997 resultados para image warping


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Cette thèse pose la question du positionnement identitaire difficile qui marque la trajectoire littéraire de l’écrivaine belge Suzanne Lilar (1901-1992). Le tiraillement vécu par l’écrivaine entre sa vocation artistique et la nécessité de préserver une image de soi conforme aux normes du milieu social dans lequel elle s’inscrit se reflète dans les scénographies construites par ses œuvres littéraires, mais également dans son discours réflexif et paratextuel ainsi que dans la manière dont son œuvre est accueilli par la presse de l’époque. Le premier volet de cette analyse s’attache à circonscrire la position occupée par Suzanne Lilar sur la scène littéraire belge, dont la proximité avec le centre parisien a toujours entretenu la menace de l’assimilation, et sur la scène de l’écriture féminine. Le deuxième volet de cette thèse porte sur l’analyse des scénographies construites par les textes de fiction et les textes à tendance autobiographique de Suzanne Lilar. Les doubles scénographies que donnent à lire ces œuvres montrent que la démarche esthétique de Suzanne Lilar, sous-tendue par le besoin de légitimation de son entreprise, est basée principalement sur la multiplication des perspectives et des moyens d’expression. Le dédoublement de la scène énonciative des récits, la mise en abyme de la figure auctoriale ainsi que le travail d’autoréécriture témoignent de la nécessité de se positionner dans le champ littéraire, mais également de la méfiance de l’écrivaine envers l’écriture littéraire. Le troisième volet de cette recherche analyse l’éthos et la posture que Lilar construit à l’aide du discours réflexif et paratextuel par lequel elle assoit sa légitimité sur la scène littéraire et sociale. Enfin, la dernière partie de cette thèse capte les échos de l’œuvre de Lilar dans la presse de son temps. L’image de l’auteure construite par les médias permet de placer Lilar au sein de l’institution et du champ littéraire, mais également au sein du groupe social dans lequel elle s’inscrit. L’accueil réservé à l’écrivaine par la presse de son époque semble suivre les fluctuations de la posture construite par l’écrivaine elle-même. Cela confirme l’hypothèse selon laquelle Lilar est une auteure qui a éprouvé de la difficulté à assumer pleinement son rôle. Le positionnement en porte-à-faux – dont témoigne la figure du trompe-l’œil qui définit sa poétique – semble avoir représenté, pour Lilar, la seule manière d’assumer l’incontournable paratopie créatrice.

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Essai doctoral présenté à la Faculté des études supérieures en vue de l’obtention du grade de Docteur en psychologie (D.Psy.), option clinique

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Michael Haneke est reconnu pour la froideur de sa mise en scène depuis ses premiers films. Le cinéaste a mis en scène plusieurs personnages dans des situations violentes, personnages entourés de média. Le présent projet vise à identifier l’évolution de la démarche du cinéaste dans la représentation des média au sein de ses œuvres. Pour ce faire, j’ai déterminé trois phases dans sa filmographie. À l’aide de trois cadres théoriques distincts, je préciserai ces trois étapes : l’observation, à l’aide des écrits de Marshall McLuhan ; son passage à l’acte, avec les théories d’interaction du microsociologue Erving Goffman et ; l’affirmation, une possible solution par l’accompagnement avec les écrits de Serge Tisseron et Marie-José Mondzain. Je tenterai de déterminer, par l’analyse des films de Michael Haneke, que ces différentes phases dans sa filmographie visent l’éducation morale des spectateurs face à l’image.

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Background This paper presents a method that registers MRIs acquired in prone position, with surface topography (TP) and X-ray reconstructions acquired in standing position, in order to obtain a 3D representation of a human torso incorporating the external surface, bone structures, and soft tissues. Methods TP and X-ray data are registered using landmarks. Bone structures are used to register each MRI slice using an articulated model, and the soft tissue is confined to the volume delimited by the trunk and bone surfaces using a constrained thin-plate spline. Results The method is tested on 3 pre-surgical patients with scoliosis and shows a significant improvement, qualitatively and using the Dice similarity coefficient, in fitting the MRI into the standing patient model when compared to rigid and articulated model registration. The determinant of the Jacobian of the registration deformation shows higher variations in the deformation in areas closer to the surface of the torso. Conclusions The novel, resulting 3D full torso model can provide a more complete representation of patient geometry to be incorporated in surgical simulators under development that aim at predicting the effect of scoliosis surgery on the external appearance of the patient’s torso.

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Corteo is a program that implements Monte Carlo (MC) method to simulate ion beam analysis (IBA) spectra of several techniques by following the ions trajectory until a sufficiently large fraction of them reach the detector to generate a spectrum. Hence, it fully accounts for effects such as multiple scattering (MS). Here, a version of Corteo is presented where the target can be a 2D or 3D image. This image can be derived from micrographs where the different compounds are identified, therefore bringing extra information into the solution of an IBA spectrum, and potentially significantly constraining the solution. The image intrinsically includes many details such as the actual surface or interfacial roughness, or actual nanostructures shape and distribution. This can for example lead to the unambiguous identification of structures stoichiometry in a layer, or at least to better constraints on their composition. Because MC computes in details the trajectory of the ions, it simulates accurately many of its aspects such as ions coming back into the target after leaving it (re-entry), as well as going through a variety of nanostructures shapes and orientations. We show how, for example, as the ions angle of incidence becomes shallower than the inclination distribution of a rough surface, this process tends to make the effective roughness smaller in a comparable 1D simulation (i.e. narrower thickness distribution in a comparable slab simulation). Also, in ordered nanostructures, target re-entry can lead to replications of a peak in a spectrum. In addition, bitmap description of the target can be used to simulate depth profiles such as those resulting from ion implantation, diffusion, and intermixing. Other improvements to Corteo include the possibility to interpolate the cross-section in angle-energy tables, and the generation of energy-depth maps.

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Les années quatre-vingt-dix auront donc été celles de l'image. De l'ouvrage richement illustré de Lorraine Camerlain et Diane Pavlovic, sur cent ans de théâtre québécois, aux expositions scénographiques de Mario Bouchard et de l'APASQ, en passant par les numéros de revues spécialisées consacrés à la scénographie et jusqu'à la présente publication, on n'arrête pas de redécouvrir l'image au théâtre, dans ce qu'elle est - un ensemble de signes scéniques - comme dans sa conjoncture.

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Adolescent idiopathic scoliosis (AIS) is a deformity of the spine manifested by asymmetry and deformities of the external surface of the trunk. Classification of scoliosis deformities according to curve type is used to plan management of scoliosis patients. Currently, scoliosis curve type is determined based on X-ray exam. However, cumulative exposure to X-rays radiation significantly increases the risk for certain cancer. In this paper, we propose a robust system that can classify the scoliosis curve type from non invasive acquisition of 3D trunk surface of the patients. The 3D image of the trunk is divided into patches and local geometric descriptors characterizing the surface of the back are computed from each patch and forming the features. We perform the reduction of the dimensionality by using Principal Component Analysis and 53 components were retained. In this work a multi-class classifier is built with Least-squares support vector machine (LS-SVM) which is a kernel classifier. For this study, a new kernel was designed in order to achieve a robust classifier in comparison with polynomial and Gaussian kernel. The proposed system was validated using data of 103 patients with different scoliosis curve types diagnosed and classified by an orthopedic surgeon from the X-ray images. The average rate of successful classification was 93.3% with a better rate of prediction for the major thoracic and lumbar/thoracolumbar types.

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This paper provides an overview of work done in recent years by our research group to fuse multimodal images of the trunk of patients with Adolescent Idiopathic Scoliosis (AIS) treated at Sainte-Justine University Hospital Center (CHU). We first describe our surface acquisition system and introduce a set of clinical measurements (indices) based on the trunk's external shape, to quantify its degree of asymmetry. We then describe our 3D reconstruction system of the spine and rib cage from biplanar radiographs and present our methodology for multimodal fusion of MRI, X-ray and external surface images of the trunk We finally present a physical model of the human trunk including bone and soft tissue for the simulation of the surgical outcome on the external trunk shape in AIS.

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International School of Photonics, Cochin University of Science and Technology

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This thesis is an outcome of the investigations carried out on the development of an Artificial Neural Network (ANN) model to implement 2-D DFT at high speed. A new definition of 2-D DFT relation is presented. This new definition enables DFT computation organized in stages involving only real addition except at the final stage of computation. The number of stages is always fixed at 4. Two different strategies are proposed. 1) A visual representation of 2-D DFT coefficients. 2) A neural network approach. The visual representation scheme can be used to compute, analyze and manipulate 2D signals such as images in the frequency domain in terms of symbols derived from 2x2 DFT. This, in turn, can be represented in terms of real data. This approach can help analyze signals in the frequency domain even without computing the DFT coefficients. A hierarchical neural network model is developed to implement 2-D DFT. Presently, this model is capable of implementing 2-D DFT for a particular order N such that ((N))4 = 2. The model can be developed into one that can implement the 2-D DFT for any order N upto a set maximum limited by the hardware constraints. The reported method shows a potential in implementing the 2-D DF T in hardware as a VLSI / ASIC

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The work is intended to study the following important aspects of document image processing and develop new methods. (1) Segmentation ofdocument images using adaptive interval valued neuro-fuzzy method. (2) Improving the segmentation procedure using Simulated Annealing technique. (3) Development of optimized compression algorithms using Genetic Algorithm and parallel Genetic Algorithm (4) Feature extraction of document images (5) Development of IV fuzzy rules. This work also helps for feature extraction and foreground and background identification. The proposed work incorporates Evolutionary and hybrid methods for segmentation and compression of document images. A study of different neural networks used in image processing, the study of developments in the area of fuzzy logic etc is carried out in this work

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This paper proposes a content based image retrieval (CBIR) system using the local colour and texture features of selected image sub-blocks and global colour and shape features of the image. The image sub-blocks are roughly identified by segmenting the image into partitions of different configuration, finding the edge density in each partition using edge thresholding, morphological dilation and finding the corner density in each partition. The colour and texture features of the identified regions are computed from the histograms of the quantized HSV colour space and Gray Level Co- occurrence Matrix (GLCM) respectively. A combined colour and texture feature vector is computed for each region. The shape features are computed from the Edge Histogram Descriptor (EHD). Euclidean distance measure is used for computing the distance between the features of the query and target image. Experimental results show that the proposed method provides better retrieving result than retrieval using some of the existing methods

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This paper proposes a region based image retrieval system using the local colour and texture features of image sub regions. The regions of interest (ROI) are roughly identified by segmenting the image into fixed partitions, finding the edge map and applying morphological dilation. The colour and texture features of the ROIs are computed from the histograms of the quantized HSV colour space and Gray Level co- occurrence matrix (GLCM) respectively. Each ROI of the query image is compared with same number of ROIs of the target image that are arranged in the descending order of white pixel density in the regions, using Euclidean distance measure for similarity computation. Preliminary experimental results show that the proposed method provides better retrieving result than retrieval using some of the existing methods.

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This paper proposes a content based image retrieval (CBIR) system using the local colour and texture features of selected image sub-blocks and global colour and shape features of the image. The image sub-blocks are roughly identified by segmenting the image into partitions of different configuration, finding the edge density in each partition using edge thresholding, morphological dilation. The colour and texture features of the identified regions are computed from the histograms of the quantized HSV colour space and Gray Level Co- occurrence Matrix (GLCM) respectively. A combined colour and texture feature vector is computed for each region. The shape features are computed from the Edge Histogram Descriptor (EHD). A modified Integrated Region Matching (IRM) algorithm is used for finding the minimum distance between the sub-blocks of the query and target image. Experimental results show that the proposed method provides better retrieving result than retrieval using some of the existing methods

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In this thesis, different techniques for image analysis of high density microarrays have been investigated. Most of the existing image analysis techniques require prior knowledge of image specific parameters and direct user intervention for microarray image quantification. The objective of this research work was to develop of a fully automated image analysis method capable of accurately quantifying the intensity information from high density microarrays images. The method should be robust against noise and contaminations that commonly occur in different stages of microarray development.