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20182021
most citedUnsupervised Shape Normality Metric for Severity Quantification

1 citations · 2 across the 4 of their papers we have counts for

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cs.CV2020

Uncertain-DeepSSM: From Images to Probabilistic Shape Models

Jadie Adams, Riddhish Bhalodia, Shireen Elhabian

Statistical shape modeling (SSM) has recently taken advantage of advances in deep learning to alleviate the need for a time-consuming and expert-driven workflow of anatomy segmenta…

cs.CV2020★ 1 cited

Unsupervised Shape Normality Metric for Severity Quantification

Wenzheng Tao, Riddhish Bhalodia, Erin Anstadt +3

This work describes an unsupervised method to objectively quantify the abnormality of general anatomical shapes. The severity of an anatomical deformity often serves as a determina…

cs.CV2020

Self-Supervised Discovery of Anatomical Shape Landmarks

Riddhish Bhalodia, Ladislav Kavan, Ross Whitaker

Statistical shape analysis is a very useful tool in a wide range of medical and biological applications. However, it typically relies on the ability to produce a relatively small n…

cs.CV2019

A Cooperative Autoencoder for Population-Based Regularization of CNN Image Registration

Riddhish Bhalodia, Shireen Y. Elhabian, Ladislav Kavan +1

Spatial transformations are enablers in a variety of medical image analysis applications that entail aligning images to a common coordinate systems. Population analysis of such tra…

cs.CV2019

CoopSubNet: Cooperating Subnetwork for Data-Driven Regularization of Deep Networks under Limited Training Budgets

Riddhish Bhalodia, Shireen Elhabian, Ladislav Kavan +1

Deep networks are an integral part of the current machine learning paradigm. Their inherent ability to learn complex functional mappings between data and various target variables,…

cs.CV2019

Mixture Modeling of Global Shape Priors and Autoencoding Local Intensity Priors for Left Atrium Segmentation

Tim Sodergren, Riddhish Bhalodia, Ross Whitaker +3

Difficult image segmentation problems, for instance left atrium MRI, can be addressed by incorporating shape priors to find solutions that are consistent with known objects. Noneth…