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A Systematic Review of Artificial Intelligence in Prostate Cancer

机译:前列腺癌中人工智能的系统综述

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摘要

The diagnosis and management of prostate cancer involves the interpretation of data from multiple modalities to aid in decision making. Tools like PSA levels, MRI guided biopsies, genomic biomarkers, and Gleason grading are used to diagnose, risk stratify, and then monitor patients during respective follow-ups. Nevertheless, diagnosis tracking and subsequent risk stratification often lend itself to significant subjectivity. Artificial intelligence (AI) can allow clinicians to recognize difficult relationships and manage enormous data sets, which is a task that is both extraordinarily difficult and time consuming for humans. By using AI algorithms and reducing the level of subjectivity, it is possible to use fewer resources while improving the overall efficiency and accuracy in prostate cancer diagnosis and management. Thus, this systematic review focuses on analyzing advancements in AI-based artificial neural networks (ANN) and their current role in prostate cancer diagnosis and management.
机译:前列腺癌的诊断和管理涉及解释来自多种方式的数据,以帮助决策。 PSA水平,MRI引导活组织检查,基因组生物标志物和GLEASIN分级等工具用于诊断,风险分层,然后在各自的后续期间监测患者。然而,诊断跟踪和随后的风险分层通常归因于显着的主观性。人工智能(AI)可以允许临床医生认识到困难的关系并管理巨大的数据集,这是一种对人类非常困难和耗时的任务。通过使用AI算法并降低主观性水平,可以使用更少的资源,同时提高前列腺癌诊断和管理的总体效率和准确性。因此,这种系统综述侧重于分析基于AI的人工神经网络(ANN)的进步及其当前在前列腺癌诊断和管理中的作用。

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