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Intrusion detection using text processing techniques with a kernel based similarity measure

delete2007-12-01
delete46
PRE
AI
A
Alok Sharma *
A
Arun K. Pujari
K
Kuldip K. Paliwal
DOI:10.1016/j.cose.2007.10.003delete
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摘要

摘要

En 中文
This paper focuses on intrusion detection based on system call sequences using text processing techniques. It introduces kernel based similarity measure for the detection of host-based intrusions. The k-nearest neighbour (kNN) classifier is used to classify a process as either normal or abnormal. The proposed technique is evaluated on the DARPA-1998 database and its performance is compared with other existing techniques available in the literature. It is shown that this technique is significantly better than the other techniques in achieving lower false positive rates at 100% detection rate. (c) 2007 Elsevier Ltd. All rights reserved.
Keyword:
intrusion detection
kNN classifier
similarity measure
anomaly detection
radial basis functions
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期刊

C
Computers and Security
IF:
5.4
论文数:
4.6K
被引数:
1.4W

机构

G
Griffith University
学者数:
1.5W
论文数: 1.6W
被引数: 2.5W
U
University of Hyderabad
学者数:
3.9K
论文数: 3.2K
被引数: 3.7K
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