AbstractPortable wireless ultrasound has been emerging as a new ultrasound device due to its unique ad'/> Elastography for portable ultrasound
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Elastography for portable ultrasound

机译:用于便携式超声的弹性镜

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AbstractPortable wireless ultrasound has been emerging as a new ultrasound device due to its unique advantages including small size, lightweight, wireless connectivity and affordability. Modern portable ultrasound devices can offer high quality sonogram images and even multiple ultrasound modes such as color Doppler, echocardiography, and endovaginal examination. However, none of them can provide elastography function yet due to the limitations in computational performance and data transfer speed of wireless communication. Also phase-based strain estimator (PSE) that is commonly used for conventional elastography cannot be adopted for portable ultrasound, because ultrasound parameters such as data dumping interval are varied significantly in the practice of portable ultrasound. Therefore, this research aims to propose a new elastography method suitable for portable ultrasound, called the robust phase-based strain estimator (RPSE), which is not only robust to the variation of ultrasound parameters but also computationally effective. Performance and suitability of RPSE were compared with other strain estimators including time-delay, displacement-gradient and phase-based strain estimators (TSE, DSE and PSE, respectively). Three types of raw RF data sets were used for validation tests: two numerical phantom data sets modeled by an open ultrasonic simulation code (Field II) and a commercial FEA (Abaqus), and the one experimentally acquired with a portable ultrasound device from a gelatin phantom. To assess image quality of elastograms, signal-to-noise (SNRe) and contrast-to-noise (CNRe) ratios were measured on the elastograms produced by each strain estimator. The computational efficiency was also estimated and compared. Results from the numerical phantom experiment showed that RPSE could achieve highest values of SNRe and CNRe (around 5.22 and 47.62?dB) among all strain estimators tested, and almost 10 times higher computational efficiency than TSE and DSE (around 0.06 vs. 5.76?s per frame for RPSE and TSE, respectively).]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>便携式无线超声已成为新的超声设备由于其独特的优点,包括小尺寸,轻质,无线连接和可负担性。现代便携式超声设备可以提供高质量的超声图像图像,甚至多种超声模式,如彩色多普勒,超声心动图和内木内检查。然而,它们都不可以提供弹性摄影功能,但由于计算性能和数据传输速度的无线通信的局限性。还可以采用常用的基于相位的应变估计器(PSE),其不能用于便携式超声,因为在便携式超声的实践中,诸如数据倾倒间隔的超声参数如数据倾倒间隔。因此,本研究旨在提出一种适用于便携式超声的新的弹性摄影方法,称为鲁棒相位的应变估计器(RPSE),这不仅坚固了超声参数的变化,而且还具有计算方式。将RPSE的性能和适用性与其他应变估计值进行比较,包括时滞,位移梯度和基于相位的应变估计(分别的阶段,DSE和PSE)。用于验证测试的三种类型的原始RF数据集:由开放超声仿真代码(Field II)和商业FEA(ABAQU)建模的两个数值幻像数据集,以及从明胶的便携式超声装置进行实验获取幻影。为了评估弹性图的图像质量,在每个应变估计器产生的弹性图上测量信号对噪声(SNRE)和对比度 - 噪声(CNRE)比率。计算效率也估计并进行比较。数值幻影实验的结果表明,RPSE可以在所有应变估计器中获得SNRE和CNRE(约5.22和47.62℃)的最高值,并且计算效率高于TSE和DSE的近10倍(约0.06 Vs. 5.76?S每帧为rpse和tse)。 ]]>

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