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Machine learning assisted measurement of local topological invariants

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arxiv 1901.03346 v2 pith:BZNXH4LY submitted 2019-01-10 cond-mat.dis-nn cond-mat.mes-hallcond-mat.mtrl-sci

classification cond-mat.dis-nncond-mat.mes-hallcond-mat.mtrl-sci
keywords topologicallocalphasessystemsdifferentdirectlearningmachine
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The continuous effort towards topological quantum devices calls for an efficient and non-invasive method to assess the conformity of components in different topological phases. Here, we show that machine learning paves the way towards non-invasive topological quality control. To do so, we use a local topological marker, able to discriminate between topological phases of one-dimensional wires. The direct observation of this marker in solid state systems is challenging, but we show that an artificial neural network can learn to approximate it from the experimentally accessible local density of states. Our method distinguishes different non-trivial phases, even for systems where direct transport measurements are not available and for composite systems. This new approach could find significant use in experiments, ranging from the study of novel topological materials to high-throughput automated material design.

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  1. Topological finite size effect in one-dimensional chiral symmetric systems

    cond-mat.mes-hall 2024-11 conditional novelty 5.0 of 10

    A bulk-overlap criterion for topological edge states is proposed as an experimental proxy for the real-space winding number in finite chiral-symmetric 1D systems.

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