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A Novel Approach for Learning How to Automatically Match Job Offers and Candidate Profiles

机译:一种新颖的学习如何自动匹配作业优惠和候选配置文件

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摘要

Automatic matching of job offers and job candidates is a major problem for a number of organizations and job applicants that if it were successfully addressed could have a positive impact in many countries around the world. In this context, it is widely accepted that semi-automatic matching algorithms between job and candidate profiles would provide a vital technology for making the recruitment processes faster, more accurate and transparent. In this work, we present our research towards achieving a realistic matching approach for satisfactorily addressing this challenge. This novel approach relies on a matching learning solution aiming to learn from past solved cases in order to accurately predict the results in new situations. An empirical study shows us that our approach is able to beat solutions with no learning capabilities by a wide margin.
机译:自动匹配就业优惠和求职者是一些组织和求职者的主要问题,如果它成功地解决,可能在全球许多国家产生积极影响。在这种情况下,我们普遍接受的是,作业和候选轮廓之间的半自动匹配算法将为使招聘流程更快,更准确和透明提供重要技术。在这项工作中,我们展示了我们对实现这一挑战的令人满意的匹配方法的研究。这种新颖的方法依赖于匹配的学习解决方案,旨在从过去的解决案例中学习,以便准确地预测新情况的结果。实证研究表明,我们的方法能够通过广泛的保证金击败没有学习能力的解决方案。

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