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Karl Moritz Hermann

5 accepted papers

2019

Hyperbolic Attention Networks

ICLR 2019poster

Recent approaches have successfully demonstrated the benefits of learning the parameters of shallow networks in hyperbolic space. We extend this line of work by imposing hyperbolic geometry on the embeddings used to compute the ubiquitous attention mechanisms for different neural networks architectu…

Cited by 302SourcePDFScholar
2018

Emergence of Linguistic Communication from Referential Games with Symbolic and Pixel Input

ICLR 2018oral

The ability of algorithms to evolve or learn (compositional) communication protocols has traditionally been studied in the language evolution literature through the use of emergent communication tasks. Here we scale up this research by using contemporary deep learning methods and by training reinfor…

Cited by 276SourcePDFScholar
2018

Learning to Navigate in Cities Without a Map

NeurIPS 2018poster

Navigating through unstructured environments is a basic capability of intelligent creatures, and thus is of fundamental interest in the study and development of artificial intelligence. Long-range navigation is a complex cognitive task that relies on developing an internal representation of space, g…

2015

Learning to Transduce with Unbounded Memory

NeurIPS 2015poster

Recently, strong results have been demonstrated by Deep Recurrent Neural Networks on natural language transduction problems. In this paper we explore the representational power of these models using synthetic grammars designed to exhibit phenomena similar to those found in real transduction problems…

Cited by 353SourcePDFScholar
2015

Teaching Machines to Read and Comprehend

NeurIPS 2015poster

Teaching machines to read natural language documents remains an elusive challenge. Machine reading systems can be tested on their ability to answer questions posed on the contents of documents that they have seen, but until now large scale training and test datasets have been missing for this type o…