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Kaleem Siddiqi

10 accepted papers

2025

Visual-Tactile Inference of 2.5D Object Shape From Marker Texture

RA-L 2025

Visual-tactile sensing affords abundant capabilities for contact-rich object manipulation tasks including grasping and placing. Here we introduce a shape-from-texture inspired contact shape estimation approach for visual-tactile sensors equipped with visually distinct membrane markers. Under a persp

Cited by 0SourceScholar
2024

Efficient Dynamics Modeling in Interactive Environments with Koopman Theory

ICLR 2024poster

The accurate modeling of dynamics in interactive environments is critical for successful long-range prediction. Such a capability could advance Reinforcement Learning (RL) and Planning algorithms, but achieving it is challenging. Inaccuracies in model estimates can compound, resulting in increased e…

Cited by 3SourcePDFScholar
2022

EqR: Equivariant Representations for Data-Efficient Reinforcement Learning

ICML 2022spotlight

We study a variety of notions of equivariance as an inductive bias in Reinforcement Learning (RL). In particular, we propose new mechanisms for learning representations that are equivariant to both the agent’s action, as well as symmetry transformations of the state-action pairs. Whereas prior work…

2022

Finger-STS: Combined Proximity and Tactile Sensing for Robotic Manipulation

RA-L 2022

This paper introduces and develops novel touch sensing technologies that enable robots to better sense and react to to intermittent contact interactions. We present Finger-STS, a robotic finger embodiment of the See-Through-your-Skin (STS) sensor that can capture 1) an “in the hand” visual perspecti

Cited by 33SourceScholar
2022

Medial Spectral Coordinates for 3D Shape Analysis

CVPR 2022oral

In recent years there has been a resurgence of interest in our community in the shape analysis of 3D objects represented by surface meshes, their voxelized interiors, or surface point clouds. In part, this interest has been stimulated by the increased availability of RGBD cameras, and by application…

Cited by 9PDFScholar
2020

Affinity Graph Supervision for Visual Recognition

CVPR 2020poster

Affinity graphs are widely used in deep architectures, including graph convolutional neural networks and attention networks. Thus far, the literature has focused on abstracting features from such graphs, while the learning of the affinities themselves has been overlooked. Here we propose a principle…

Cited by 11PDFScholar
2020

Appearance Shock Grammar for Fast Medial Axis Extraction From Real Images

CVPR 2020poster

We combine ideas from shock graph theory with more recent appearance-based methods for medial axis extraction from complex natural scenes, improving upon the present best unsupervised method, in terms of efficiency and performance. We make the following specific contributions: i) we extend the shock…

Cited by 8PDFScholar
2019

Scene Categorization From Contours: Medial Axis Based Salience Measures

CVPR 2019poster

The computer vision community has witnessed recent advances in scene categorization from images, with the state of the art systems now achieving impressive recognition rates on challenging benchmarks. Such systems have been trained on photographs which include color, texture and shading cues. The ge…

Cited by 36PDFScholar