Student Future Prediction System Under Filtering Mechanism
L. K. Joshila Grace

L. K. Joshila Grace Professor, School of Computing, Sathyabama Institute of Science and Technology, Chennai (TamilNadu), India.

Manuscript received on 20 August 2019 | Revised Manuscript received on 27 August 2019 | Manuscript Published on 31 August 2019 | PP: 761-765 | Volume-8 Issue-9S2 August 2019 | Retrieval Number: I11580789S219/19©BEIESP DOI: 10.35940/ijitee.I1158.0789S219

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Abstract: Information is progressively being utilized to improve regular day to day existence less demanding and. Applications, for example, holding up time estimation, traffic expectation, and stopping look are genuine instances of how information from various sources can be utilized to encourage our day by day life.In this period of computerization, instruction has additionally patched up itself and isn’t constrained to old address strategy. The ordinary mission is on to discover better approaches to make it increasingly successful and effective for understudies. These days, loads of information is gathered in instructive databases, yet it remains unutilized. So as to get required advantages from such major information, amazing assets are required. Information mining is a developing integral asset for investigation and forecast. In this investigation, we consider an under-used information source: college ID cards. Such cards are utilized on numerous grounds to buy nourishment, enable access to various territories, and even gauge participation in classes. In this article, we use information from our college to investigate use of the college wellness focus and fabricate an indicator for future visit volume. The work makes a few commitments: it exhibits the extravagance of the information source, demonstrates how the information can be utilized to improve understudy administrations, finds fascinating patterns and conduct, and fills in as a contextual analysis outlining the whole information science process. One objective of this article is to show the information science process. As far as information accumulation, two arrangements of information—timestamp information from card swipes at the Student Recreation Centre (SRC) and client profile information—were gathered from our Management of University. The gathered information was cleaned and further prepared. At that point, exploratory information investigation was performed to find fascinating examples. General understudy practice patterns were found from the timestamp dataset. These incorporate yearly/month to month/every day frequencies of understudy visits to the SRC and pinnacle hours amid multi day.

Keywords: Student Recreation Centre (SRC), Identity Card (ID), Data Mining
Scope of the Article: Autonomic Computing and Agent-Based Systems