模糊多传感器目标识别的平均偏差法

Ji-Yuan Dong
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引用次数: 0

摘要

针对目标类型特征值与传感器观测值均为三角模糊数的目标识别问题,提出了一种基于均值偏差的多传感器数据融合方法。该方法定义了所有对象类型与未知对象之间的距离矩阵。在解决了所有属性的均值偏差最大的优化问题后,客观地得到了属性的权重。因此,对未知物体的识别结果由总距离给出。仿真算例验证了该方法的可行性和实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mean Deviation Method for Fuzzy Multi-sensor Object Recognition
Aimed at the object recognition problem in which the characteristic values of object types and observations of sensors are in the form of triangular fuzzy numbers, a new fusion method for multi-sensor data is proposed based on mean deviation. The method defines the distance matrix between all object types and unknown object. After solving the optimization problem of maximizing the mean deviations for all attributes, the weights of the attributes are obtained objectively. Thus, the result of recognition for the unknown object is given by the overall distance. The simulated example verifies the feasibility and practicability of the proposed method.
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