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A New Algorithm for Blood Flow Measurement Based on the Doppler Flow Spectrogram

机译:基于多普勒血流频谱图的血流测量新算法

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The blood flow is traditionally obtained by multiplying the cross sectional area of the blood vessel and the average blood speed in the cross section, or is given by the integral of the product of the cross section and blood velocity of each element. However, both methods are affected greatly by the measurement precision of the area and velocity. A new algorithm, which is based on the Doppler blood flow spectrogram, is proposed to measure the blood flow in this paper. In the algorithm, the blood flow is calculated according to the double integral of a Doppler blood flow spectrogram. To verify the feasibility of the proposed algorithm, experiments have been performed on the Doppler blood-mimicking system KS205D - 1 using the SonixTouch ultrasonic system. In addition, linear-regression analysis is carried out to observe the correlation factors between the experimental values and real values of different flow rates. Experimental results show that the calculated values and real values correlate significantly (r > 0.969, P < 0.0000001). Experimental results both on males and females also verified the proposed algorithm (r > 0.915, P < 0.00053). Hence the proposed algorithm is proven effective for relative mean blood flow measurement. Due to the special structure of the human brain, it is difficult to measure the cross sectional area of blood vessel with ultrasound imaging. In this algorithm, there is no need to measure the cross sectional area of the blood vessel. Therefore, the proposed algorithm has the potential to be a new method for clinical ultrasonic blood flow measurement, especially cerebral blood flow measurement.
机译:传统上,通过将血管的横截面积与横截面中的平均血液速度相乘来获得血流,或者通过横截面与每个元素的血流速度乘积的积分来给出血流。但是,这两种方法都受到面积和速度测量精度的极大影响。提出了一种基于多普勒血流频谱图的新算法来测量血流。在该算法中,根据多普勒血流频谱图的双积分计算血流。为了验证所提出算法的可行性,已经使用SonixTouch超声系统在多普勒血液模拟系统KS205D-1上进行了实验。另外,进行线性回归分析以观察不同流量的实验值和实际值之间的相关因素。实验结果表明,计算值和实际值之间存在显着相关性(r> 0.969,P <0.0000001)。男性和女性的实验结果也验证了该算法(r> 0.915,P <0.00053)。因此,该算法被证明对相对平均血流测量有效。由于人脑的特殊结构,很难通过超声成像来测量血管的横截面积。在该算法中,不需要测量血管的横截面积。因此,该算法有望成为临床超声血流测量尤其是脑血流测量的一种新方法。

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