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基于类向量模型的中文姓名识别研究 被引量:2
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作者 贾品贵 杨一平 卢朋 《计算机应用研究》 CSCD 北大核心 2007年第4期111-113,共3页
提出了一种基于类向量模型的中文姓名识别方法。该方法通过类向量的生成来模拟人工识别姓名的过程,采用V iterbi算法对未经切分的汉字串进行类向量标注得到类向量序列,通过检查相邻类向量中类别和向量分量的变化来最终识别出人名。该方... 提出了一种基于类向量模型的中文姓名识别方法。该方法通过类向量的生成来模拟人工识别姓名的过程,采用V iterbi算法对未经切分的汉字串进行类向量标注得到类向量序列,通过检查相邻类向量中类别和向量分量的变化来最终识别出人名。该方法是完全数据驱动的,不需要姓名识别的模式和规则。通过对互联网上随机抽取的1 000篇文章进行测试,结果表明,中文姓名识别召回率为82.2%,准确率为70.3%。 展开更多
关键词 中文姓名识别 类向量模型 VITERBI算法 基于汉字
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基于本体的向量空间模型的压缩算法 被引量:6
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作者 袁铭蔚 蒋平 《计算机工程与应用》 CSCD 北大核心 2007年第24期12-14,共3页
采用本体(Ontology)为向量空间模型提供更为丰富、详细的概念空间,在本体的支持下,文档中的术语不再被孤立地看成关键词,而是彼此间有了一定的语义联系。以已获得丰富而详细的本体为前提,考虑当本体空间很大时,解决向量空间的高维数给... 采用本体(Ontology)为向量空间模型提供更为丰富、详细的概念空间,在本体的支持下,文档中的术语不再被孤立地看成关键词,而是彼此间有了一定的语义联系。以已获得丰富而详细的本体为前提,考虑当本体空间很大时,解决向量空间的高维数给计算带来复杂性与难度这一问题,提出基于HCA(Hierarchical Clustering Algorithm)的向量空间压缩算法。 展开更多
关键词 本体向量空间模型分层聚算法语义距离
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Application of signal processing and support vector machine to transverse cracking detection in asphalt pavement 被引量:5
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作者 YANG Qun ZHOU Shi-shi +1 位作者 WANG Ping ZHANG Jun 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第8期2451-2462,共12页
Vibration-based pavement condition(roughness and obvious anomalies)monitoring has been expanding in road engineering.However,the indistinctive transverse cracking has hardly been considered.Therefore,a vehicle-based n... Vibration-based pavement condition(roughness and obvious anomalies)monitoring has been expanding in road engineering.However,the indistinctive transverse cracking has hardly been considered.Therefore,a vehicle-based novel method is proposed for detecting the transverse cracking through signal processing techniques and support vector machine(SVM).The vibration signals of the car traveling on the transverse-cracked and the crack-free sections were subjected to signal processing in time domain,frequency domain and wavelet domain,aiming to find indices that can discriminate vibration signal between the cracked and uncracked section.These indices were used to form 8 SVM models.The model with the highest accuracy and F1-measure was preferred,consisting of features including vehicle speed,range,relative standard deviation,maximum Fourier coefficient,and wavelet coefficient.Therefore,a crack and crack-free classifier was developed.Then its feasibility was investigated by 2292 pavement sections.The detection accuracy and F1-measure are 97.25%and 85.25%,respectively.The cracking detection approach proposed in this paper and the smartphone-based detection method for IRI and other distress may form a comprehensive pavement condition survey system. 展开更多
关键词 asphalt pavement transverse crack detection vehicle vibration support vector machine classification model
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Forecasting and optimal probabilistic scheduling of surplus gas systems in iron and steel industry 被引量:6
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作者 李磊 李红娟 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第4期1437-1447,共11页
To make full use of the gas resource, stabilize the pipe network pressure, and obtain higher economic benefits in the iron and steel industry, the surplus gas prediction and scheduling models were proposed. Before app... To make full use of the gas resource, stabilize the pipe network pressure, and obtain higher economic benefits in the iron and steel industry, the surplus gas prediction and scheduling models were proposed. Before applying the forecasting techniques, a support vector classifier was first used to classify the data, and then the filtering was used to create separate trend and volatility sequences. After forecasting, the Markov chain transition probability matrix was introduced to adjust the residual. Simulation results using surplus gas data from an iron and steel enterprise demonstrate that the constructed SVC-HP-ENN-LSSVM-MC prediction model prediction is accurate, and that the classification accuracy is high under different conditions. Based on this, the scheduling model was constructed for surplus gas operating, and it has been used to investigate the comprehensive measures for managing the operational probabilistic risk and optimize the economic benefit at various working conditions and implementations. It has extended the concepts of traditional surplus gas dispatching systems, and provides a method for enterprises to determine optimal schedules. 展开更多
关键词 surplus gas prediction probabilistic scheduling iron and steel enterprise HP filter Elman neural network(ENN) least squares support vector machine(LSSVM) Markov chain
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