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Comparison of Artificial Intelligence Based Oscillometric Blood Pressure Estimation Techniques: A Review Paper

机译:基于人工智能的示波器血压估计技术的比较:综述论文

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Accurate Blood Pressure (BP) measurement is an important physiological health parameter in the field of health monitoring, which is significant in determining the cardiovascular health of the patient under observation. Nowadays, automated blood pressure measurement systems are generally used by patients at home, and this requires less expertise to operate. The major requirement in the design of Automated Blood Pressure (ABP) measurement systems is the degree of accuracy and repeatability. There are various Artificial Intelligence (AI) based blood pressure estimation techniques and algorithms developed by various researchers in recent years and some of them are commonly employed by the BP monitoring market in the design of their automated blood pressure systems for accurate estimation of patient's systolic and diastolic blood pressures. In this review paper, various AI based Systolic Blood Pressure (SBP) and Diastolic Blood Pressure (DBP) estimation techniques and algorithms are analyzed and compared in terms of their ability for accurate estimation of real time patient blood pressure. The performance of various AI based blood estimation techniques are analyzed in terms of their complexity, Mean Absolute Error (MAE) and Standard Deviation Error (SDE).
机译:准确的血压(BP)测量是健康监测领域的重要生理健康参数,这对于确定在观察中患者的心血管健康方面具有重要意义。如今,自动血压测量系统通常由家庭使用,这需要更少的专业知识来运营。自动血压(ABP)测量系统设计的主要要求是精度和可重复性的程度。近年来各种研究人员开发的各种人工智能(AI)血压估计技术和算法,其中一些人通常由BP监测市场常用于其自动血压系统,以准确估算患者的收缩系统和舒张压。在本文中,分析了基于AI的基于AI的收缩压(SBP)和舒张压(DBP)估计技术和算法,并在其准确估计实时患者血压方面进行了比较。在其复杂性,平均绝对误差(MAE)和标准偏差误差(SDE)方面分析了各种基于AI血液估计技术的性能。

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