Abstract Current physical authentication and anti-counterfeiting technologies rely primarily on cryptographic methods, stochastic physical randomness, or digitally reproducible security printing techniques. Physical Unclonable Functions (PUFs) exploit uncontrolled micro-scale variations in manufacturing processes, while conventional security printing employs complex but reconstructible matrices and tools. Both approaches face increasing vulnerability to modeling, scanning, and advanced fabrication technologies. This paper introduces a new category of physical authentication technologies termed Physically Non-Reconstructible Printing Processes (PNRPP). A PNRPP is defined as a deterministic material transfer process in which a unique generating matrix produces a finite number of identical outputs and is subsequently destroyed or irreversibly altered, making reconstruction of an identical matrix physically impossible even with complete knowledge of the process and materials. Unlike PUFs, which depend on stochastic disorder and noisy challenge–response behavior, PNRPP systems derive their security from irreversible physical origin and controlled material transfer. The Macool printing technique is presented as the first known implementation of a PNRPP. Its layered ink skin transfer from a manually created negative bas-relief matrix demonstrates how deterministic repeatability and physical non-reconstructibility can coexist within a single authentication framework. This work establishes PNRPP as a distinct paradigm for high-assurance material authentication and anti-counterfeiting applications.
MARIAN AMARIEI DOCAN (Sun,) studied this question.