没血色 发表于 2025-3-23 10:41:53
Enhancing Data Diversity for Self-training Based Unsupervised Cross-Modality Vestibular Schwannoma agmentation methods have shown promising results without requiring the time-consuming and laborious manual labeling process. In this paper, we present an approach for VS and cochlea segmentation in an unsupervised domain adaptation setting. Specifically, we first develop a cross-site cross-modality u腐蚀 发表于 2025-3-23 16:54:55
Regularized Weight Aggregation in Networked Federated Learning for Glioblastoma Segmentationoration selection to manage and optimize communication payload. We introduce a practical and cost-efficient method for regularized weight aggregation and propose a laborsaving technique to select collaborators per round. We illustrate the performance of our method, regularized similarity weight aggrGLIB 发表于 2025-3-23 22:02:29
A Local Score Strategy for Weight Aggregation in Federated Learningieve a competitive result like in centralised settings. FeTS Challenge is an initiative focusing on federated learning and robustness to distribution shifts between medical institutions for brain tumor segmentation. In this paper, we describe a method based on the local score rate for the weight aggConsequence 发表于 2025-3-23 23:28:51
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Self-supervised iRegNet for the Registration of Longitudinal Brain MRI of Diffuse Glioma PatientsE of 2.93 ± 1.63 mm for the validation set. Additional qualitative validation of this study was conducted through overlaying pre-post MRI pairs before and after the deformable registration. The proposed method scored 5th place during the testing phase of the MICCAI BraTS-Reg 2022 challenge. The dockfolliculitis 发表于 2025-3-24 19:53:57
3D Inception-Based TransMorph: Pre- and Post-operative Multi-contrast MRI Registration in Brain Tumos composed of a standard image similarity measure, a diffusion regularizer, and an edge-map similarity measure added to overcome intensity dependence and reinforce correct boundary deformation. We observed that the addition of the Inception module substantially increased the performance of the netwohangdog 发表于 2025-3-24 23:32:48
Koos Classification of Vestibular Schwannoma via Image Translation-Based Unsupervised Cross-Modalityty domain adaptation method based on image translation by transforming annotated ceT1 scans into hrT2 modality and using their annotations to achieve supervised learning of hrT2 modality. Then, the VS and 7 adjacent brain structures related to Koos classification in hrT2 scans were segmented. Finall