Papers
13
Total Citations
222
H-Index
7
About
Pierluigi Nuzzo is a researcher whose work sits at the intersection of formal methods, cyber-physical systems, and autonomous robotics. His research focuses on developing mathematically rigorous frameworks for reasoning about complex systems that blend discrete computational logic with continuous physical dynamics — a challenge central to modern autonomous systems design. Nuzzo's most influential contribution is the development of Satisfiability Modulo Convex (SMC) programming, a powerful framework that extends Boolean satisfiability solving to handle convex constraints over real numbers. This work, cited nearly 90 times across multiple publications, has become a foundational tool for hybrid system verification and control synthesis. Building on this, he has made substantial advances in multi-robot motion planning under Linear Temporal Logic (LTL) specifications, producing scalable algorithms capable of handling realistic robot dynamics, safety constraints, and even adversarial conditions like denial-of-service attacks. More recently, Nuzzo has expanded into reinforcement learning for Markov decision processes under formal temporal logic specifications, bridging data-driven and formal approaches to autonomous system control. His CROME framework and contract-based mission specification work further demonstrate his commitment to making formal methods accessible and practical for robotic mission design. Together, his contributions represent a coherent research vision: making autonomous systems provably correct, scalable, and resilient.
Research Focus
Key Achievements
Top Papers
- 1SMC: Satisfiability Modulo Convex Programming49 citations · 2018
- 2
- 3SMC42 citations · 2017
- 4Scalable lazy SMT-based motion planning32 citations · 2016
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- 7DoS-Resilient Multi-Robot Temporal Logic Motion Planning8 citations · 2019
- 8CROME: Contract-Based Robotic Mission Specification7 citations · 2020
- 9Contract-Based Specification Refinement and Repair for Mission Planning5 citations · 2023
- 10