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Feedback-Driven Quantum Reservoir Computing for Time-Series Analysis

delete2024-11-14
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OA
AI
K
Kaito Kobayashi *
K
Keisuke Fujii
N
Naoki Yamamoto
DOI:10.1103/PRXQuantum.5.040325delete
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Abstract

Abstract

En 中文
Quantum reservoir computing (QRC) is a highly promising computational paradigm that leverages quantum systems as a computational resource for nonlinear information processing. While its application to time-series analysis is eagerly anticipated, prevailing approaches suffer from the collapse of the quantum state upon measurement, resulting in the erasure of temporal input memories. Neither repeated initializations nor weak measurements offer a fundamental solution, as the former escalates the time complexity while the latter restricts the information extraction from the Hilbert space. To address this issue, we propose the feedback-driven QRC framework. This methodology employs projective measurements on all qubits for unrestricted access to the quantum state, with the measurement outcomes subsequently fed back into the reservoir to restore the memory of prior inputs. We demonstrate that our QRC successfully acquires the fading-memory property through the feedback connections, a critical aspect in time-series processing. Notably, analysis of measurement trajectories reveals three distinct phases depending on the feedback strength, with the memory performance maximized at the edge of chaos. We also evaluate the predictive capabilities of our QRC, demonstrating its suitability for forecasting signals originating from quantum spin systems.
Keywords:
ECHO STATE NETWORKS
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Journal

P
PRX Quantum
IF:
11
Papers:
919
Citations:
9.0K

Organization

K
Keio University
Scholars:
2.2W
Papers: 1.6W
Citations: 13
U
University of Tokyo
Scholars:
7.1W
Papers: 6.5W
Citations: 2.2K
O
osaka university
Scholars:
2.6W
Papers: 1.9W
Citations: 30
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