首页> 外文会议>Biennial Australian Pattern Recognition Society Conference(DICTA2003) v.2; 2003; Sydney; AU >A Mean Eigenwindow Method for Partially Occluded/Destroyed Objects Recognition
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A Mean Eigenwindow Method for Partially Occluded/Destroyed Objects Recognition

机译:部分遮挡/被毁物体识别的平均特征窗方法

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This paper describes a method for recognizing partially occluded and/or destroyed objects using an eigenspace method referred to as a eemean eigenwindowi method that stores multiple partially occluded/destroyed objects in an eigenspace. We have proposed to store similar poses, that may include disturbed shapes, of an object in a particular window referred to as the eeeigen windowi and, finally, mean of appearances of each window is taken into consideration in order to obtain a generalized eigen window called the eemean eigenwindowi. This mean eigenwindow is further used for recognizing an unfamiliar pose, including partially occluded or destroyed shapes, and the object type itself. We have applied the proposed approach to various image situations and the method has successfully performed recognition of an object with up to 20% of occlusion and/or destruction.
机译:本文介绍了一种使用特征空间方法识别部分被遮挡和/或破坏的对象的方法,该方法被称为eemean eigenwindowi方法,该方法将多个部分被遮挡/破坏的对象存储在本征空间中。我们已经提出将对象的相似姿势(可能包括受干扰的形状)存储在称为“本征窗口”的特定窗口中,最后考虑每个窗口的外观平均值,以获得称为“本征窗口”的广义本征窗口。 eemean eigenwindowi。该平均本征窗口还用于识别不熟悉的姿势(包括部分遮挡或破坏的形状)以及对象类型本身。我们已将提出的方法应用于各种图像情况,并且该方法已成功执行了对物体的识别,且遮挡和/或破坏率高达20%。

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