SAQC: A SAT-Aware Compilation Framework for QAOA-Based Quantum Optimization

📅 2026-09-04
📈 Citations: 0
Influential: 0
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📝 Abstract
The Quantum Approximate Optimization Algorithm (QAOA) is a promising variational approach for solving Boolean satisfiability (SAT) problems. Existing SAT-to-QAOA workflows first translate Boolean formulas into penalty Hamiltonians before applying generic quantum compilation, thereby discarding SAT-specific information such as clause structure, logical operators, and variable dependencies. Consequently, subsequent compiler optimizations cannot exploit the underlying Boolean formulation. This paper presents SAQC, a SAT-aware compilation framework that introduces a SAT Intermediate Representation (SIR) to preserve Boolean structure during compilation. The proposed framework supports both CNF and XOR-extended CNF (eCNF) formulations and performs SAT-aware optimizations including clause rewriting, dependency analysis, and clause scheduling prior to quantum lowering. Building on the optimized SIR, SAQC provides a unified framework for both penalty Hamiltonian generation and direct clause-to-ansatz synthesis, together with ansatz optimizations based on relative-phase decomposition, ancilla-assisted synthesis, and dynamic uncomputation. Experimental results demonstrate significant reductions in circuit depth, two-qubit gate count, and compilation time compared with conventional Hamiltonian-based workflows while remaining compatible with existing quantum compilation frameworks.
Problem

Research questions and friction points this paper is trying to address.

Boolean satisfiability
Quantum Approximate Optimization Algorithm
SAT-to-QAOA
penalty Hamiltonians
compiler optimizations
Innovation

Methods, ideas, or system contributions that make the work stand out.

SAT-aware Compilation
SIR (SAT Intermediate Representation)
Clause Rewriting
Dependency Analysis
Ansatz Optimization
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T
Till Schnittka
Cyber-Physical Systems, DFKI GmbH, Bremen, Germany
J
Julie Maria Raju
Institute of Computer Science, University of Bremen, Bremen, Germany
A
Abhoy Kole
Cyber-Physical Systems, DFKI GmbH, Bremen, Germany
Rolf Drechsler
Rolf Drechsler
Professor at University of Bremen, Director DFKI Bremen, Germany
algorithmsdata structuressystem designverificationtest