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technical update to let the blog run under new hugo versios and some additions for the content
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about/index.html

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<description>&lt;p&gt;Book chapter in the &lt;a href=&#34;https://link.springer.com/book/10.1007/978-3-030-28954-6&#34;&gt;Explainable AI: Interpreting, Explaining and Visualizing Deep Learning&lt;/a&gt; (Editors Wojciech SamekGrégoire MontavonAndrea VedaldiLars Kai HansenKlaus-Robert Müller).&lt;/p&gt;</description>
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<title>In Defense of Metrics: Metrics Sufficiently Encode Typical Human Preferences Regarding Hydrological Model Performance</title>
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<title>The Great Lakes Runoff Intercomparison Project Phase 4: the Great Lakes (GRIP-GL)</title>
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<description>&lt;p&gt;This paper performs a rigorous benchmark of traditional hydrologic models and an LSTM-based model for rainfall-runoff modeling.&lt;/p&gt;</description>
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<title>Hydrological Concept Formation inside Long Short-Term Memory (LSTM) networks </title>
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<description>&lt;p&gt;In this paper, we investigate what information the LSTM captures about the hydrological system.&lt;/p&gt;</description>
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<title>Caravan - A global community dataset for large-sample hydrology</title>
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<description>&lt;p&gt;This paper introduces the &lt;a href=&#34;https://github.com/kratzert/Caravan/&#34;&gt;Caravan dataset&lt;/a&gt;, a global large-sample hydrology dataset that builds on cloud computing to be extensible by anyone.&lt;/p&gt;</description>
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<title>NeuralHydrology — A Python library for Deep Learning research in hydrology</title>
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<description>&lt;p&gt;Accompanying paper to our open source Python library &lt;a href=&#34;https://github.com/neuralhydrology/neuralhydrology&#34;&gt;NeuralHydrology&lt;/a&gt;.&lt;/p&gt;</description>
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<description>&lt;p&gt;This paper investigates the hypothesis that the lack of enforced mass conservation is the main reason that deep learning models outperform traditional hydrology models.&lt;/p&gt;</description>
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<description>&lt;p&gt;In this paper, we investigate the potential of using the LSTM as a post-processor for the US National Water Model.&lt;/p&gt;</description>
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<title>Technical Note: Data assimilation and autoregression for using near-real-time streamflow observations in long short-term memory networks</title>
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<description>&lt;p&gt;Technical note that compares autoregression to data assimilation for deep learning models and rainfall-runoff modeling.&lt;/p&gt;</description>
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<description>&lt;p&gt;This paper investigates the hypothesis that deep learning models may not be reliable in extrapolating extreme events.&lt;/p&gt;</description>
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<description>&lt;p&gt;New LSTM-based architecture for predictions at multiple temporal time scales.&lt;/p&gt;</description>
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<title>Uncertainty Estimation with Deep Learning for Rainfall-Runoff Modelling</title>
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<description>&lt;p&gt;Deep learning based uncertainty estimation techniques and benchmarking procedure for rainfall-runoff modeling.&lt;/p&gt;</description>
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<description>&lt;p&gt;In this study, we present a mass-conserving variant of the LSTM and its application to arithmetic tasks, traffic forecasting, modeling a pendulum and rainfall-runoff modeling.&lt;/p&gt;</description>
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<description>&lt;p&gt;An introduction to hydrology and especially rainfall-runoff modeling, targeted at data scientists.&lt;/p&gt;</description>
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<title>Toward Improved Predictions in Ungauged Basins: Exploiting the Power of Machine Learning</title>
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<description>&lt;p&gt;In this manuscript we test LSTM-based rainfall-runoff models on the task of prediction in ungauged basins and show, that a single LSTM-based model does better prediction in &lt;em&gt;ungauged&lt;/em&gt; basins than a traditional hydrological model that was specifically calibrated for each basin individually.&lt;/p&gt;</description>
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<title>The Proper Care and Feeding of CAMELS: How Limited Training Data Affects Streamflow Prediction</title>
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<description>&lt;p&gt;This paper investigates the influence of the number of training basins and the training period length on the model performance for the EA-LSTM and XGBoost&lt;/p&gt;</description>
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<title>Towards learning universal, regional, and local hydrological behaviors via machine learning applied to large-sample datasets</title>
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<description>&lt;p&gt;In this manuscript we show for the first time how to train a single LSTM-based neural network as general hydrology model for hundreds of basins. Furthermore, we proposed the Entity-Aware LSTM (EA-LSTM) in which static features are used explicitly to subset the model for a specific entity (here a catchment).&lt;/p&gt;</description>
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<title>Do internals of neural networks make sense in the context of hydrology?</title>
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<description>&lt;p&gt;Presentation at the AGU 2018 Fall Meeting on experiments regarding the interpretability of LSTM states.&lt;/p&gt;</description>
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