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Multi-spectral fusion for surveillance systems

机译:监视系统的多光谱融合

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摘要

Surveillance systems such as object tracking and abandoned object detection systems typically rely on a single modality of colour video for their input. These systems work well in controlled conditions but often fail when low lighting, shadowing, smoke, dust or unstable backgrounds are present, or when the objects of interest are a similar colour to the background. Thermal images are not affected by lighting changes or shadowing, and are not overtly affected by smoke, dust or unstable backgrounds. However, thermal images lack colour information which makes distinguishing between different people or objects of interest within the same scene difficult. ----- ududBy using modalities from both the visible and thermal infrared spectra, we are able to obtain more information from a scene and overcome the problems associated with using either modality individually. We evaluate four approaches for fusing visual and thermal images for use in a person tracking system (two early fusion methods, one mid fusion and one late fusion method), in order to determine the most appropriate method for fusing multiple modalities. We also evaluate two of these approaches for use in abandoned object detection, and propose an abandoned object detection routine that utilises multiple modalities. To aid in the tracking and fusion of the modalities we propose a modified condensation filter that can dynamically change the particle count and features used according to the needs of the system. ----- ududWe compare tracking and abandoned object detection performance for the proposed fusion schemes and the visual and thermal domains on their own. Testing is conducted using the OTCBVS database to evaluate object tracking, and data captured in-house to evaluate the abandoned object detection. Our results show that significant improvement can be achieved, and that a middle fusion scheme is most effective.
机译:诸如目标跟踪和废弃目标检测系统之类的监视系统通常依赖于彩色视频的单一形式进行输入。这些系统在受控条件下可以很好地工作,但是当光线不足,阴影,烟雾,灰尘或背景不稳定时,或者当目标物体的颜色与背景颜色相似时,这些系统通常会失效。热图像不受照明变化或阴影的影响,并且不受烟雾,灰尘或不稳定背景的明显影响。但是,热图像缺少颜色信息,这使得很难在同一场景中区分不同的人或感兴趣的对象。 ----- ud ud通过使用可见光和热红外光谱中的模态,我们能够从场景中获取更多信息,并克服与单独使用这两种模态相关的问题。我们确定了用于在人跟踪系统中融合视觉和热图像的四种方法(两种早期融合方法,一种中间融合和一种后期融合方法),以确定用于融合多种形式的最合适方法。我们还评估了用于废弃对象检测的两种方法,并提出了利用多种模式的废弃对象检测例程。为了帮助跟踪和融合这些模态,我们提出了一种改进的冷凝过滤器,该过滤器可以根据系统需求动态地更改粒子数和使用的特征。 ----- ud ud我们将比较所提出的融合方案以及其视觉和热域的跟踪和废弃物体检测性能。使用OTCBVS数据库进行测试以评估对象跟踪,并使用内部捕获的数据来评估废弃的对象检测。我们的结果表明可以实现显着改进,并且中间融合方案最为有效。

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