Evaluation of proudP: A sound-based approach to uroflowmetry.

IF 1.9 4区 医学 Q3 UROLOGY & NEPHROLOGY
Dean Elterman, Naeem Bhojani, Kiwook Lee, Jiyoung Jung, Karen Doo, Laura E Gressler, Bilal Chughtai
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引用次数: 0

Abstract

Introduction: We sought to assess the performance of the proudP AI algorithm, integrated into a mobile application, in estimating uroflow curves and parameters using recorded urination sounds.

Methods: A direct comparison was made between the peak flow rate (Qmax), voided volume, and uroflow curves predicted by the proudP algorithm and those obtained through established validation methods. A hardware uroflow simulator replicated uroflow profiles by precisely controlling water flow rates and extracting corresponding sound data. Ten uroflow profiles, representing typical patterns observed in male subjects, were selected. Simulation experiments with proudP were conducted using a standard toilet setup. The uroflow simulator was calibrated to reproduce uroflow profiles, and validation was performed against a Flowmaster uroflowmetry device. Statistical analysis included descriptive summaries, Bland-Altman analysis, and Concordance Correlation Coefficient (CCC) analysis.

Results: The proudP accurately captured various uroflow patterns generated by the simulator, with low standard deviations in Qmax predictions and biases near zero. The SDs of voided volume were slightly larger, primarily due to uroflow patterns with extended voiding times. The study validated the accuracy of proudP against in-office uroflowmetry, demonstrating robustness across different smartphone models.

Conclusions: proudP proved to be as accurate as in-office uroflowmetry in estimating uroflow rate across various patterns. Its convenience in home monitoring offers patients a means to observe their urination patterns accurately, while enabling healthcare professionals to gain detailed insights remotely. proudP emerges as an essential solution for clinical practice and urological research.

傲慢P的评估:基于声音的尿流测量方法。
简介我们试图评估集成到移动应用程序中的 proudP 人工智能算法在利用记录的排尿声估算尿流曲线和参数方面的性能:方法:我们将 proudP 算法预测的峰值流速(Qmax)、排尿量和尿流曲线与通过既定验证方法获得的数据进行了直接比较。硬件尿流模拟器通过精确控制水流速率和提取相应的声音数据来复制尿流曲线。选取了代表男性受试者典型模式的十个尿流曲线。使用标准马桶装置进行了带有 proudP 的模拟实验。对尿流模拟器进行了校准,以再现尿流曲线,并根据 Flowmaster 尿流测量仪进行了验证。统计分析包括描述性总结、Bland-Altman 分析和一致性相关系数 (CCC) 分析:结果:傲慢式尿流分析仪准确捕捉到了模拟器生成的各种尿流模式,Qmax 预测的标准偏差较低,偏差接近零。排尿量的标准偏差稍大,主要是由于排尿时间延长的尿流模式。结论:事实证明,在估计各种模式的尿流速率方面,proudP 的准确性不亚于诊室尿流测量法。家庭监测的便利性为患者提供了准确观察排尿模式的途径,同时也使医护人员能够远程获得详细的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cuaj-Canadian Urological Association Journal
Cuaj-Canadian Urological Association Journal 医学-泌尿学与肾脏学
CiteScore
2.80
自引率
10.50%
发文量
167
审稿时长
>12 weeks
期刊介绍: CUAJ is a a peer-reviewed, open-access journal devoted to promoting the highest standard of urological patient care through the publication of timely, relevant, evidence-based research and advocacy information.
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