Using Machine Learning to Identify Hydrologic Signatures With an Encoder–Decoder Framework

Hydrologic signatures are quantitative metrics that describe a streamflow time series. Examples include annual maximum flow, baseflow index and recession shape descriptors. In this paper, we use machine learning (ML) to learn encodings that are optimal ML equivalents of hydrologic signatures, and th...

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Bibliographic Details
Published in:Water resources research Vol. 59; no. 3
Main Authors: Botterill, Tom E., McMillan, Hilary K.
Format: Journal Article
Language:English
Published: Washington John Wiley & Sons, Inc 01.03.2023
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ISSN:0043-1397, 1944-7973
Online Access:Get full text
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