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Zawar Qureshi

5 accepted papers

2025

Morpheus: Text-Driven 3D Gaussian Splat Shape and Color Stylization

CVPR 2025poster

Exploring real-world spaces using novel-view synthesis is fun, and reimagining those worlds in a different style adds another layer of excitement. Stylized worlds can also be used for downstream tasks where there is limited training data and a need to expand a model's training distribution. Most cur…

Cited by 0SourcePDFScholar
2025

PlaceIt3D: Language-Guided Object Placement in Real 3D Scenes

ICCV 2025poster

We introduce the task of Language-Guided Object Placement in Real 3D Scenes. Given a 3D reconstructed point-cloud scene, a 3D asset, and a natural-language instruction, the goal is to place the asset so that the instruction is satisfied. The task demands tackling four intertwined challenges: (a) one…

Cited by 0SourcePDFScholar
2024

AirPlanes: Accurate Plane Estimation via 3D-Consistent Embeddings

CVPR 2024poster

Extracting planes from a 3D scene is useful for downstream tasks in robotics and augmented reality. In this paper we tackle the problem of estimating the planar surfaces in a scene from posed images. Our first finding is that a surprisingly competitive baseline results from combining popular cluster…

Cited by 1SourcePDFScholar
2024

DoubleTake: Geometry Guided Depth Estimation

ECCV 2024poster

"Estimating depth from a sequence of posed RGB images is a fundamental computer vision task, with applications in augmented reality, path planning etc. Prior work typically makes use of previous frames in a multi view stereo framework, relying on matching textures in a local neighborhood. In contras…

Cited by 1SourcePDFScholar
2023

Virtual Occlusions Through Implicit Depth

CVPR 2023poster

For augmented reality (AR), it is important that virtual assets appear to 'sit among' real world objects. The virtual element should variously occlude and be occluded by real matter, based on a plausible depth ordering. This occlusion should be consistent over time as the viewer's camera moves. Unfo…