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Automatic segmentation of glioma and its subregions is of great significance for diagnosis, treatment and monitoring of disease. In this paper, an augmentation method, called TensorMixup, was proposed and applied to the three dimensional…

Image and Video Processing · Electrical Eng. & Systems 2022-02-21 Yu Wang , Yarong Ji , Hongbing Xiao

Purpose: Magnetic resonance imaging (MRI) exams include multiple series with varying contrast and redundant information. For instance, T2-FLAIR contrast is based upon tissue T2 decay and the presence of water, also present in T2- and…

Recent studies on T1-assisted MRI reconstruction for under-sampled images of other modalities have demonstrated the potential of further accelerating MRI acquisition of other modalities. Most of the state-of-the-art approaches have achieved…

Image and Video Processing · Electrical Eng. & Systems 2021-11-15 Junwei Yang , Xiao-Xin Li , Feihong Liu , Dong Nie , Pietro Lio , Haikun Qi , Dinggang Shen

Breast cancer diagnosis demands rapid and precise tools, yet traditional histopathological methods often fall short in intra-operative settings. Deep Ultraviolet (DUV) fluorescence imaging emerges as a transformative approach, offering…

Computer Vision and Pattern Recognition · Computer Science 2026-04-21 Nagur Shareef Shaik , Teja Krishna Cherukuri , Dong Hye Ye

Accelerated magnetic resonance imaging involves reconstructing fully sampled images from undersampled k-space measurements. Current state-of-the-art approaches have mainly focused on either end-to-end supervised training inspired by…

Image and Video Processing · Electrical Eng. & Systems 2025-02-25 Xinzhe Luo , Yingzhen Li , Chen Qin

This study addresses critical gaps in automated lymphoma segmentation from PET/CT images, focusing on issues often overlooked in existing literature. While deep learning has been applied for lymphoma lesion segmentation, few studies…

Accurate brain tumor segmentation is significant for clinical diagnosis and treatment but remains challenging due to tumor heterogeneity. Mamba-based State Space Models have demonstrated promising performance. However, despite their…

Computer Vision and Pattern Recognition · Computer Science 2026-03-06 Danish Ali , Ajmal Mian , Naveed Akhtar , Ghulam Mubashar Hassan

We address the computational barrier of deploying advanced deep learning segmentation models in clinical settings by studying the efficacy of network compression through tensor decomposition. We propose a post-training Tucker factorization…

Image and Video Processing · Electrical Eng. & Systems 2024-04-19 Tobias Weber , Jakob Dexl , David Rügamer , Michael Ingrisch

Gliomas are aggressive brain tumors that infiltrate surrounding tissue beyond the visible tumor margins observed on Magnetic Resonance Imaging (MRI). Predicting the spatial extent of this infiltration is essential for surgical planning and…

Computer Vision and Pattern Recognition · Computer Science 2026-05-05 S M Asif Hossain , Shruti Kshirsagar

A cascade of fully convolutional neural networks is proposed to segment multi-modal Magnetic Resonance (MR) images with brain tumor into background and three hierarchical regions: whole tumor, tumor core and enhancing tumor core. The…

Computer Vision and Pattern Recognition · Computer Science 2018-07-23 Guotai Wang , Wenqi Li , Sebastien Ourselin , Tom Vercauteren

Accurate segmentation of gross tumor volume (GTV) is essential for effective MRI-guided adaptive radiotherapy (MRgART) in head and neck cancer. However, manual segmentation of the GTV over the course of therapy is time-consuming and prone…

Image and Video Processing · Electrical Eng. & Systems 2024-12-03 Xin Tie , Weijie Chen , Zachary Huemann , Brayden Schott , Nuohao Liu , Tyler J. Bradshaw

Treatment decisions for brain metastatic disease rely on knowledge of the primary organ site, and currently made with biopsy and histology. Here we develop a novel deep learning approach for accurate non-invasive digital histology with…

We describe the design and results from the BraTS 2023 Intracranial Meningioma Segmentation Challenge. The BraTS Meningioma Challenge differed from prior BraTS Glioma challenges in that it focused on meningiomas, which are typically benign…

Image and Video Processing · Electrical Eng. & Systems 2025-03-10 Dominic LaBella , Ujjwal Baid , Omaditya Khanna , Shan McBurney-Lin , Ryan McLean , Pierre Nedelec , Arif Rashid , Nourel Hoda Tahon , Talissa Altes , Radhika Bhalerao , Yaseen Dhemesh , Devon Godfrey , Fathi Hilal , Scott Floyd , Anastasia Janas , Anahita Fathi Kazerooni , John Kirkpatrick , Collin Kent , Florian Kofler , Kevin Leu , Nazanin Maleki , Bjoern Menze , Maxence Pajot , Zachary J. Reitman , Jeffrey D. Rudie , Rachit Saluja , Yury Velichko , Chunhao Wang , Pranav Warman , Maruf Adewole , Jake Albrecht , Udunna Anazodo , Syed Muhammad Anwar , Timothy Bergquist , Sully Francis Chen , Verena Chung , Rong Chai , Gian-Marco Conte , Farouk Dako , James Eddy , Ivan Ezhov , Nastaran Khalili , Juan Eugenio Iglesias , Zhifan Jiang , Elaine Johanson , Koen Van Leemput , Hongwei Bran Li , Marius George Linguraru , Xinyang Liu , Aria Mahtabfar , Zeke Meier , Ahmed W. Moawad , John Mongan , Marie Piraud , Russell Takeshi Shinohara , Walter F. Wiggins , Aly H. Abayazeed , Rachel Akinola , András Jakab , Michel Bilello , Maria Correia de Verdier , Priscila Crivellaro , Christos Davatzikos , Keyvan Farahani , John Freymann , Christopher Hess , Raymond Huang , Philipp Lohmann , Mana Moassefi , Matthew W. Pease , Phillipp Vollmuth , Nico Sollmann , David Diffley , Khanak K. Nandolia , Daniel I. Warren , Ali Hussain , Pascal Fehringer , Yulia Bronstein , Lisa Deptula , Evan G. Stein , Mahsa Taherzadeh , Eduardo Portela de Oliveira , Aoife Haughey , Marinos Kontzialis , Luca Saba , Benjamin Turner , Melanie M. T. Brüßeler , Shehbaz Ansari , Athanasios Gkampenis , David Maximilian Weiss , Aya Mansour , Islam H. Shawali , Nikolay Yordanov , Joel M. Stein , Roula Hourani , Mohammed Yahya Moshebah , Ahmed Magdy Abouelatta , Tanvir Rizvi , Klara Willms , Dann C. Martin , Abdullah Okar , Gennaro D'Anna , Ahmed Taha , Yasaman Sharifi , Shahriar Faghani , Dominic Kite , Marco Pinho , Muhammad Ammar Haider , Alejandro Aristizabal , Alexandros Karargyris , Hasan Kassem , Sarthak Pati , Micah Sheller , Michelle Alonso-Basanta , Javier Villanueva-Meyer , Andreas M. Rauschecker , Ayman Nada , Mariam Aboian , Adam E. Flanders , Benedikt Wiestler , Spyridon Bakas , Evan Calabrese

Introduction: The present study on the development and evaluation of an automated brain tumor segmentation technique based on deep learning using the 3D U-Net model. Objectives: The objective is to leverage state-of-the-art convolutional…

Image and Video Processing · Electrical Eng. & Systems 2024-04-10 Suman Sourabh , Murugappan Valliappan , Narayana Darapaneni , Anwesh R P

Radiotherapy is the main treatment modality for nasopharynx cancer. Delineation of Gross Target Volume (GTV) from medical images such as CT and MRI images is a prerequisite for radiotherapy. As manual delineation is time-consuming and…

Image and Video Processing · Electrical Eng. & Systems 2021-01-28 Haochen Mei , Wenhui Lei , Ran Gu , Shan Ye , Zhengwentai Sun , Shichuan Zhang , Guotai Wang

Background: Magnetic resonance imaging (MRI) has high sensitivity for breast cancer detection, but interpretation is time-consuming. Artificial intelligence may aid in pre-screening. Purpose: To evaluate the DINOv2-based Medical Slice…

Introduction. Early detection of malignant skin lesions is critical for prognosis, yet dermatologist shortages in Russian regions limit screening coverage. Mobile dermoscopy clinical decision support systems (CDSS) offer a promising…

Computer Vision and Pattern Recognition · Computer Science 2026-05-28 Elena Sergeevna Kozachok , Sergey Sergeevich Seregin

Diffuse gliomas are malignant brain tumors that grow widespread through the brain. The complex interactions between neoplastic cells and normal tissue, as well as the treatment-induced changes often encountered, make glioma tumor growth…

Glioblastoma are known to infiltrate the brain parenchyma instead of forming a solid tumor mass with a defined boundary. Only the part of the tumor with high tumor cell density can be localized through imaging directly. In contrast, brain…

We propose an accurate and fast classification network for classification of brain tumors in MRI images that outperforms all lightweight methods investigated in terms of accuracy. We test our model on a challenging 2D T1-weighted CE-MRI…

Image and Video Processing · Electrical Eng. & Systems 2023-08-02 Grace Billingsley , Julia Dietlmeier , Vivek Narayanaswamy , Andreas Spanias , Noel E. OConnor
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