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【期刊论文】Rule Discovery with Particle Swarm Optimization
覃征, Yu Liu, Zheng Qin, , Zhewen Shi, and Junying Chen
LNCS 3309, pp. 291-296, 2004,-0001,():
-1年11月30日
This paper proposes Particle Swarm Optimization (PSO) algorithm to discover classification rules. The potential IF-THEN rules are encoded into real-valued particles that contain all types of attributes in data sets. Rule discovery task is formulized into an optimization problem with the objective to get the high accuracy, generalization performance, and comprehensibility, and then PSO algorithm is employed to resolveit. The advantage of the proposed approach is that it can be applied on both categorical data and continuous data. The experiments are conducted on two benchmark data sets: Zoo data set, in which all attributes are categorical, and Wine data set, in which all attributes except for the classification attribute are continuous. The results show that there is on average the small number of conditions per rule and a few rules per rule set, and also show that the rules have good performance of predictive accuracy and generalization ability.
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【期刊论文】Automatic Combination of Feature Descriptors for Effective 3D Shape Retrieval
覃征, Biao Leng and Zheng Qin
LNCS 4418, pp. 36-46, 2007.,-0001,():
-1年11月30日
We focus on improving the effectiveness of content-based 3D shape retrieval. Motivated by retrieval performance of several ndividual 3D model feature vectors, we propose a novel method, called prior knowledge based automatic weighted combination, to improve the retrieval effectiveness. The method dynamically determines the weighting scheme for different feature vectors based on the prior knowledge. The experimental results show that the proposed method provides significant improvements on retrieval effectiveness of 3D shape search with several measures on a standard 3D database. Compared with two existing combination methods, the prior knowledge weighted combination technique has gained better retrieval effectiveness.
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【期刊论文】A Novel Image Fusion Method Based on SGNN
覃征, Zheng Qin, Fumin Bao, and Aiguo Li
LNCS 3497, pp. 747-752, 2005.,-0001,():
-1年11月30日
Multi-sensor image fusion is a challenging research field, which is a issue to be further investigated and studied. Self-Generating Neural Networks (SGNNs) are self-organization neural network, whose network structures and parameters need not to be set by users, and its learning process needs no iteration. An approach of image fusion using a SGNN is proposed in this paper. The approach consists of pre-processing of the images, clustering pixels using SGNN and fusing images using fussy logic algorithms. The approach has advantages of being wieldy to be used by users and having high computing efficiency, The experimental results demonstrate that the MSE (mean square error) of this approach decreases 30%-60% than those by Laplacian pyramid and discrete wavelet transform approaches.
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【期刊论文】Adaptive Mobile Cooperation Model Based on Context Awareness
覃征, Weihong Wang , and Zheng Qin
LNCS 3841, pp. 1189-1192, 2006.,-0001,():
-1年11月30日
Aiming at the mobile cooperation in the mobile computing environment, a novel model, CA-AMCM (Adaptive Mobile Cooperation Model based on Context-Awareness), was proposed. Firstly, we give the sets of correlation context, the principle and definition about the relation each other among contexts. Then, we describe the abstraction of context information, which is necessary to group cooperation in mobile computing. We express context with ontology theory and deduct with first-order predication. After that, CA-AMCM model was constructed based on it. At last, we apply the model to the MECP (Mobile Embedded Cooperation Platform). The practice indicates that the model provides a powerful means for advancing group cooperation intelligence.
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【期刊论文】Web Pre-fetching Using Adaptive Weight Hybrid-Order Markov Model
覃征, Shengping He, Zheng Qin, and Yan Chen
LNCS 3306, pp. 313-318, 2004.,-0001,():
-1年11月30日
Markov models have been widely utilized for modeling user web navigation behavior. In this paper, we propose a novel adaptive weighting hybrid-order Markov model-HFTMM for Web pre-fetching based on optimizing HTMM (hybrid-order tree-like Markov model). The model can minimize the number of nodes in HTMM and improve the prediction accuracy, which are two significant sources of overhead for web pre-fetching. The experimental results show that HFTMM excels HTMM in better predicting performance with fewer nodes.
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24浏览
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