Lawyer: Modular Obligations-Based Liveness Reasoning in Higher-Order Impredicative Concurrent Separation Logic
Egor Namakonov, Justus Fasse, Bart Jacobs, Lars Birkedal, Amin Timany
Abstract
Higher-order concurrent separation logics, such as Iris, have been tremendously successful in verifying safety properties of concurrent programs. However, state-of-the-art attempts to verify liveness properties in such logics have so far either lacked modularity (the ability to compose specifications of independent modules), or they have been far too complex to mechanize in a proof assistant. In this work, we introduce Lawyer — a mechanized program logic for modular verification of (fair) termination of concurrent programs. Lawyer draws inspiration from state-of-the-art approaches that use obligations for specifying and proving termination. However, unlike these approaches, which incorporate obligations by instrumenting the source code with erasable auxiliary code and state, Lawyer avoids such instrumentations. Instead, Lawyer incorporates obligations into the logic by embedding them into a purely logical labeled transition system that the program is shown to refine — this makes Lawyer far more amenable to mechanization. We demonstrate the expressivity of Lawyer by verifying termination of a range of examples, including modular verification of a client program whose termination relies on correctness of a fair lock library, and (separately) proving that a ticket lock implementation implements that library’s interface. To the best of our knowledge, Lawyer is the first mechanized program logic that supports modular higher-order impredicative liveness specifications of program modules. All the results that appear in the paper have been mechanized in the Rocq proof assistant on top of the Iris separation logic framework.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 3f5d637b-9805-455a-9d7f-d581015e5bb5Builds on8
- Simuliris: a separation logic framework for verifying concurrent program optimizationsLennard Gäher, Michael Sammler, Simon Spies, Ralf Jung et al.POPL 2022 · 33 citations
- Transfinite Iris: resolving an existential dilemma of step-indexed separation logicSimon Spies, Lennard Gäher, Daniel Gratzer, Joseph Tassarotti et al.PLDI 2021 · 32 citations
- Trillium: Higher-Order Concurrent and Distributed Separation Logic for Intensional RefinementAmin Timany, Simon Oddershede Gregersen, Léo Stefanesco, Jonas Kastberg Hinrichsen et al.POPL 2024 · 14 citations
- Fair Operational SemanticsDongjae Lee, Minki Cho, Jinwoo Kim, Soonwon Moon et al.PLDI 2023 · 10 citations
- VMSL: A Separation Logic for Mechanised Robust Safety of Virtual Machines Communicating above FF-AZongyuan Liu, Sergei Stepanenko, Jean Pichon-Pharabod, Amin Timany et al.PLDI 2023 · 7 citations
Related papers
- Contextual Refinement of Higher-Order Concurrent Probabilistic ProgramsKwing Hei Li, Alejandro Aguirre, Joseph Tassarotti, Lars BirkedalPLDI 2026
- Proof Automation for Linearizability in Separation LogicIke Mulder, Robbert KrebbersOOPSLA 2023 · 8 citations
- Raven: An SMT-Based Concurrency VerifierEkanshdeep Gupta, Nisarg Patel, Thomas WiesCAV 2025 · 1 citation
- Beyond Backtracking: Connections in Fine-Grained Concurrent Separation LogicIke Mulder, Lukasz Czajka, Robbert KrebbersPLDI 2023 · 2 citations
- Program Logics à la CarteMax Vistrup, Michael Sammler, Ralf JungPOPL 2025 · 4 citations
