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Quantitative extraction of high-dimensional mineable data from medical images is a process known as radiomics. Radiomics is foreseen as an essential prognostic tool for cancer risk assessment and the quantification of intratumoural…

Due to privacy concerns, obtaining large datasets is challenging in medical image analysis, especially with 3D modalities like Computed Tomography (CT) and Magnetic Resonance Imaging (MRI). Existing generative models, developed to address…

计算机视觉与模式识别 · 计算机科学 2025-09-30 Jonghun Kim , Inye Na , Eun Sook Ko , Hyunjin Park

Background. Radiomic features, derived from a region of interest (ROI) in medical images, are valuable as prognostic factors. Selecting an appropriate ROI is critical, and many recent studies have focused on leveraging multiple ROIs by…

Background: We aim to develop enriched radiomics features that integrate classical structural radiomics with novel functional radiomics derived from liver MRI for diagnosis and risk stratification in liver cancer. The proposed framework…

Outcome prediction is crucial for head and neck cancer patients as it can provide prognostic information for early treatment planning. Radiomics methods have been widely used for outcome prediction from medical images. However, these…

图像与视频处理 · 电气工程与系统科学 2023-03-21 Mingyuan Meng , Lei Bi , Dagan Feng , Jinman Kim

Radiomics is an active area of research focusing on high throughput feature extraction from medical images with a wide array of applications in clinical practice, such as clinical decision support in oncology. However, noise in low dose…

定量方法 · 定量生物学 2021-09-07 Junhua Chen , Inigo Bermejo , Andre Dekker , Leonard Wee

Radiomics is a term which refers to the analysis of the large amount of quantitative tumor features extracted from medical images to find useful predictive, diagnostic or prognostic information. Many recent studies have proved that…

计算机视觉与模式识别 · 计算机科学 2018-03-14 Hongliu Cao , Simon Bernard , Laurent Heutte , Robert Sabourin

The importance of radiomics features for predicting patient outcome is now well-established. Early study of prognostic features can lead to a more efficient treatment personalisation. For this reason new radiomics features obtained through…

图像与视频处理 · 电气工程与系统科学 2020-12-24 Paul Desbordes , Diksha , Benoit Macq

MR-derived radiomic features have demonstrated substantial predictive utility in modeling different prognostic factors of glioblastomas and other brain cancers. However, the biological relationship underpinning these predictive models has…

Classical radiomic features have been designed to describe image appearance and intensity patterns. These features are directly interpretable and readily understood by radiologists. Compared with end-to-end deep learning (DL) models, lower…

计算机视觉与模式识别 · 计算机科学 2025-03-18 Yaxi Chen , Simin Ni , Aleksandra Ivanova , Shaheer U. Saeed , Rikin Hargunani , Jie Huang , Chaozong Liu , Yipeng Hu

Radiomics is an exciting new area of texture research for extracting quantitative and morphological characteristics of pathological tissue. However, to date, only single images have been used for texture analysis. We have extended radiomic…

图像与视频处理 · 电气工程与系统科学 2019-06-11 Vishwa S. Parekh , John Laterra , Chetan Bettegowda , Alex E. Bocchieri , Jay J. Pillai , Michael A. Jacobs

Purpose: To identify optimal classification methods for computed tomography (CT) radiomics-based preoperative prediction of clear cells renal cell carcinoma (ccRCC) grade. Methods and material: Seventy one ccRCC patients were included in…

Radiomics aims to extract and analyze large numbers of quantitative features from medical images and is highly promising in staging, diagnosing, and predicting outcomes of cancer treatments. Nevertheless, several challenges need to be…

机器学习 · 计算机科学 2017-10-09 Zhiguo Zhou , Zhi-Jie Zhou , Hongxia Hao , Shulong Li , Xi Chen , You Zhang , Michael Folkert , Jing Wang

Recent advancements in signal processing and machine learning coupled with developments of electronic medical record keeping in hospitals and the availability of extensive set of medical images through internal/external communication…

计算机视觉与模式识别 · 计算机科学 2019-07-24 Parnian Afshar , Arash Mohammadi , Konstantinos N. Plataniotis , Anastasia Oikonomou , Habib Benali

In the context of brain tumor characterization, we focused on two key questions: (a) stability of radiomics features to variability in multiregional segmentation masks obtained with fully-automatic deep segmentation methods and (b)…

图像与视频处理 · 电气工程与系统科学 2024-06-12 Maria Nadeem , Asma Shaheen , Muhammad F. A. Chaudhary , Hassan Mohy-ud-Din

Medical image retrieval is a valuable field for supporting clinical decision-making, yet current methods primarily support 2D images and require fully annotated queries, limiting clinical flexibility. To address this, we propose…

计算机视觉与模式识别 · 计算机科学 2025-07-14 Inye Na , Nejung Rue , Jiwon Chung , Hyunjin Park

Radiomics enables quantitative medical image analysis by converting imaging data into structured, high-dimensional feature representations for predictive modeling. Despite methodological developments and encouraging retrospective results,…

图像与视频处理 · 电气工程与系统科学 2026-02-03 Fnu Neha , Deepak kumar Shukla

As an analytic pipeline for quantitative imaging feature extraction and analysis, radiomics has grown rapidly in the past a few years. Recent studies in radiomics aim to investigate the relationship between tumors imaging features and…

'Radiomics' is a method that extracts mineable quantitative features from radiographic images. These features can then be used to determine prognosis, for example, predicting the development of distant metastases (DM). Existing radiomics…

计算机视觉与模式识别 · 计算机科学 2020-07-14 Yige Peng , Lei Bi , Michael Fulham , Dagan Feng , Jinman Kim

Surgery planning in patients diagnosed with brain tumor is dependent on their survival prognosis. A poor prognosis might demand for a more aggressive treatment and therapy plan, while a favorable prognosis might enable a less risky surgery…

图像与视频处理 · 电气工程与系统科学 2020-09-08 Sobia Yousaf , Syed Muhammad Anwar , Harish RaviPrakash , Ulas Bagci
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