activity
20192023
most citedArtificial-intelligence-based molecular classification of diffuse gliomas using rapid, label-free optical imaging

182 citations · 204 across the 19 of their papers we have counts for

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7 papers · 1 filter

cs.CV2023

Digital Modeling on Large Kernel Metamaterial Neural Network

Quan Liu, Hanyu Zheng, Brandon T. Swartz +5

Deep neural networks (DNNs) utilized recently are physically deployed with computational units (e.g., CPUs and GPUs). Such a design might lead to a heavy computational burden, sign…

cs.CV20231 cited

Region-based Contrastive Pretraining for Medical Image Retrieval with Anatomic Query

Ho Hin Lee, Alberto Santamaria-Pang, Jameson Merkow +4

We introduce a novel Region-based contrastive pretraining for Medical Image Retrieval (RegionMIR) that demonstrates the feasibility of medical image retrieval with similar anatomic…

cs.CV2023182 cited

Artificial-intelligence-based molecular classification of diffuse gliomas using rapid, label-free optical imaging

Todd C. Hollon, Cheng Jiang, Asadur Chowdury +22

Molecular classification has transformed the management of brain tumors by enabling more accurate prognostication and personalized treatment. However, timely molecular diagnostic t…

cs.CV2022

Adaptive Contrastive Learning with Dynamic Correlation for Multi-Phase Organ Segmentation

Ho Hin Lee, Yucheng Tang, Han Liu +7

Recent studies have demonstrated the superior performance of introducing ``scan-wise" contrast labels into contrastive learning for multi-organ segmentation on multi-phase computed…

cs.CV2022

Longitudinal Variability Analysis on Low-dose Abdominal CT with Deep Learning-based Segmentation

Xin Yu, Yucheng Tang, Qi Yang +6

Metabolic health is increasingly implicated as a risk factor across conditions from cardiology to neurology, and efficiency assessment of body composition is critical to quantitati…

cs.CV20211 cited

Semantic-Aware Contrastive Learning for Multi-object Medical Image Segmentation

Ho Hin Lee, Yucheng Tang, Qi Yang +6

Medical image segmentation, or computing voxelwise semantic masks, is a fundamental yet challenging task to compute a voxel-level semantic mask. To increase the ability of encoder-…