Search results for "Computer Science Application"

showing 10 items of 3998 documents

Adapting to Dynamic LEO-B5G Systems : Meta-Critic Learning Based Efficient Resource Scheduling

2022

Low earth orbit (LEO) satellite-assisted communications have been considered as one of key elements in beyond 5G systems to provide wide coverage and cost-efficient data services. Such dynamic space-terrestrial topologies impose exponential increase in the degrees of freedom in network management. In this paper, we address two practical issues for an over-loaded LEO-terrestrial system. The first challenge is how to efficiently schedule resources to serve the massive number of connected users, such that more data and users can be delivered/served. The second challenge is how to make the algorithmic solution more resilient in adapting to dynamic wireless environments.To address them, we first…

Signal Processing (eess.SP)FOS: Computer and information sciencesdynamic environmentComputer Science - Machine Learningreinforcement learningmeta-critic learningComputer Science - Artificial Intelligence5G-tekniikkaresursointiMachine Learning (cs.LG): Electrical & electronics engineering [C06] [Engineering computing & technology]LEO satelliteslangaton tiedonsiirtoresources allocationalgoritmitFOS: Electrical engineering electronic engineering information engineeringElectrical and Electronic EngineeringElectrical Engineering and Systems Science - Signal Processing: Ingénierie électrique & électronique [C06] [Ingénierie informatique & technologie]Applied MathematicstietoliikennesatelliititComputer Science ApplicationsArtificial Intelligence (cs.AI)koneoppiminenresource schedulinglangattomat verkot
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Performance Analysis of Cooperative V2V and V2I Communications Under Correlated Fading

2019

Cooperative vehicular networks will play a vital role in the coming years to implement various intelligent transportation-related applications. Both vehicle-to-vehicle (V2V) and vehicle-to-infrastructure (V2I) communications will be needed to reliably disseminate information in a vehicular network. In this regard, a roadside unit (RSU) equipped with multiple antennas can improve the network capacity. While the traditional approaches assume antennas to experience independent fading, we consider a more practical uplink scenario where antennas at the RSU experience correlated fading. In particular, we evaluate the packet error probability for two renowned antenna correlation models, i.e., cons…

Signal Processing (eess.SP)FOS: Computer and information sciencesvehicle-to-infrastructure (V2I)Computer scienceComputer Science - Information TheoryReliability (computer networking)Real-time computingStackelberg gameComputer Science - Networking and Internet Architecturelangaton tiedonsiirto0502 economics and businessTelecommunications linkFOS: Electrical engineering electronic engineering information engineeringStackelberg competitionpeliteoriaFadingfading channelsElectrical Engineering and Systems Science - Signal ProcessingIntelligent transportation systemerror probabilitygamesNetworking and Internet Architecture (cs.NI)liikennetekniikka050210 logistics & transportationVehicular ad hoc networkreliabilityNetwork packetsignal to noise ratioInformation Theory (cs.IT)Mechanical Engineering05 social sciencesvehicle-to-vehicle (V2V)rakenteettomat verkotTransmitter power outputComputer Science Applicationsantenna correlationAutomotive Engineeringälytekniikkavehicular ad hoc networksantennas
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Accurate Graph Filtering in Wireless Sensor Networks

2020

Wireless sensor networks (WSNs) are considered as a major technology enabling the Internet of Things (IoT) paradigm. The recent emerging Graph Signal Processing field can also contribute to enabling the IoT by providing key tools, such as graph filters, for processing the data associated with the sensor devices. Graph filters can be performed over WSNs in a distributed manner by means of a certain number of communication exchanges among the nodes. But, WSNs are often affected by interferences and noise, which leads to view these networks as directed, random and time-varying graph topologies. Most of existing works neglect this problem by considering an unrealistic assumption that claims the…

Signal Processing (eess.SP)Networking and Internet Architecture (cs.NI)FOS: Computer and information sciencesComputer Networks and CommunicationsComputer scienceNetwork packetDistributed computing020206 networking & telecommunications02 engineering and technologyNetwork topologyGraphComputer Science ApplicationsComputer Science - Networking and Internet ArchitectureHardware and ArchitectureSignal Processing0202 electrical engineering electronic engineering information engineeringComputer Science::Networking and Internet ArchitectureFOS: Electrical engineering electronic engineering information engineeringGraph (abstract data type)020201 artificial intelligence & image processingElectrical Engineering and Systems Science - Signal ProcessingWireless sensor networkInformation Systems
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Simultaneous harvest-and-transmit ambient backscatter communications under Rayleigh fading

2019

Ambient backscatter communications is an emerging paradigm and a key enabler for pervasive connectivity of low-powered wireless devices. It is primarily beneficial in the Internet of things (IoT) and the situations where computing and connectivity capabilities expand to sensors and miniature devices that exchange data on a low power budget. The premise of the ambient backscatter communication is to build a network of devices capable of operating in a battery-free manner by means of smart networking, radio frequency (RF) energy harvesting and power management at the granularity of individual bits and instructions. Due to this innovation in communication methods, it is essential to investigat…

Signal Processing (eess.SP)energy harvestingPower managementBackscatterComputer Networks and CommunicationsComputer sciencelcsh:TK7800-8360energiansiirtoSystems and Control (eess.SY)02 engineering and technologysmart networkingElectrical Engineering and Systems Science - Systems and Control01 natural sciencesPower budgetlcsh:Telecommunicationlangaton tiedonsiirtoInternet of things (IoT)lcsh:TK5101-6720FOS: Electrical engineering electronic engineering information engineeringSmart networking0202 electrical engineering electronic engineering information engineeringElectronic engineeringWirelessesineiden internetElectrical Engineering and Systems Science - Signal ProcessingRayleigh fadingEnergy harvestingbusiness.industrylcsh:Electronics010401 analytical chemistry020206 networking & telecommunicationsambient backscatter communicationsWireless-powered communications0104 chemical sciencesComputer Science ApplicationsAmbient backscatter communicationswireless-powered communicationsSignal ProcessingälytekniikkaRadio frequencybusinessEnergy harvestinglangattomat verkotEnergy (signal processing)EURASIP Journal on Wireless Communications and Networking
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Improving the performance of acousto-optic tunable filters in imaging applications

2010

Acousto-optic tunable filters (AOTFs) can be used as spectral filters for the implementation of multispectral imaging systems. However, obtaining quality images is challenging. In this work, we propose several improvements that enable the use of these systems in quantitative spectroscopic imaging applications. The improvements are based on three pillars: 1. a finer spectral bandpass shaping by dynamically optimizing the radio frequency (rf) driving signal, 2. an extensive calibration process, and 3. careful image preprocessing that uses calibration data to correct some well known AOTF issues in imaging applications. A novel multispectral imaging instrument is built using commercial off-the-…

Signal generatorComputer sciencebusiness.industryMultispectral imageComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONImage processingSignalAtomic and Molecular Physics and OpticsComputer Science ApplicationsBand-pass filterElectronic engineeringComputer visionArtificial intelligenceRadio frequencyElectrical and Electronic EngineeringbusinessOptical filterImage resolutionJournal of Electronic Imaging
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A probabilistic compressive sensing framework with applications to ultrasound signal processing

2019

Abstract The field of Compressive Sensing (CS) has provided algorithms to reconstruct signals from a much lower number of measurements than specified by the Nyquist-Shannon theorem. There are two fundamental concepts underpinning the field of CS. The first is the use of random transformations to project high-dimensional measurements onto a much lower-dimensional domain. The second is the use of sparse regression to reconstruct the original signal. This assumes that a sparse representation exists for this signal in some known domain, manifested by a dictionary. The original formulation for CS specifies the use of an l 1 penalised regression method, the Lasso. Whilst this has worked well in l…

Signal processing0209 industrial biotechnologyBayesian methodsComputer scienceTKAerospace Engineering02 engineering and technologycomputer.software_genre01 natural sciencesRelevance vector machineNDTSettore ING-IND/14 - Progettazione Meccanica E Costruzione Di Macchine020901 industrial engineering & automationLasso (statistics)0103 physical sciencesUltrasoundUncertainty quantification010301 acousticsSparse representationCivil and Structural EngineeringSignal processingSignal reconstructionMechanical EngineeringProbabilistic logicSparse approximationCompressive sensingComputer Science ApplicationsCompressed sensingControl and Systems EngineeringRelevance Vector MachineData miningcomputer
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Transputer-based parallel system for acquisition and on-line analysis of single-fiber electromyographic signals.

1992

Abstract We describe a transputer-based system suitable for accurate measurements of single-fiber electromyographic jitter. It consists of a conventional electromyograph, a home-made interface and a commercially available transputer-based board installed within a PC/AT compatible. Taking advantage of the concurrent operation of two transputer modules, the system features simultaneous data acquisition and statistical signal processing: while data are acquired and analyzed, a real-time visualization of the signal latency and its variability is provided. In the present configuration, the system can acquire and analyze up to 40,000 consecutive action potentials, which can be grouped into up to …

Signal processingComputer scienceElectromyographyTransputerInterface (computing)Real-time computingHealth InformaticsSignal Processing Computer-AssistedSignalComputer Science ApplicationsData acquisitionMicrocomputersEvaluation Studies as TopicHumansDiagnosis Computer-AssistedSmoothingSoftwareStatistical signal processingJitterComputer methods and programs in biomedicine
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Adaptive Techniques for Microarray Image Analysis with Related Quality Assessment

2007

We propose novel techniques for microarray image analysis. In particular, we describe an overall pipeline able to solve the most common problems of microarray image analysis. We pro- pose the microarray image rotation algorithm (MIRA) and the statis- tical gridding pipeline (SGRIP) as two advanced modules devoted to restoring the original microarray grid orientation and to detecting, the correct geometrical information about each spot of input mi- croarray, respectively. Both solutions work by making use of statis- tical observations, obtaining adaptive and reliable information about each spot property. They improve the performance of the microarray image segmentation pipeline (MISP) we rec…

Signal processingComputer scienceImage qualityPipeline (computing)Image processingImage segmentationcomputer.software_genreAtomic and Molecular Physics and OpticsComputer Science ApplicationsVisualizationmicroarray image analysisBinary dataSegmentationData miningElectrical and Electronic Engineeringcomputer
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In-process tool-failure detection by means of AR models

1997

The present paper proposes a cutting tool breaking and chipping detection system for continuous and interrupted cutting, based on the analysis of the cutting force componentsFx andFy. A multifactorial experimental design has been carried out, to take account of the variability of the force signal. An adaptive signal processing algorithm is proposed, which detects catastrophic failure when at least one component deviates outside an estimated oscillation band for a time duration longer than a prefixed interval. The algorithm has been implemented on a four-microprocessor transputer board. Several tests confirmed the validity of the approach for detecting breaking and chipping phenomena in a fe…

Signal processingEngineeringEngineering drawingCutting toolbusiness.industryMechanical EngineeringTransputerInterval (mathematics)SignalIndustrial and Manufacturing EngineeringComputer Science ApplicationsAdaptive filterMachiningControl and Systems EngineeringCatastrophic failurebusinessSoftwareSimulationThe International Journal of Advanced Manufacturing Technology
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A Review on Approaches for Condition Based Maintenance in Applications with Induction Machines located Offshore

2012

Published version of an article in the journal: Modeling, Identification and Control. Also available from the publisher at: http://dx.doi.org/10.4173/mic.2012.2.4 Open access This paper presents a review of different approaches for Condition Based Maintenance (CBM) of induction machines and drive trains in offshore applications. The paper contains an overview of common failure modes, monitoring techniques, approaches for diagnostics, and an overview of typical maintenance actions. Although many papers have been written in this area before, this paper puts an emphasis on recent developments and limits the scope to induction machines and drive trains applied in applications located offshore.

Signal processingEngineeringGearboxDrivetrainlcsh:QA75.5-76.95wind turbineInduction machineDiagnosticsPrognosticsbusiness.industryCondition-based maintenanceVDP::Technology: 500Electrical engineeringCondition monitoringComputer Science ApplicationsCondition monitoringIdentification (information)Induction machineControl and Systems EngineeringModeling and SimulationBearingPrognosticslcsh:Electronic computers. Computer scienceSoftware engineeringbusinessSoftwareModeling, Identification and Control
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