학술논문

Memory-based Arbiter PUF: A Novel Highly Reliable and Scalable Strong PUF Design
Document Type
Conference
Source
2020 IEEE 6th World Forum on Internet of Things (WF-IoT) Internet of Things (WF-IoT), 2020 IEEE 6th World Forum on. :1-6 Jun, 2020
Subject
Bioengineering
Communication, Networking and Broadcast Technologies
Components, Circuits, Devices and Systems
Computing and Processing
Fields, Waves and Electromagnetics
General Topics for Engineers
Photonics and Electrooptics
Power, Energy and Industry Applications
Robotics and Control Systems
Signal Processing and Analysis
Transportation
Protocols
Authentication
Reliability engineering
Hardware
Software reliability
Reliability
Security
hardware security
security protocol
lightweight security
Physical Unclonable Functions
cryptography
Language
Abstract
While Physically Unclonable Functions (PUFs) are finding a foothold in many commercial hardware platforms as an alternative secure key storage primitive. PUFs are yet to be employed as primitives that can offer secure authentication. Strong PUFs, which are required for authentication protocols due to their large challenge-response space, suffer from reduced output reliability. In this work, we present a novel Memory-based Arbiter PUF design where we combine the benefits of Weak PUFs’ high reliability with the exponential challenge-response space of the Strong Arbiter PUFs. The introduced design is a unique and novel approach where the Arbiter PUF is implemented as an arithmetic module while its entropy is stored as a memory in a reliable Weak PUF circuit. The introduced design offers the high reliability of Weak PUFs and the security and exponential challenge space of Strong PUF circuits as implementation and testing results show.