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JRC: A Job Post and Resume Classification System for Online Recruitment

机译:JRC:在线招聘的职位发布和简历分类系统

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Due to the increasing growth in online recruitment, traditional hiring methods are becoming inefficient. This is due to the fact that job portals receive enormous numbers of unstructured resumes - in diverse styles and formats - from applicants with different fields of expertise and specialization. Therefore, the extraction of structured information from applicant resumes is needed not only to support the automatic screening of candidates, but also to efficiently route them to their corresponding occupational categories. This assists in minimizing the effort required by employers to manage and organize resumes, as well as to screen out irrelevant candidates. In this paper, we present JRC - a Job Post and Resume Classification system that exploits an integrated knowledge base for carrying out the classification task. Unlike conventional systems that attempt to search globally in the entire space of resumes and job posts, JRC matches resumes that only fall under their relevant occupational categories. To demonstrate the effectiveness of the proposed system, we have conducted several experiments using a real-world recruitment dataset. Additionally, we have evaluated the efficiency and effectiveness of proposed system against state-of-the-art online recruitment systems.
机译:由于在线招聘的增长,传统的招聘方法变得效率低下。这是由于以下事实:求职门户会收到来自具有不同专业知识和专业领域的申请人的大量非结构化简历,格式多样且格式多样。因此,不仅需要从求职者简历中提取结构化信息,以支持对候选人的自动筛选,而且还需要有效地将其路由到相应的职业类别。这有助于最大程度地减少雇主管理和组织简历以及甄别无关的候选人所需的精力。在本文中,我们提出了JRC-职位发布和简历分类系统,该系统利用集成知识库来执行分类任务。与试图在简历和职位的整个空间中进行全局搜索的常规系统不同,JRC匹配仅属于其相关职业类别的简历。为了证明所提出系统的有效性,我们使用了一个真实的招聘数据集进行了几次实验。此外,我们针对最新的在线招聘系统评估了拟议系统的效率和有效性。

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