CRJul 15

Exploring Delay-based PUFs for Energy-Efficient Low-Overhead Security of Wearable Devices

arXiv:2607.143955.0h-index: 52
Predicted impact top 64% in CR · last 90 daysOriginality Synthesis-oriented
AI Analysis

It addresses the need for low-power security in resource-constrained wearable devices, but the approach is incremental as PUFs are well-known.

The paper explores Arbiter PUF and Hybrid Oscillator Arbiter (HOA) PUF for energy-efficient security in wearable IoT devices, finding that HOA PUF consumes only 2.7 μW compared to 25 μW for Arbiter PUF, enabling robust cryptographic key generation with minimal power overhead.

The Internet of Things (IoT) was introduced almost two decades ago. In the past two decades, technology has seen huge advancements. Many devices have become powerful and have less power consumption. Many IoT architectures and environments were introduced to help make life easier, especially in wearable devices. The market for these wearable devices has constantly increased over the years and is expected to reach its maximum in the next couple of years. They also pose a threat to users' privacy and security because they constantly store and transmit personal information such as location, heart rate, and other sensitive data. Therefore, addressing the security vulnerabilities is a crucial aspect of this research. This paper presents a hardware-assisted, energy-efficient, low-overhead security solution for wearable devices. Specifically, two Physical Unclonable Function (PUF) architectures: Arbiter PUF and Hybrid Oscillator Arbiter (HOA) PUF are analyzed for integration in IoT systems. The result shows that Arbiter PUF consumes 25 $μ$W, whereas HOA PUF consumes only 2.7 $μ$W to generate keys for cryptographic purposes. These architectures introduce minimal power overhead while providing robust security, making them well suited for resource-constrained IoT ecosystems.

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