Search results for "Automated"

showing 10 items of 236 documents

When a new technological product launching fails: A multi-method approach of facial recognition and E-WOM sentiment analysis

2018

Abstract The dual aim of this research is, firstly, to analyze the physiological and unconscious emotional response of consumers to a new technological product and, secondly, link this emotional response to consumer conscious verbal reports of positive and negative product perceptions. In order to do this, biometrics and self-reported measures of emotional response are combined. On the one hand, a neuromarketing experiment based on the facial recognition of emotions of 10 subjects, when physical attributes and economic information of a technological product are exposed, shows the prevalence of the ambivalent emotion of surprise. On the other hand, a nethnographic qualitative approach of sen…

TechnologyKnowledge managementComputer sciencemedia_common.quotation_subjectDecision MakingEmotionsNeuromarketingVideo RecordingExperimental and Cognitive PsychologyPattern Recognition AutomatedBehavioral NeuroscienceImage Processing Computer-AssistedHumansMarketing researchTarget marketmedia_commonMarketingInternetMotivationProduct designbusiness.industrySentiment analysisEquipment DesignConsumer BehaviorMarketing mixSurpriseNew product developmentbusinessFacial RecognitionPhysiology & Behavior
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Assessing the Effect of Drivers’ Gender on Their Intention to Use Fully Automated Vehicles

2021

Although fully automated vehicles (SAE level 5) are expected to acquire a major relevance for transportation dynamics by the next few years, the number of studies addressing their perceived benefits from the perspective of human factors remains substantially limited. This study aimed, firstly, to assess the relationships among drivers’ demographic factors, their assessment of five key features of automated vehicles (i.e., increased connectivity, reduced driving demands, fuel and trip-related efficiency, and safety improvements), and their intention to use them, and secondly, to test the predictive role of the feature’ valuations over usage intention, focusing on gender as a key …

TechnologyQH301-705.5QC1-999vehicle automation; features; fully automated cars; Multi-Group Structural Equation Modeling (MGSEM); gender; intention; drivers; roadway technologiesCarreteresgenderfeaturesGeneral Materials ScienceBiology (General)QD1-999InstrumentationAutomatitzacióFluid Flow and Transfer ProcessesSeguretat viàriaTPhysicsProcess Chemistry and TechnologyGeneral EngineeringVehiclesfully automated carsEngineering (General). Civil engineering (General)vehicle automationComputer Science ApplicationsMulti-Group Structural Equation Modeling (MGSEM)ChemistryintentionTecnologiaTA1-2040Applied Sciences
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A solution to the stochastic point location problem in metalevel nonstationary environments.

2008

This paper reports the first known solution to the stochastic point location (SPL) problem when the environment is nonstationary. The SPL problem involves a general learning problem in which the learning mechanism (which could be a robot, a learning automaton, or, in general, an algorithm) attempts to learn a "parameter," for example, lambda*, within a closed interval. However, unlike the earlier reported results, we consider the scenario when the learning is to be done in a nonstationary setting. For each guess, the environment essentially informs the mechanism, possibly erroneously (i.e., with probability p), which way it should move to reach the unknown point. Unlike the results availabl…

Theoretical computer scienceAutomatic controlDiscretizationComputer scienceInformation Storage and RetrievalDecision Support TechniquesPattern Recognition AutomatedArtificial IntelligenceComputer SimulationElectrical and Electronic EngineeringStochastic ProcessesModels StatisticalLearning automatabusiness.industryStochastic processSignal Processing Computer-AssistedGeneral MedicineRandom walkComputer Science ApplicationsAutomatonHuman-Computer InteractionControl and Systems EngineeringPoint locationArtificial intelligencebusinessSoftwareAlgorithmsInformation SystemsIEEE transactions on systems, man, and cybernetics. Part B, Cybernetics : a publication of the IEEE Systems, Man, and Cybernetics Society
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An Automated Visual Inspection System for the Classification of the Phases of Ti-6Al-4V Titanium Alloy

2013

Metallography is the science of studying the physical properties of metal microstructures, by means of microscopes. While traditional approaches involve the direct observation of the acquired images by human experts, Com-puter Vision techniques may help experts in the analysis of the inspected mate-rials. In this paper we present an automated system to classify the phases of a Titanium alloy, Ti-6Al-4V. Our system has been tested to analyze the final products of a Friction Stir Welding process, to study the states of the micro-structures of the welded material.

Titanium Ti-6Al-4V Metallography Computer Vision Automated Visual Inspection SVM TextureComputer sciencebusiness.industryAlloyMechanical engineeringchemistry.chemical_elementTitanium alloyWeldingengineering.materialMicrostructurelaw.inventionAutomated X-ray inspectionchemistrylawMetallographyengineeringFriction stir weldingComputer visionArtificial intelligencebusinessTitanium
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Comparison of a Manual and an Automated Method to Estimate the Number of Uterine Eggs in Anisakid Nematodes: To Coulter or Not to Coulter. Is That th…

2007

Studies reporting numbers of eggs in vagina and utero in nematodes often give little information of the technique used for the estimations. This situation hampers comparison among studies, because, so far, differences in estimations provided by different techniques have not been assessed. This note examines whether a manual method based on visual counts in aliquots and an automated method using a Coulter counter yield equivalent estimations of egg numbers in vagina and utero of 3 anisakid nematode species (Anisakis simplex, Pseudoterranova decipiens, and Contracaecum osculatum). The number of eggs from 50 females per nematode species was estimated using both techniques. The automated and ma…

Veterinary medicineSeals EarlessBiologyCoulter counterAscaridoideaPhocoenaAnimalsParasite Egg CountEcology Evolution Behavior and SystematicsAnalysis of VarianceEcologyContracaecum osculatumUterusAnisakis simplexReproducibility of Resultsbiology.organism_classificationPseudoterranova decipiensAnisakisAscaridida InfectionsFertilityNematodeAnisakid nematodeVaginaFemaleParasitologyAutomated methodJournal of Parasitology
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Applying pattern recognition methods plus quantum and physico-chemical molecular descriptors to analyze the anabolic activity of structurally diverse…

2008

The great cost associated with the development of new anabolic-androgenic steroid (AASs) makes necessary the development of computational methods that shorten the drug discovery pipeline. Toward this end, quantum, and physicochemical molecular descriptors, plus linear discriminant analysis (LDA) were used to analyze the anabolic/androgenic activity of structurally diverse steroids and to discover novel AASs, as well as also to give a structural interpretation of their anabolic-androgenic ratio (AAR). The obtained models are able to correctly classify 91.67% (86.27%) of the AASs in the training (test) sets, respectively. The results of predictions on the 10% full-out cross-validation test al…

Virtual screeningQuantitative structure–activity relationshipAnabolismChemical PhenomenaQuantitative Structure-Activity RelationshipComputational biologyLDA-assisted QSAR modelLigandsPattern Recognition AutomatedAnabolic AgentsMolecular descriptorCluster AnalysisComputer SimulationVirtual screeningMolecular StructureChemistryChemistry PhysicalDiscriminant AnalysisReproducibility of ResultsGeneral ChemistryLinear discriminant analysisCombinatorial chemistryAnabolic–androgenic ratioComputational MathematicsPattern recognition (psychology)Quantum and physicochemical molecular descriptorQuantum TheorySteroidsAnabolic–androgenic steroidAlgorithmsJournal of computational chemistry
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Classification of diabetes-related retinal diseases using a deep learning approach in optical coherence tomography

2019

Background and objectives: Spectral Domain Optical Coherence Tomography (SD-OCT) is a volumetric imaging technique that allows measuring patterns between layers such as small amounts of fluid. Since 2012, automatic medical image analysis performance has steadily increased through the use of deep learning models that automatically learn relevant features for specific tasks, instead of designing visual features manually. Nevertheless, providing insights and interpretation of the predictions made by the model is still a challenge. This paper describes a deep learning model able to detect medically interpretable information in relevant images from a volume to classify diabetes-related retinal d…

Volumetric imagingComputer scienceProfundo InterpretabilidadConvolutional neural network030218 nuclear medicine & medical imagingPattern Recognition Automatedchemistry.chemical_compoundMacular Degeneration[SPI]Engineering Sciences [physics]0302 clinical medicineDeep learning modelsInterpretabilityModelos de aprendizajeAged 80 and overArtificial neural networkmedicine.diagnostic_testMedical findings KeyWords Plus:MACULAR DEGENERATIONAngiographyMiddle AgedRetinal diseases3. Good healthComputer Science ApplicationsArea Under CurveTomographyMedical findingsAlgorithmsTomography Optical CoherenceAprendizaje - ModelosDiabetic macular edemaHealth InformaticsHallazgos médicosMacular Edema03 medical and health sciencesDeep LearningOptical coherence tomographymedicine[INFO.INFO-IM]Computer Science [cs]/Medical ImagingDeep InterpretabilityHumans[INFO]Computer Science [cs]Enfermedades de la retinaRetinopathyAgedDiabetic RetinopathyOptical coherence tomographybusiness.industryDeep learningReproducibility of ResultsRetinalPattern recognitionMacular degenerationmedicine.diseasechemistryArtificial intelligenceNeural Networks ComputerLa tomografía de coherencia ópticabusinessClassifier (UML)030217 neurology & neurosurgerySoftware
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Federated Learning for Zero-Day Attack Detection in 5G and Beyond V2X Networks

2023

Deploying Connected and Automated Vehicles (CAVs) on top of 5G and Beyond networks (5GB) makes them vulnerable to increasing vectors of security and privacy attacks. In this context, a wide range of advanced machine/deep learning-based solutions have been designed to accurately detect security attacks. Specifically, supervised learning techniques have been widely applied to train attack detection models. However, the main limitation of such solutions is their inability to detect attacks different from those seen during the training phase, or new attacks, also called zero-day attacks. Moreover, training the detection model requires significant data collection and labeling, which increases th…

[INFO.INFO-AI] Computer Science [cs]/Artificial Intelligence [cs.AI]5GBIoV[INFO.INFO-NI] Computer Science [cs]/Networking and Internet Architecture [cs.NI]Zero-day attacksSécurité5G V2X IoV Sécurité Attaques Détection Apprentissage Fédéré[INFO] Computer Science [cs]Intrusion DetectionDétectionAttaquesSecurityV2XApprentissage FédéréFederated Learning5GConnected and Automated Vehicles[INFO.INFO-CR] Computer Science [cs]/Cryptography and Security [cs.CR]
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Improved Estimation of Cardiac Function Parameters Using a Combination of Independent Automated Segmentation Results in Cardiovascular Magnetic Reson…

2015

International audience; This work aimed at combining different segmentation approaches to produce a robust and accurate segmentation result. Three to five segmentation results of the left ventricle were combined using the STAPLE algorithm and the reliability of the resulting segmentation was evaluated in comparison with the result of each individual segmentation method. This comparison was performed using a supervised approach based on a reference method. Then, we used an unsupervised statistical evaluation, the extended Regression Without Truth (eRWT) that ranks different methods according to their accuracy in estimating a specific bio-marker in a population. The segmentation accuracy was …

[SDV.IB] Life Sciences [q-bio]/Bioengineeringlcsh:RMagnetic Resonance Imaging CineReproducibility of Resultslcsh:MedicineStroke VolumeImage EnhancementVentricular Function LeftPattern Recognition AutomatedImage Interpretation Computer-AssistedHumanslcsh:Q[SDV.IB]Life Sciences [q-bio]/Bioengineering[ SDV.IB ] Life Sciences [q-bio]/Bioengineeringlcsh:ScienceAlgorithmsResearch Article
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Detección precoz de la hipoacusia, influencia en el diagnóstico y en el tratamiento temprano

2021

Detección precoz de la hipoacusia, influencia en el diagnóstico y en el tratamiento temprano. INTRODUCCIÓN: La hipoacusia es el déficit sensorial mas frecuente en los países desarrollados. La prevalencia de cualquier grado de hipoacusia es de un 2-3 % de la población infantil y el 80% de las mismas, está presente al nacimiento. Los programa de screening auditivo (SA) se justifican por la alta incidencia de la hipoacusia y sus consecuencias devastadoras para el lenguaje cuando no se detecta precozmente. OBJETIVO: Establecer el número de niños diagnosticados de hipoacusia congénita gracias al SA en el hospital Universitario La Fe. Analizamos las técnicas utilizadas en el cribado, los parámetr…

age at screenotoacoustic emissions:CIENCIAS MÉDICAS [UNESCO]neonatal hearing screeninguniversal newborn hearing screeningearly interventionautomated auditory brainstem responsehearing impairment aetiologyevoked potentials auditoryUNESCO::CIENCIAS MÉDICASrisk factorsepidemiologyreferral ratecongenital hearing lossearly diagnosis
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