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Akshay Gadi Patil

4 accepted papers

2024

Active Coarse-to-Fine Segmentation of Moveable Parts from Real Images

ECCV 2024poster

"We introduce the first active learning (AL) model for high-accuracy instance segmentation of parts from RGB images of real indoor scenes. Specifically, our goal is to obtain fully validated segmentation results by humans while minimizing manual effort. To this end, we employ a transformer that util…

2023

DiViNeT: 3D Reconstruction from Disparate Views using Neural Template Regularization

NeurIPS 2023poster

We present a volume rendering-based neural surface reconstruction method that takes as few as three disparate RGB images as input. Our key idea is to regularize the reconstruction, which is severely ill-posed and leaving significant gaps between the sparse views, by learning a set of neural template…

Cited by 7SourcePDFScholar
2021

LayoutGMN: Neural Graph Matching for Structural Layout Similarity

CVPR 2021poster

We present a deep neural network to predict structural similarity between 2D layouts by leveraging Graph Matching Networks (GMN). Our network, coined LayoutGMN, learns the layout metric via neural graph matching, using an attention-based GMN designed under a triplet network setting. To train our net…

Cited by 39PDFScholar
2020

DR-KFS: A Differentiable Visual Similarity Metric for 3D Shape Reconstruction

ECCV 2020poster

We introduce a differential visual similarity metric to train deep neural networks for 3D reconstruction, aimed at improving reconstruction quality. The metric compares two 3D shapes by measuring distances between multi-view images differentiably rendered from the shapes. Importantly, the image-spac…

Cited by 9SourcePDFScholar