Author: Denis Avetisyan
A new full-stack framework promises to optimize quantum computations by tightly integrating hardware and software design.

Researchers present ReQISC, a reconfigurable quantum computer microarchitecture and compiler co-design utilizing an SU(4)-based instruction set to minimize gate count and enhance performance through optimized pulse control.
Despite advances in quantum hardware, performance remains limited by gate fidelity and compilation overhead, hindering the practical realization of more expressive instruction set architectures. This paper introduces ‘ReQISC: A Reconfigurable Quantum Computer Microarchitecture and Compiler Co-Design’, a full-stack framework that leverages a reconfigurable microarchitecture and SU(4)-based instruction set to dramatically reduce gate counts and pulse durations. By co-designing hardware and a novel compilation pipeline, ReQISC achieves a 4.97-fold reduction in pulse duration for 2Q gates compared to conventional schemes. Could this approach finally unlock the theoretical potential of continuous ISAs and pave the way for scalable, high-performance quantum computation?
Navigating the Limits of Quantum Hardware
Current Noisy Intermediate-Scale Quantum (NISQ) devices face limitations in coherence and gate fidelity, restricting the complexity of solvable problems. Achieving practical quantum advantage requires overcoming these hardware constraints. Error mitigation and improved qubit control are essential, but scalability remains a significant obstacle due to Calibration Overhead. Research focuses on novel architecturesādifferent qubit connectivity, dynamic allocation, and error-resilient circuitsāprioritizing system-level coherence over sheer computational power.

ReQISC: A Holistic Framework for Quantum Optimization
The ReQISC framework offers a full-stack solutionāintegrating quantum compilation, Instruction Set Architecture (ISA) design, and precise Pulse Controlāto efficiently map algorithms onto physical qubits. Leveraging the expressiveness of the SU(4) ISA enables optimal-duration gates and simplified circuits. Theoretical analysis demonstrates potential gate count reductions, and the microarchitecture employs a unified control scheme with appended one-qubit corrections for enhanced fidelity.

Streamlining Quantum Circuits Through Advanced Synthesis
ReQISC employs Hierarchical Synthesis to decompose complex circuits into manageable blocks, reducing synthesis cost through parallelization. Techniques like DAG Compacting and Approximate Commutation further streamline circuits, minimizing qubit requirements. The Mirroring Technique transforms near-identity gates for easier execution, reducing Calibration Overhead. Haar-Random Synthesis benchmarks ISAs, demonstrating ReQISCās 55.6% reduction in 2Q gate count.

Towards Scalable Quantum Computation: A Systems-Level Approach
The ReQISC framework optimizes near-term quantum circuits by addressing limitations in NISQ devices, accelerating progress towards Fault-Attenuated Symmetric Shorcode Decoding (FASQ) devices. Achieving an average gate fidelity of 99.37% on superconducting transmon qubits, ReQISCās integrated ISA design, compilation, and pulse control represent a cohesive platform for innovation. Ultimately, progress demands refining the language of instructionānot simply adding more qubits.

The pursuit of ReQISC, with its SU(4)-based instruction set and co-designed microarchitecture, embodies a holistic approach to quantum computation. It recognizes that gains in one area ā instruction set design or gate synthesis, for instance ā are inextricably linked to the success of the entire system. This echoes the sentiment of Louis de Broglie: āIt is in the interplay between theory and experiment that progress is made in science.ā The frameworkās focus on Hamiltonian steering and minimizing gate count isnāt simply about optimization; itās about understanding how the components of a quantum system interact, and designing them to function as a coherent whole. If the system survives on duct tape, itās probably overengineeredāReQISC aims for elegant simplicity through deep integration, a principle essential for realizing practical quantum advantage.
What’s Next?
The introduction of ReQISC, with its SU(4) foundation, highlights a persistent tension: the relentless pursuit of more expressive instruction sets. Yet, one must ask, what is actually being optimized for? Reduced gate count is a worthy goal, but merely shifting complexity from compilation to the control planeāas Hamiltonian steering inevitably doesārisks obscuring fundamental limitations. The true metric lies not in minimizing superficial metrics, but in approaching the inherent limits of quantum control itself.
Future work must confront the practical realities of imperfect hardware. ReQISCās reconfigurable microarchitecture offers a compelling path, but the benefit of adaptability diminishes rapidly with increased error rates. The field needs rigorous investigation into the interplay between ISA expressiveness, microarchitectural flexibility, and the inevitable noise that characterizes physical qubits. Simplicity is not minimalism; it is the discipline of distinguishing the essentialārobustness and fidelityāfrom the accidental.
Ultimately, the success of approaches like ReQISC will depend on a holistic understanding of the quantum stack. It is not sufficient to optimize compilation in isolation. The architecture must be designed in concert with error correction strategies and, crucially, with a clear articulation of the target applications. Only then can the potential of reconfigurable quantum computation be fully realized, and the illusion of progress through complexity dispelled.
Original article: https://arxiv.org/pdf/2511.06746.pdf
Contact the author: https://www.linkedin.com/in/avetisyan/
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2025-11-11 14:55