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20202026
most citedCross-Modality Image Registration using a Training-Time Privileged Third Modality

15 citations · 35 across the 20 of their papers we have counts for

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11 papers · 1 filter

eess.IV2026

On the Degrees of Freedom of Gridded Control Points in Learning-Based Medical Image Registration

Wen Yan, Qianye Yang, Yipei Wang +5

Many registration problems are ill-posed in homogeneous or noisy regions, and dense voxel-wise decoders can be unnecessarily high-dimensional. A sparse control-point parameterisati…

eess.IV2026

Promptable segmentation with region exploration enables minimal-effort expert-level prostate cancer delineation

Junqing Yang, Natasha Thorley, Ahmed Nadeem Abbasi +4

Purpose: Accurate segmentation of prostate cancer on magnetic resonance (MR) images is crucial for planning image-guided interventions such as targeted biopsies, cryoablation, and…

eess.IV2025

Dual Deep Learning Approach for Non-invasive Renal Tumour Subtyping with VERDICT-MRI

Snigdha Sen, Lorna Smith, Lucy Caselton +6

This work aims to characterise renal tumour microstructure using diffusion MRI (dMRI); via the Vascular, Extracellular and Restricted Diffusion for Cytometry in Tumours (VERDICT)-M…

eess.IV2024★ 1 cited

T2-Only Prostate Cancer Prediction by Meta-Learning from Bi-Parametric MR Imaging

Weixi Yi, Yipei Wang, Natasha Thorley +6

Current imaging-based prostate cancer diagnosis requires both MR T2-weighted (T2w) and diffusion-weighted imaging (DWI) sequences, with additional sequences for potentially greater…

eess.IV2024★ 2 cited

AI-assisted prostate cancer detection and localisation on biparametric MR by classifying radiologist-positives

Xiangcen Wu, Yipei Wang, Qianye Yang +5

Prostate cancer diagnosis through MR imaging have currently relied on radiologists' interpretation, whilst modern AI-based methods have been developed to detect clinically signific…

eess.IV2024★ 1 cited

Poisson Ordinal Network for Gleason Group Estimation Using Bi-Parametric MRI

Yinsong Xu, Yipei Wang, Ziyi Shen +7

The Gleason groups serve as the primary histological grading system for prostate cancer, providing crucial insights into the cancer's potential for growth and metastasis. In clinic…