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Jiri Matas

36 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…

2025

Detection, Pose Estimation and Segmentation for Multiple Bodies: Closing the Virtuous Circle

ICCV 2025poster

Human pose estimation methods work well on isolated people but struggle with multiple-bodies-in-proximity scenarios. Previous work has addressed this problem by conditioning pose estimation by detected bounding boxes or keypoints, but overlooked instance masks. We propose to iteratively enforce mutu…

2025

ILIAS: Instance-Level Image retrieval At Scale

CVPR 2025poster

This work introduces ILIAS, a new test dataset for Instance-Level Image retrieval At Scale. It is designed to evaluate the ability of current and future foundation models and retrieval techniques to recognize particular objects. The key benefits over existing datasets include large scale, domain div…

Cited by 1SourcePDFScholar
2023

A Large-Scale Homography Benchmark

CVPR 2023poster

We present a large-scale dataset of Planes in 3D, Pi3D, of roughly 1000 planes observed in 10 000 images from the 1DSfM dataset, and HEB, a large-scale homography estimation benchmark leveraging Pi3D. The applications of the Pi3D dataset are diverse, e.g. training or evaluating monocular depth, surf…

2023

Finding Geometric Models by Clustering in the Consensus Space

CVPR 2023poster

We propose a new algorithm for finding an unknown number of geometric models, e.g., homographies. The problem is formalized as finding dominant model instances progressively without forming crisp point-to-model assignments. Dominant instances are found via a RANSAC-like sampling and a consolidation…

2021

DeFMO: Deblurring and Shape Recovery of Fast Moving Objects

CVPR 2021poster

Objects moving at high speed appear significantly blurred when captured with cameras. The blurry appearance is especially ambiguous when the object has complex shape or texture. In such cases, classical methods, or even humans, are unable to recover the object's appearance and motion. We propose a m…

Cited by 50PDFcodeScholar
2021

Efficient Initial Pose-Graph Generation for Global SfM

CVPR 2021poster

We propose ways to speed up the initial pose-graph generation for global Structure-from-Motion algorithms. To avoid forming tentative point correspondences by FLANN and geometric verification by RANSAC, which are the most time-consuming steps of the pose-graph creation, we propose two new methods --…

Cited by 34PDFcodeScholar
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
2020

Guiding Monocular Depth Estimation Using Depth-Attention Volume

ECCV 2020poster

Recovering the scene depth from a single image is an ill-posed problem that requires additional priors, often referred to as monocular depth cues, to disambiguate different 3D interpretations. In recent works, those priors have been learned in an end-to-end manner from large datasets by using deep n…

2020

MAGSAC++, a Fast, Reliable and Accurate Robust Estimator

CVPR 2020oral

We propose MAGSAC++ and Progressive NAPSAC sampler, P-NAPSAC in short. In MAGSAC++, we replace the model quality and polishing functions of the original method by an iteratively re-weighted least-squares fitting with weights determined via marginalizing over the noise scale. MAGSAC++ is fast -- ofte…

Cited by 332PDFcodeScholar
2020

Sub-Frame Appearance and 6D Pose Estimation of Fast Moving Objects

CVPR 2020poster

We propose a novel method that tracks fast moving objects, mainly non-uniform spherical, in full 6 degrees of freedom, estimating simultaneously their 3D motion trajectory, 3D pose and object appearance changes with a time step that is a fraction of the video frame exposure time. The sub-frame objec…

Cited by 21PDFcodeScholar
2019

CDTB: A Color and Depth Visual Object Tracking Dataset and Benchmark

ICCV 2019poster

We propose a new color-and-depth general visual object tracking benchmark (CDTB). CDTB is recorded by several passive and active RGB-D setups and contains indoor as well as outdoor sequences acquired in direct sunlight. The CDTB dataset is the largest and most diverse dataset in RGB-D tracking, with…

Cited by 89PDFcodeScholar
2019

Object Tracking by Reconstruction With View-Specific Discriminative Correlation Filters

CVPR 2019poster

Standard RGB-D trackers treat the target as a 2D structure, which makes modelling appearance changes related even to out-of-plane rotation challenging. This limitation is addressed by the proposed long-term RGB-D tracker called OTR - Object Tracking by Reconstruction. OTR performs online 3D target r…

Cited by 106PDFScholar
2018

BOP: Benchmark for 6D Object Pose Estimation

ECCV 2018poster

We propose a benchmark for 6D pose estimation of a rigid object from a single RGB-D input image. The training data consists of a texture-mapped 3D object model or images of the object in known 6D poses. The benchmark comprises of: i) eight datasets in a unified format that cover different practical…

2018

Repeatability Is Not Enough: Learning Affine Regions via Discriminability

ECCV 2018poster

A method for learning local affine-covariant regions is presented. We show that maximizing geometric repeatability does not lead to local regions, a.k.a features, that are reliably matched and this necessitates descriptor-based learning. We explore factors that influence such learning and registrati…

2017

Deep TextSpotter: An End-To-End Trainable Scene Text Localization and Recognition Framework

ICCV 2017poster

A method for scene text localization and recognition is proposed. The novelties include: training of both text detection and recognition in a single end-to-end pass, the structure of the recognition CNN and the geometry of its input layer that preserves the aspect of the text and adapts its resoluti…

Cited by 309PDFcodeScholar
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
2017

Inertial-based scale estimation for structure from motion on mobile devices

IROS 2017poster

Structure from motion algorithms have an inherent limitation that the reconstruction can only be determined up to the unknown scale factor. Modern mobile devices are equipped with an inertial measurement unit (IMU), which can be used for estimating the scale of the reconstruction. We propose a metho…

Cited by 26SourceScholar
2017

Working hard to know your neighbor's margins: Local descriptor learning loss

NeurIPS 2017poster

We introduce a loss for metric learning, which is inspired by the Lowe's matching criterion for SIFT. We show that the proposed loss, that maximizes the distance between the closest positive and closest negative example in the batch, is better than complex regularization methods; it works well for b…

2016

From Dusk Till Dawn: Modeling in the Dark

CVPR 2016spotlight

Internet photo collections naturally contain a large variety of illumination conditions, with the largest difference between day and night images. Current modeling techniques do not embrace the broad illumination range often leading to reconstruction failure or severe artifacts. We present an algori…

Cited by 52PDFScholar