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Predictive multiple sampling algorithm with overlapping integration intervals for linear wide dynamic range integrating image sensors

机译:具有重叠积分区间的预测多采样算法,用于线性宽动态范围积分图像传感器

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摘要

Machine vision systems are used in a wide range of applications such as security, automated quality control and intelligent transportation systems. Several of these systems need to extract information from natural scenes in the section of the electromagnetic spectrum visible to humans. These scenes can easily have intra-frame illumination ratios in excess of 10⁶ : 1. Solid-state image sensors that can correctly process wide illumination dynamic range scenes are therefore required to ensure correct reliability and performance. This thesis describes a new algorithm to linearly increase the illumination dynamic range of integrating-type image sensors. A user-defined integration time is taken as a reference to create a potentially large set of integration intervals of different duration (the selected integration time being the longest) but with a common end. The light intensity received by each pixel in the sensing array is used to choose the optimal integration interval from the set, while a pixel saturation predictive decision is used to overlap the integration intervals within the given integration time such that only one frame using the optimal integration interval for each pixel is produced. The total integration time is never exceeded. Benefits from this approach are motion minimization, real-time operation, reduced memory requirements, programmable light intensity dynamic range increase and access to incremental light intensity information during the integration time.
机译:机器视觉系统被广泛用于安全,自动化质量控制和智能运输系统等应用中。其中一些系统需要从人类可见的电磁频谱部分的自然场景中提取信息。这些场景的帧内照明比率很容易超过10:1:1。因此,需要能够正确处理宽照明动态范围场景的固态图像传感器,以确保正确的可靠性和性能。本文介绍了一种线性增加积分型图像传感器照明动态范围的新算法。以用户定义的积分时间为参考,以创建可能具有不同持续时间(所选积分时间最长)但具有共同终点的大量积分间隔。传感阵列中每个像素接收的光强度用于从集合中选择最佳积分间隔,​​而像素饱和度预测决策用于在给定积分时间内重叠积分间隔,​​以使只有一帧使用最佳积分产生每个像素的间隔。总集成时间不会超过。这种方法的好处是运动最小化,实时操作,减少的内存需求,可编程的光强度动态范围增加以及在积分时间内访问增量的光强度信息。

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