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Liouvillian skin effect in quantum neural networks

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arxiv 2406.14112 v2 pith:LOA5434O submitted 2024-06-20 quant-ph

Liouvillian skin effect in quantum neural networks

classification quant-ph
keywords skinquantumeffectinterestboundaryconditionsdissipativeeffects
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the field of dissipative systems, the non-Hermitian skin effect has generated significant interest due to its unexpected implications. A system is said to exhibit a skin effect if its properties are largely affected by the boundary conditions. Despite the burgeoning interest, the potential impact of this phenomenon on emerging quantum technologies remains unexplored. In this work, we address this gap by demonstrating that quantum neural networks can exhibit this behavior and that skin effects, beyond their fundamental interest, can also be exploited in computational tasks. Specifically, we show that the performance of a given complex network used as a quantum reservoir computer is dictated solely by the boundary conditions of a dissipative line within its architecture. The closure of one (edge) link is found to drastically change the performance in time-series processing, proving the possibility of exploiting skin effects for machine learning.

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