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Titlebook: Artificial Intelligence: Methodology, Systems, and Applications; 16th International C Gennady Agre,Pascal Hitzler,Sergei O. Kuznetsov Confe

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Analysis of Rumor Spreading in Communities Based on Modified SIR Model in Microblogog has become a popular means for people to gain new information. Rumor as false information inevitably become a part of this new media. In this study, a modified rumor spreading model called SIRe is introduced, which compared to traditional rumor spreading model, have included the stifler’s broadca
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Modeling a System for Decision Support in Snow Avalanche Warning Using Balanced Random Forest and Weclosed in order to prevent fatal accidents. For assessing the danger of avalanches, local avalanche services use, amongst others, meteorological data measured on a daily basis as well as expert knowledge about avalanche activity. Based on this data, a system for decision support in avalanche warning
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Incrementally Building Partially Path Consistent Qualitative Constraint Networkspresenting and reasoning about qualitative temporal and topological relations respectively. In this framework, one of the main tasks is to compute the path consistency of a given Qualitative Constraint Network (.). We concentrate on the partial path consistency checking problem problem of a ., i.e.,
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A Qualitative Spatio-Temporal Framework Based on Point Algebran done in designing qualitative spatiotemporal representation formalisms, let alone reasoning systems for that formalisms. We introduce a qualitative constraint-based spatiotemporal framework using Point Algebra (.), that allows for defining formalisms based on several qualitative spatial constraint
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Training Datasets Collection and Evaluation of Feature Selection Methods for Web Content Filteringngful training data and the feature selection techniques. The Web changes rapidly so the classifier needs to be regularly re-trained. The problem of training data collection is treated as a special case of the focused crawling. A simple and easy-to-tune technique was proposed, implemented and tested
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Feature Selection by Distributions Contrastingon which is to be maximized is the symmetric information distance between distributions of the features subset in the two classes. These distributions are estimated using Bayesian approach for uniform priors, the symmetric information distance is given by the lower estimate for corresponding average
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Differentiation of the Script Using Adjacent Local Binary Patternsrding to its height. The real data are extracted from the probability distribution of the letter heights. Then, the gray scale co-occurrence matrix is computed. It is used as a starting point for the feature extraction. The extracted features are classified according to ALBP. Because of the variety
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