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Learning Long-Time Dependencies with RNNs w/ Konstantin Rusch - #484
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Sam Charrington

· 38 Minutes

PodcastThe TWIML AI Podcast

Learning Long-Time Dependencies with RNNs w/ Konstantin Rusch - #484

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Today we conclude our 2021 ICLR coverage joined by Konstantin Rusch, a PhD Student at ETH Zurich.

In our conversation with Konstantin, we explore his recent papers, titled coRNN and uniCORNN respectively, which focus on a novel architecture of recurrent neural networks for learning long-time dependencies.

We explore the inspiration he drew from neuroscience when tackling this problem, how the performance results compared to networks like LSTMs and others that have been proven to work on this problem and Konstantin’s future research goals.

The complete show notes for this episode can be found at twimlai.com/go/484.

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This story was published by The TWIML AI Podcast and written by Sam Charrington. SyncAI.news shows a preview; the complete article is on the publisher's site.

Read the full story on twimlai.com

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