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Imaging performance of two multiple-pinhole small-animal SPECT systems: multiplexed vs. non-multiplexed data acquisition

机译:两个多针孔小动物SPECT系统的成像性能:多路复用与非多路复用数据采集

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Increasing the number of pinholes in small-animal SPECT significantly improves its count sensitivity. When the detector(s) are small, however, overlapping of projections (multiplexing) from different pinholes is unavoidable and can amplify noise in reconstructed images. We have evaluated the performance of two multi-pinhole systems, one with and one without multiplexing, for a prototypical tumor-imaging task. We prepared seven beads (~1.8-mm diameter) to mimic tumors labeled with Tc-99m. A uniform gelatin phantom was used to simulate normal background tissue. The tumor-to-normal tissue ratio was ~6:1, and each bead contained ~1 μCi. The first scanner, equipped with two 0.8-mm pinholes on each of three heads (HMS-0.8), acquired only non-overlapping projections. We also scanned the phantom using 1.6mm pinholes (HMS-1.6) The second scanner had 9 pinholes on each of four heads, and allowed multiplexing. To compensate for decay, the phantom was scanned for 50 min on HMS-0.8, 58 min on HMS-1.6, 82 min on NanoSPECT/CT with 1.4 mm pinholes (Nano-1.4), and 102 min with 1.0 mm pinholes (Nano-1.0). A total of 30 (24) angular projections were acquired with HMS (Nano); these were reconstructed using 10 OSEM subsets for HMS, and 4 subsets for Nano. The mean voxel value in each sphere, and the mean and standard deviation in a large VOI in the background, were used to compute the signal-to-noise ratio (SNR) and contrast of each bead. The relative noise in the background was also calculated. The systems with and without multiplexing yielded similar image quality and average bead SNR, especially for HMS-0.8 and Nano-1.0. Both systems yielded very similar SNR values, despite the fact that the multiplexed system acquired data using 36 pinholes, while the non-multiplexed system had only 6 pinholes. The multiplexed acquisition did not seem to adversely affect the image contrast of the spherical tumors.
机译:增加小动物SPECT的针孔数显着提高了其计数敏感性。然而,当检测器很小时,来自不同针孔的投影(多路复用)的重叠是不可避免的,并且可以在重建图像中放大噪声。对于原型肿瘤成像任务,我们已经评估了两个多针孔系统,一个有一个,一个与多路复用的性能。我们制备了七个珠子(直径〜1.8毫米),以模仿用TC-99M标记的肿瘤。使用均匀的明胶幻影来模拟正常背景组织。肿瘤至正常的组织比为〜6:1,每个珠粒含有〜1μCi。第一个扫描仪,在三个头部中的每一个(HMS-0.8)中的每一个上配备了两个0.8毫米的针孔,仅获取非重叠投影。我们还使用1.6mm针孔(HMS-1.6)扫描幻像(HMS-1.6)第二扫描仪在四个头中的每一个上有9个针孔,允许多路复用。为了弥补腐烂,在HMS-1.6,82分钟上扫描50分钟的纳米/ CT,在纳米普孔/ CT上扫描50分钟,用1.4mm针孔(纳米-1.4),102分钟,1.0 mm针孔(纳米) 1.0)。使用HMS(NANO)获得总共30(24)个角度投影;这些是使用10个OSEM子集重建的HMS,以及4个纳米子集。每个球体中的平均体素值以及背景中大型VOI中的平均值和标准偏差用于计算每个珠子的信噪比(SNR)和对比度。还计算了背景中的相对噪声。具有和不复复用的系统产生了类似的图像质量和平均珠SNR,特别是对于HMS-0.8和纳米-1.0。尽管多路复用系统获取了使用36针孔的数据获取了数据,但两个系统都产生了非常相似的SNR值,而非复用系统仅具有6个针孔。多路复用的采集似乎没有不利地影响球形肿瘤的图像对比度。

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