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- W3047611261 abstract "Security is always a main concern in every domain, due to a rise in crime rate in a crowded event or suspicious lonely areas. Abnormal detection and monitoring have major applications of computer vision to tackle various problems. Due to growing demand in the protection of safety, security and personal properties, needs and deployment of video surveillance systems can recognize and interpret the scene and anomaly events play a vital role in intelligence monitoring. This paper implements automatic gun (or) weapon detection using a convolution neural network (CNN) based SSD and Faster RCNN algorithms. Proposed implementation uses two types of datasets. One dataset, which had pre-labelled images and the other one is a set of images, which were labelled manually. Results are tabulated, both algorithms achieve good accuracy, but their application in real situations can be based on the trade-off between speed and accuracy." @default.
- W3047611261 created "2020-08-10" @default.
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- W3047611261 date "2020-07-01" @default.
- W3047611261 modified "2023-10-17" @default.
- W3047611261 title "Weapon Detection using Artificial Intelligence and Deep Learning for Security Applications" @default.
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- W3047611261 doi "https://doi.org/10.1109/icesc48915.2020.9155832" @default.
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