Publication:
Crime Analysis, Prediction and Simulation Platform Based on Machine Learning

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Article

Date

2021-12

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2021 3rd International Conference on Advancements in Computing (ICAC), SLIIT

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Abstract

As a global social-economical problem, crime has shown complex correlations with spatial-temporal, socio-economical, and environmental factors. Understanding patterns and interactions in the crimes is essential to prepare better to respond to those criminal activities. This study is focused on research and development of crime analysis, prediction and simulation platform that provides descriptive analysis, predictive crime analysis, Reinforcement learning based crime entity simulations and safest route navigation services based on crime data from the city of San Francisco. Ultimately, the proposed crime analysis, prediction and simulation platform provides critical information on root causes and statistical patterns of crime and future crime predictions for the policymakers and security officials to create strategies to minimise the crimes.

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Machine Learning, Deep Learning, Data Science, Crime Predictions, Reinforcement Learning

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