Real Time Video Surveillance for Automated Weapon Detection

Abstract

Closed circuit television systems CCTV play a vital role in evidence collection against crimes and criminals. The existing systems does not classify normal and abnormal events leading the police to become more reluctant to attend the crime scenes unless there was a visual verification, either by manned patrols or by electronic images from the surveillance cameras. The Proposed work is being used for surveillance, monitoring and classifications of weapons, live tracking and many more purposes. In this work, live surveillance videos is taken for monitoring and detecting the abnormal events based on real time image processing techniques. Operations of proposed project has three processing modules, first processing module is for object detection using Convolutional Neural Networks CNN and second processing module will handle the classification of weapons, monitoring and alarm operations will be carried out by the third processing module. CCTV will monitor circular area and it will automatically perform all operations and be controlled. Shape detection algorithms and object detection algorithms have been tested to find accuracy in detection and analysis the processing time before implementing in such environment and results provide optimal accuracy in matching weapons and objects type with name and shape in predefined database like ALEXNET. The proposed work drastically reduces the crime rate and it also provide a higher level security in certain areas and it will reduce the time required to catch the criminal. by Bhagyalakshmi. P | Indhumathi. P | Lakshmi. R | Dr. Bhavadharini "Real Time Video Surveillance for Automated Weapon Detection" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-3 | Issue-3 , April 2019, URL: https://www.ijtsrd.com/papers/ijtsrd22791.pdf Paper URL: https://www.ijtsrd.com/computer-science/other/22791/real-time-video-surveillance-for-automated-weapon-detection/bhagyalakshmi-p

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  • EP ID EP585429
  • DOI 10.31142/ijtsrd22791
  • Views 82
  • Downloads 0

How To Cite

(2019). Real Time Video Surveillance for Automated Weapon Detection. International Journal of Trend in Scientific Research and Development, 3(3), 465-470. https://europub.co.uk/articles/-A-585429