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HLD-DDoSDN: High and low-rates dataset-based DDoS attacks against SDN.

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A new realistic dataset, HLD-DDoSDN, addresses limitations in detecting Distributed Denial of Service (DDoS) attacks against Software Defined Networks (SDN). It enables superior detection of high and low-rate DDoS flooding attacks.

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Area of Science:

  • Computer Science
  • Network Security

Background:

  • Software Defined Networks (SDN) offer flexibility but are vulnerable to Distributed Denial of Service (DDoS) attacks targeting the controller.
  • Existing detection methods lack evaluation on realistic datasets and struggle with high-rate DDoS attacks.

Purpose of the Study:

  • Introduce HLD-DDoSDN, a novel, realistic dataset for evaluating DDoS attack detection in SDN environments.
  • Provide a benchmark dataset that includes diverse traffic fluctuations and prevalent attack types.

Main Methods:

  • Developed the HLD-DDoSDN dataset, incorporating User Internet Control Message Protocol (ICMP), Transmission Control Protocol (TCP), and User Datagram Protocol (UDP) based DDoS attacks.
  • Qualitatively compared HLD-DDoSDN with existing SDN datasets and quantitatively evaluated its performance across eight scenarios.
  • Utilized a Deep Multilayer Perception (D-MLP) based detection approach to evaluate the dataset's features.

Main Results:

  • HLD-DDoSDN demonstrates superiority over existing SDN datasets.
  • The dataset features are highly effective for detecting realistic SDN attacks.
  • The D-MLP detection approach achieved high accuracy, recall, and precision for both high and low-rate DDoS flooding attacks.

Conclusions:

  • HLD-DDoSDN is a comprehensive benchmark dataset crucial for advancing DDoS attack detection in SDN.
  • The dataset facilitates the development and validation of robust security mechanisms for SDN controllers.
  • Effective detection of various DDoS attack types and rates is achievable with appropriate datasets and detection methods.