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Enhancing Talent Search by Integrating and Querying Big HR Data

机译:通过整合和查询大型HR数据来增强人才搜寻

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For companies, the need to efficiently deal with vast amounts of integrated multi-source data is becoming crucial. Core concerns are 1) proper and flexible human re- sources management approaches, for 2) more effective resource allocation, as well as 3) team staffing. We here propose to address the talent search problem. Our approach is based on professional skills characterization and normalization. In addition, to help in matching between unstructured documents (such as between resumes and job descriptions). To this end, we first provide a complete information technology skills taxonomy, together with a taxonomy managing companies and their sector of activity. This, in order to enhance named entity recognition and normalization. We next design a flexible, scalable and secure architecture integrating multi-source big data, which provides efficient unstructured document analysis and matching. Finally, we evaluate the performance of our platform using real data.
机译:对于公司而言,有效处理大量集成多源数据的需求变得至关重要。核心关注点是:1)适当而灵活的人力资源管理方法,2)更有效的资源分配以及3)团队人员配备。我们在这里建议解决人才搜寻问题。我们的方法基于专业技能的表征和规范化。另外,有助于在非结构化文档之间进行匹配(例如,简历和职位描述之间)。为此,我们首先提供完整的信息技术技能分类,以及分类管理公司及其活动领域。这是为了增强命名实体的识别和规范化。接下来,我们将设计一个灵活,可扩展且安全的体系结构,该体系结构集成了多源大数据,可提供有效的非结构化文档分析和匹配。最后,我们使用真实数据评估平台的性能。

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