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Method of Improved Scatterer Size Estimation without Attenuation Known a Priori

机译:无需先验的无衰减改进散射体尺寸估计的方法

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Backscattered signals contain frequency-dependent information about tissue microstructures, but when using these signals to construct conventional ultrasound B-mode images, the frequency-dependent information will not be utilized. Scatterer size is an important parameter to differentiate diseased tissue from normal. To get the more correct estimation about scatterer size, the more correct assumption about attenuation must be learned. In most cases, the attenuation estimation must be known a priori, and then the scatterer size is computed by a minimal routine. In most case, the attenuation is known a priori. Any errors in the attenuation using the method will produce errors in the resulting scatterer size estimated. Though there are some methods to improve the scatterer size estimation, but most of them also need the attenuation which is known a priori. A new method is proposed in this paper by an analysis of the in vivo backscattered power spectrum, to improve scatterer size estimation. Here the attenuation and the scatterer size were estimated simultaneously, so the attenuation shouldn't be known a priori. The attenuation and scatterer size can be found by searching the attenuation and scatterer values while operating the minimal routine in the new method. Simulations were done to test the new method, the transducer had 8 MHz center frequency, 4 f-number and 5 cm focal length, the attenuation was 0.5 dB/cm/MHz. The result showed that the scatter size (error less than 20%) estimation could be found with large window length (6-12mm), and a better estimation could be found if concerning both total and local attenuation.
机译:反向散射信号包含有关组织微结构的频率相关信息,但是当使用这些信号来构造常规超声B型图像时,将不会使用频率相关信息。散射体大小是区分病变组织与正常组织的重要参数。为了获得关于散射体尺寸的更正确的估计,必须学习关于衰减的更正确的假设。在大多数情况下,必须先验地知道衰减估计,然后通过最小例行程序来计算散射体的大小。在大多数情况下,衰减是先验的。使用该方法的衰减中的任何误差都会在估计的最终散射体尺寸中产生误差。尽管有一些方法可以改善散射体的大小估计,但是大多数方法也需要先验已知的衰减。本文通过对体内反向散射功率谱的分析,提出了一种新的方法,以改善散射体的尺寸估计。在这里,衰减和散射体大小是同时估算的,因此衰减不是先验的。通过在新方法中执行最小例程的同时搜索衰减和散射值,可以找到衰减和散射值的大小。通过仿真测试了该新方法,该换能器的中心频率为8 MHz,焦距为4 f值,焦距为5 cm,衰减为0.5 dB / cm / MHz。结果表明,对于较大的窗口长度(6-12mm),可以找到散射大小(误差小于20%),如果同时考虑总衰减和局部衰减,则可以找到更好的估计。

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