928 resultados para Topic segmentation
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In this paper a colour texture segmentation method, which unifies region and boundary information, is proposed. The algorithm uses a coarse detection of the perceptual (colour and texture) edges of the image to adequately place and initialise a set of active regions. Colour texture of regions is modelled by the conjunction of non-parametric techniques of kernel density estimation (which allow to estimate the colour behaviour) and classical co-occurrence matrix based texture features. Therefore, region information is defined and accurate boundary information can be extracted to guide the segmentation process. Regions concurrently compete for the image pixels in order to segment the whole image taking both information sources into account. Furthermore, experimental results are shown which prove the performance of the proposed method
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An unsupervised approach to image segmentation which fuses region and boundary information is presented. The proposed approach takes advantage of the combined use of 3 different strategies: the guidance of seed placement, the control of decision criterion, and the boundary refinement. The new algorithm uses the boundary information to initialize a set of active regions which compete for the pixels in order to segment the whole image. The method is implemented on a multiresolution representation which ensures noise robustness as well as computation efficiency. The accuracy of the segmentation results has been proven through an objective comparative evaluation of the method
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In image segmentation, clustering algorithms are very popular because they are intuitive and, some of them, easy to implement. For instance, the k-means is one of the most used in the literature, and many authors successfully compare their new proposal with the results achieved by the k-means. However, it is well known that clustering image segmentation has many problems. For instance, the number of regions of the image has to be known a priori, as well as different initial seed placement (initial clusters) could produce different segmentation results. Most of these algorithms could be slightly improved by considering the coordinates of the image as features in the clustering process (to take spatial region information into account). In this paper we propose a significant improvement of clustering algorithms for image segmentation. The method is qualitatively and quantitative evaluated over a set of synthetic and real images, and compared with classical clustering approaches. Results demonstrate the validity of this new approach
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In this paper a novel rank estimation technique for trajectories motion segmentation within the Local Subspace Affinity (LSA) framework is presented. This technique, called Enhanced Model Selection (EMS), is based on the relationship between the estimated rank of the trajectory matrix and the affinity matrix built by LSA. The results on synthetic and real data show that without any a priori knowledge, EMS automatically provides an accurate and robust rank estimation, improving the accuracy of the final motion segmentation
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A novel technique for estimating the rank of the trajectory matrix in the local subspace affinity (LSA) motion segmentation framework is presented. This new rank estimation is based on the relationship between the estimated rank of the trajectory matrix and the affinity matrix built with LSA. The result is an enhanced model selection technique for trajectory matrix rank estimation by which it is possible to automate LSA, without requiring any a priori knowledge, and to improve the final segmentation
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indicative list of topic areas for professional, legal and ethical issues modules clustered into broad themes. Document is to be consulted in conjunction with other slides and notes for the module.
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In this theme you will work through a series of texts and activities designed to develop the essential personal, organisational, management, theoretical and research skills you need to select an appropriate topic for a Masters/PhD research project.
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Source files for theme 4
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Topic briefs. Includes marked up topic list which can be used for exam revision purposes.
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Esta tesis pretende describir la situación actual del sector de seguridad privada, al implementar y adoptar estrategias de CRM. Con una revisión confiable y el estudio de casos relacionados con el tema, lo cual permitirá constatar la realidad en cuanto la aplicación del modelo, en el sector de seguridad privada, según lo planteado por diversos autores. Los resultados obtenidos permitirán, de este modo, al sector y a sus gerentes, desarrollar estrategias que ayuden a la satisfacción de sus clientes y a la prestación de un mejor servicio. En el campo académico, este estudio servirá como guía teórico-práctica para estudiantes y profesores, de modo que permitirá afianzar conocimientos en cuanto al CRM, al marketing relacional y su uso en el sector de seguridad privada. Según este modelo la información acerca de los clientes, es una información estratégica vital para las organizaciones que ayuda a la toma de decisiones, pronosticar cambios en cuanto a demanda, además de establecer control sobre procesos en los que se involucre el cliente; de modo que la adopción e implementación de CRM, ayude a la empresa, en este caso a las del sector de seguridad privada, a estar atentos a la manera como se interactúa con el cliente y por ende mejorar el servicio, lo que tendrá repercusión en la percepción que tenga de la organización el cliente. De este modo, se ve como en la actualidad las estrategias de CRM definen el rumbo de una empresa, ayudando atraer nuevos clientes y además de esto, ayuda de igual modo a mantener felices a los clientes actuales; lo cual repercute en la demanda o el requerimiento del servicio, y así en una mejor rentabilidad para las empresas del sector. Razones por las que el sector de vigilancia se verá beneficiado por medio de las estrategias del CRM, lo que lo llevara a ofrecer mejores servicios a sus clientes.
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Aunque en octubre del año dos mil ocho se cancelaron las pruebas SATS los materiales de esta carpeta consolidan el aprendizaje de esos conocimientos fundamentales y preparan a los alumnos con el nivel adecuado para su paso a la etapa clave tres (Key Stage 3). La carpeta contiene un folleto con diferentes pruebas sobre números, álgebra, formas, estadística y probabilidad, y otro folleto con las respuestas para dar a los estudiantes la oportunidad de identificar las áreas en las que tienen los conocimientos más bajos y poder revisar estos, promoviendo así la autonomía en el trabajo escolar.
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Resumen basado en el de la publicaci??n