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A Framework for Analyzing Neighbor Discovery Protocols under Non-Ideal Conditions.

Jose Jaime Camacho-Escoto1, Eduardo Lopez-Bolaños2, Oscar Arana2

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This study introduces a new framework to analyze how transmission errors impact neighbor discovery (ND) protocols in the Internet of Things (IoT). The framework accurately predicts discovery times, revealing significant performance degradation due to errors.

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Area of Science:

  • Wireless communication networks
  • Internet of Things (IoT)
  • Network protocols

Background:

  • Neighbor Discovery (ND) protocols are essential for connecting numerous low-power devices in the IoT.
  • Existing ND protocols often assume ideal conditions and overlook factors like transmission errors.
  • This oversight leads to performance degradation in real-world IoT deployments.

Purpose of the Study:

  • To propose a novel analytical framework for evaluating deterministic ND protocols under transmission error conditions.
  • To provide an alternative to time-consuming and error-prone simulations for performance analysis.
  • To quantify the impact of transmission errors on the discovery time of ND protocols.

Main Methods:

  • Development of a new analytical framework to calculate the Cumulative Distribution Function (CDF) of discovery time.
  • Application of the framework to four representative ND protocols.
  • Validation of the framework's accuracy through extensive simulations.

Main Results:

  • The proposed framework accurately predicts the CDF of discovery times for ND protocols with transmission errors.
  • Simulations confirm the framework's close match to empirical performance data.
  • Transmission errors significantly impact the performance of analyzed ND protocols.

Conclusions:

  • The developed framework offers an efficient and reliable method for assessing ND protocol performance in the presence of transmission errors.
  • The findings highlight the critical need to consider transmission errors in the design and analysis of IoT ND protocols.
  • Neighbor discovery protocols are generally susceptible to performance issues caused by transmission errors.