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Decision Support System for Applicant’s Qualifications and Personality using Machine Learning

by Aldrin J. Diaz, Aira Grace A. Esguerra, Luijie C. Mangaliag, Shyrelle Gresh DG. Ruan, Jenniea A. Olalia, Maynard Gel F. Carse
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 187 - Number 22
Year of Publication: 2025
Authors: Aldrin J. Diaz, Aira Grace A. Esguerra, Luijie C. Mangaliag, Shyrelle Gresh DG. Ruan, Jenniea A. Olalia, Maynard Gel F. Carse
10.5120/ijca2025925300

Aldrin J. Diaz, Aira Grace A. Esguerra, Luijie C. Mangaliag, Shyrelle Gresh DG. Ruan, Jenniea A. Olalia, Maynard Gel F. Carse . Decision Support System for Applicant’s Qualifications and Personality using Machine Learning. International Journal of Computer Applications. 187, 22 ( Jul 2025), 1-6. DOI=10.5120/ijca2025925300

@article{ 10.5120/ijca2025925300,
author = { Aldrin J. Diaz, Aira Grace A. Esguerra, Luijie C. Mangaliag, Shyrelle Gresh DG. Ruan, Jenniea A. Olalia, Maynard Gel F. Carse },
title = { Decision Support System for Applicant’s Qualifications and Personality using Machine Learning },
journal = { International Journal of Computer Applications },
issue_date = { Jul 2025 },
volume = { 187 },
number = { 22 },
month = { Jul },
year = { 2025 },
issn = { 0975-8887 },
pages = { 1-6 },
numpages = {9},
url = { https://ijcaonline.org/archives/volume187/number22/decision-support-system-for-applicants-qualifications-and-personality-using-machine-learning/ },
doi = { 10.5120/ijca2025925300 },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Journal Article
%1 2025-07-26T00:56:02.630340+05:30
%A Aldrin J. Diaz
%A Aira Grace A. Esguerra
%A Luijie C. Mangaliag
%A Shyrelle Gresh DG. Ruan
%A Jenniea A. Olalia
%A Maynard Gel F. Carse
%T Decision Support System for Applicant’s Qualifications and Personality using Machine Learning
%J International Journal of Computer Applications
%@ 0975-8887
%V 187
%N 22
%P 1-6
%D 2025
%I Foundation of Computer Science (FCS), NY, USA
Abstract

The recruitment process is a critical phase for companies looking to hire competent and well-suited employees. However, traditional methods for evaluating applicants can be time-consuming, subjective and prone to bias. This study presents a decision support system that uses machine learning techniques to support the evaluation of job applicants based on qualifications and personality traits. The system processes input data from applicants' CVs and interview videos to extract relevant characteristics such as educational background, skills, certifications, work experience and the Big Five personality traits (openness, conscientiousness, extraversion, agreeableness and neuroticism). Resume data is analyzed using Natural Language Processing and keyword matching to assess qualifications, while video features are processed using audio-visual analysis and ML models to predict personality traits. The extracted data is then matched against employer-defined criteria and applicants are ranked according to their overall suitability. The proposed system aims to streamline the recruitment process, reduce human bias and improve the objectivity and efficiency of applicant assessment. The results show the potential of integrating ML into recruitment workflows for more informed and data-driven decision making.

References
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Index Terms

Computer Science
Information Sciences

Keywords

Decision Support System Machine Learning Applicant Evaluation Recruitment Natural Language Processing Personality Traits Audio-Visual Analysis Big Five