Artificial intelligence powered crime scene analysis service

Crime remains a major concern in modern culture. As a result, emphasizing prevention and ensuring prompt justice delivery are critical. In criminal investigations and law enforcement, forensic science plays a critical role. However, typical approaches in this field frequently rely on physical proced...

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Main Authors: Vanita Kshirsagar, Nishant Pachpor, Shubhangi Suryawanshi, Tanvi Chavan, Navya J. Nair, Purvesh Agrawal, Tejas Shahane
Format: Article
Language:English
Published: Elsevier 2025-12-01
Series:MethodsX
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Online Access:http://www.sciencedirect.com/science/article/pii/S2215016125002766
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author Vanita Kshirsagar
Nishant Pachpor
Shubhangi Suryawanshi
Tanvi Chavan
Navya J. Nair
Purvesh Agrawal
Tejas Shahane
author_facet Vanita Kshirsagar
Nishant Pachpor
Shubhangi Suryawanshi
Tanvi Chavan
Navya J. Nair
Purvesh Agrawal
Tejas Shahane
author_sort Vanita Kshirsagar
collection DOAJ
description Crime remains a major concern in modern culture. As a result, emphasizing prevention and ensuring prompt justice delivery are critical. In criminal investigations and law enforcement, forensic science plays a critical role. However, typical approaches in this field frequently rely on physical procedures, which are inefficient and likely to increase human mistakes, hampering the timely administration of justice. To tackle these issues, artificial intelligence skills were integrated into investigation processes. The suggested novel web application aims to help forensic investigators streamline crime scene investigations by automating important portions of the procedure.The system has three main functions: • fingerprint reconstruction, • weapon detection, and • human activity recognition.Its easy-to-use interface allows officials to upload images or videos from the crime scene in order to assist in reconstructions and detections. The fingerprint reconstruction model built using autoencoders outputs better partially covered fingerprint images with a validation loss of 0.0477 and a step loss of 0.0487, which helps detect the persons responsible for the event. Furthermore, the model for object detection, YOLO NAS, plays an important role in recognizing weapons that might be present at the scene, with an mAP of 77.8 %, while human activity detection techniques such as VGG16 have a total accuracy of 98.21 %.
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spelling doaj-art-b8a5c8c3b13c49fc995e599c452e1fd12025-08-20T03:32:03ZengElsevierMethodsX2215-01612025-12-011510343010.1016/j.mex.2025.103430Artificial intelligence powered crime scene analysis serviceVanita Kshirsagar0Nishant Pachpor1Shubhangi Suryawanshi2Tanvi Chavan3Navya J. Nair4Purvesh Agrawal5Tejas Shahane6Dr. D. Y. Patil Institute of Technology, Pimpri, Pune; Corresponding author.International Institute of Managment Science, PuneDr. D. Y. Patil Institute of Technology, Pimpri, PuneDr. D. Y. Patil Institute of Technology, Pimpri, PuneDr. D. Y. Patil Institute of Technology, Pimpri, PuneDr. D. Y. Patil Institute of Technology, Pimpri, PuneDr. D. Y. Patil Institute of Technology, Pimpri, PuneCrime remains a major concern in modern culture. As a result, emphasizing prevention and ensuring prompt justice delivery are critical. In criminal investigations and law enforcement, forensic science plays a critical role. However, typical approaches in this field frequently rely on physical procedures, which are inefficient and likely to increase human mistakes, hampering the timely administration of justice. To tackle these issues, artificial intelligence skills were integrated into investigation processes. The suggested novel web application aims to help forensic investigators streamline crime scene investigations by automating important portions of the procedure.The system has three main functions: • fingerprint reconstruction, • weapon detection, and • human activity recognition.Its easy-to-use interface allows officials to upload images or videos from the crime scene in order to assist in reconstructions and detections. The fingerprint reconstruction model built using autoencoders outputs better partially covered fingerprint images with a validation loss of 0.0477 and a step loss of 0.0487, which helps detect the persons responsible for the event. Furthermore, the model for object detection, YOLO NAS, plays an important role in recognizing weapons that might be present at the scene, with an mAP of 77.8 %, while human activity detection techniques such as VGG16 have a total accuracy of 98.21 %.http://www.sciencedirect.com/science/article/pii/S2215016125002766Multimodal Crime seane analysis
spellingShingle Vanita Kshirsagar
Nishant Pachpor
Shubhangi Suryawanshi
Tanvi Chavan
Navya J. Nair
Purvesh Agrawal
Tejas Shahane
Artificial intelligence powered crime scene analysis service
MethodsX
Multimodal Crime seane analysis
title Artificial intelligence powered crime scene analysis service
title_full Artificial intelligence powered crime scene analysis service
title_fullStr Artificial intelligence powered crime scene analysis service
title_full_unstemmed Artificial intelligence powered crime scene analysis service
title_short Artificial intelligence powered crime scene analysis service
title_sort artificial intelligence powered crime scene analysis service
topic Multimodal Crime seane analysis
url http://www.sciencedirect.com/science/article/pii/S2215016125002766
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