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Cedric Gaberle

Publications and source records attributed to Cedric Gaberle.

3 recordsLinked to original sources

A Critical Assessment of the Sample-Based Quantum Diagonalization for Heisenberg and Hubbard Models

Sample-based quantum diagonalization (SQD) constructs subspaces from computational-basis configurations obtained via measurements of a quantum state, with the goal of approximating low-energy eigenspaces of many-body Hamiltonians. The effectiveness of this approach relies on the assumption that physically relevant states admit a compact representation in the computational basis. We investigate this assumption by analyzing SQD subspaces constructed directly from configurations of exact ground states of Heisenberg and Hubbard model lattices. By eliminating state-preparation and measurement inefficiencies, we isolate the intrinsic configuration-space structure of the wavefunction. We determine the minimal number of configurations required to reproduce the ground-state energy within fixed accuracy thresholds and find that this number grows exponentially with the system size. Notably, this scaling persists even under optimal inclusion of configurations in order of decreasing probability, demonstrating that it originates from intrinsic delocalization of the wavefunction rather than sampling inefficiencies. Our results indicate that SQD effectively probes the configuration-space entropy but faces fundamental scalability limitations for these models.

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Slice-Wise Initial State Optimization to Improve Cost and Accuracy of the VQE on Lattice Models

We propose an optimization method for the Variational Quantum Eigensolver (VQE) that combines adaptive and physics-inspired ansatz design. Instead of optimizing multiple layers simultaneously, the ansatz is built incrementally from its operator subsets, enabling subspace optimization that provides better initialization for subsequent steps. This quasi-dynamical approach preserves expressivity and hardware efficiency while avoiding the overhead of operator selection associated with adaptive methods. Benchmarks on one- and two-dimensional Heisenberg and Hubbard models with up to 20 qubits show improved fidelities, reduced function evaluations, or both, compared to fixed-layer VQE. The method is simple, cost-effective, and particularly well-suited for current noisy intermediate-scale quantum (NISQ) devices.

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Q-AIM: A Unified Portable Workflow for Seamless Integration of Quantum Resources

Quantum computing (QC) holds the potential to solve classically intractable problems. Although there has been significant progress towards the availability of quantum hardware, a software infrastructure to integrate them is still missing. We present Q-AIM (Quantum Access Infrastructure Management) to fill this gap. Q-AIM is a software framework unifying the access and management for quantum hardware in a vendor-independent and open-source fashion. Utilizing a dockerized micro-service architecture, we show Q-AIM's lightweight, portable, and customizable nature, capable of running on different hosting paradigms ranging from small personal computing devices to cloud servers and dedicated server infrastructure. Q-AIM exposes a single entry point into the host's infrastructure, providing secure and easy interaction with quantum computers on different levels of abstraction. With a minimal memory footprint, the container is optimized for deployment on even the smallest server instances, reducing costs and instantiation overhead while ensuring seamless scalability to accommodate increasing demands. Q-AIM intends to equip research groups and facilities purchasing and hosting their own quantum hardware with a tool simplifying the process from procurement to operation and removing non-research related technical redundancies.

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