Real-time DDoS attack detection based on deep learning

Distributed denial of service (DDoS) is a special form of denial of service (DoS) attack based on denial of service(DoS).It is a distributed,collaborative large-scale network attack.A DDoS detection method based on deep learning was presented.The method included two stages:feature processing and mod...

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Main Authors: Chuanhuang LI, Zhengjun SUN, Xiaoyong YUAN, Xiaolin LI, Liang GONG, Weiming WANG
Format: Article
Language:zho
Published: Beijing Xintong Media Co., Ltd 2017-07-01
Series:Dianxin kexue
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Online Access:http://www.telecomsci.com/zh/article/doi/10.11959/j.issn.1000−0801.2017191/
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author Chuanhuang LI
Zhengjun SUN
Xiaoyong YUAN
Xiaolin LI
Liang GONG
Weiming WANG
author_facet Chuanhuang LI
Zhengjun SUN
Xiaoyong YUAN
Xiaolin LI
Liang GONG
Weiming WANG
author_sort Chuanhuang LI
collection DOAJ
description Distributed denial of service (DDoS) is a special form of denial of service (DoS) attack based on denial of service(DoS).It is a distributed,collaborative large-scale network attack.A DDoS detection method based on deep learning was presented.The method included two stages:feature processing and model detection:feature extraction,format conversion and dimension reconstruction of the input data packet was performed in feature processing stage;in the model detection stage,the processed features were input to the depth learning network model to detect whether the input data packets was DDoS attack packet.The model was trained by the ISCX2012 dataset,and the model was validated by real-time DDoS attack.The experimental results show that DDoS attack detection method based on deep learning has high detection precision,little dependency on hardware and software equipment,and the model of depth learning network is easy to update.
format Article
id doaj-art-91f75bcc88e7426fbe20ddd8ce60fd89
institution Kabale University
issn 1000-0801
language zho
publishDate 2017-07-01
publisher Beijing Xintong Media Co., Ltd
record_format Article
series Dianxin kexue
spelling doaj-art-91f75bcc88e7426fbe20ddd8ce60fd892025-01-15T03:12:29ZzhoBeijing Xintong Media Co., LtdDianxin kexue1000-08012017-07-0133536559601230Real-time DDoS attack detection based on deep learningChuanhuang LIZhengjun SUNXiaoyong YUANXiaolin LILiang GONGWeiming WANGDistributed denial of service (DDoS) is a special form of denial of service (DoS) attack based on denial of service(DoS).It is a distributed,collaborative large-scale network attack.A DDoS detection method based on deep learning was presented.The method included two stages:feature processing and model detection:feature extraction,format conversion and dimension reconstruction of the input data packet was performed in feature processing stage;in the model detection stage,the processed features were input to the depth learning network model to detect whether the input data packets was DDoS attack packet.The model was trained by the ISCX2012 dataset,and the model was validated by real-time DDoS attack.The experimental results show that DDoS attack detection method based on deep learning has high detection precision,little dependency on hardware and software equipment,and the model of depth learning network is easy to update.http://www.telecomsci.com/zh/article/doi/10.11959/j.issn.1000−0801.2017191/distributed denial of servicedenial of servicedeep learning
spellingShingle Chuanhuang LI
Zhengjun SUN
Xiaoyong YUAN
Xiaolin LI
Liang GONG
Weiming WANG
Real-time DDoS attack detection based on deep learning
Dianxin kexue
distributed denial of service
denial of service
deep learning
title Real-time DDoS attack detection based on deep learning
title_full Real-time DDoS attack detection based on deep learning
title_fullStr Real-time DDoS attack detection based on deep learning
title_full_unstemmed Real-time DDoS attack detection based on deep learning
title_short Real-time DDoS attack detection based on deep learning
title_sort real time ddos attack detection based on deep learning
topic distributed denial of service
denial of service
deep learning
url http://www.telecomsci.com/zh/article/doi/10.11959/j.issn.1000−0801.2017191/
work_keys_str_mv AT chuanhuangli realtimeddosattackdetectionbasedondeeplearning
AT zhengjunsun realtimeddosattackdetectionbasedondeeplearning
AT xiaoyongyuan realtimeddosattackdetectionbasedondeeplearning
AT xiaolinli realtimeddosattackdetectionbasedondeeplearning
AT lianggong realtimeddosattackdetectionbasedondeeplearning
AT weimingwang realtimeddosattackdetectionbasedondeeplearning