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基于焦平面阵列温度的非均匀性校正,应用于无快门的非制冷长波红外相机。

Nonuniformity correction based on focal plane array temperature in uncooled long-wave infrared cameras without a shutter.

作者信息

Liang Kun, Yang Cailan, Peng Li, Zhou Bo

出版信息

Appl Opt. 2017 Feb 1;56(4):884-889. doi: 10.1364/AO.56.000884.

DOI:10.1364/AO.56.000884
PMID:28158089
Abstract

In uncooled long-wave IR camera systems, the temperature of a focal plane array (FPA) is variable along with the environmental temperature as well as the operating time. The spatial nonuniformity of the FPA, which is partly affected by the FPA temperature, obviously changes as well, resulting in reduced image quality. This study presents a real-time nonuniformity correction algorithm based on FPA temperature to compensate for nonuniformity caused by FPA temperature fluctuation. First, gain coefficients are calculated using a two-point correction technique. Then offset parameters at different FPA temperatures are obtained and stored in tables. When the camera operates, the offset tables are called to update the current offset parameters via a temperature-dependent interpolation. Finally, the gain coefficients and offset parameters are used to correct the output of the IR camera in real time. The proposed algorithm is evaluated and compared with two representative shutterless algorithms [minimizing the sum of the squares of errors algorithm (MSSE), template-based solution algorithm (TBS)] using IR images captured by a 384×288 pixel uncooled IR camera with a 17 μm pitch. Experimental results show that this method can quickly trace the response drift of the detector units when the FPA temperature changes. The quality of the proposed algorithm is as good as MSSE, while the processing time is as short as TBS, which means the proposed algorithm is good for real-time control and at the same time has a high correction effect.

摘要

在非制冷长波红外相机系统中,焦平面阵列(FPA)的温度会随着环境温度以及工作时间而变化。FPA的空间不均匀性部分受其温度影响,显然也会随之改变,从而导致图像质量下降。本研究提出一种基于FPA温度的实时非均匀性校正算法,以补偿由FPA温度波动引起的非均匀性。首先,使用两点校正技术计算增益系数。然后获取不同FPA温度下的偏移参数并存储在表格中。相机工作时,通过温度相关插值调用偏移表格来更新当前偏移参数。最后,利用增益系数和偏移参数实时校正红外相机的输出。使用具有17μm间距的384×288像素非制冷红外相机拍摄的红外图像,对所提出的算法进行评估,并与两种代表性的无快门算法[误差平方和最小化算法(MSSE)、基于模板的求解算法(TBS)]进行比较。实验结果表明,当FPA温度变化时,该方法能够快速跟踪探测器单元的响应漂移。所提算法的质量与MSSE相当,而处理时间与TBS一样短,这意味着所提算法有利于实时控制,同时具有较高的校正效果。

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