Jing Wu, Xishan Sun, K. Lou, Yan Xia, Tianyu Ma, Y. Shao
{"title":"乳腺成像DOI可测量PET系统的成像性能:蒙特卡罗模拟研究","authors":"Jing Wu, Xishan Sun, K. Lou, Yan Xia, Tianyu Ma, Y. Shao","doi":"10.1109/NSSMIC.2012.6551516","DOIUrl":null,"url":null,"abstract":"GATE based simulation studies were conducted to guide breast PET system designs with different system geometries. A breast phantom (modeled as a half prolate spheroid with 7 cm equatorial radii and 11 cm polar radius) was generated for the study with warm background and hot lesions of different diameters (2, 3, 4 and 6 mm) and lesion/background activity ratios (3:1, 5:1 and 8:1, F-18 isotope). Each detector consists of an 8 × 8 array of 2 mm × 2 mm × 30 mm LSO scintillators with depth-of-interaction (DOI) measurement capability. Four systems were simulated: two stationary systems both with four detector panels arranged in a box-shaped geometry but different panel-to-panel separations of 17.2 cm and 20.4 cm, a system with two rotating detector panels separated at 17.2 cm panel-to-panel distance, and a whole-body (WB) PET with ~90 cm detector ring diameter. Axial FOVs are 12.8 cm for all three breast systems and 16 cm for WB PET. A list-mode OSEM algorithm with 40 subsets and one-pass iteration was used for image reconstruction. The reconstructed images and measured contrast-noise-ratio (CNR) with different system configurations, DOI resolutions, lesion size, and activity ratios were used to compare the imaging performance of different systems. The results validate that DOI is critical to providing uniform spatial resolution across the FOV for a breast PET system with compact geometry, and show that the full-tomographic configuration with detectors encompassing the FOV provides superior imaging performance than that from the rotating detector PET or WB PET, with very high sensitivity (> 60% at the center of FOV), much better lesion visual identification, and significantly improved CNR. Based on these quantitative evaluations, this simulation study has demonstrated that even coarse DOI resolution (~5 mm) can provide substantially improved imaging performance for a small bore system and design flexbility with different system geometries.","PeriodicalId":187728,"journal":{"name":"2012 IEEE Nuclear Science Symposium and Medical Imaging Conference Record (NSS/MIC)","volume":"28 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2012-12-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Imaging performance of DOI measurable PET systems for breast imaging: Monte Carlo simulation studies\",\"authors\":\"Jing Wu, Xishan Sun, K. Lou, Yan Xia, Tianyu Ma, Y. Shao\",\"doi\":\"10.1109/NSSMIC.2012.6551516\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"GATE based simulation studies were conducted to guide breast PET system designs with different system geometries. A breast phantom (modeled as a half prolate spheroid with 7 cm equatorial radii and 11 cm polar radius) was generated for the study with warm background and hot lesions of different diameters (2, 3, 4 and 6 mm) and lesion/background activity ratios (3:1, 5:1 and 8:1, F-18 isotope). Each detector consists of an 8 × 8 array of 2 mm × 2 mm × 30 mm LSO scintillators with depth-of-interaction (DOI) measurement capability. Four systems were simulated: two stationary systems both with four detector panels arranged in a box-shaped geometry but different panel-to-panel separations of 17.2 cm and 20.4 cm, a system with two rotating detector panels separated at 17.2 cm panel-to-panel distance, and a whole-body (WB) PET with ~90 cm detector ring diameter. Axial FOVs are 12.8 cm for all three breast systems and 16 cm for WB PET. A list-mode OSEM algorithm with 40 subsets and one-pass iteration was used for image reconstruction. The reconstructed images and measured contrast-noise-ratio (CNR) with different system configurations, DOI resolutions, lesion size, and activity ratios were used to compare the imaging performance of different systems. The results validate that DOI is critical to providing uniform spatial resolution across the FOV for a breast PET system with compact geometry, and show that the full-tomographic configuration with detectors encompassing the FOV provides superior imaging performance than that from the rotating detector PET or WB PET, with very high sensitivity (> 60% at the center of FOV), much better lesion visual identification, and significantly improved CNR. 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引用次数: 0
摘要
通过基于GATE的仿真研究,指导不同几何形状的乳腺PET系统设计。在不同直径(2、3、4和6 mm)和病变/背景活度比(3:1、5:1和8:1,F-18同位素)的情况下,生成一个乳腺假体(模拟为赤道半径为7 cm、极半径为11 cm的半长形球体)。每个探测器由一个8 × 8的2 mm × 2 mm × 30 mm的LSO闪烁体阵列组成,具有相互作用深度(DOI)测量能力。模拟了四个系统:两个固定系统,四个探测器面板按盒状几何形状排列,但面板之间的间距不同,分别为17.2 cm和20.4 cm;一个系统,两个旋转探测器面板之间的距离为17.2 cm;以及一个全身(WB) PET,探测器环直径约为90 cm。三种乳腺系统的轴向视场为12.8 cm, WB PET为16 cm。采用40个子集的单遍迭代列表模式OSEM算法进行图像重建。利用不同系统配置、DOI分辨率、病变大小和活度比下的重建图像和实测对比噪声比(CNR),比较不同系统的成像性能。结果验证了DOI对于为具有紧凑几何结构的乳腺PET系统提供跨视场均匀空间分辨率至关重要,并且表明包含视场的探测器的全层析成像配置比旋转探测器PET或WB PET提供了更好的成像性能,具有非常高的灵敏度(视场中心> 60%),更好的病变视觉识别,并显着提高了CNR。基于这些定量评估,该模拟研究表明,即使是粗DOI分辨率(~5 mm)也可以大大提高小孔径系统的成像性能和不同系统几何形状的设计灵活性。
Imaging performance of DOI measurable PET systems for breast imaging: Monte Carlo simulation studies
GATE based simulation studies were conducted to guide breast PET system designs with different system geometries. A breast phantom (modeled as a half prolate spheroid with 7 cm equatorial radii and 11 cm polar radius) was generated for the study with warm background and hot lesions of different diameters (2, 3, 4 and 6 mm) and lesion/background activity ratios (3:1, 5:1 and 8:1, F-18 isotope). Each detector consists of an 8 × 8 array of 2 mm × 2 mm × 30 mm LSO scintillators with depth-of-interaction (DOI) measurement capability. Four systems were simulated: two stationary systems both with four detector panels arranged in a box-shaped geometry but different panel-to-panel separations of 17.2 cm and 20.4 cm, a system with two rotating detector panels separated at 17.2 cm panel-to-panel distance, and a whole-body (WB) PET with ~90 cm detector ring diameter. Axial FOVs are 12.8 cm for all three breast systems and 16 cm for WB PET. A list-mode OSEM algorithm with 40 subsets and one-pass iteration was used for image reconstruction. The reconstructed images and measured contrast-noise-ratio (CNR) with different system configurations, DOI resolutions, lesion size, and activity ratios were used to compare the imaging performance of different systems. The results validate that DOI is critical to providing uniform spatial resolution across the FOV for a breast PET system with compact geometry, and show that the full-tomographic configuration with detectors encompassing the FOV provides superior imaging performance than that from the rotating detector PET or WB PET, with very high sensitivity (> 60% at the center of FOV), much better lesion visual identification, and significantly improved CNR. Based on these quantitative evaluations, this simulation study has demonstrated that even coarse DOI resolution (~5 mm) can provide substantially improved imaging performance for a small bore system and design flexbility with different system geometries.