DocumentCode :
3541641
Title :
Integrating multimedia and artifical intelligence for pest prediction and aeration control of stored grain bins
Author :
Liu, Xiujuan ; Wang, Chunguang ; Su, Yunhong ; Hu, Tieyu
Author_Institution :
Aviation Theor. Dept., Aviation Univ. of Air Force, Changchun, China
fYear :
2009
fDate :
16-19 Aug. 2009
Abstract :
In the present study, an intelligent system with human-machine interface of knowledge acquisition is established to implement the pest prediction and the aeration control of stored grain bins. In the system, recurrent neuro-fuzzy network models are proposed to predict temperature evolvement in the grain bins. 3D multimedia displays of node sensor-measured temperatures, and its gradient distributions of the given grain layer and their variations in the interval of the given time are used to extract the system knowledge in the current and future. The results of the experiment in the two grain depots in northeastern China have verified the effectiveness of the system.
Keywords :
agricultural products; computer displays; fuzzy neural nets; knowledge acquisition; multimedia computing; neurocontrollers; pest control; recurrent neural nets; user interfaces; 3D multimedia display; aeration control; artificial intelligence; gradient distribution; human-machine interface; intelligent system; knowledge acquisition; knowledge extraction; node sensor; pest prediction; recurrent neuro-fuzzy network; stored grain bin; temperature evolvement prediction; Control systems; Fuzzy neural networks; Intelligent sensors; Intelligent systems; Knowledge acquisition; Man machine systems; Multimedia systems; Predictive models; Temperature distribution; Temperature sensors; Grain storage; aeration control; pest prediction; recurrent neuro-fuzzy network; wireless communication;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronic Measurement & Instruments, 2009. ICEMI '09. 9th International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-3863-1
Electronic_ISBN :
978-1-4244-3864-8
Type :
conf
DOI :
10.1109/ICEMI.2009.5274158
Filename :
5274158
Link To Document :
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