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Soroosh Yazdani

5 accepted papers

2024

Neural Fields as Distributions: Signal Processing Beyond Euclidean Space

CVPR 2024poster

Neural fields have emerged as a powerful and broadly applicable method for representing signals. However in contrast to classical discrete digital signal processing the portfolio of tools to process such representations is still severely limited and restricted to Euclidean domains. In this paper we…

Cited by 1SourcePDFScholar
2021

Canonical Capsules: Self-Supervised Capsules in Canonical Pose

NeurIPS 2021poster

We propose a self-supervised capsule architecture for 3D point clouds. We compute capsule decompositions of objects through permutation-equivariant attention, and self-supervise the process by training with pairs of randomly rotated objects. Our key idea is to aggregate the attention masks into sema…

2021

Unsupervised Part Representation by Flow Capsules

ICML 2021spotlight

Capsule networks aim to parse images into a hierarchy of objects, parts and relations. While promising, they remain limited by an inability to learn effective low level part descriptions. To address this issue we propose a way to learn primary capsule encoders that detect atomic parts from a single…

Cited by 49SourcePDFScholar
2020

CvxNet: Learnable Convex Decomposition

CVPR 2020oral

Any solid object can be decomposed into a collection of convex polytopes (in short, convexes). When a small number of convexes are used, such a decomposition can be thought of as a piece-wise approximation of the geometry. This decomposition is fundamental in computer graphics, where it provides one…

Cited by 292PDFScholar