5 resultados para Bioelettromagnetismo SAR Radiofrequenza Effetti Termici Cheratinociti Epidermide Multislab Cellulare Antenne Patch Bioheat Calore Wi-Fi LTE

em Universidad Politécnica de Madrid


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Conventional SAR (Synthetic Aperture Radar) techniques only consider a single reflection of transmitted waveforms from targets. Nevertheless, today?s new applications force SAR systems to work in much more complex scenes such as urban environments. As a result, multiple-bounce returns are additionally superposed to direct echoes. We refer to these as ghost images, since they obscure true target image and lead to poor resolution. By applying Time Reversal concept to SAR imaging (TR-SAR), it is possible to reduce considerably ?or almost mitigate? ghosting artifacts, recovering the lost resolution due to multipath effects. Furthermore, some focusing indicators such as entropy (E), contrast (C) and Rényi entropy (RE) provide us a good focusing criterion when using TR-SAR.

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This paper proposes the optimization relaxation approach based on the analogue Hopfield Neural Network (HNN) for cluster refinement of pre-classified Polarimetric Synthetic Aperture Radar (PolSAR) image data. We consider the initial classification provided by the maximum-likelihood classifier based on the complex Wishart distribution, which is then supplied to the HNN optimization approach. The goal is to improve the classification results obtained by the Wishart approach. The classification improvement is verified by computing a cluster separability coefficient and a measure of homogeneity within the clusters. During the HNN optimization process, for each iteration and for each pixel, two consistency coefficients are computed, taking into account two types of relations between the pixel under consideration and its corresponding neighbors. Based on these coefficients and on the information coming from the pixel itself, the pixel under study is re-classified. Different experiments are carried out to verify that the proposed approach outperforms other strategies, achieving the best results in terms of separability and a trade-off with the homogeneity preserving relevant structures in the image. The performance is also measured in terms of computational central processing unit (CPU) times.

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El proyecto trata del estudio de la tasa de absorción específica (SAR). En él se estudia la SAR que desprenden distintos dispositivos de comunicaciones inalámbricos. Se ha llevado a cabo en las instalaciones de la SETSI, en el laboratorio de radiofrecuencia situado en El Casar, Guadalajara, que pertenece al Ministerio de Industria Comercio y Turismo. La SAR es una relación entre la energía electromagnética acumulada en una masa de un material o tejido concreto. Por tanto, lo primero es definir la SAR, en la que se exponen sus parámetros. Además, se recogen los límites de exposición fijados por las normas internacionales IEC 62209-1 e IEC 62209-2 en relación a SAR. Posteriormente, acorde con las normas, se realiza una definición detallada de un banco de medidas de SAR, en donde se explica cada uno de los componentes del banco de manera detallada así como los sistemas que intervienen previamente a la realización de la medida, tipos de los sistemas para realizar las verificaciones pertinentes, y también las incertidumbres de ciertos parámetros. También se realiza un proceso completo de medida de SAR en el laboratorio de la SETSI, donde se realizan las comprobaciones necesarias para la realización de una serie de medidas sobre dispositivos de comunicaciones móviles. Éstas medidas se realizan primero sobre un teléfono móvil en las frecuencias de GSM, UMTS y WIFI, en las configuraciones estipuladas por la norma; “tocando” e “inclinada 15°” comparando los valores obtenidos con los límites marcados por las normas internacionales. Por último, en este apartado se realizan ciertas medidas con otras configuraciones que no están recogidas en la norma para intentar obtener los máximos valores de SAR posibles. Después se realiza una comparación entre dos dispositivos tipo “tablet”, para ello se realizan medidas en la banda de WIFI y se comentan los resultados obtenidos, relacionado con el diseño de cada uno de ellos. Posteriormente se realiza un presupuesto de un banco de SAR, donde se detallan todos los componentes que intervienen en la realización de las medidas de SAR, pero no se incluyen en él, los costes de mantenimiento o los costes relacionados con su uso. Por último se explican las conclusiones finales desprendidas de la realización de este proyecto de fin de carrera así como la bibliografía utilizada. ABTRACT This project consists on the study of the specific absorption rate (SAR).It studies the different SAR of several wireless communications devices. It has been held in SETSI’S facilities, in its radio frecuency laboratory located in El Casar, Guadalajara, which belongs to the Ministy of Industry, Trade and Tourism. The SAR is a ratio between the electromagnetic energy accumulated in a mass of concrete material or tissue. Therefore, the SAR is defined first, which sets its parameters. Also lists the exposure limits set by international standards IEC 62209-1 and IEC 62209-2 regarding SAR. Subsequently, according to the guidelines, performing a detailed definition of a SAR measures bench, which explains each of the components in detail of the bench and involved systems prior to the realization of the extent and types of systems to perform the necessary checks, and certain parameters uncertainties. Also performed a complete process for SAR in the SETSI laboratory, located in El Casar, Guadalajara, where the necessary checks are made to carry out a serie of measures on mobile communications devices. These will be carried out first on a mobile phone at frequencies of GSM, UMTS and WiFi, in the configurations set by the standard, "touch" and "tilt 15 °" comparing the values obtained with the limits set by international standards. Finally, this section will perform certain actions with other configurations that are not included in the standard to try to get the maximum possible SAR values. Then a comparison is made between two devices, such as "tablet", this will make measurements in the band WIFI and discussed the results, related to the design of each. Subsequently, a budget of a SAR bench, detailing all components involved in SAR measures, but not included in it, maintenance costs or the costs associated with its use. Finally conclusions are explained detached from the realization of this project as well as the bibliography used on it.

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Foliage Penetration (FOPEN) radar systems were introduced in 1960, and have been constantly improved by several organizations since that time. The use of Synthetic Aperture Radar (SAR) approaches for this application has important advantages, due to the need for high resolution in two dimensions. The design of this type of systems, however, includes some complications that are not present in standard SAR systems. FOPEN SAR systems need to operate with a low central frequency (VHF or UHF bands) in order to be able to penetrate the foliage. High bandwidth is also required to obtain high resolution. Due to the low central frequency, large integration angles are required during SAR image formation, and therefore the Range Migration Algorithm (RMA) is used. This project thesis identifies the three main complications that arise due to these requirements. First, a high fractional bandwidth makes narrowband propagation models no longer valid. Second, the VHF and UHF bands are used by many communications systems. The transmitted signal spectrum needs to be notched to avoid interfering them. Third, those communications systems cause Radio Frequency Interference (RFI) on the received signal. The thesis carries out a thorough analysis of the three problems, their degrading effects and possible solutions to compensate them. The UWB model is applied to the SAR signal, and the degradation induced by it is derived. The result is tested through simulation of both a single pulse stretch processor and the complete RMA image formation. Both methods show that the degradation is negligible, and therefore the UWB propagation effect does not need compensation. A technique is derived to design a notched transmitted signal. Then, its effect on the SAR image formation is evaluated analytically. It is shown that the stretch processor introduces a processing gain that reduces the degrading effects of the notches. The remaining degrading effect after processing gain is assessed through simulation, and an experimental graph of degradation as a function of percentage of nulled frequencies is obtained. The RFI is characterized and its effect on the SAR processor is derived. Once again, a processing gain is found to be introduced by the receiver. As the RFI power can be much higher than that of the desired signal, an algorithm is proposed to remove the RFI from the received signal before RMA processing. This algorithm is a modification of the Chirp Least Squares Algorithm (CLSA) explained in [4], which adapts it to deramped signals. The algorithm is derived analytically and then its performance is evaluated through simulation, showing that it is effective in removing the RFI and reducing the degradation caused by both RFI and notching. Finally, conclusions are drawn as to the importance of each one of the problems in SAR system design.

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Synthetic Aperture Radar’s (SAR) are systems designed in the early 50’s that are capable of obtaining images of the ground using electromagnetic signals. Thus, its activity is not interrupted by adverse meteorological conditions or during the night, as it occurs in optical systems. The name of the system comes from the creation of a synthetic aperture, larger than the real one, by moving the platform that carries the radar (typically a plane or a satellite). It provides the same resolution as a static radar equipped with a larger antenna. As it moves, the radar keeps emitting pulses every 1/PRF seconds —the PRF is the pulse repetition frequency—, whose echoes are stored and processed to obtain the image of the ground. To carry out this process, the algorithm needs to make the assumption that the targets in the illuminated scene are not moving. If that is the case, the algorithm is able to extract a focused image from the signal. However, if the targets are moving, they get unfocused and/or shifted from their position in the final image. There are applications in which it is especially useful to have information about moving targets (military, rescue tasks,studyoftheflowsofwater,surveillanceofmaritimeroutes...).Thisfeatureiscalled Ground Moving Target Indicator (GMTI). That is why the study and the development of techniques capable of detecting these targets and placing them correctly in the scene is convenient. In this document, some of the principal GMTI algorithms used in SAR systems are detailed. A simulator has been created to test the features of each implemented algorithm on a general situation with moving targets. Finally Monte Carlo tests have been performed, allowing us to extract conclusions and statistics of each algorithm.