Towards Continuous Profiling and Optimization of Quantum-Classical Pipelines

πŸ“… 2026-09-05
πŸ“ˆ Citations: 0
✨ Influential: 0
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πŸ“ Abstract
Quantum applications increasingly execute as multi-stage quantum-classical pipelines, interleaving QPU computation with classical stages like circuit generation, transpilation, layout mapping, quantum error mitigation (QEM), and post-processing. These stages have diverse resource requirements and exhibit stochastic behavior under drifting hardware noises, yet existing workflow frameworks treat them as static, isolated components. We present LLQM (Low-Level Quantum Machine), a profiling-driven meta-framework for quantum-classical pipelines. LLQM decomposes pipelines into fine-grained tasks and continuously profiles their CPU/GPU, memory, QPU, and queue dependencies alongside real-time hardware states. This unified runtime abstraction captures cross-stage resource dependencies and reveals how classical and quantum decisions interact, enabling characterization of their impact on fidelity and resource consumption. We evaluate LLQM using QEM as a representative pipeline stage, on IBM 156-qubit Heron r2 processors with circuits up to 100 qubits and 1e7 transpiled gates. Our results show that continuous profiling exposes runtime bottlenecks and enables hardware-, fidelity-, and workload-aware optimizations.
Problem

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

Quantum-Classical Pipelines
Resource Requirements
Stochastic Behavior
Hardware Noises
Static Components
Innovation

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

Continuous Profiling
Quantum-Classical Pipelines
Low-Level Quantum Machine (LLQM)
Resource Dependencies
Hardware Noise
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