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摘要:
Real-time wild smoke detection utilizing machine based identification method is not produced proper accuracy,and it is not suitable for accurate prediction.However,various video smoke detection approaches involve minimum lighting,and it is required for the cameras to identify the existence of smoke particles in a scene.To overcome such challenges,our proposed work introduces a novel concept like deep VGG-Net Convolutional Neural Network(CNN)for the classification of smoke particles.This Deep Feature Synthesis algorithm automatically generated the characteristics for relational datasets.Also hybrid ABC optimization rectifies the problem related to the slow convergence since complexity is reduced.The proposed real-time algorithm uses some pre-processing for the image enhancement and next to the image enhancement processing;foreground and background regions are separated with Otsu thresholding.Here,to regulate the linear combination of foreground and background components alpha channel is applied to the image components.Here,Farneback optical flow evaluation technique diminishes the false finding rate and finally smoke particles are classified with the VGG-Net CNN classifier.In the end,the investigational outcome shows better statistical stability and performance regarding classification accuracy.The algorithm has better smoke detection performance among various video scenes.
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篇名 Hybrid Deep VGG-NET Convolutional Classifier for Video Smoke Detection
来源期刊 工程与科学中的计算机建模(英文) 学科 工学
关键词 SMOKE detection foreground EXTRACTION optical flow estimation classification FILTERING THRESHOLDING
年,卷(期) 2019,(6) 所属期刊栏目
研究方向 页码范围 427-458
页数 32页 分类号 TP3
字数 语种
DOI
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研究主题发展历程
节点文献
SMOKE
detection
foreground
EXTRACTION
optical
flow
estimation
classification
FILTERING
THRESHOLDING
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研究来源
研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
工程与科学中的计算机建模(英文)
月刊
1526-1492
江苏省南京市浦口区东大路2号东大科技园A
出版文献量(篇)
299
总下载数(次)
1
总被引数(次)
0
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