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摘要:
Distributed denial of service(DDoS)attacks launch more and more frequently and are more destructive.Feature representation as an important part of DDoS defense technology directly affects the efficiency of defense.Most DDoS feature extraction methods cannot fully utilize the information of the original data,resulting in the extracted features losing useful features.In this paper,a DDoS feature representation method based on deep belief network(DBN)is proposed.We quantify the original data by the size of the network flows,the distribution of IP addresses and ports,and the diversity of packet sizes of different protocols and train the DBN in an unsupervised manner by these quantified values.Two feedforward neural networks(FFNN)are initialized by the trained deep belief network,and one of the feedforward neural networks continues to be trained in a supervised manner.The canonical correlation analysis(CCA)method is used to fuse the features extracted by two feedforward neural networks per layer.Experiments show that compared with other methods,the proposed method can extract better features.
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篇名 Novel DDoS Feature Representation Model Combining Deep Belief Network and Canonical Correlation Analysis
来源期刊 计算机、材料和连续体(英文) 学科 工学
关键词 DEEP BELIEF network DDOS FEATURE representation CANONICAL correlation analysis
年,卷(期) 2019,(8) 所属期刊栏目
研究方向 页码范围 657-675
页数 19页 分类号 TP3
字数 语种
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研究主题发展历程
节点文献
DEEP
BELIEF
network
DDOS
FEATURE
representation
CANONICAL
correlation
analysis
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研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
计算机、材料和连续体(英文)
月刊
1546-2218
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)
346
总下载数(次)
4
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0
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