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Fusion Strategies for Context Based Object Detection in Video Sequences

机译:基于上下文的视频序列对象检测的融合策略

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A highly challenging object detection task is the recognition of relevant events in outdoor applications, such as it is the case in sport broadcasts. Changing illumination, different weather conditions, and noise in the imaging process are the most important issues that require a truly robust detection system. The original contribution of this work is to take advantage of a dynamic integration of object beliefs from different evidences of spatial and temporal context to receive a recursively updated object hypothesis, with the aim to render object detection more robust. The object representation is outlined in a probabilistic framework to enable reasoning on multiple instances of detection results and decision making based on statistical evaluations. The representation is based on the local appearances of the objects, and therefore makes the interpretation more robust to occlusion by enabling reasoning based on spatial context between the appearances of individual object parts. Reasoning is driven by the evaluation of Bayesian decision fusion of the single probabilistic local image interpretations. The detection system is evaluated on the detection of company logos in extensive video material from Formula One broadcasts. The experimental results demonstrate that fusion is crucial to improve robustness and accuracy of the outdoor detection system.
机译:一个高度挑战的对象检测任务是识别室外应用中的相关事件,例如运动广播中的情况。改变照明,不同的天气条件和成像过程中的噪声是需要真正稳健的检测系统的最重要问题。这项工作的原始贡献是利用异物和时间上下文的不同证据来利用对象信念的动态集成,以接收递归更新的对象假设,其目的是渲染对象检测更加强大。对象表示在概率框架中概述,以便在基于统计评估的检测结果的多个实例上推理。表示基于对象的本地外观,因此通过基于各个对象部分的外表之间的空间上下文启用推理,使解释更加强大地堵塞。由贝叶斯决策融合的单一概率局部图像解释的评估推动推理。检测系统在公式1广播中的广泛视频材料中检测公司徽标的检测。实验结果表明,融合对于提高室外检测系统的鲁棒性和准确性至关重要。

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