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人工智能在结直肠癌诊断中的应用:文献综述

Artificial Intelligence in the Diagnosis of Colorectal Cancer: A Literature Review.

作者信息

Uchikov Petar, Khalid Usman, Kraev Krasimir, Hristov Bozhidar, Kraeva Maria, Tenchev Tihomir, Chakarov Dzhevdet, Sandeva Milena, Dragusheva Snezhanka, Taneva Daniela, Batashki Atanas

机构信息

Department of Special Surgery, Faculty of Medicine, Medical University of Plovdiv, 4002 Plovdiv, Bulgaria.

Faculty of Medicine, Medical University of Plovdiv, 4002 Plovdiv, Bulgaria.

出版信息

Diagnostics (Basel). 2024 Mar 1;14(5):528. doi: 10.3390/diagnostics14050528.

Abstract

BACKGROUND

The aim of this review is to explore the role of artificial intelligence in the diagnosis of colorectal cancer, how it impacts CRC morbidity and mortality, and why its role in clinical medicine is limited.

METHODS

A targeted, non-systematic review of the published literature relating to colorectal cancer diagnosis was performed with PubMed databases that were scouted to help provide a more defined understanding of the recent advances regarding artificial intelligence and their impact on colorectal-related morbidity and mortality. Articles were included if deemed relevant and including information associated with the keywords.

RESULTS

The advancements in artificial intelligence have been significant in facilitating an earlier diagnosis of CRC. In this review, we focused on evaluating genomic biomarkers, the integration of instruments with artificial intelligence, MR and hyperspectral imaging, and the architecture of neural networks. We found that these neural networks seem practical and yield positive results in initial testing. Furthermore, we explored the use of deep-learning-based majority voting methods, such as bag of words and PAHLI, in improving diagnostic accuracy in colorectal cancer detection. Alongside this, the autonomous and expansive learning ability of artificial intelligence, coupled with its ability to extract increasingly complex features from images or videos without human reliance, highlight its impact in the diagnostic sector. Despite this, as most of the research involves a small sample of patients, a diversification of patient data is needed to enhance cohort stratification for a more sensitive and specific neural model. We also examined the successful application of artificial intelligence in predicting microsatellite instability, showcasing its potential in stratifying patients for targeted therapies.

CONCLUSIONS

Since its commencement in colorectal cancer, artificial intelligence has revealed a multitude of functionalities and augmentations in the diagnostic sector of CRC. Given its early implementation, its clinical application remains a fair way away, but with steady research dedicated to improving neural architecture and expanding its applicational range, there is hope that these advanced neural software could directly impact the early diagnosis of CRC. The true promise of artificial intelligence, extending beyond the medical sector, lies in its potential to significantly influence the future landscape of CRC's morbidity and mortality.

摘要

背景

本综述的目的是探讨人工智能在结直肠癌诊断中的作用、其对结直肠癌发病率和死亡率的影响,以及其在临床医学中作用有限的原因。

方法

利用PubMed数据库对已发表的与结直肠癌诊断相关的文献进行有针对性的非系统综述,以帮助更明确地了解人工智能的最新进展及其对结直肠癌相关发病率和死亡率的影响。如果文章被认为相关且包含与关键词相关的信息,则予以纳入。

结果

人工智能的进步在促进结直肠癌的早期诊断方面意义重大。在本综述中,我们重点评估了基因组生物标志物、仪器与人工智能的整合、磁共振和高光谱成像以及神经网络架构。我们发现这些神经网络在初步测试中似乎实用且产生了积极结果。此外,我们探讨了基于深度学习的多数投票方法,如词袋法和PAHLI,在提高结直肠癌检测诊断准确性方面的应用。与此同时,人工智能自主且广泛的学习能力,以及其在无需人工依赖的情况下从图像或视频中提取日益复杂特征的能力,凸显了其在诊断领域的影响。尽管如此,由于大多数研究涉及的患者样本较小,需要多样化的患者数据来加强队列分层,以建立更敏感和特异的神经模型。我们还研究了人工智能在预测微卫星不稳定性方面的成功应用,展示了其在为靶向治疗对患者进行分层方面的潜力。

结论

自人工智能应用于结直肠癌诊断以来,它在结直肠癌诊断领域展现出了众多功能和优势。鉴于其应用尚处于早期阶段,其临床应用仍有很长的路要走,但随着致力于改进神经架构和扩大其应用范围的持续研究,有望这些先进的神经软件能直接影响结直肠癌的早期诊断。人工智能的真正前景,超越医疗领域,在于其有可能显著影响结直肠癌发病率和死亡率的未来格局。

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