Search results for "principal"

showing 10 items of 795 documents

Climate variability and change : hydrological impacts

2006

TEMPERATURE DE SURFACE[SDE.MCG]Environmental Sciences/Global ChangesANALYSE EN COMPOSANTES PRINCIPALESVARIATION INTERANNUELLE[SDE.MCG] Environmental Sciences/Global Changes[ SDE.MCG ] Environmental Sciences/Global Changes[SDU.STU.CL] Sciences of the Universe [physics]/Earth Sciences/Climatology[SDU.STU.CL]Sciences of the Universe [physics]/Earth Sciences/ClimatologyPLUIECHANGEMENT CLIMATIQUEHYDROCLIMATCORRELATIONINTERACTION OCEAN ATMOSPHEREEL NINO[ SDU.STU.CL ] Sciences of the Universe [physics]/Earth Sciences/Climatology
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Comparison of different assembly and annotation tools on analysis of simulated viral metagenomic communities in the gut

2013

Abstract Background The main limitations in the analysis of viral metagenomes are perhaps the high genetic variability and the lack of information in extant databases. To address these issues, several bioinformatic tools have been specifically designed or adapted for metagenomics by improving read assembly and creating more sensitive methods for homology detection. This study compares the performance of different available assemblers and taxonomic annotation software using simulated viral-metagenomic data. Results We simulated two 454 viral metagenomes using genomes from NCBI's RefSeq database based on the list of actual viruses found in previously published metagenomes. Three different ass…

Taxonomic classificationComputational biologyBiologyGenomeContig MappingContig MappingUser-Computer Interface03 medical and health sciencesAnnotationDatabases GeneticGeneticsRefSeqCluster AnalysisHumansComputer SimulationTaxonomic rank030304 developmental biologyDe Bruijn sequenceInternetPrincipal Component Analysis0303 health sciencesBacteriaContigChimera identification030306 microbiologyComputational BiologyFunctional annotationViral metagenomeIntestinesAssembler performanceMetagenomicsVirusesMetagenomicsAlgorithmsResearch ArticleBiotechnologyBMC Genomics
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The principal as a key actor in promoting teachers’ innovativeness – analyzing the innovativeness of teaching staff with variance-based partial least…

2018

The study examines the correlation between collective innovativeness of the teaching staff and the principal’s leadership style as well as additional school structure characteristics. The construct...

Teaching staff05 social sciencesPrincipal (computer security)050301 educationRegression analysisVariance (accounting)Structural equation modelingEducation0502 economics and businessMathematics educationKey (cryptography)Leadership styleConstruct (philosophy)Psychology0503 education050203 business & managementSchool Effectiveness and School Improvement
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3608 anuncios para el Teatro Principal y Teatro de la Princesa de Valencia, de 1839 a 1877 impresos en casa Ferrer de Orga.

Dades preses del v. 11

Teatre de la Princesa (València) Programes 1839-1877Teatre de la Princesa (València) Programes 1839-1877 lemacTeatre Principal (València) Programes 1839-1877Teatre Principal (València) Programes 1839-1877 lemac
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Learning non-linear time-scales with kernel -filters

2009

A family of kernel methods, based on the @c-filter structure, is presented for non-linear system identification and time series prediction. The kernel trick allows us to develop the natural non-linear extension of the (linear) support vector machine (SVM) @c-filter [G. Camps-Valls, M. Martinez-Ramon, J.L. Rojo-Alvarez, E. Soria-Olivas, Robust @c-filter using support vector machines, Neurocomput. J. 62(12) (2004) 493-499.], but this approach yields a rigid system model without non-linear cross relation between time-scales. Several functional analysis properties allow us to develop a full, principled family of kernel @c-filters. The improved performance in several application examples suggest…

TelecomunicacionesSupport vector machinesbusiness.industryCognitive NeuroscienceNonlinear System IdentificationPattern recognitionKernel principal component analysisComputer Science ApplicationsKernel methodMercer's KernelArtificial IntelligenceVariable kernel density estimationString kernelKernel embedding of distributionsPolynomial kernelRadial basis function kernelGamma-FiltersArtificial intelligenceTree kernelbusinessMathematicsNeurocomputing
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Análisis de métodos de validación cruzada para la obtención robusta de parámetros biofísicos

2015

[EN] Non-parametric regression methods are powerful statistical methods to retrieve biophysical parameters from remote sensing measurements. However, their performance can be affected by what has been presented during the training phase. To ensure robust retrievals, various cross-validation sub-sampling methods are often used, which allow to evaluate the model with subsets of the field dataset. Here, two types of cross-validation techniques were analyzed in the development of non-parametric regression models: hold-out and k-fold. Selected non-parametric linear regression methods were least squares Linear Regression (LR) and Partial Least Squares Regression (PLSR), and nonlinear methods were…

TeledeteccióGeography Planning and Developmentlcsh:G1-922Least squaresCross-validationValidación cruzadaProcesos gausianosHold-outAnàlisi de regressióLinear regressionStatisticsPartial least squares regressionEarth and Planetary Sciences (miscellaneous)MLRAbusiness.industryCross-validationRegression analysisPattern recognitionRegresión de Kernel RidgeAprendizaje automáticoRegressionK-foldHold-OutGeographyk-foldPrincipal component regressionArtificial intelligencebusinessKernel Ridge regressionNonlinear regressionGaussian process regressionlcsh:Geography (General)Revista de Teledetección
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Assessing the territorial influence of an Iberian worship site. The chemical characterisation of the terracotta from the Iron Age sanctuary of La Ser…

2017

This paper presents the study of the prestigious terracotta votive figurines from the Iberian Iron Age sanctuary of La Serreta (Alicante province, Spain) composed of 174 items. Portable X-ray fluorescence (PXRF) was used to identify elemental markers that permit us to observe the differences between local and non-local terracotta figurines and furthermore to evaluate the geographical influence of the La Serreta sanctuary using Principal Component Analysis (PCA). The Partial Least Squares Discriminant Analysis (PLSDA) statistical method was also used to classify the figurines of uncertain geographical origin. The resulting groups were related to typological and stylistic groups of figurines …

TerracottaAlicanteArcheology060102 archaeologyTerritorial influence010308 nuclear & particles physicsmedia_common.quotation_subjectLa Serreta06 humanities and the artsLinear discriminant analysisWorship01 natural sciencesArchaeologyArqueologíaGeographyIron Agevisual_art0103 physical sciencesPartial least squares regressionPrincipal component analysisvisual_art.visual_art_medium0601 history and archaeologyIberian Iron Age sanctuaryTerracottamedia_common
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Monitoring fire-affected areas using Thematic Mapper data

2001

In this paper three methods for updating inventories of burned areas have been presented and examined. They include Multitemporal Principal Component Analysis (MPCA), Change Vector Analysis (CVA) a...

Thematic MapperPrincipal component analysisGeneral Earth and Planetary SciencesEnvironmental scienceChange vector analysisCartographyRemote sensingInternational Journal of Remote Sensing
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MuLiMs-MCoMPAs: A Novel Multiplatform Framework to Compute Tensor Algebra-Based Three-Dimensional Protein Descriptors

2019

This report introduces the MuLiMs-MCoMPAs software (acronym for Multi-Linear Maps based on N-Metric and Contact Matrices of 3D Protein and Amino-acid weightings), designed to compute tensor-based 3D protein structural descriptors by applying two- and three-linear algebraic forms. Moreover, these descriptors contemplate generalizing components such as novel 3D protein structural representations, (dis)similarity metrics, and multimetrics to extract geometrical related information between two and three amino acids, weighting schemes based on amino acid properties, matrix normalization procedures that consider simple-stochastic and mutual probability transformations, topological and geometrical…

Theoretical computer science010304 chemical physicsbusiness.industryGeneral Chemical EngineeringComputationGeneral ChemistryTensor algebraLibrary and Information Sciences01 natural sciences0104 chemical sciencesComputer Science ApplicationsWeighting010404 medicinal & biomolecular chemistryMatrix (mathematics)Software0103 physical sciencesPrincipal component analysisData pre-processingUser interfacebusinessJournal of Chemical Information and Modeling
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A novel dynamic multi-model relevance feedback procedure for content-based image retrieval

2016

This paper deals with the problem of image retrieval in large databases with a big semantic gap by a relevance feedback procedure. We present a novel algorithm for modelling the users's preferences in the content-based image retrieval system.The proposed algorithm considers the probability of an image belonging to the set of those sought by the user, and estimates the parameters of several local logistic regression models whose inputs are the low-level image features. A Principal Component Analysis method is applied to the original vector to reduce its high dimensionality. The relevance probabilities predicted by these local models are combined by means of a weighted average. These weights …

Thesaurus (information retrieval)Computer scienceCognitive NeuroscienceRelevance feedback020207 software engineering02 engineering and technologycomputer.software_genreContent-based image retrievalComputer Science ApplicationsSet (abstract data type)Search engineArtificial IntelligenceFeature (computer vision)Principal component analysis0202 electrical engineering electronic engineering information engineering020201 artificial intelligence & image processingRelevance (information retrieval)Data miningcomputerImage retrievalSemantic gapNeurocomputing
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