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Readout circuit with pixel level analog to digital conversion

机译:具有像素级模数转换的读出电路

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Pixel level on-focal-plane analog to digital conversion(ADC) promises many advantages including high performance and low power consumption. In this paper we argue that CMOS technology scaling will make pixel level ADC increasingly popular. Then we introduce four existing techniques for pixel level ADC. The first is an over sampling technique which uses a one bit first order sigma delta modulator for each pixel to directly convert photo charge to bits, consists of an integrator, a one bit DAC and a clocked comparator. The second technique is Nyquist rate multi-channel-bit-serial(MCBS) ADC. The technique uses special successive comparisons to convert the pixel voltage to bits. The third technique bases on a simple and robust pulse frequency modulation(PFM) scheme that can convert the photocurrent of photodetectors to proportional pulse frequency. The fourth is a software-controlled ADC, which utilize a algorithm, takes a desired photocurrent quantization scale to output bits. Each pixel contains a programmable digital processing element which directly controls the behavior of the photo detector with software. These four techniques are analyzed and compared according to their advantages, disadvantages and suitable application area. Finally we mention our current and future works with one of these techniques.
机译:像素级焦平面模数转换(ADC)具有许多优势,包括高性能和低功耗。在本文中,我们认为CMOS技术的缩放将使像素级ADC越来越受欢迎。然后,我们介绍了四种用于像素级ADC的现有技术。第一种是过采样技术,该技术对每个像素使用一个一位一阶sigma delta调制器将光电荷直接转换为位,它由一个积分器,一位DAC和一个时钟比较器组成。第二种技术是奈奎斯特速率多通道位串行(MCBS)ADC。该技术使用特殊的连续比较将像素电压转换为位。第三种技术基于一种简单而强大的脉冲频率调制(PFM)方案,该方案可以将光电探测器的光电流转换为成比例的脉冲频率。第四个是软件控制的ADC,它利用一种算法,采用所需的光电流量化比例来输出位。每个像素都包含一个可编程的数字处理元件,该元件可通过软件直接控制光电探测器的行为。根据这四种技术的优缺点和合适的应用领域进行了分析和比较。最后,我们将介绍使用这些技术之一的当前和将来的工作。

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