Search results for " Network"

showing 10 items of 6428 documents

Rule based reasoning for network management

2006

This paper focuses on improving network management by the adoption of artificial intelligence techniques. We propose a distributed multi-agent architecture for network management, where a logical reasoner acts as a managing entity capable of directing, coordinating, and triggering monitoring and management actions in the proposed architecture. The logical inference system has been devised to enable automated isolation, diagnosis, and to repair network anomalies, thus enhancing the reliability, performance, and security of the network. The measurements of network events are captured by programmable sensors deployed on the network devices and are collected by the network management entity whe…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial intelligenceComputer networkComputer sciencebusiness.industrySemantic reasonerFormal logiccomputer.software_genreNetworking hardwareNetwork management applicationNetwork simulationIntelligent computer networkNetwork managementElement management systemKnowledge based systemsData miningbusinesscomputerNetwork management station
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Real-Time Visual Grasp Synthesis Using Genetic Algorithms and Neural Networks

2007

This paper addresses the problem of automatic grasp synthesis of unknown planar objects. In other words, we must compute points on the object’s boundary to be reached by the robotic fingers such that the resulting grasp, among infinite possibilities, optimizes some given criteria. Objects to be grasped are represented as superellipses, a family of deformable 2D parametric functions. They can model a large variety of shapes occurring often in practice by changing a small number of parameters. The space of possible grasp configurations is analyzed using genetic algorithms. Several quality criteria from existing literature together with kinematical and mechanical considerations are considered.…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial neural networkComputer sciencebusiness.industryGRASPProcess (computing)Feed forwardBoundary (topology)Grasping Neural Networks Evolutionary methodsGenetic algorithmRobotArtificial intelligencebusinessParametric equation
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Efficient FPGA Implementation of a Knowledge-Based Automatic Speech Classifier

2005

Speech recognition has become common in many application domains, from dictation systems for professional practices to vocal user interfaces for people with disabilities or hands-free system control. However, so far the performance of Automatic Speech Recognition (ASR) systems are comparable to Human Speech Recognition (HSR) only under very strict working conditions, and in general far lower. Incorporating acoustic-phonetic knowledge into ASR design has been proven a viable approach to rise ASR accuracy. Manner of articulation attributes such as vowel, stop, fricative, approximant, nasal, and silence are examples of such knowledge. Neural networks have already been used successfully as dete…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial neural networkDictationComputer sciencebusiness.industrySpeech recognitionField programmable gate arrays (FPGA)artificial neuralPerceptronManner of articulationKnowledge baseUser interfacebusinessField-programmable gate arrayClassifier (UML)Neural networks
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Application of EαNets to Feature Recognition of Articulation Manner in Knowledge-Based Automatic Speech Recognition

2006

Speech recognition has become common in many application domains. Incorporating acoustic-phonetic knowledge into Automatic Speech Recognition (ASR) systems design has been proven a viable approach to rise ASR accuracy. Manner of articulation attributes such as vowel, stop, fricative, approximant, nasal, and silence are examples of such knowledge. Neural networks have already been used successfully as detectors for manner of articulation attributes starting from representations of speech signal frames. In this paper, a set of six detectors for the above mentioned attributes is designed based on the E-αNet model of neural networks. This model was chosen for its capability to learn hidden acti…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial neural networkGeneralizationComputer scienceSpeech recognitionSIGNAL (programming language)cognitive architectureFeature recognitionneural networks speech recognitionAnthropomorphic robotsManner of articulationSystems designSet (psychology)Articulation (phonetics)Robots
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A Reconfigurable Neural Environment on Active Networks

2000

This paper proposes the deployment of a neural network computing environment on Active Networks. Active Networks are packet-switched computer networks in which packets can contain code fragments that are executed on the intermediate nodes. This feature allows the injection of small pieces of codes to deal with computer network problems directly into the network core, and the adoption of new computing techniques to solve networking problems. The goal of our project is the adoption of a distributed neural network for approaching tasks which are specific of the computer network environment. Dynamically reconfigurable neural networks are spread on an experimental wide area backbone of active no…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial neural networkNetwork packetbusiness.industryComputer scienceTime delay neural networkDistributed computingActive Networks Neural NetworksComputer network programmingIntelligent computer networkCellular neural networkCode (cryptography)businessComputer networkActive networking
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Real-Time Hand Pose Recognition Based on a Neural Network Using Microsoft Kinect

2013

The Microsoft Kinect sensor is largely used to detect and recognize body gestures and layout with enough reliability, accuracy and precision in a quite simple way. However, the pretty low resolution of the optical sensors does not allow the device to detect gestures of body parts, such as the fingers of a hand, with the same straightforwardness. Given the clear application of this technology to the field of the user interaction within immersive multimedia environments, there is the actual need to have a reliable and effective method to detect the pose of some body parts. In this paper we propose a method based on a neural network to detect in real time the hand pose, to recognize whether it…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniArtificial neural networkgesture recognitionbusiness.industryComputer scienceMicrosoft Kinect.gesture-based interactionVirtual realityObject detectionhuman-computer interactionFeature (computer vision)Gesture recognitionComputer visionArtificial intelligenceNoise (video)businessPoseGesture2013 Eighth International Conference on Broadband and Wireless Computing, Communication and Applications
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A Novel Recruitment Policy to Defend against Sybils in Vehicular Crowdsourcing

2021

Vehicular Social Networks (VSNs) is an emerging communication paradigm, derived by merging the concepts of Online Social Networks (OSNs) and Vehicular Ad-hoc Networks (VANETs). Due to the lack of robust authentication mechanisms, social-based vehicular applications are vulnerable to numerous attacks including the generation of sybil entities in the networks. We address this important issue in vehicular crowdsourcing campaigns where sybils are usually employed to increase their influence and worsen the functioning of the system. In particular, we propose a novel User Recruitment Policy (URP) that, after extracting the participants within the event radius of a crowdsourcing campaign, detects …

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniAuthenticationEvent (computing)business.industryComputer sciencecomputer.internet_protocolComputerSystemsOrganization_COMPUTER-COMMUNICATIONNETWORKSCrowdsourcingComputer securitycomputer.software_genreDomain (software engineering)Random forestCrowdsourcing; Proximity Graph; Sybil detection; Trust and Truthfulness; Vehicular Social NetworkCrowdsourcing Proximity Graph Sybil detection Trust and Truthfulness Vehicular Social NetworkGraph (abstract data type)RADIUSbusinesscomputer
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Assessing Coastal Sustainability: A Bayesian Approach for Modeling and Estimating a Global Index for Measuring Risk

2013

Integrated Coastal Zone Management is an emerg- ing research area. The aim is to provide a global view of dif- ferent and heterogeneous aspects interacting in a geographical area. Decision Support Systems, integrating Computational Intelligence methods, can be successfully used to estimate use- ful anthropic and environmental indexes. Bayesian Networks have been widely used in the environmental science domain. In this paper a Bayesian model for estimating the Sustainable Coastal Index is presented. The designed Bayesian Network consists of 17 nodes, hierarchically organized in 4 layers. The first layer is initialized with the season and the physiographic region information. In the second la…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniBayesian Networks Decision Support Systems Integrated Coastal Zone Management Sustainable Coastal Index
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Fast Fingerprints Classification only using the Directional Image

2007

The classification phase is an important step of an automatic fingerprint identification system, where the goal is to restrict only to a subset of the whole database the search time. The proposed system classifies fingerprint images in four classes using only directional image information. This approach, unlike the literature approaches, uses the acquired fingerprint image without enhancement phases application. The system extracts only directional image and uses three concurrent decisional modules to classify the fingerprint. The proposed system has a high classification speed and a very low computational cost. The experimental results show a classification rate of 87.27%.

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniBayesian networkc-means algorithmDecision networkFingerprint classificationNeural network
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EMBER—Embedding Multiple Molecular Fingerprints for Virtual Screening

2022

In recent years, the debate in the field of applications of Deep Learning to Virtual Screening has focused on the use of neural embeddings with respect to classical descriptors in order to encode both structural and physical properties of ligands and/or targets. The attention on embeddings with the increasing use of Graph Neural Networks aimed at overcoming molecular fingerprints that are short range embeddings for atomic neighborhoods. Here, we present EMBER, a novel molecular embedding made by seven molecular fingerprints arranged as different “spectra” to describe the same molecule, and we prove its effectiveness by using deep convolutional architecture that assesses ligands&…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniBinding SitesMolecular StructureDeep learning Drug design Embedding Virtual screeningResearchOrganic ChemistryGeneral MedicineLigandsCatalysisComputer Science ApplicationsInorganic ChemistryCDC2 Protein KinaseDrug DiscoveryMass Screeningdeep learning; drug design; virtual screening; embeddingNeural Networks ComputerPhysical and Theoretical ChemistryProtein KinasesMolecular BiologySpectroscopy
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