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Analytical deconvolution for improvement in spatial resolution of the In-111 coincidence camera

机译:解析反卷积可提高In-111同步摄像机的空间分辨率

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The In-111 coincidence camera we previously proposed can significantly increase detection efficiency because collimators are no longer needed. However, the initial simulations indicated that spatial resolution was too poor for medical imaging. To improve the resolution, we derived an analytical deconvolution algorithm in this study. In the derivation, 1-D Fourier transform for the shift-invariant point spread function (PSF) with respect to the detector bin location t was carried out analytically. The Fourier transform is approximately a linear function of the source-to-detector distance s when s is greater than 5 cm and its variation over s is much slower than that of any extensive source. The Fourier transform of the PSF can thus be taken out of the integration over s with reasonable accuracy and its inversion is the deconvolution kernel. A low-pass filter was applied to the deconvolved Fourier transform to suppress high-frequency oscillation. Applying the derived deconvolution algorithm to computer simulated phantoms, we achieved a resolution of 2 cm for s = 10 cm. Compared to the pre-deconvolution resolution of 19 cm, this is a huge improvement but is still poor. The errors caused by the approximations made in the derivation can be further reduced and also the high-frequency behavior of the deconvolved Fourier transform can be improved using better deconvolution techniques. Monte Carlo simulations for more realistic sources with image noise should be performed for further evaluation.
机译:我们先前提出的In-111巧合相机可以大大提高检测效率,因为不再需要准直仪。但是,最初的模拟表明,空间分辨率对于医学成像而言太差了。为了提高分辨率,我们在本研究中导出了一种解析反卷积算法。在推导中,对于检测器仓位置t进行了位移不变点扩展函数(PSF)的一维傅里叶变换。当s大于5 cm时,傅里叶变换大约是源到检测器距离s的线性函数,并且其在s上的变化比任何扩展源的变化慢得多。因此,可以以合理的精度从s上的积分中去除PSF的傅里叶变换,并且其反演是反卷积内核。将低通滤波器应用于反卷积傅里叶变换,以抑制高频振荡。将派生的反卷积算法应用于计算机模拟体模,对于s = 10 cm,我们实现了2 cm的分辨率。与卷积前的19厘米分辨率相比,这是一个很大的改进,但仍然很差。可以进一步减少由推导中的近似值引起的误差,并且可以使用更好的反卷积技术来改善反卷积傅里叶变换的高频行为。应该对具有图像噪声的更真实的源进行蒙特卡洛模拟,以进行进一步评估。

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