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RBF网络在多光谱测温中的应用研究
引用本文:丛大成,戴景民,等.RBF网络在多光谱测温中的应用研究[J].红外与毫米波学报,2001,20(2):97-101.
作者姓名:丛大成  戴景民
作者单位:哈尔滨工业大学计算机与电气工程学院,
基金项目:国家自然科学基金! (编号 697770 2 0 )资助项目&&
摘    要:介绍了一种人工神经网络在多光谱测温数据处理中的应用。利用人工神经网络,结合多种发射训练样本模型,可以自动辨识被测目标的发射率模型,从而得到目标的真温和光谱发射率。应用二次细分的方法进一步提高了测量精度,并分析了各种测量误差对测温精度的影响。仿真结果表明此方法是获知真温与发射率的一种较好的方法。

关 键 词:多光谱测温  人工神经网络  二次细分  真温  发射率  数据处理

STUDY OF THE APPLICATION OF RBF NETWORK TO MULTI-SPECTRAL THERMOMETRY
CONG Da,Cheng,DAI Jing,Min,SUN Xiao,Gang,CHU Zai,Xiang.STUDY OF THE APPLICATION OF RBF NETWORK TO MULTI-SPECTRAL THERMOMETRY[J].Journal of Infrared and Millimeter Waves,2001,20(2):97-101.
Authors:CONG Da  Cheng  DAI Jing  Min  SUN Xiao  Gang  CHU Zai  Xiang
Abstract:The application of artificial neutral network to data processing of multi spectral radiation thermometry was presented. By taking advantages of neutral network and various emissivity samples, the emissivity models of the targets were identified and the true temperature and spectral emissivity were available simultaneously. The measurement accuracy was improved further by subdivision. The effects of measurement errors on the measurement accuracy of temperature and emissivity were also analyzed. Computer simulation results proved that the method is an effective way for both temperature and emissivity measurements.
Keywords:multi  spectral thermometry  artificial neural network  subdivision  true temperature  emissivity  
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