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    题名 作者 年代 出处 被引量
1Low oxygen tension inhibits osteogenic differenti ation and enhances sternness of human MIAMI cells显示文摘GIANLUCA D I SYLMA D 2006Bone2006,39,5:1
2Proteomic and peptidomic characterisation of beer:immunological and technological implications显示文摘Gianluca P Francesco B Stefania I 0,,:1
3Second-Order Sliding-Mode Control of DC Drives显示文摘Damiano A Gianluca L Gatto I M 2004IEEE Transactions on Industrial Electronics2004,51,2:1
4Immerse boundary methods 显示文摘Rajat M Gianluca I 2005Annual Review of Fluid Mechanics2005,37,:1
5Some applications of the partial least-squares method 显示文摘sERGI6 C GABRIELE C I GIANLUCA C 1986Analytica chimica acta1986,191,:1
6Dupilumab Treatment in Adults with Moderate-to-Severe Atopic Dermatitis显示文摘Lisa A. Beck Diamant Tha?i Jennifer D. Hamilton Neil M. Graham Thomas Bieber Ross Rocklin Jeffrey E. Ming Haobo Ren Richard Kao Eric Simpson Marius Ardeleanu Steven P. Weinstein Gianluca Pirozzi Emma Guttman-Yassky Mayte Suárez-Fari?as Melissa D. Hager Ne 2014The New England Journal of Medicine2014,,:1
7Simulating separated flows using the k-ε model显示文摘SVETLANA P GIANLUCA I 2001Center for Turbulence Research Annual Research Briefs2001,32,5:1
8Malnutrition in patients with dementia显示文摘Gianluca I Mario B Nicoletta AR 2011J Am Geriatr Soc2011,59,4:1
9Combined Treatment with Tranexamic Acid and Oral Contraceptive Pill Causes Coronary Ulcerated Plaque and A- cute Myocardial Infarction 显示文摘Gianluca I Gianfranco I 2004Cardiovasc Drugs Ther2004,,18:1
10Prognostic role of artificial intelligence among patients with hepatocellular cancer:A systematic review显示文摘BACKGROUND Prediction of survival after the treatment of hepatocellular carcinoma(HCC)has been widely investigated,yet remains inadequate.The application of artificial intelligence(AI)is emerging as a valid adjunct to traditional statistics due to the ability to process vast amounts of data and find hidden interconnections between variables.AI and deep learning are increasingly employed in several topics of liver cancer research,including diagnosis,pathology,and prognosis.AIM To assess the role of AI in the prediction of survival following HCC treatment.METHODS A web-based literature search was performed according to the Preferred Reporting Items for Systemic Reviews and Meta-Analysis guidelines using the keywords“artificial intelligence”,“deep learning”and“hepatocellular carcinoma”(and synonyms).The specific research question was formulated following the patient(patients with HCC),intervention(evaluation of HCC treatment using AI),comparison(evaluation without using AI),and outcome(patient death and/or tumor recurrence)structure.English language articles were retrieved,screened,and reviewed by the authors.The quality of the papers was assessed using the Risk of Bias In Non-randomized Studies of Interventions tool.Data were extracted and collected in a database.RESULTS Among the 598 articles screened,nine papers met the inclusion criteria,six of which had low-risk rates of bias.Eight articles were published in the last decade;all came from eastern countries.Patient sample size was extremely heterogenous(n=11-22926).AI methodologies employed included artificial neural networks(ANN)in six studies,as well as support vector machine,artificial plant optimization,and peritumoral radiomics in the remaining three studies.All the studies testing the role of ANN compared the performance of ANN with traditional statistics.Training cohorts were used to train the neural networks that were then applied to validation cohorts.In all cases,the AI models demonstrated superior predictive performance compared with traditional statistics with significantly improved areas under the curve.CONCLUSION AI applied to survival prediction after HCC treatment provided enhanced accuracy compared with conventional linear systems of analysis.Improved transferability and reproducibility will facilitate the widespread use of AI methodologies.Quirino Lai Gabriele Spoletini Gianluca Mennini Zoe Larghi Laureiro Diamantis I Tsilimigras TimothyMichael Pawlik Massimo Rossi 2020World Journal of Gastroenterology2020,26,42:1
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