FM2026Top-tier venue
A General Framework for Robust Quantitative Semantics of Signal Temporal Logic
Jiawei Chen, José Luiz Vargas de Mendonça, Konstantinos Mamouras, Jean-Baptiste Jeannin
Abstract
Abstract Quantitative semantics of Signal Temporal Logic (STL) play an important role in both the falsification and control synthesis for dynamical systems by assigning numerical quantities to truth values. Recently, several different quantitative semantics have been proposed, offering better performance in many cases. Yet a general, systematic understanding of the structure and properties of quantitative semantics is missing. In this paper, we develop a general framework to model quantitative semantics. We focus mainly on soundness, which requires that the quantitative semantics of a statement is positive when the statement is true, and negative when the statement is false. This ensures that counterexamples will not be missed during verification. We derive simple, necessary conditions in our framework for soundness. We show how several recently proposed quantitative semantics fit in our framework, and how others do not, typically because they do not strictly satisfy soundness. We implement various quantitative semantics, including existing semantics from literature, in our framework and compare their effectiveness as objective functions for optimization-based falsification on both novel and existing benchmarks.
Ask about this paper
Ask your agent about it.
Lune has read the top-tier papers around this one, so every answer names the papers it rests on.
Your agent calls
Lunesearch_papers
Free to start. No credit card required.
Terminal
Install the CLIlune papers get ba629073-0fd9-4bc2-8fcb-bd14c14f7d00Related papers
- Effective Hybrid System Falsification Using Monte Carlo Tree Search Guided by QB-RobustnessZhenya Zhang, Deyun Lyu, Paolo Arcaini, Lei Ma et al.CAV 2021 · 39 citations
- Optimization-Based Model Checking and Trace Synthesis for Complex STL SpecificationsSota Sato, Jie An, Zhenya Zhang, Ichiro HasuoCAV 2024 · 4 citations
- Contract-based Design and Verification of Multi-Agent Systems with Quantitative Temporal RequirementsRafael Dewes, Rayna DimitrovaAAAI 2025
- Quantitative Monitoring of Signal First-Order LogicMarek Chalupa, Thomas A. Henzinger, N. Ege Saraç, Emily YuFM 2026
- Control Synthesis of Cyber-Physical Systems for Real-Time Specifications Through Causation-Guided Reinforcement LearningXiaochen Tang, Zhenya Zhang, Miaomiao Zhang, Jie AnRTSS 2025 · 1 citation
