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Nonlinear input transformations are ubiquitous in quantum reservoir computing

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arxiv 2107.00147 v1 pith:UQK3BAQT submitted 2021-06-30 quant-ph cond-mat.dis-nn

classification quant-phcond-mat.dis-nn
keywords quantumcomputingreservoirinputcomputationalencodingframeworknonlinear
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The nascent computational paradigm of quantum reservoir computing presents an attractive use of near-term, noisy-intermediate-scale quantum processors. To understand the potential power and use cases of quantum reservoir computing, it is necessary to define a conceptual framework to separate its constituent components and determine their impacts on performance. In this manuscript, we utilize such a framework to isolate the input encoding component of contemporary quantum reservoir computing schemes. We find that across the majority of schemes the input encoding implements a nonlinear transformation on the input data. As nonlinearity is known to be a key computational resource in reservoir computing, this calls into question the necessity and function of further, post-input, processing. Our findings will impact the design of future quantum reservoirs, as well as the interpretation of results and fair comparison between proposed designs.

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  1. Experimental neuromorphic computing based on quantum memristor

    quant-ph 2025-04 conditional novelty 6.0 of 10

    A photonic quantum memristor used as a reservoir improves nonlinear prediction and time-series forecasting compared to the same circuit without feedback, in the first experimental neuromorphic demonstration with this device.

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