80 resultados para Forward error correcting code


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Describes a method to code a decimated model of an isosurface on an octree representation while maintaining volume data if it is needed. The proposed technique is based on grouping the marching cubes (MC) patterns into five configurations according the topology and the number of planes of the surface that are contained in a cell. Moreover, the discrete number of planes on which the surface lays is fixed. Starting from a complete volume octree, with the isosurface codified at terminal nodes according to the new configuration, a bottom-up strategy is taken for merging cells. Such a strategy allows one to implicitly represent co-planar faces in the upper octree levels without introducing any error. At the end of this merging process, when it is required, a reconstruction strategy is applied to generate the surface contained in the octree intersected leaves. Some examples with medical data demonstrate that a reduction of up to 50% in the number of polygons can be achieved

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The directional consistency and skew-symmetry statistics have been proposed as global measurements of social reciprocity. Although both measures can be useful for quantifying social reciprocity, researchers need to know whether these estimators are biased in order to assess descriptive results properly. That is, if estimators are biased, researchers should compare actual values with expected values under the specified null hypothesis. Furthermore, standard errors are needed to enable suitable assessment of discrepancies between actual and expected values. This paper aims to derive some exact and approximate expressions in order to obtain bias and standard error values for both estimators for round-robin designs, although the results can also be extended to other reciprocal designs.

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Vehicle operations in underwater environments are often compromised by poor visibility conditions. For instance, the perception range of optical devices is heavily constrained in turbid waters, thus complicating navigation and mapping tasks in environments such as harbors, bays, or rivers. A new generation of high-definition forward-looking sonars providing acoustic imagery at high frame rates has recently emerged as a promising alternative for working under these challenging conditions. However, the characteristics of the sonar data introduce difficulties in image registration, a key step in mosaicing and motion estimation applications. In this work, we propose the use of a Fourier-based registration technique capable of handling the low resolution, noise, and artifacts associated with sonar image formation. When compared to a state-of-the art region-based technique, our approach shows superior performance in the alignment of both consecutive and nonconsecutive views as well as higher robustness in featureless environments. The method is used to compute pose constraints between sonar frames that, integrated inside a global alignment framework, enable the rendering of consistent acoustic mosaics with high detail and increased resolution. An extensive experimental section is reported showing results in relevant field applications, such as ship hull inspection and harbor mapping

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Entrevista con Manuel Villegas

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El departament d’electrònica i telecomunicacions de la Universitat de Vic ha dissenyat un conjunt de plaques entrenadores amb finalitat educativa. Perquè els alumnes puguin utilitzar aquestes plaques com a eina d’estudi, és necessari disposar d’un sistema de gravació econòmic i còmode. La major part dels programadors, en aquest cas, no compleixen amb aquests requeriments. L’objectiu d’aquest projecte és dissenyar un sistema de programació que utilitzi la comunicació sèrie i que no requereixi d'un hardware ni software específics. D’aquesta manera, obtenim una placa autònoma i un programador gratuït, de muntatge ràpid i simple d’utilitzar. El sistema de gravació dissenyat s’ha dividit en tres blocs. Per una banda, un programa que anomenem “programador” encarregat de transferir codi de programa des de l’ordinador al microcontrolador de la placa entrenadora. Per altra banda, un programa anomenat “bootloader”, situat al microcontrolador, permet rebre aquest codi de programa i emmagatzemar-lo a les direccions de memòria de programa corresponents. Com a tercer bloc, s’implementa un protocol de comunicació i un sistema de control d’errors per tal d’assegurar una correcta comunicació entre el “programador” i el “bootloader”. Els objectius d’aquest projecte s’han complert i per les proves realitzades, el sistema de programació ha funcionat correctament.