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eISSN: 2581-9615 || CODEN: WJARAI || Impact Factor 8.2 ||  CrossRef DOI

Research and review articles are invited for publication in March 2026 (Volume 29, Issue 3) Submit manuscript

Crime data analysis and prediction of arrest using machine learning

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  • Crime data analysis and prediction of arrest using machine learning

Revanth Sankul, Tejaswi Reddy Aruva *, Sai Varun Kankal, Greeshma Arrapogula and Shoeib Khan Mohammed

Department of CSE (Data Science), ACE Engineering College, Hyderabad, Telangana, India.

Research Article

World Journal of Advanced Research and Reviews, 2025, 25(02), 498-506

Article DOI: 10.30574/wjarr.2025.25.2.0385

DOI url: https://doi.org/10.30574/wjarr.2025.25.2.0385

Received on 26 December 2024; revised on 01 February 2025; accepted on 04 February 2025

In order to forecast future criminal activity and improve law enforcement tactics, crime data analysis and arrest prediction entails looking at past crime data to find patterns and trends. This area analyzes a variety of variables, including time, place, demography, and the kinds of crimes committed, using statistical methods, machine learning algorithms, and data mining. The objective is to give law enforcement organizations useful information so they may better allocate resources, determine crime, and enhance public safety. It entails combining data from multiple sources, such as arrest logs, crime reports, socioeconomic information, and even environmental elements like urbanization and weather trends. To comprehend how crime trends change over time, sophisticated analytical methods such as random forest is used in predicting the arrests.

Machine Learning; Predicting the arrest using Random forest Algorithm; User friendly stream lit interface; Statistical methods; Crime Reports; Crime data Analysis

https://wjarr.com/sites/default/files/fulltext_pdf/WJARR-2025-0385.pdf

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Revanth Sankul, Tejaswi Reddy Aruva, Sai Varun Kankal, Greeshma Arrapogula and Shoeib Khan Mohammed. Crime data analysis and prediction of arrest using machine learning. World Journal of Advanced Research and Reviews, 2025, 25(2), 498-506. Article DOI: https://doi.org/10.30574/wjarr.2025.25.2.0385

Copyright © Author(s). All rights reserved. This article is published under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, sharing, adaptation, distribution, and reproduction in any medium or format, as long as appropriate credit is given to the original author(s) and source, a link to the license is provided, and any changes made are indicated.


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