Model of Recommendation System to Enhance the Employability: Machine Learning Approach
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ICIMMI 2022: International Conference on Information Management & Machine Intelligence Jaipur India December 23 - 24, 2022
Abstract
In the recent era, various types of data are available on the Web
in various forms such as text, images, audio, and video. Extracting
information of interest from this web content is one of the applications
of Web Content Mining. Computer Science is one of the
most demanding fields where students can get the best recruitment
in the IT (Information Technology) industry through job portals.
Still, there is a gap of skills between academia and industry. One of
the prominent factors is non-competent syllabus. This Research Paper
introduces the Industry Institute Interaction Recommendation
System-IIIRS model of a Web Mining technique. It is based on a
recommendation system to enhance the employability of students,
by bridging the gap between the institution’s curriculum and the
required skills set at the industry end. The proposed model includes
application of data extraction, data pre-processing, classification,
and clustering. The model presents the state of the art skills required
by the software industry, and gives recommendations about
required updates in the syllabus of academic institute. The model
serves the purpose of both industry and academia by bridging the
gap of skill sets due to incompetent syllabus.
