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Journal of Multidisciplinary Applied Natural Science

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Scopus CiteScore 2025

2.1

Calculated on 05 May, 2025

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0.25

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Journal of Multidisciplinary Applied Natural Science

##plugins.themes.gdThemes.general.eIssn##: 2774-3047


Том 6 № 3 (2026) Articles https://doi.org/10.47352/jmans.2774-3047.455

A Novel Intelligent Drone Assist Framework for Identifying Crime in Public

Vidyarani Hamppayanamalige Jayaprakash Girija Sanjeevaiah Mohankumar Venugopal Ganesh Hamppatanamalige Jayaprakash Nishchitha Malligere Harendra Kumar

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Vidyarani Hamppayanamalige Jayaprakash

https://orcid.org/0000-0001-8566-5084
  • vidyarani.is@drait.edu.in
  • Department of Computer Science and Business System, Dr. Ambedkar Institute of Technology, Karnataka-560056 (India)
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Girija Sanjeevaiah

https://orcid.org/0000-0002-4267-5466
  • girija.ec@drait.edu.in
  • Department of Information Science and Engineering, Dr. Ambedkar Institute of Technology, Bengaluru, Karnataka-560056 (India)
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Mohankumar Venugopal

https://orcid.org/0000-0001-9569-6888
  • mohankumar.ec@drait.edu.in
  • Department of Artificial Intelligence and Machine Learning, Dr. Ambedkar Institute of Technology, Bengaluru, Karnataka-560056 (India)
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Ganesh Hamppatanamalige Jayaprakash

https://orcid.org/0009-0006-0945-2064
  • ganesh.ai@drait.edu.in
  • Department of Artificial Intelligence and Machine Learning, Dr. Ambedkar Institute of Technology, Bengaluru, Karnataka-560056 (India)
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Nishchitha Malligere Harendra Kumar

https://orcid.org/0009-0005-0568-3220
  • nishchithamh@gmail.com
  • Department of Robotics and Artificial Intelligence, Dayananda Sagar College of Engineering, Bengaluru, Karnataka-560111 (India)
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##plugins.themes.gdThemes.publishedIn##: липня 10, 2026

[1]
V. H. Jayaprakash, G. Sanjeevaiah, M. Venugopal, G. H. Jayaprakash, і N. M. H. Kumar, «A Novel Intelligent Drone Assist Framework for Identifying Crime in Public», J. Multidiscip. Appl. Nat. Sci., вип. 6, вип. 3, с. 1481–1501, Лип 2026.

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Анотація

The rapid emergence of digital technologies and the increased of using intelligent devices have led to a significant increase in crime incidents. Therefore, there is an emerging need to develop highly accurate and efficient detection frameworks. Hence, this work introduces an intelligent drone-assisted crime-detection system based on a novel Puma Multilayer Perceptron Detection Framework. The images are collected from a Kaggle dataset. The image dataset is pre-processed in a Python environment, with image quality improved by removing noise and normalizing the images. Further, discriminative image features are selected by the Puma Optimization Algorithm. It efficiently selects the optimal features by balancing between detection accuracy and dimensionality reduction. The optimized feature set is then classified using a multilayer perceptron. All these processes aim to accurately detect criminal activities. The efficiency of the proposed model is evaluated using standard metrics, including accuracy, precision, recall, F-score, and error rate, and the results are compared with those of traditional detection approaches. The experimental results show that the proposed framework improves detection accuracy and reliability, making it effective for intelligent drone-based crime monitoring.

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