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Optimal fusion of multiple nonlinear sensor data

机译:多个非线性传感器数据的最优融合

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A framework for the detection of bandlimited signals by optimally fusing the multinonlinear sensor data is developed. Though most sensors used are assumed to be linear, none of them individually or in series gives the truly linear relationship, and errors are inevitable as a result of the assumption of linearity. A new approach, which takes the actual nonlinear characteristics of sensors into account, is advocated. Though the fusion of redundant information can reduce the overall uncertainty and, thus, serves to increase the accuracy of the process measurements, identifying the faulty readings and fusing only the reliable data are very difficult and challenging. An optimal multiple nonlinear sensor data fusion scheme in which multisensor data fusion is done by scheduling the sensor measurements is proposed. The main idea of the multisensor fusion schemes proposed in this paper is to pick only the reliable data for the fusion and disregard the rest. The proposed theoretical framework is supported by illustrative examples and simulation data.
机译:开发了一种通过最佳融合多非线性传感器数据来检测带限信号的框架。尽管假定使用的大多数传感器是线性的,但它们中的任何一个都不单独或串联就可以提供真正的线性关系,并且由于假设线性而导致的误差是不可避免的。提出了一种考虑传感器的实际非线性特性的新方法。尽管融合冗余信息可以减少总体不确定性,从而提高过程测量的准确性,但是识别错误的读数并仅融合可靠的数据是非常困难且具有挑战性的。提出了一种最优的非线性传感器数据融合方案,该算法通过调度传感器的测量结果来完成传感器数据的融合。本文提出的多传感器融合方案的主要思想是仅选择可靠的数据进行融合,而忽略其余信息。所提出的理论框架得到了示例性实例和仿真数据的支持。

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