2022
DOI: 10.1109/lra.2022.3146894
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Improving Road Segmentation in Challenging Domains Using Similar Place Priors

Abstract: Road segmentation in challenging domains, such as night, snow or rain, is a difficult task. Most current approaches boost performance using fine-tuning, domain adaptation, style transfer, or by referencing previously acquired imagery. These approaches share one or more of three significant limitations: a reliance on large amounts of annotated training data that can be costly to obtain, both anticipation of and training data from the type of environmental conditions expected at inference time, and/or imagery ca… Show more

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References 47 publications
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