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Artificial intelligence for renal cancer:From imaging to histology and beyond
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作者 Karl-Friedrich Kowalewski luisa egen +9 位作者 Chanel E.Fischetti Stefano Puliatti Gomez Rivas Juan Mark Taratkin Rivero Belenchon Ines Marie Angela Sidoti Abate Julia Muhlbauer Frederik Wessels Enrico Checcucci Giovanni Cacciamani 《Asian Journal of Urology》 CSCD 2022年第3期243-252,共10页
Artificial intelligence(AI)has made considerable progress within the last decade and is the subject of contemporary literature.This trend is driven by improved computational abilities and increasing amounts of complex... Artificial intelligence(AI)has made considerable progress within the last decade and is the subject of contemporary literature.This trend is driven by improved computational abilities and increasing amounts of complex data that allow for new approaches in analysis and interpretation.Renal cell carcinoma(RCC)has a rising incidence since most tumors are now detected at an earlier stage due to improved imaging.This creates considerable challenges as approximately 10%e17%of kidney tumors are designated as benign in histopathological evaluation;however,certain co-morbid populations(the obese and elderly)have an increased peri-interventional risk.AI offers an alternative solution by helping to optimize precision and guidance for diagnostic and therapeutic decisions.The narrative review introduced basic principles and provide a comprehensive overview of current AI techniques for RCC.Currently,AI applications can be found in any aspect of RCC management including diagnostics,perioperative care,pathology,and follow-up.Most commonly applied models include neural networks,random forest,support vector machines,and regression.However,for implementation in daily practice,health care providers need to develop a basic understanding and establish interdisciplinary collaborations in order to standardize datasets,define meaningful endpoints,and unify interpretation. 展开更多
关键词 Kidney cancer IMAGING TECHNOLOGY Artificial intelligence Machine learning
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