Wang Jia-Jung, Lin Chin-Teng, Liu Shing-Hong, Wen Zu-Chi
Dept. of Biomed. Eng., I-Shou Univ., Kaohsiung.
IEEE Trans Syst Man Cybern B Cybern. 2002;32(3):306-15. doi: 10.1109/TSMCB.2002.999807.
In this paper, a new measurement system for the noninvasive monitoring of the continuous blood pressure waveform in the radial artery is presented. The proposed system comprises a model-based fuzzy logic controller, an arterial tonometer and a micro syringe device. The flexible diaphragm tonometer registers the continuous blood pressure waveform. To obtain accurate measurement without distortion, the tonometer's mean chamber pressure must be kept equal to the mean arterial pressure (MAP), the so-called optimal coupling condition, such that the arterial vessel has the maximum compliance. Since the MAP cannot be measured directly, to keep the optimal coupling condition becomes a tracking control problem with unknown desired trajectory. To solve this dilemma, a model-based fuzzy logic controller is designed to compensate the change of MAP by applying a counter pressure on the tonometer chamber through the micro syringe device. The proposed controller consists of a model-based predictor and a synthetic fuzzy logic controller (SFLC). The model-based predictor estimates the MAPs changing tendency based on the identified arterial pressure-volume model.
本文提出了一种用于无创监测桡动脉连续血压波形的新型测量系统。该系统由基于模型的模糊逻辑控制器、动脉血压计和微型注射器装置组成。柔性膜片血压计记录连续血压波形。为了获得无失真的准确测量,血压计的平均腔室压力必须保持等于平均动脉压(MAP),即所谓的最佳耦合条件,以使动脉血管具有最大顺应性。由于平均动脉压无法直接测量,因此保持最佳耦合条件成为一个具有未知期望轨迹的跟踪控制问题。为了解决这一困境,设计了一种基于模型的模糊逻辑控制器,通过微型注射器装置对血压计腔室施加反压来补偿平均动脉压的变化。所提出的控制器由基于模型的预测器和合成模糊逻辑控制器(SFLC)组成。基于模型的预测器根据识别出的动脉压力-容积模型估计平均动脉压的变化趋势。