RPPUF: An Ultra-Lightweight Reconfigurable Pico-Physically Unclonable Function for Resource-Constrained IoT Devices

Author:

Huang ZhaoORCID,Li Liang,Chen Yin,Li ZeyuORCID,Wang Quan,Jiang Xiaohong

Abstract

With the advancement of the Internet of Things (IoTs) technology, security issues have received an increasing amount of attention. Since IoT devices are typically resource-limited, conventional security solutions, such as classical cryptography, are no longer applicable. A physically unclonable function (PUF) is a hardware-based, low-cost alternative solution to provide security for IoT devices. It utilizes the inherent nature of hardware to generate a random and unpredictable fingerprint to uniquely identify an IoT device. However, despite existing PUFs having exhibited a good performance, they are not suitable for effective application on resource-constrained IoT devices due to the limited number of challenge-response pairs (CRPs) generated per unit area and the large hardware resources overhead. To solve these problems, this article presents an ultra-lightweight reconfigurable PUF solution, which is named RPPUF. Our method is built on pico-PUF (PPUF). By incorporating configurable logics, one single RPPUF can be instantiated into multiple samples through configurable information K. We implement and verify our design on the Xilinx Spartan-6 field programmable gate array (FPGA) microboards. The experimental results demonstrate that, compared to previous work, our method increases the uniqueness, reliability and uniformity by up to 4.13%, 16.98% and 10.5%, respectively, while dramatically reducing the hardware resource overhead by 98.16% when a 128-bit PUF response is generated. Moreover, the bit per cost (BPC) metric of our proposed RPPUF increased by up to 28.5 and 53.37 times than that of PPUF and the improved butterfly PUF, respectively. This confirms that the proposed RPPUF is ultra-lightweight with a good performance, making it more appropriate and efficient to apply in FPGA-based IoT devices with constrained resources.

Funder

National Natural Science Foundation of China

Group Intelligence Behavior Analysis-based Cultural Material Identification and Digital Product Development & Reuse

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

Cited by 6 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. Unleashing the Full Potential: Increasing the Bit Configuration Options in Configurable Ring Oscillator PUF;2024 IEEE 22nd Mediterranean Electrotechnical Conference (MELECON);2024-06-25

2. Assessing Temperature Sensitivity and Ring Oscillator Count Impact on Configurable Ring Oscillator PUF Performance;2024 13th Mediterranean Conference on Embedded Computing (MECO);2024-06-11

3. A Logic Encryption-Enhanced PUF Architecture to Deceive Machine Learning-Based Modeling Attacks;2023 IEEE 32nd Asian Test Symposium (ATS);2023-10-14

4. An XOR-Based Pico-Physically Unclonable Function for Securing IoT Devices;2022 4th International Conference on System Reliability and Safety Engineering (SRSE);2022-12-15

5. Shift Register, Reconvergent-Fanout (SiRF) PUF Implementation on an FPGA;Cryptography;2022-11-11

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