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Junkyung Kim

4 accepted papers

2021

Tracking Without Re-recognition in Humans and Machines

NeurIPS 2021poster

Imagine trying to track one particular fruitfly in a swarm of hundreds. Higher biological visual systems have evolved to track moving objects by relying on both their appearance and their motion trajectories. We investigate if state-of-the-art spatiotemporal deep neural networks are capable of the s…

Cited by 16SourcePDFScholar
2018

Learning long-range spatial dependencies with horizontal gated recurrent units

NeurIPS 2018poster

Progress in deep learning has spawned great successes in many engineering applications. As a prime example, convolutional neural networks, a type of feedforward neural networks, are now approaching -- and sometimes even surpassing -- human accuracy on a variety of visual recognition tasks. Here, how…