Applications of Artificial Intelligence for Metastatic Gastrointestinal Cancer: A Systematic Literature Review.

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Tác giả: Anita Bagherzadeh Mohasefi, Jamshid Bagherzadeh Mohasefi, Mehrdad Heshmat Najafabad, Amin Naemi, Elaheh Nasiri Khanshan, Zahra Niazkhani, Habibollah Pirnejad, Tahereh Samimi, Amir Sorayaie Azar, Vafa Tarighi, Ashkan Tashk, Ghanbar Tavassoli, Uffe Kock Wiil

Ngôn ngữ: eng

Ký hiệu phân loại:

Thông tin xuất bản: Switzerland : Cancers , 2025

Mô tả vật lý:

Bộ sưu tập: NCBI

ID: 77493

BACKGROUND/OBJECTIVES: This systematic literature review examines the application of Artificial Intelligence (AI) in the diagnosis, treatment, and follow-up of metastatic gastrointestinal cancers. METHODS: The databases PubMed, Scopus, Embase (Ovid), and Google Scholar were searched for published articles in English from January 2010 to January 2022, focusing on AI models in metastatic gastrointestinal cancers. RESULTS: forty-six studies were included in the final set of reviewed papers. The critical appraisal and data extraction followed the checklist for systematic reviews of prediction modeling studies. The risk of bias in the included papers was assessed using the prediction risk of bias assessment tool. CONCLUSIONS: AI techniques, including machine learning and deep learning models, have shown promise in improving diagnostic accuracy, predicting treatment outcomes, and identifying prognostic biomarkers. Despite these advancements, challenges persist, such as reliance on retrospective data, variability in imaging protocols, small sample sizes, and data preprocessing and model interpretability issues. These challenges limit the generalizability, clinical application, and integration of AI models.
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