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Shrinidhi Kowshika Lakshmikanth

4 accepted papers

2020

Tracking Emerges by Looking Around Static Scenes, with Neural 3D Mapping

ECCV 2020poster

with Neural 3D Mapping","We hypothesize that an agent that can look around in static scenes can learn rich visual representations applicable to 3D object tracking in complex dynamic scenes. We are motivated in this pursuit by the fact that the physical world itself is mostly static, and multiview co…

2019

Exploiting Sparse Semantic HD Maps for Self-Driving Vehicle Localization

IROS 2019poster

In this paper we propose a novel semantic localization algorithm that exploits multiple sensors and has precision on the order of a few centimeters. Our approach does not require detailed knowledge about the appearance of the world, and our maps require orders of magnitude less storage than maps uti…

Cited by 147SourceScholar
2018

Deep Multi-Sensor Lane Detection

IROS 2018poster

Reliable and accurate lane detection has been a long-standing problem in the field of autonomous driving. In recent years, many approaches have been developed that use images (or videos) as input and reason in image space. In this paper we argue that accurate image estimates do not translate to prec…

Cited by 108SourceScholar
2018

Hierarchical Recurrent Attention Networks for Structured Online Maps

CVPR 2018poster

In this paper, we tackle the problem of online road network extraction from sparse 3D point clouds. Our method is inspired by how an annotator builds a lane graph, by first identifying how many lanes there are and then drawing each one in turn. We develop a hierarchical recurrent network that atten…

Cited by 77SourcePDFScholar