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20152020
most citedOn the Difference Between the Information Bottleneck and the Deep Information Bottleneck

10 citations · 11 across the 2 of their papers we have counts for

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6 papers · 1 filter

cs.LG2020

Inverse Learning of Symmetries

Mario Wieser, Sonali Parbhoo, Aleksander Wieczorek +1

Symmetry transformations induce invariances which are frequently described with deep latent variable models. In many complex domains, such as the chemical space, invariances can be…

cs.LG201910 cited

On the Difference Between the Information Bottleneck and the Deep Information Bottleneck

Aleksander Wieczorek, Volker Roth

Combining the Information Bottleneck model with deep learning by replacing mutual information terms with deep neural nets has proved successful in areas ranging from generative mod…

cs.LG2019

Optimizing for Interpretability in Deep Neural Networks with Tree Regularization

Mike Wu, Sonali Parbhoo, Michael C. Hughes +2

Deep models have advanced prediction in many domains, but their lack of interpretability remains a key barrier to the adoption in many real world applications. There exists a large…

cs.LG2019

Regional Tree Regularization for Interpretability in Black Box Models

Mike Wu, Sonali Parbhoo, Michael Hughes +5

The lack of interpretability remains a barrier to the adoption of deep neural networks. Recently, tree regularization has been proposed to encourage deep neural networks to resembl…

cs.LG2019

Deep Archetypal Analysis

Sebastian Mathias Keller, Maxim Samarin, Mario Wieser +1

"Deep Archetypal Analysis" generates latent representations of high-dimensional datasets in terms of fractions of intuitively understandable basic entities called archetypes. The p…

cs.LG20151 cited

Probabilistic Clustering of Time-Evolving Distance Data

Julia E. Vogt, Marius Kloft, Stefan Stark +4

We present a novel probabilistic clustering model for objects that are represented via pairwise distances and observed at different time points. The proposed method utilizes the in…