用于监测动物饲养环境的多传感器数据融合模型研究

IF 0.6 Q4 AUTOMATION & CONTROL SYSTEMS
Hanhua Yang
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引用次数: 0

摘要

摘要 针对动物饲养环境监测,提出了一种两级多传感器数据融合模型。通过第一层分析判断各种传感器的有效性,并通过计算最优融合集对数据进行筛选。利用模糊成员度计算概率分布函数,并在第二层分析中使用基于 D-S 证据理论的改进信息融合方法获得最终决策。使用改进的 D-S 后,冲突分配更加合理,融合效果更好。因此,可以根据融合结果获得猪舍环境的真实状态,从而对现场设备执行相应的操作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Research on Multisensor Data Fusion Model for Monitoring Animal Breeding Environment

Research on Multisensor Data Fusion Model for Monitoring Animal Breeding Environment

Research on Multisensor Data Fusion Model for Monitoring Animal Breeding Environment

A two-level multisensor data fusion model is proposed to monitor animal breeding environment. The effectiveness of various sensors is judged by the first level of analysis, and the data are screened by calculating the optimal fusion set. The probability distribution function is calculated using fuzzy membership degree and the final decision is obtained using an improved information fusion approach based on D-S evidence theory by the second level of analysis. Conflict allocation is more reasonable when using the improved D-S and the fusion effect is better. Therefore, the real state of the piggery environment can be obtained based on the fusion result, so as to perform corresponding operations on the field equipment.

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来源期刊
AUTOMATIC CONTROL AND COMPUTER SCIENCES
AUTOMATIC CONTROL AND COMPUTER SCIENCES AUTOMATION & CONTROL SYSTEMS-
CiteScore
1.70
自引率
22.20%
发文量
47
期刊介绍: Automatic Control and Computer Sciences is a peer reviewed journal that publishes articles on• Control systems, cyber-physical system, real-time systems, robotics, smart sensors, embedded intelligence • Network information technologies, information security, statistical methods of data processing, distributed artificial intelligence, complex systems modeling, knowledge representation, processing and management • Signal and image processing, machine learning, machine perception, computer vision
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