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MRI India Journals Vol. 15 No. 1S (2026): Special Issue on Cognition, Human and Artificial Intelligence

AI-Based Motor Insurance Risk Assessment

Authors

  • Aarya Tehare R.C.Patel Institute of Technology Shirpur, India
  • Sandip Sonawane R.C.Patel Institute of Technology Shirpur, India
  • Mrunal Bhamare R.C.Patel Institute of Technology Shirpur, India
  • Mansi Mahale R.C.Patel Institute of Technology Shirpur, India
  • Vaibhavi Patil R.C.Patel Institute of Technology Shirpur, India

DOI:

https://doi.org/10.65521/ijaece.v15i1S.1361

Keywords:

AI-Based Risk Assessment Motor Insurance Telematics Data Driver Behavior Analysis Machine Learning

Abstract

The rapid evolution of intelligent transportation systems has created a growing demand for data-driven motor insurance models that evaluate risk more accurately. Traditional methods rely heavily on static factors such as driver profiles, vehicle categories, and historical claims, which fail to represent real-time driving behavior. This paper presents an AI-Based Motor Insurance Risk Assessment System leveraging gyroscope and accelerometer data to analyze driver motion and predict accident likelihood. The system captures orientation and movement changes from onboard sensors to identify harsh acceleration, sudden braking, and sharp turns—critical indicators of unsafe driving. Machine learning algorithms process this data to classify drivers based on risk level and support fair, data-driven premium estimation. Experimental results demonstrate improved precision in identifying highrisk drivers and reducing manual assessment errors. The proposed framework provides a scalable, intelligent approach for building safer and more transparent insurance ecosystems.

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Published

2026-01-19

How to Cite

Tehare, A., Sonawane, S., Bhamare, M., Mahale, M., & Patil , V. (2026). AI-Based Motor Insurance Risk Assessment. International Journal on Advanced Electrical and Computer Engineering, 15(1S), 211–215. https://doi.org/10.65521/ijaece.v15i1S.1361

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