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T-Shaped Mining: A Novel Approach to Talent Finding for Agile Software Teams

机译:T型采矿:敏捷软件团队的新型人才发现方法

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Human resources management is one of the most overriding parts of organizations. They are always willing to hire individuals who meet their requirements while do not impose high costs on the organization. Hence, most organizations, in particular, those which are engaged in Computer Engineering industry are inclined to find and employ individuals who are characterized by their deep disciplinary knowledge in one single area, and their ability to collaborate across different aspects of projects due to their general knowledge in other areas. Nowadays, Community Question Answering i.e. CQA websites are among the best places to find experts. In this study, we propose two models to find and then rank experts with specialty in a specific skill area, as well as general knowledge in the other skill areas i.e. T-shaped users. We estimate the profile diversity of users in our models to detect those who have the aforementioned feature in CQAs, particularly Stackoverflow. Our experiments on three real test collections generated from Stackoverflow's published data indicate the efficiency of the proposed models in comparison with the state-of-the-art expertise retrieval approach.
机译:人力资源管理是组织最重要的部分之一。他们总是愿意雇用符合他们要求的个人,而不会对组织造成高昂的成本。因此,大多数组织,特别是从事计算机工程行业的组织,倾向于寻找和雇用具有在一个单一领域内深厚的学科知识,并且由于他们的综合能力而在项目的不同方面进行协作的能力的个人。其他领域的知识。如今,社区问题解答(即CQA网站)是寻找专家的最佳场所。在这项研究中,我们提出了两种模型来查找具有特定技能领域的专业知识以及其他技能领域(即T型用户)的常识的专家,然后对其进行排名。我们在模型中估算用户的个人资料多样性,以检测在CQA中具有上述功能的用户,尤其是Stackoverflow。我们从Stackoverflow的已发布数据中生成的三个真实测试集合的实验表明,与最新的专业知识检索方法相比,所提出模型的效率更高。

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