用动态规划方法跟踪红外序列中的点目标

Ofir Nichtern, S. Rotman
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引用次数: 6

摘要

为了检测红外背景下的暗点目标,通常需要检查多幅图像。本文介绍了一种基于先跟踪后检测方法(TBD)的跟踪系统,用于在低信噪比条件下从图像序列中跟踪和检测此类微弱机动目标。首先利用白化算法对红外序列进行预处理,去除杂波,突出目标;然后,我们使用动态规划算法(DPA),它不是一般的,因为它需要一些假设来保持,所有满足一阶隐马尔可夫模型(HMM)。包含背景噪声、杂波和亚像素机动目标的红外序列满足该模型,其中目标轨迹为隐藏的事件序列,红外序列帧为观测到的事件序列。在此阶段结束时,在对红外序列的最后一帧进行处理后,选择累积分数最高的像素作为目标,并找到其路径。本文讨论了系统的不同特点,使其能够在广泛的场景中具有通用性。未来的工作将涉及使用该系统跟踪高光谱立方体中的目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tracking of a Point Target in an IR Sequence using Dynamic Programming Approach
Examination of more than one image is often needed for the detection of dim point targets in IR backgrounds. We introduce a novel tracking system based on the Track Before Detect Approach (TBD), designed to track and detect such dim maneuvering targets from an image sequence under low SNR conditions. The IR sequence is preprocessed first by using a whitening algorithm to reject clutter and emphasize targets. Afterwards, we use a Dynamic Programming Algorithm (DPA) which is not general since it requires a number of assumptions to hold, all satisfied in a first-order Hidden Markov Model (HMM). An IR sequence containing background noise, clutter, and a sub-pixel maneuvering target satisfies such model, where the target track is the hidden sequence of events, and the IR sequence frames are the observed sequence of events. At the end of this stage, after the last frame of the IR sequence has been processed, the pixel with the highest accumulated score is chosen as the Target, and its path is found. The paper deals with the different issues characterizing the system, enabling it to have versatility over a wide range of scenes. Future work will involve the use of the system for tracking of targets in hyperspectral cubes.
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