Search results for "computer.software_genre"

showing 10 items of 3858 documents

贝叶斯因子及其在JASP中的实现

2018

Statistical inference plays a critical role in modern scientific research, however, the dominant method for statistical inference in science, null hypothesis significance testing (NHST), is often misunderstood and misused, which leads to unreproducible findings. To address this issue, researchers propose to adopt the Bayes factor as an alternative to NHST. The Bayes factor is a principled Bayesian tool for model selection and hypothesis testing, and can be interpreted as the strength for both the null hypothesis H0 and the alternative hypothesis H1 based on the current data. Compared to NHST, the Bayes factor has the following advantages: it quantifies the evidence that the data provide for…

business.industryAlternative hypothesisBayesian probabilityBayes factorMachine learningcomputer.software_genreBayesian statisticsFrequentist inferenceStatistical inferenceArtificial intelligenceNull hypothesisbusinessGeneral Economics Econometrics and FinancecomputerStatistical hypothesis testingAdvances in Psychological Science
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Pattern languages with and without erasing

1994

The paper deals with the problems related to finding a pattern common to all words in a given set. We restrict our attention to patterns expressible by the use of variables ranging over words. Two essentially different cases result, depending on whether or not the empty word belongs to the range. We investigate equivalence and inclusion problems, patterns descriptive for a set, as well as some complexity issues. The inclusion problem between two pattern languages turns out to be of fundamental theoretical importance because many problems in the classical combinatorics of words can be reduced to it.

business.industryApplied MathematicsInferenceComputer Science::Computation and Language (Computational Linguistics and Natural Language and Speech Processing)Inductive reasoningcomputer.software_genreComputer Science ApplicationsPhilosophy of languageComputational Theory and MathematicsrestrictFormal languageArtificial intelligenceEquivalence (formal languages)ArithmeticbusinesscomputerComputer Science::Formal Languages and Automata TheoryNatural language processingMathematicsInternational Journal of Computer Mathematics
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Ensemble feature selection with the simple Bayesian classification

2003

Abstract A popular method for creating an accurate classifier from a set of training data is to build several classifiers, and then to combine their predictions. The ensembles of simple Bayesian classifiers have traditionally not been a focus of research. One way to generate an ensemble of accurate and diverse simple Bayesian classifiers is to use different feature subsets generated with the random subspace method. In this case, the ensemble consists of multiple classifiers constructed by randomly selecting feature subsets, that is, classifiers constructed in randomly chosen subspaces. In this paper, we present an algorithm for building ensembles of simple Bayesian classifiers in random sub…

business.industryBayesian probabilityFeature selectionPattern recognitionMachine learningcomputer.software_genreLinear subspaceRandom subspace methodNaive Bayes classifierBayes' theoremComputingMethodologies_PATTERNRECOGNITIONHardware and ArchitectureSignal ProcessingArtificial intelligencebusinesscomputerClassifier (UML)SoftwareCascading classifiersInformation SystemsMathematicsInformation Fusion
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Modeling user preferences in content-based image retrieval: A novel attempt to bridge the semantic gap

2015

This paper is concerned with content-based image retrieval from a stochastic point of view. The semantic gap problem is addressed in two ways. First, a dimensional reduction is applied using the (pre-calculated) distances among images. The dimension of the reduced vector is the number of preferences that we allow the user to choose from, in this case, three levels. Second, the conditional probability distribution of the random user preference, given this reduced feature vector, is modeled using a proportional odds model. A new model is fitted at each iteration. The score used to rank the image database is based on the estimated probability function of the random preference. Additionally, so…

business.industryCognitive NeuroscienceFeature vectorDimensionality reductionPattern recognitionProbability density functionConditional probability distributionContent-based image retrievalcomputer.software_genreComputer Science ApplicationsWeightingArtificial IntelligenceArtificial intelligenceData miningbusinessImage retrievalcomputerSemantic gapMathematicsNeurocomputing
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A principled approach to network-based classification and data representation

2013

Measures of similarity are fundamental in pattern recognition and data mining. Typically the Euclidean metric is used in this context, weighting all variables equally and therefore assuming equal relevance, which is very rare in real applications. In contrast, given an estimate of a conditional density function, the Fisher information calculated in primary data space implicitly measures the relevance of variables in a principled way by reference to auxiliary data such as class labels. This paper proposes a framework that uses a distance metric based on Fisher information to construct similarity networks that achieve a more informative and principled representation of data. The framework ena…

business.industryCognitive NeuroscienceFisher kernelPattern recognitionProbability density functionConditional probability distributionExternal Data Representationcomputer.software_genreComputer Science ApplicationsWeightingEuclidean distancesymbols.namesakeData pointArtificial IntelligencesymbolsArtificial intelligenceData miningFisher informationbusinesscomputerMathematicsNeurocomputing
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Use of hierarchical Bayesian framework in MTS studies to model different causes and novel possible forms of acquired MTS

2015

Abstract: An integrative account of MTS could be cast in terms of hierarchical Bayesian inference. It may help to highlight a central role of sensory (tactile) precision could play in MTS. We suggest that anosognosic patients, with anesthetic hemisoma, can also be interpreted as a form of acquired MTS, providing additional data for the model.

business.industryCognitive NeuroscienceTOUCHBODY AWARENESSSensory systemTactile perceptionBody awarenessBayesian inferenceMachine learningcomputer.software_genreHiearchical Bayesian ModelIllusionTouch PerceptionTactile PerceptionSYNAESTHESIABayesian frameworkArtificial intelligencePerceptual DisorderbusinessPsychologycomputerHumanCognitive Neuroscience
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Normalization 2.0: A longitudinal analysis of German online campaigns in the national elections 2002–9

2011

This article examines the functional, relational and discursive dimensions of the normalization thesis in one study, for both Web 1.0 and Web 2.0 features, in a longitudinal design. It is based on a quantitative content and structural analysis of German party websites in the national elections between 2002 and 2009. The results show that the normalization thesis holds true in all its dimensions over time and in the Web 2.0 era: parties still focus on the top-down elements of information provision and delivery while interactive options are scarce. The digital divide between parliamentary and non-parliamentary parties has narrowed over time, but remains visible for all online functions in 200…

business.industryCommunicationcomputer.software_genreLanguage and Linguisticslanguage.human_languageGermanPolitical sciencelanguageNormalization (sociology)The InternetArtificial intelligencebusinesscomputerNatural language processingEuropean Journal of Communication
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Automating statistical diagrammatic representations with data characterization

2017

The search for an efficient method to enhance data cognition is especially important when managing data from multidimensional databases. Open data policies have dramatically increased not only the volume of data available to the public, but also the need to automate the translation of data into efficient graphical representations. Graphic automation involves producing an algorithm that necessarily contains inputs derived from the type of data. A set of rules are then applied to combine the input variables and produce a graphical representation. Automated systems, however, fail to provide an efficient graphical representation because they only consider either a one-dimensional characterizat…

business.industryComputer science020207 software engineeringCognition02 engineering and technologyGraphic designcomputer.software_genre01 natural sciencesCharacterization (materials science)010104 statistics & probabilityInformation visualizationDiagrammatic reasoningOpen dataHuman–computer interaction0202 electrical engineering electronic engineering information engineeringComputer Vision and Pattern RecognitionArtificial intelligence0101 mathematicsbusinesscomputerStatistical graphicsNatural language processingGraphical user interfaceInformation Visualization
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Domain knowledge integration and semantical quality management -A biology case study

2008

International audience; The management of semantical quality is a major challenge in the context of knowledge integration. In this paper, we describe a new approach to constraint management that emphasizes constraint traceability when moving from the semantical level to the operational one.Our strategy for management of semantical quality is related to a metamo-deling-based approach to knowledge integration. We carry out knowledge integration “on the fly” by using transformations applied to models belonging to our metamodeling architecture. The resulting integrated models access available resources through web services whose input and output parameters are guarded by constraints. Integrated…

business.industryComputer science020207 software engineeringContext (language use)02 engineering and technologycomputer.software_genreMetamodelingConstraint (information theory)Knowledge integration020204 information systemsTheory of constraints0202 electrical engineering electronic engineering information engineeringDomain knowledge[INFO]Computer Science [cs]Data miningWeb serviceModel-driven architectureSoftware engineeringbusinesscomputercomputer.programming_language
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Architecture Enabling Adaptation of Data Integration Processes for a Research Information System

2018

Abstract Today, many efforts have been made to implement information systems for supporting research evaluation activities. To produce a good framework for research evaluation, the selection of appropriate measures is important. Quality aspects of the systems’ implementation should also not be overlooked. Incomplete or faulty data should not be used and metric computation formulas should be discussed and valid. Correctly integrated data from different information sources provide a complete picture of the scientific activity of an institution. Knowledge from the data integration field can be adapted in research information management. In this paper, we propose a research information system f…

business.industryComputer science05 social sciencesSoftware developmentadaptationQA75.5-76.95050905 science studiescomputer.software_genreresearch metricsresearch evaluationdata modelResearch information systemElectronic computers. Computer sciencedata quality0509 other social sciencesArchitecture050904 information & library sciencesAdaptation (computer science)businessSoftware engineeringcomputerintegration architectureData integrationFoundations of Computing and Decision Sciences
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