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频谱监测网络的规划方法 被引量:1
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作者 Victor V.Kogan Alexander P.Pavliouk 刘卓然 《中国无线电》 2009年第10期45-49,共5页
介绍一种用于V/UHF频段频谱监测网络规划和优化的新方法。它用来对固定监测站两类监测功能的覆盖区域进行计算,这两类监测功能包括:对于诸如频率、带宽、调制方式、场强等的远距离测量(依照ITU建议书进行的测量,即所谓的"ITU测量&q... 介绍一种用于V/UHF频段频谱监测网络规划和优化的新方法。它用来对固定监测站两类监测功能的覆盖区域进行计算,这两类监测功能包括:对于诸如频率、带宽、调制方式、场强等的远距离测量(依照ITU建议书进行的测量,即所谓的"ITU测量");交会定位。此外,分析了所用的传播模型和网络规划参数设置的方法。 展开更多
关键词 itu测量 定位覆盖模板 网络规划 频谱监测
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Mapping methods for output-based objective speech quality assessment using data mining 被引量:2
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作者 王晶 赵胜辉 +1 位作者 谢湘 匡镜明 《Journal of Central South University》 SCIE EI CAS 2014年第5期1919-1926,共8页
Objective speech quality is difficult to be measured without the input reference speech.Mapping methods using data mining are investigated and designed to improve the output-based speech quality assessment algorithm.T... Objective speech quality is difficult to be measured without the input reference speech.Mapping methods using data mining are investigated and designed to improve the output-based speech quality assessment algorithm.The degraded speech is firstly separated into three classes(unvoiced,voiced and silence),and then the consistency measurement between the degraded speech signal and the pre-trained reference model for each class is calculated and mapped to an objective speech quality score using data mining.Fuzzy Gaussian mixture model(GMM)is used to generate the artificial reference model trained on perceptual linear predictive(PLP)features.The mean opinion score(MOS)mapping methods including multivariate non-linear regression(MNLR),fuzzy neural network(FNN)and support vector regression(SVR)are designed and compared with the standard ITU-T P.563 method.Experimental results show that the assessment methods with data mining perform better than ITU-T P.563.Moreover,FNN and SVR are more efficient than MNLR,and FNN performs best with 14.50% increase in the correlation coefficient and 32.76% decrease in the root-mean-square MOS error. 展开更多
关键词 objective speech quality data mining multivariate non-linear regression fuzzy neural network support vector regression
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