Dissertação
Detecção de ataques de negação de serviço em redes de computadores através da transformada wavelet 2D
Fecha
2012-03-08Registro en:
AZEVEDO, Renato Preigschadt de. A BIDIMENSIONAL WAVELET TRANSFORM BASED ALGORITHM FOR DOS ATTACK DETECTION. 2012. 98 f. Dissertação (Mestrado em Ciência da Computação) - Universidade Federal de Santa Maria, Santa Maria, 2012.
Autor
Azevedo, Renato Preigschadt de
Institución
Resumen
The analysis of network traffic is a key area for the management of fault-tolerant systems,
since anomalies in network traffic can affect the availability and quality of service (QoS). Intrusion
detection systems in computer networks are used to analyze network traffic in order
to detect attacks and anomalies. The analysis based on anomalies allows attacks detection by
analyzing the behavior of the traffic network. This work proposes an intrusion detection tool
to quickly and effectively detect anomalies in computer networks generated by denial of service
(DoS). The detection algorithm is based on the two-dimensional wavelet transform (2D
Wavelet), a derived method of signal analysis. The wavelet transform is a mathematical tool
with low computational cost that explores the existing information present in the input samples
according to the different levels of the transformation. The proposed algorithm detects anomalies
directly based on the wavelet coefficients, considering threshold techniques. This operation
does not require the reconstruction of the original signal. Experiments were performed using
two databases: a synthetic (DARPA) and another one from data collected at the Federal
University of Santa Maria (UFSM), allowing analysis of the intrusion detection tool under different
scenarios. The wavelets considered for the tests were all from the orthonormal family of
Daubechies: Haar (Db1), Db2, Db4 and Db8 (with 1, 2, 4 and 8 null vanishing moments respectively).
For the DARPA database we obtained a detection rate up to 100% using the Daubechies
wavelet transform Db4, considering normalized wavelet coefficients. For the database collected
at UFSM the detection rate was 95%, again considering Db4 wavelet transform with normalized
wavelet coefficients.
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