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Blind Estimation of Central Blood Pressure Using Least-Squares with Mean Matching and Box Constraints

机译:使用均值匹配和盒约束的最小二乘盲估计中心血压

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Central aortic blood pressure (CABP) is a very-well recognized source of information to asses the cardiovascular system conditions. However, the clinical measurement protocol of this pulse wave is very intrusive and burdensome as it requires expert staff and complicated invasive settings. On the other hand, the measurement of peripheral blood pressure is much more straightforward and easy-to-get non-invasively. Several mathematical tools have been employed in the past few decades to reconstruct CABP waveforms from distorted peripheral pressure signals. More specifically, the cross-relation approach together with the widely used least-squares method, are shown to be effective as a way to estimate CABP waves. In this paper, we propose an improved cross-relation method that leverages the values of the diastolic and systolic pressures as box constraints. In addition, a mean-matching criterion is introduced to relax the need for the input and output mean values to be strictly equal. Using the proposed method, the root mean squared error is reduced by approximately 20% while the computational complexity is not significantly increased.
机译:主动脉中央血压(CABP)是评估心血管系统状况的公认信息来源。然而,这种脉搏波的临床测量方案非常麻烦且麻烦,因为它需要专家人员和复杂的侵入性设置。另一方面,外周血压的测量更直接且容易以非侵入方式获得。在过去的几十年中,已经使用了几种数学工具来从变形的外围压力信号重建CABP波形。更具体地,交叉关系方法与广泛使用的最小二乘法一起显示为有效的估计CABP波的方法。在本文中,我们提出了一种改进的交叉关系方法,该方法利用舒张压和收缩压的值作为框约束。另外,引入了均值匹配标准以放松对输入和输出均值严格相等的需求。使用所提出的方法,均方根误差减少了约20%,而计算复杂度却没有显着增加。

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