Hunt D C, Tousignant O, Rowlands J A
Imaging Research, Sunnybrook & Women's College Health Science Centre, 2075 Bayview Avenue, Toronto, Ontario M4N 3M5, Canada.
Med Phys. 2004 May;31(5):1166-75. doi: 10.1118/1.1707755.
The imaging performance of an amorphous selenium (a-Se) flat-panel detector for digital fluoroscopy was experimentally evaluated using the spatial frequency dependent modulation transfer function (MTF), noise power spectrum (NPS), and detective quantum efficiency (DQE). These parameters were investigated at beam qualities and exposures within the range typical of gastrointestinal fluoroscopic imaging (approximately 0.1 - 10 microR, 75 kV). The investigation does not take into consideration the detector cover, which in clinical use will lower the DQE measured here by its percent attenuation. The MTF was found to be less than the expected aperture response and the NPS was not white which together indicate presampling blurring. The cause of this blurring was attributed to charge trapping at the interface between two different layers of the a-Se. The effect on the DQE was also consistent with presampling blur, which reduces the aliasing in the NPS and thereby reduces the spatial frequency dependence of the DQE. (The DQE was independent of spatial frequency from 0.12 to 0.73 mm(-1) due to antialiasing of the NPS.) Moreover, the first zero of the measured MTF and the aperture response appeared at the same spatial frequency (6.66 mm(-1) for a pixel of 150 microm). Hence, the geometric fill factor (77%) was increased to an effective fill factor of 99 +/- 1%. A large scale ( approximately 32 pixels) correlation in the noise due to the configuration of the readout electronics caused increased noise power in the gate line NPS at low spatial frequency (< 0.1 mm(-1)). The DQE (f = 0) was exposure independent over a large range of exposures but became exposure dependent at low exposures due to the electronic noise.
使用空间频率相关调制传递函数(MTF)、噪声功率谱(NPS)和探测量子效率(DQE),对用于数字荧光透视的非晶硒(a-Se)平板探测器的成像性能进行了实验评估。在胃肠道荧光透视成像的典型范围内(约0.1 - 10微伦琴,75千伏)的束流质量和曝光条件下研究了这些参数。该研究未考虑探测器覆盖层,在临床使用中,该覆盖层会因其衰减百分比而降低此处测量的DQE。发现MTF小于预期的孔径响应,且NPS不是白色的,这共同表明存在预采样模糊。这种模糊的原因归因于a-Se两层之间界面处的电荷俘获。对DQE的影响也与预采样模糊一致,预采样模糊减少了NPS中的混叠,从而降低了DQE的空间频率依赖性。(由于NPS的抗混叠作用,DQE在0.12至0.73毫米-1的空间频率范围内与空间频率无关。)此外,测量的MTF的第一个零点和孔径响应出现在相同的空间频率(对于150微米像素为6.66毫米-1)。因此,几何填充因子(77%)增加到有效填充因子99±1%。由于读出电子设备的配置,噪声中存在大规模(约32像素)相关性,导致低空间频率(<0.1毫米-1)时栅极线NPS中的噪声功率增加。DQE(f = 0)在大范围曝光内与曝光无关,但在低曝光时由于电子噪声而变得与曝光有关。