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Title: | An Intelligent Decision Support System For Recruitment: Resumes Screening and Applicants Ranking |
Authors: | Amro, Belal Najjar, Arwa Macido, Mario |
Keywords: | recruitment Decision Support System (DSS), intelligent Decision Support System (IDSS), artificial intelligence AI machine learning ML Natural language processing NLP |
Issue Date: | 1-Jan-2022 |
Publisher: | Slovensko društvo INFORMATIKA |
Citation: | Najjar, A., Amro, B., & Macedo, M. (2021). An Intelligent Decision Support System For Recruitment: Resumes Screening And Applicants Ranking. Informatica, 45(4). |
Abstract: | The task of finding the best job candidates among a set of applicants is both time and resource consuming, especially when there are lots of applications. In this concern, the development of a decision support system represents a promising solution to support recruiters and facilitate their job. In this paper, we present an intelligent decision support system named I-Recruiter, that ranks applicants according to the semantic similarity between their resumes and job descriptions; the ranking process is based on machine learning and natural language processing techniques. I-Recruiter is composed of three sequentially connected blocks namely 1) Training block: which is responsible for training the model from a set of resumes, 2) Matching block: that is responsible for matching the resumes to the corresponding job description, and 3) Extracting block: that is responsible for extracting the top n ranked candidates. Experimental results for accuracy and performance showed that I-recruiter is capable of doing the job with high confidence and excellent performance. |
URI: | http://dspace.hebron.edu:80/xmlui/handle/123456789/1124 |
Appears in Collections: | Journals |
Files in This Item:
File | Description | Size | Format | |
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3356-9011-1-PB.pdf | open access | 380.08 kB | Adobe PDF | View/Open |
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