SOS

Author:

Keromytis Angelos D.1,Misra Vishal1,Rubenstein Dan1

Affiliation:

1. Columbia University, New York, NY

Abstract

Denial of service (DoS) attacks continue to threaten the reliability of networking systems. Previous approaches for protecting networks from DoS attacks are reactive in that they wait for an attack to be launched before taking appropriate measures to protect the network. This leaves the door open for other attacks that use more sophisticated methods to mask their traffic.We propose an architecture called Secure Overlay Services (SOS) that proactively prevents DoS attacks, geared toward supporting Emergency Services or similar types of communication. The architecture is constructed using a combination of secure overlay tunneling, routing via consistent hashing, and filtering. We reduce the probability of successful attacks by (i) performing intensive filtering near protected network edges, pushing the attack point perimeter into the core of the network, where high-speed routers can handle the volume of attack traffic, and (ii) introducing randomness and anonymity into the architecture, making it difficult for an attacker to target nodes along the path to a specific SOS-protected destination.Using simple analytical models, we evaluate the likelihood that an attacker can successfully launch a DoS attack against an SOS-protected network. Our analysis demonstrates that such an architecture reduces the likelihood of a successful attack to minuscule levels.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Networks and Communications,Software

Cited by 68 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Effective DDoS Mitigation via ML-Driven In-Network Traffic Shaping;IEEE Transactions on Dependable and Secure Computing;2024-07

2. DDoS family: A novel perspective for massive types of DDoS attacks;Computers & Security;2024-03

3. Cybersecurity Defense via Agile Virtual Infrastructure Deception;2023 IEEE Virtual Conference on Communications (VCC);2023-11-28

4. DDoS attacks in Industrial IoT: A survey;Computer Networks;2023-11

5. NetHCF: Filtering Spoofed IP Traffic With Programmable Switches;IEEE Transactions on Dependable and Secure Computing;2023-03-01

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