STQS: A Unified System Architecture for Spatial Temporal Quantum Sensing
Anastashia Jebraeilli, Chenxu Liu, Keyi Yin, Erik W Lentz, Yufei Ding, Ang Li

TL;DR
STQS introduces a comprehensive system architecture for distributed quantum sensing, integrating sensing, memory, communication, and computation, and demonstrates its feasibility through simulations and hardware experiments.
Contribution
It is the first unified system-level framework for spatial-temporal quantum sensing that systematically explores the design space and practical implementation on current quantum hardware.
Findings
Validated STQS components on IBM and IonQ quantum devices.
Developed a novel distance-based metric for quantum state confidence.
Demonstrated applications in quantum radar and dark matter detection.
Abstract
Quantum sensing (QS) harnesses quantum phenomena to measure physical observables with extraordinary precision, sensitivity, and resolution. Despite significant advancements in quantum sensing, prevailing efforts have focused predominantly on refining the underlying sensor materials and hardware. Given the growing demands of increasingly complex application domains and the continued evolution of quantum sensing technologies, the present moment is the right time to systematically explore distributed quantum sensing architectures and their corresponding design space. We present STQS, a unified system architecture for spatiotemporal quantum sensing that interlaces four key quantum components: sensing, memory, communication, and computation. By employing a comprehensive gate-based framework, we systemically explore the design space of quantum sensing schemes and probe the influence of…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Mechanical and Optical Resonators
