首页> 外文会议>ISTM/2007;International symposium on test and measurement >Algorithm for Point Target Detection With Extreme Wide Angle Staring Infrared Imaging System
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Algorithm for Point Target Detection With Extreme Wide Angle Staring Infrared Imaging System

机译:超广角凝视红外成像系统的点目标检测算法

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The paper builds the models of background, noise and target in fish-eye lenses or extreme wide-angle staring Imaging fields of view. It uses difference method every two frames to generate new consecutive frames and self adapting threshold division To remove White noise and rationally segment image after suppressing the background,. According to characteristics of noise is random distribution, degree of correlation is low, and target is high correlative, the paper describes a Logical And method to separate target from residual noise, which can cumulate point target trajectories, strengthen target contrast intensity, improve its sign-to-noise ratio. Experiment and simulation have been done in the field and laboratory. The result indicates this algorithm is effective to detect multi-pixel targets whose velocities are between 0.2 to 1 pixels per frame and sign-to-noise ratio are 3 or less.
机译:本文建立了鱼眼镜头或超广角凝视成像视场中背景,噪声和目标的模型。它使用每两帧的差分方法生成新的连续帧,并采用自适应阈值划分,以消除白噪声并在抑制背景后合理地分割图像。根据噪声的特征是随机分布,相关度低,目标相关性高,本文描述了一种逻辑与方法将目标与残余噪声分离,可以累积点目标轨迹,增强目标对比度强度,改善其符号噪声比。实验和模拟已在现场和实验室中完成。结果表明,该算法可有效检测速度介于每帧0.2到1像素之间且信噪比小于或等于3的多像素目标。

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