料的数据驱动方法

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The process of selecting and interviewing suitable candidates for a job position is time-consuming and labour-intensive. Despite the existence of software applications aimed at helping professional recruiters in the process, only recently with Industry 4.0 there has been a real interest in implementing autonomous and data-driven approaches that can provide insights and practical assistance to recruiters. In this paper, we propose a framework that is aimed at improving the performances of an Applicant Tracking System. More specifically, we exploit advanced Natural Language Processing and Text Mining techniques to automatically profile resources (i.e. candidates for a job) and offers by extracting relevant keywords and building a semantic representation of resumes and job opportunities.
机译:选择和面试适合职位的候选人的过程既费时又费力。尽管存在旨在在此过程中帮助专业招聘人员的软件应用程序,但直到最近工业4.0才真正引起人们的兴趣,以实施能够为招聘人员提供见解和实际帮助的自主和数据驱动的方法。在本文中,我们提出了一个旨在改善申请人跟踪系统性能的框架。更具体地说,我们利用先进的自然语言处理和文本挖掘技术,通过提取相关关键字并建立简历和工作机会的语义表示,自动剖析资源(即工作候选人)和提供的信息。

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