用于监控的红外和可见光视频融合

V. Shrinidhi, Pratyush Yadav, N. Venkateswaran
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引用次数: 6

摘要

红外(IR)图像为可见图像提供了一个有前途的替代方案,并广泛用于军事,监视和其他应用。然而,在大雨之后,当周围的温度与感兴趣的物体变得均匀时,红外也有其局限性,无法探测到热变化。因此,可见光和红外视频的相关信息被合并成一个融合视频。本文旨在开发一种有效的算法,以便使用不同类型的变换融合使用红外和可见光摄像机捕获的视频,并评估其性能指标。利用背景减法[BS]和卡尔曼滤波,进一步从融合结果中跟踪单个或多个物体/人,专门用于夜视。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IR and Visible Video Fusion for Surveillance
Infrared (IR) imagery offers a promising alternative to visible imagery and is extensively used in military, surveillance and other applications. IR, however, has limitations of not detecting thermal variations after heavy rains when the temperature of the surrounding becomes uniform with the object of interest. Due to this fact, the relevant information from visible and IR videos are combined into one fused video. This paper aims to develop an efficient algorithm in order to fuse videos captured using infrared and visible cameras using different types of transforms and evaluate its performance measures. Tracking of single or multiple objects/people from the fused result has been further undertaken specifically for night vision using Background Subtraction[BS] and Kalman filtering.
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