Search results for "Object-class detection"

showing 7 items of 7 documents

Face tracking and recognition: from algorithm to implementation

2002

This paper describes a system capable of realizing a face detection and tracking in video sequences. In developing this system, we have used a RBF neural network to locate and categorize faces of different dimensions. The face tracker can be applied to a video communication system which allows the users to move freely in front of the camera while communicating. The system works at several stages. At first, we extract useful parameters by a low-pass filtering to compress data and we compose our codebook vectors. Then, the RBF neural network realizes a face detection and tracking on a specific board.

Artificial neural networkFacial motion captureComputer sciencebusiness.industryComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONCodebookTracking (particle physics)Facial recognition systemObject-class detectionVideo trackingComputer visionArtificial intelligenceFace detectionbusinessSPIE Proceedings
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Parallel implementation on DSPs of a face detection algorithm

2002

In order to localize the face in an image, our approach consists of approximating the face oval shape with an ellipse and to compute coordinates of the center of the ellipse. For this purpose, we explore a new version of the Hough transformation: the fuzzy generalized Hough transformation. To reduce the computation time, we present also a parallel implementation of the algorithm on 2 digital signal processors and we show that an acceleration of a factor of 1.62 has been obtained.

Computer sciencebusiness.industryFeature extractionComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONParallel algorithmEllipseFacial recognition systemEdge detectionHough transformlaw.inventionObject-class detectionlawFace (geometry)Computer visionArtificial intelligenceFace detectionbusiness
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Probabilistic Corner Detection for Facial Feature Extraction

2009

After more than 35 years of resarch, face processing is considered nowadays as one of the most important application of image analysis. It can be considered as a collection of problems (i.e., face detection, normalization, recognition and so on) each of which can be treated separately. Some face detection and face recognition techniques have reached a certain level of maturity, however facial feature extraction still represents the bottleneck of the entire process. In this paper we present a novel facial feature extraction approach that could be used for normalizing Viola-Jones detected faces and let them be recognized by an appearance-based face recognition method. For each observed featur…

Face hallucinationbusiness.industryComputer scienceFeature extractionCorner detectionNormalization (image processing)Pattern recognitionFace detection - face recognition - features extraction - CBIRFacial recognition systemObject-class detectionThree-dimensional face recognitionComputer visionArtificial intelligenceFace detectionbusiness
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Video object recognition and modeling by SIFT matching optimization

2014

In this paper we present a novel technique for object modeling and object recognition in video. Given a set of videos containing 360 degrees views of objects we compute a model for each object, then we analyze short videos to determine if the object depicted in the video is one of the modeled objects. The object model is built from a video spanning a 360 degree view of the object taken against a uniform background. In order to create the object model, the proposed techniques selects a few representative frames from each video and local features of such frames. The object recognition is performed selecting a few frames from the query video, extracting local features from each frame and looki…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle InformazioniComputer sciencebusiness.industry3D single-object recognitionComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONDeep-sky objectCognitive neuroscience of visual object recognitionObject Modeling Video Query Object Recognition.Object (computer science)Object-oriented designObject-class detectionVideo trackingObject modelComputer visionArtificial intelligencebusiness
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Midground Object Detection in Real World Video Scenes,

2007

Traditional video scene analysis depends on accurate background modeling to identify salient foreground objects. However, in many important surveillance applications, saliency is defined by the appearance of a new non-ephemeral object that is between the foreground and background. This midground realm is defined by a temporal window following the object's appearance; but it also depends on adaptive background modeling to allow detection with scene variations (e.g., occlusion, small illumination changes). The human visual system is ill-suited for midground detection. For example, when surveying a busy airline terminal, it is difficult (but important) to detect an unattended bag which appears…

Settore ING-INF/05 - Sistemi Di Elaborazione Delle Informazionibusiness.industryComputer scienceComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONScene statisticsObject (computer science)Object detectionObject-class detectionComputational efficiencyComputer networksSalientVideo trackingHuman visual system modelComputer visionViola–Jones object detection frameworkArtificial intelligencebusiness
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The iterative object symmetry transform

2005

This paper introduces a new operator named the Iterated Object Transform that is computed by combining the Object Symmetry Transform with the morphological operator erosion. This new operator has been applied on both binary and gray levels images showing the ability to grasp the internal structure of a digital object. We present some experiments on real images in face analysis.

business.industryComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISIONObject (computer science)Erosion (morphology)Object detectionObject-class detectionsymbols.namesakeOperator (computer programming)Fourier transformsymbolsComputer visionViola–Jones object detection frameworkArtificial intelligenceSymmetry (geometry)businessMathematics2004 International Conference on Image Processing, 2004. ICIP '04.
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Detection of rupture lines for active scanning

2007

Corner and junction detection is an important preprocessing step in image registration, data fusion, object recognition, and many other tasks. This work deals with corner and junction detection of characteristic features of the structure resulting from cross-pattern projection. The ultimate aim is to adapt the positions and orientation of the cross-pattern projections to what has been observed. The use of this projected light pattern in the framework of active vision allows us to identify certain points of interest on 3-D objects, to directly acquire a synthesis, which thus permits simplified detection, measurement, recognition, or tracking. We present detection methods for corners and junc…

genetic structuresbusiness.industryComputer scienceOrientation (computer vision)General EngineeringCorner detectionImage registrationAtomic and Molecular Physics and OpticsHough transformlaw.inventionInterest point detectionObject-class detectionWaveletlawComputer visionArtificial intelligenceActive visionProjection (set theory)businessOptical Engineering
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