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Tomas Vojir

3 accepted papers

2025

A Dataset for Semantic Segmentation in the Presence of Unknowns

CVPR 2025poster

Before deployment in the real-world deep neural networks require thorough evaluation of how they handle both knowns, inputs represented in the training data, and unknowns (anomalies). This is especially important for scene understanding tasks with safety critical applications, such as in autonomous…

2021

Road Anomaly Detection by Partial Image Reconstruction With Segmentation Coupling

ICCV 2021poster

We present a novel approach to the detection of unknown objects in the context of autonomous driving. The problem is formulated as anomaly detection, since we assume that the unknown stuff or object appearance cannot be learned. To that end, we propose a reconstruction module that can be used with m…

Cited by 81PDFcodeScholar
2017

Discriminative Correlation Filter With Channel and Spatial Reliability

CVPR 2017poster

Short-term tracking is an open and challenging problem for which discriminative correlation filters (DCF) have shown excellent performance. We introduce the channel and spatial reliability concepts to DCF tracking and provide a novel learning algorithm for its efficient and seamless integration in…

Cited by 1672PDFcodeScholar