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Entropy-Functional-Based Online Adaptive Decision Fusion Framework With Application to Wildfire Detection in Video

机译:基于熵函数的在线自适应决策融合框架及其在视频野火检测中的应用

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摘要

In this paper, an entropy-functional-based online adaptive decision fusion (EADF) framework is developed for image analysis and computer vision applications. In this framework, it is assumed that the compound algorithm consists of several subalgorithms, each of which yields its own decision as a real number centered around zero, representing the confidence level of that particular subalgorithm. Decision values are linearly combined with weights that are updated online according to an active fusion method based on performing entropic projections onto convex sets describing subalgorithms. It is assumed that there is an oracle, who is usually a human operator, providing feedback to the decision fusion method. A video-based wildfire detection system was developed to evaluate the performance of the decision fusion algorithm. In this case, image data arrive sequentially, and the oracle is the security guard of the forest lookout tower, verifying the decision of the combined algorithm. The simulation results are presented.
机译:在本文中,基于熵函数的在线自适应决策融合(EADF)框架被开发用于图像分析和计算机视觉应用。在此框架中,假定复合算法由几个子算法组成,每个子算法都会产生自己的决策,即以零为中心的实数,代表该特定子算法的置信度。决策值与权重线性组合,这些权重是根据一种主动融合方法在线进行更新的,该方法基于对描述子算法的凸集执行熵投影。假设有一个预言家,通常是一个人工操作员,向决策融合方法提供反馈。开发了基于视频的野火检测系统,以评估决策融合算法的性能。在这种情况下,图像数据将按顺序到达,并且预言机是森林监视塔的安全防护员,从而验证了组合算法的决策。给出了仿真结果。

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