首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Paradox Elimination in Dempster–Shafer Combination Rule with Novel Entropy Function: Application in Decision-Level Multi-Sensor Fusion
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Paradox Elimination in Dempster–Shafer Combination Rule with Novel Entropy Function: Application in Decision-Level Multi-Sensor Fusion

机译:新型熵函数的Dempster-Shafer组合规则中的悖论消除:在决策级多传感器融合中的应用

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摘要

Multi-sensor data fusion technology in an important tool in building decision-making applications. Modified Dempster–Shafer (DS) evidence theory can handle conflicting sensor inputs and can be applied without any prior information. As a result, DS-based information fusion is very popular in decision-making applications, but original DS theory produces counterintuitive results when combining highly conflicting evidences from multiple sensors. An effective algorithm offering fusion of highly conflicting information in spatial domain is not widely reported in the literature. In this paper, a successful fusion algorithm is proposed which addresses these limitations of the original Dempster–Shafer (DS) framework. A novel entropy function is proposed based on Shannon entropy, which is better at capturing uncertainties compared to Shannon and Deng entropy. An 8-step algorithm has been developed which can eliminate the inherent paradoxes of classical DS theory. Multiple examples are presented to show that the proposed method is effective in handling conflicting information in spatial domain. Simulation results showed that the proposed algorithm has competitive convergence rate and accuracy compared to other methods presented in the literature.
机译:多传感器数据融合技术是构建决策应用程序的重要工具。改进的Dempster–Shafer(DS)证据理论可以处理冲突的传感器输入,并且无需任何先验信息即可应用。结果,基于DS的信息融合在决策应用中非常流行,但是当结合来自多个传感器的高度矛盾的证据时,原始的DS理论会产生违反直觉的结果。在空间域中提供高度冲突的信息融合的有效算法尚未在文献中广泛报道。在本文中,提出了一种成功的融合算法,该算法解决了原始Dempster-Shafer(DS)框架的这些局限性。提出了一种基于香农熵的新型熵函数,与香农和邓熵相比,该函数具有更好的捕获不确定性的能力。已经开发了一种8步算法,可以消除经典DS理论的内在悖论。给出了多个例子,表明所提出的方法在处理空间域冲突信息方面是有效的。仿真结果表明,与文献中提出的其他方法相比,该算法具有较高的收敛速度和准确性。

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