Platform evaluation demonstrates accurate circuit simulation and predictable scaling in a prototype quantum operating system, highlighting systems-level workload orchestration for hybrid quantum...
Quantum programming is today largely discussed at the level of circuits and application programminginterfaces: a developer constructs a circuit, submits it to a simulator or a cloud-hosted device, and readsback measurement results. As quantum computing moves toward shared, heterogeneous, andincreasingly hybrid quantum-classical environments, a complementary systems-level question becomesimportant — how should the lifecycle of a quantum computation be managed once it leaves the hands ofthe programmer, particularly when many such computations compete for limited execution resources?This paper presents QuantumOS, a research-oriented software platform that treats a quantum circuit notmerely as an object to be executed, but as a managed workload: a quantum job that is created, queued,scheduled according to a selectable policy, assigned to a computational resource by a resource manager,optionally transformed by a circuit-processing stage, executed on a local Quantum Virtual Machine(QVM), and finally recorded and surfaced through a monitoring dashboard. QuantumOS is explicitly aresearch prototype and does not control physical quantum hardware; its current execution backend is aclassical, local circuit simulator. We describe the system's layered architecture, its job-lifecycle andscheduling abstractions, and its execution workflow, and we report an experimental evaluation of theQVM's performance and correctness characteristics. Measured results show that QVM execution timeremains low for small circuits and rises sharply beyond approximately eight to nine simulated qubits,consistent with the expected cost of classical state-vector simulation, and that execution time growsroughly in proportion to the number of measurement shots requested. A correctness evaluation of fourcanonical circuits — a single-qubit Hadamard gate, a Pauli-X gate, a two-qubit Bell state, and a three-qubitGHZ state, each sampled at 10,000 shots — shows observed outcome probabilities within approximatelyhalf a percentage point of their theoretical values, consistent with ordinary statistical sampling variationrather than simulation error. We discuss how the broader scheduling and resource-managementarchitecture supports the paper's central systems claim even where full quantitative benchmarking ofevery subsystem remains for future work, and we outline the educational value of a locally runnableplatform that makes both quantum-circuit behavior and workload-management concepts directlyobservable. We conclude by identifying the prototype's current limitations and the concrete next stepsrequired to mature QuantumOS into a more completely benchmarked research platform.
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Divyashri Chinchole (2026) studied this question.
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