使用堆叠模型筛选和排序简历

Rasika Ransing, Akshaya Mohan, N. B. Emberi, Kailas Mahavarkar
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引用次数: 2

摘要

对于所有公司来说,无论其业务规模大小,人才获取都是必不可少的。由于手动浏览大量简历几乎是不可能的,我们创建了一个自动简历筛选应用程序。该系统利用了KNN、线性SVC和XGBoost等机器学习算法。构建了一个包含所有这些算法的两层叠加模型,该模型有助于从文本描述中准确预测特定的职位概况。这个框架对于组织来说是很有价值的,他们可以等待竞争者的名单,而且对于申请人来说,他们可以检查他们的简历是否很好,以便系统从中识别出正确的工作概况。此外,该网站还为这些公司设置了一个排名系统,将最相关的资料放在最上面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Screening and Ranking Resumes using Stacked Model
Talent acquisition is essential for all companies irrespective of the size of their business. As it is next to impossible to look through numerous resumes manually, we have created an automated resume screening application. This system makes use of Machine Learning algorithms such as KNN, Linear SVC, and XGBoost. A two-level stacked model containing all these algorithms is constructed which helps in predicting specific job profiles from a text description accurately. This framework can be valuable for organizations to waitlist competitors and furthermore for the applicants who can check if their resume is very much shaped for the system to recognize right work profiles from it. A ranking system is also implemented, for the companies, featuring the most relevant profiles on the top.
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