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An Efficient Key Generation for the Internet of Things Based Synchronized Quantization
Mike Yuliana1,2, 3, 4
1Department of Electrical Engineering, Faculty of Electrical Technology, Institut Teknologi Sepuluh Nopember, Jalan Raya ITS, Keputih, Sukolilo, Surabaya 60111, Indonesia. mieke@pens.ac.id.
This study introduces a Signal Strength Exchange (SSE) system for efficient key generation in the Internet of Things (IoT). The synchronized quantization method enhances security and reduces computational load for IoT devices.
Area of Science:
- Computer Science
- Electrical Engineering
- Cybersecurity
Background:
- Internet of Things (IoT) devices have limited resources, making classical cryptography unsuitable.
- Physical layer security offers a more efficient alternative by leveraging channel characteristics.
Purpose of the Study:
- To propose an efficient key generation system for IoT devices.
- To introduce a synchronized quantization (SQ) method to improve efficiency and security.
Main Methods:
- Developed a Signal Strength Exchange (SSE) system for key generation.
- Implemented a synchronized quantization (SQ) method to directly convert channel characteristics into synchronized data blocks.
- Ensured synchronization between authorized nodes to guarantee identical key generation and eliminate error correction.
Main Results:
- The SSE system with SQ method demonstrated superior efficiency in terms of computing time and communication overhead compared to existing systems.
- The SQ method eliminated the need for signal pre-processing, streamlining the key generation process.
- Synchronization between nodes ensured key sameness, removing the requirement for error-correcting phases.
Conclusions:
- The proposed SSE system and SQ method provide an efficient and secure solution for key generation in resource-constrained IoT environments.
- This approach significantly reduces computational complexity and communication overhead, making it ideal for IoT applications.
- The method enhances the security of IoT communications by enabling efficient and reliable key exchange.
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