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4篇 您的检索式:作者名="Shara MA"
    题名 作者 年代 出处 被引量
1Dietary iron and 2,3,7,8-tetrachlorodibenzo-p-dioxin induced alterations in hepatic lipid peroxidation,glutathione content and body weight显示文摘 Shara MA Mohammadpour H 1988Drug Chem Toxicol1988,11,1:1
2Time-dependent effects of 2,3, 7,8-tetrachlorodibenzo-p-dioxin on serum and urine levels of malondial- dehyde, formaldehyde, acetaldehyde, and acetone in Rats 显示文摘Bagchi D Shara MA Bagchi M 1993Toxicol Appl Pharmacol1993,123,:1
3Induction of lipid peroxidation by HCH,dialdrin,TCDD,CCl4and HCB in rats显示文摘 Shara MA Stohs SJ 1988Bull Environ Contam Toxicol1988,40,:1
4Artificial intelligence-driven radiomics study in cancer:the role of feature engineering and modeling显示文摘Modern medicine is reliant on various medical imaging technologies for non-invasively observing patients’anatomy.However,the interpretation of medical images can be highly subjective and dependent on the expertise of clinicians.Moreover,some potentially useful quantitative information in medical images,especially that which is not visible to the naked eye,is often ignored during clinical practice.In contrast,radiomics performs high-throughput feature extraction from medical images,which enables quantitative analysis of medical images and prediction of various clinical endpoints.Studies have reported that radiomics exhibits promising performance in diagnosis and predicting treatment responses and prognosis,demonstrating its potential to be a non-invasive auxiliary tool for personalized medicine.However,radiomics remains in a developmental phase as numerous technical challenges have yet to be solved,especially in feature engineering and statistical modeling.In this review,we introduce the current utility of radiomics by summarizing research on its application in the diagnosis,prognosis,and prediction of treatment responses in patients with cancer.We focus on machine learning approaches,for feature extraction and selection during feature engineering and for imbalanced datasets and multi-modality fusion during statistical modeling.Furthermore,we introduce the stability,reproducibility,and interpretability of features,and the generalizability and interpretability of models.Finally,we offer possible solutions to current challenges in radiomics research.Yuan-Peng Zhang Xin-Yun Zhang Yu-Ting Cheng Bing Li Xin-Zhi Teng Jiang Zhang Saikit Lam Ta Zhou Zong-Rui Ma Jia-Bao Sheng Victor CWTam Shara WYLee Hong Ge Jing Cai 2024Military Medical Research2024,11,1:0
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