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Random Access Performance of Distributed Sensors Attacked by Unknown Jammers
Dae-Kyo Jeong1, Jung-Hwa Wui2, Dongwoo Kim3
1Department of Electronics and Communication Engineering, Hanyang University, Ansan 15588, Korea. dkjeong@wnl.hanyang.ac.kr.
Sensors (Basel, Switzerland)
|November 22, 2017
Summary
This study analyzes jamming attacks on wireless sensor networks (WSNs). Power and code jamming significantly degrade throughput and increase delay, impacting random access (RA) performance.
Area of Science:
- Wireless communication networks
- Network security
- Signal processing
Background:
- Wireless Sensor Networks (WSNs) rely on central Head Sensors (HS) for data collection from distributed Sensor Nodes (SNs).
- Jamming attacks pose a significant threat to WSNs by disrupting information transmission through interference.
- Two primary jamming strategies, power jamming and code jamming, are investigated for their impact on network performance.
Purpose of the Study:
- To model and investigate the random access (RA) performance of SNs in a WSN under different jamming attack scenarios.
- To analyze the impact of power jamming and code jamming on WSN throughput and delay.
- To compare the effectiveness of different jamming attacks on RA performance.
Main Methods:
- Modeling of random access (RA) performance in WSNs.
- Analysis of two jamming attack types: power jamming and code jamming.
- Numerical investigation comparing jamming effects on throughput and delay.
Main Results:
- Power jamming degrades throughput by up to 30.3% and increases delay by up to 40.1%.
- Code jamming degrades throughput by up to 40.5% and increases delay by up to 65.6%.
- Both jamming types significantly impair WSN random access performance compared to non-jammed networks.
Conclusions:
- Code jamming has a more detrimental effect on WSN RA performance than power jamming.
- Understanding jamming impacts is crucial for developing robust WSN security mechanisms.
- Mitigation strategies are needed to counter jamming attacks and ensure reliable WSN operation.
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