Sub-Second Resolution of the 53-Qubit Sycamore Circuit via Paraconsistent Thermodynamic Absorption on Single-GPU Architecture

The simulation of quantum supremacy circuits represents the ultimate frontier in High-Performance Computing (HPC). In 2021, the Sunway Supercomputer achieved real-time simulation of the 53-qubit Sycamore circuit in 304 seconds using 41.9 million cores, consuming approximately 15 Megawatts. We argue that brute-force state-vector and tensor network approximations represent a thermodynamic dead end due to the exponential memory explosion (O(2^N)). In this paper, we introduce a fundamental paradigm shift: Paraconsistent Computing in Silicon. By replacing conditional branching with thermodynamic absorption in SRAM using Belnap's four-valued logic (L4), we demonstrate a Single-GPU architecture (60W TDP) capable of resolving the Sycamore circuit in 783 milliseconds. This represents a 380x time-to-solution improvement and a 10^8 increase in energy efficiency over the current state-of-the-art, establishing a sustainable path for Exascale quantum emulation. For strict artifact evaluation, the source code and reproducibility harnesses are publicly available at https://github.com/MAJBS/Chronos-Dialeteia-Engine.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-09
DOI
https://doi.org/10.5281/zenodo.23253766
Primary Topic
Quantum Computing Algorithms and Architecture
Type
preprint
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preprint

Sub-Second Resolution of the 53-Qubit Sycamore Circuit via Paraconsistent Thermodynamic Absorption on Single-GPU Architecture

Maycol Jhonatan Benavides Sánchez
Zenodo (CERN European Organization for Nuclear Research)
Quantum Computing Algorithms and Architecture
preprint

Sub-Second Resolution of the 53-Qubit Sycamore Circuit via Paraconsistent Thermodynamic Absorption on Single-GPU Architecture

Maycol Jhonatan Benavides Sánchez
preprint en

Abstract

The simulation of quantum supremacy circuits represents the ultimate frontier in High-Performance Computing (HPC). In 2021, the Sunway Supercomputer achieved real-time simulation of the 53-qubit Sycamore circuit in 304 seconds using 41.9 million cores, consuming approximately 15 Megawatts. We argue that brute-force state-vector and tensor network approximations represent a thermodynamic dead end due to the exponential memory explosion (O(2^N)). In this paper, we introduce a fundamental paradigm shift: Paraconsistent Computing in Silicon. By replacing conditional branching with thermodynamic absorption in SRAM using Belnap's four-valued logic (L4), we demonstrate a Single-GPU architecture (60W TDP) capable of resolving the Sycamore circuit in 783 milliseconds. This represents a 380x time-to-solution improvement and a 10^8 increase in energy efficiency over the current state-of-the-art, establishing a sustainable path for Exascale quantum emulation. For strict artifact evaluation, the source code and reproducibility harnesses are publicly available at https://github.com/MAJBS/Chronos-Dialeteia-Engine.

Zenodo (CERN European Organization for Nuclear Research)
Quantum Computing Algorithms and Architecture
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Sub-Second Resolution of the 53-Qubit Sycamore Circuit via Paraconsistent Thermodynamic Absorption on Single-GPU Architecture — Maycol Jhonatan Benavides Sánchez · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS