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Bibliographic Details
Main Authors: Velampalli, Sirisha, Muniyappa, Chandrashekar
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2502.18315
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author Velampalli, Sirisha
Muniyappa, Chandrashekar
author_facet Velampalli, Sirisha
Muniyappa, Chandrashekar
contents The extraction of information from semi-structured text, such as resumes, has long been a challenge due to the diverse formatting styles and subjective content organization. Conventional solutions rely on specialized logic tailored for specific use cases. However, we propose a revolutionary approach leveraging structured Graphs, Natural Language Processing (NLP), and Deep Learning. By abstracting intricate logic into Graph structures, we transform raw data into a comprehensive Knowledge Graph. This innovative framework enables precise information extraction and sophisticated querying. We systematically construct dictionaries assigning skill weights, paving the way for nuanced talent analysis. Our system not only benefits job recruiters and curriculum designers but also empowers job seekers with targeted query-based filtering and ranking capabilities.
format Preprint
id arxiv_https___arxiv_org_abs_2502_18315
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle GraphRank Pro+: Advancing Talent Analytics Through Knowledge Graphs and Sentiment-Enhanced Skill Profiling
Velampalli, Sirisha
Muniyappa, Chandrashekar
Artificial Intelligence
Machine Learning
05C81
I.2.7
The extraction of information from semi-structured text, such as resumes, has long been a challenge due to the diverse formatting styles and subjective content organization. Conventional solutions rely on specialized logic tailored for specific use cases. However, we propose a revolutionary approach leveraging structured Graphs, Natural Language Processing (NLP), and Deep Learning. By abstracting intricate logic into Graph structures, we transform raw data into a comprehensive Knowledge Graph. This innovative framework enables precise information extraction and sophisticated querying. We systematically construct dictionaries assigning skill weights, paving the way for nuanced talent analysis. Our system not only benefits job recruiters and curriculum designers but also empowers job seekers with targeted query-based filtering and ranking capabilities.
title GraphRank Pro+: Advancing Talent Analytics Through Knowledge Graphs and Sentiment-Enhanced Skill Profiling
topic Artificial Intelligence
Machine Learning
05C81
I.2.7
url https://arxiv.org/abs/2502.18315