2022
DOI: 10.1002/cpe.7461
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Convolutional neural network based object detection system for video surveillance application

Abstract: Summary Video surveillance is emerging as a promising solution for the humans to lead a peaceful and independent life in their homes. The recognition and localization of moving objects plays a central role in the video surveillance. The manual surveillance is time consuming and tedious. Therefore, novel object detection via optimized deep learning model is developed in this work that supports the video surveillance application. In the initial phase, proposed angle and distance based Local Binary Pattern (LBP) … Show more

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Cited by 1 publication
(1 citation statement)
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References 35 publications
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“…In recent years, with the rapid development of artificial intelligence, various applications based on DCNN have attracted extensive attention in the industry. DCNN has not only made meaningful progress in the field of computer vision, such as image recognition and detection [1], target tracking [2], and video surveillance [3], but also made breakthroughs in other areas, such as natural language processing [4] network security [5], big data classification [6], speech recognition [7], and intelligent control [8].…”
Section: Introductionmentioning
confidence: 99%
“…In recent years, with the rapid development of artificial intelligence, various applications based on DCNN have attracted extensive attention in the industry. DCNN has not only made meaningful progress in the field of computer vision, such as image recognition and detection [1], target tracking [2], and video surveillance [3], but also made breakthroughs in other areas, such as natural language processing [4] network security [5], big data classification [6], speech recognition [7], and intelligent control [8].…”
Section: Introductionmentioning
confidence: 99%