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Tyler R. Scott

3 accepted papers

2023

Learning in temporally structured environments

ICLR 2023poster

Natural environments have temporal structure at multiple timescales. This property is reflected in biological learning and memory but typically not in machine learning systems. We advance a multiscale learning method in which each weight in a neural network is decomposed as a sum of subweights with…

Cited by 6SourcePDFScholar
2021

von Mises-Fisher Loss: An Exploration of Embedding Geometries for Supervised Learning

ICCV 2021poster

Recent work has argued that classification losses utilizing softmax cross-entropy are superior not only for fixed-set classification tasks, but also by outperforming losses developed specifically for open-set tasks including few-shot learning and retrieval. Softmax classifiers have been studied usin…

Cited by 50PDFcodeScholar
2020

Geomorphological Analysis Using Unpiloted Aircraft Systems, Structure from Motion, and Deep Learning

IROS 2020poster

We present a pipeline for geomorphological analysis that uses structure from motion (SfM) and deep learning on close-range aerial imagery to estimate spatial distributions of rock traits (size, roundness, and orientation) along a tectonic fault scarp. The properties of the rocks on the fault scarp d…

Cited by 24SourceScholar