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改进的ART网络在火焰燃烧状态识别中的应用
引用本文:隋金雪,杨莉,贺永强,董晓峰.改进的ART网络在火焰燃烧状态识别中的应用[J].传感器与微系统,2007,26(5):90-93.
作者姓名:隋金雪  杨莉  贺永强  董晓峰
作者单位:1. 山东工商学院,信息与电子工程学院,山东,烟台,264005
2. 华北电力大学,动力工程系,北京,102206
摘    要:基于采集的电站锅炉燃烧器火焰图像,利用数字图像处理技术,讨论了特征值的意义和提取方法,提取了火焰图像特征区内灰度的平均值和标准差2个特征向量,运用现代人工神经网络智能理论,设计并改进了ART2网络算法,经过训练和实际应用后,ART2网络对一定工况的旋流燃烧器和直流燃烧器火焰燃烧状态都具有很好的识别能力,判别准确,网络稳定,实现燃烧状态实时判断,在现场取得了良好的实际应用效果。

关 键 词:火焰图像  燃烧诊断  人工神经网络  自适应共振理论网络
文章编号:1000-9787(2007)05-0090-04
收稿时间:2006-11-09
修稿时间:11 9 2006 12:00AM

Application of improved ART network in flame burning condition recognition
SUI Jin-xue,YANG Li,HE Yong-qiang,DONG Xiao-feng.Application of improved ART network in flame burning condition recognition[J].Transducer and Microsystem Technology,2007,26(5):90-93.
Authors:SUI Jin-xue  YANG Li  HE Yong-qiang  DONG Xiao-feng
Affiliation:1. School of Information and Electronics Engineering, Shandong Institute of Business and Technology, Yantai 264005, China;2. Department of Power Engineering,North China Electric Power University,Beijing 102206, China
Abstract:According to the flame image which gathers from the tangential burner and the swirl burner,based on the digital image processing technology, the characteristic value significance and withdraws method are discussed, The gradation mean value and standard difference of two characteristics vectors in the flame image characteristic area are withdrawn. Applying modern artificial nerve network intelligence theory, the ART2 network algorithm is designed and improved. After the process training and the practical application, the ART2 network has the very good recognition capability to the certain operating mode eddy burner and the direct current burner flame burning condition ,and the distinction is accurate, the network is stable ,burning condition real-time judgement is realized. It is the good practical application effect in the scene.
Keywords:flame image  combustion diagnosis  artificial neural network  adaptive resoance theory(ART)network
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