首页> 外国专利> DEEP LEARNING SYSTEM AND METHOD FOR DIAGNOSIS OF CHEST CONDITIONS FROM CHEST RADIOGRAPHS

DEEP LEARNING SYSTEM AND METHOD FOR DIAGNOSIS OF CHEST CONDITIONS FROM CHEST RADIOGRAPHS

机译:深度学习系统及胸部射线照片诊断胸部条件的方法

摘要

The present disclosure provides systems and methods for training and/or employing machine-learned models (e.g., artificial neural networks) to diagnose chest conditions such as, as examples, pneumothorax, opacity, nodules or masses, and/or fractures based on chest radiographs. For example, one or more machine-learned models can receive and process a chest radiograph to generate an output. The output can indicate, for each of one or more chest conditions, whether the chest radiograph depicts the chest conditions (e.g., with some measure of confidence). The output of the machine-learned models can be provided to a medical professional and/or patient for use in providing treatment to the patient (e.g., to treat a detected condition).
机译:本公开提供了用于训练和/或采用机器学习模型(例如,人工神经网络)的系统和方法,以诊断胸部条件,例如作为基于胸部射线照相的实例,气胸,不透明度,结节或质量和/或裂缝。例如,一个或多个机器学习的模型可以接收和处理胸部X线片以产生输出。输出可以针对一个或多个胸部条件指示胸部X线检查是否描绘了胸部条件(例如,有一些置信度)。机器学习模型的输出可以提供给医学专业人员和/或患者,以用于向患者提供治疗(例如,处理检测到的条件)。

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