493 resultados para Swarm Brittany


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The main Precambrian tectonic units of Uruguay include the Piedra Alta tectonostratigraphic terrane (PATT) and Nico Perez tectonostratigraphic terrane (NPTT), separated by the Sarandi del Yi high-strain zone. Both terranes are well exposed in the Rio de La Plata craton (RPC). Although these tectonic units are geographically small, they record a wide span of geologic time. Therefore improved geological knowledge of this area provides a fuller understanding of the evolution of the core of South America. The PATT is constituted by low-to medium-grade metamorphic belts (ca. 2.1 Ga); its petrotectonic associations such as metavolcanic units, conglomerates, banded iron formations, and turbiditic deposits suggest a back-arc or a trench-basin setting. Also in the PATT, a late to post-orogenic, arc-related layered mafic complex (2.3-1.9 Ga), followed by A-type granites (2.08 Ga), and finally a taphrogenic mafic dike swarm (1.78 Ga) occur. The less thoroughly studied NPTT consists of Palaeoproterozoic high-grade metamorphic sequences (ca. 2.2 Ga), mylonites and postorogenic and rapakivi granites (1.75 Ga). The Brasiliano-Pan African orogeny affected this terrane. Neoproterozoic cover occurs in both tectonostratigraphic terranes, but is more developed in the NPTT. Over the past 15 years, new isotopic studies have improved our recognition of different tectonic events and associated processes, such as reactivation of shear zones and fluids circulation. Transamazonian and Statherian tectonic events were recognized in the RPC. Based on magmatism, deformation, basin development and metamorphism, we propose a scheme for the Precambrian tectonic evolution of Uruguay, which is summarized in the first Palaeoproterozoic tectonic map of the Rio de La Plata craton.

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This essay examines why Vietnam veterans, who were draft motivated enlistees, enlisted when drafted or threatened with the draft. Data is taken from 63 oral history interviews conducted by The Vietnam Archive Oral History Project at Texas Tech University and is analyzed using the phenomenological research approach. The background of this paper briefly explains the Vietnam Draft and the draft avoidance options available to those men who were drafted. The results section utilizes quotes from the oral history interviews to show the main themes of why men chose to enlist when faced with the draft. The discussion section discusses these themes in a wider context and brings up areas for further research.

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Este trabalho está relacionado às áreas de Sistemas Multiagentes, Simulação Computacional e Emoções. A partir do estudo destas áreas de pesquisa, foi proposto e desenvolvido um protótipo para um ambiente de simulação baseado em agentes com emoções. Os sistemas multiagentes têm sido utilizados nas mais diversas áreas de pesquisa, não apenas para a área acadêmica, mas também para fins comerciais. Isso ocorre devido a características importantes que estes possuem, como flexibilidade e cooperação. Estas características são úteis para um grande número de aplicações, como para simulação de situações reais, pois os modelos de simulação desenvolvidos utilizando a tecnologia de agentes são muito eficazes e versáteis no estudo dos mais diferentes problemas. Emoções vêm sendo estudadas há algum tempo, pois elas influenciam a tomada de decisão de todas as suas atividades. A tentativa de expressar emoções é algo complexo, dependendo de diversos fatores, tanto sociais como fisiológicos. Objetivando a abrangência das pesquisas na área de sistemas multiagentes, este trabalho propõe o desenvolvimento de um protótipo para um ambiente de simulação baseado em agentes com emoções, utilizando como base para a estruturação das emoções o modelo OCC. Este novo ambiente é chamado AFRODITE. De forma a melhor definir como o AFRODITE seria implementado, foram estudados quatro ambientes de simulação baseados em agentes existentes - SIEME, SWARM, SeSAm e SIMULA, e alguns aspectos destes foram utilizados na construção do novo ambiente. Para demonstrar como o AFRODITE é utilizado, três exemplos de aplicações de áreas de conhecimentos diferentes foram modelados: o IPD (Iterated Prisoner’s Dilemma), da área de Teoria dos Jogos; Simulação de Multidões, da área de Engenharia de Segurança; e Venda de aparelhos celulares com serviço WAP, da área de Telecomunicações. Através dos três exemplos modelados foi possível demonstrar que o ambiente proposto é de fácil utilização e que a tarefa de inserção de emoções nas regras de comportamento pode ser realizada pelo usuário de forma transparente.

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Em sistemas de controle de tráfego veicular urbano existem diversas abordagens que lidam com o problema da redução do congestionamento de tráfego. Uma classe destas abordagens aplica a sincronização de semáforos a m de permitir que os veículos que viajam em um sentido possam passar diversos cruzamentos sem paradas. Este trabalho apresenta dois métodos de coordenação de agentes aplicados à sincroniza ção de semáforos. O primeiro método inspira-se em mecanismos de coordenação observados em insetos sociais e o segundo modela o problema de coordenação de semá- foros como um problema de otimização de restrições distribuído e faz sua resolução em tempo real utilizando mediação cooperativa. Inicialmente são apresentados conceitos básicos de sistemas de tráfego urbano, Swarm Intelligence e problemas de otimização de restrições. A partir dos conceitos iniciais, são apresentados os modelos propostos. Os resultados mostram que as abordagens propostas geram a coordenação entre os sem áforos sendo que o modo que os agentes estão coordenados pode mudar para se adaptar às mudanças nas condições do ambiente, gerando melhores condições de uxo de tráfego.

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As marcas globais mantiveram muita atenção no campo do marketing (Kotler, 1997; Holt, Quelch, e Taylor, 2004; Özsomer e Altaras, 2008), enquanto as marcas locais foram subestimadas (Ger, 1999; Schuiling e Kapferer, 2004). No entanto, o debate adaptação contra padronização foi amplamente discutido. Centra-se na definição de como uma empresa internacional deve construir a sua estratégia: ao padronizar sua estratégia de marketing ou, adaptando para melhor atender a cultura e às necessidades locais (Levitt, 1983; Subhash, 1989; Herbig, 1998; Holt, 2004; Melewar e Vemmervik , 2004; Heerden e Barter, 2008). No entanto, este assunto não foi discutido no contexto específico do consumo alternativo oferecido por concorrentes locais específicos. Hoje em dia, um aumento na oferta de produtos alternativos é observado. O consumo socialmente responsável está crescendo (Sen e Bhattacharya, 2001; Holt, 2002; Loureiro, 2002; François-Lecompte e Valette-Florence, 2006). O mercado dos refrigerantes de cola é de interesse particular. Colas alternativas são refrigerantes de cola que surgiram durante a última década em algumas regiões ou zonas específicas do mundo. Estas colas claramente posicionam-se como uma alternativa ao refrigerante global Coca-Cola. A alternativa não é baseada no preço mas nas características especiais dos produtos que constituem uma proposição de valor específica, diferente da Coca-Cola. Na França, desde uma década, o número de colas regionais aumentou, sendo mais de quinze hoje. O refregirante Breizh Cola foi lançado em 2002 e atinge quase uma quota de mercado de 10% na região Bretanha hoje. Em 2009, a Coca-Cola Entreprise iniciou uma campanha de marketing específica, na Bretanha, baseada em recursos visuais e parcerias regionais. Este caso de adaptação em um contexto de concorrência local específico é explorado nesta dissertação que incide sobre as razões da preferência para Breizh Cola, de um lado, e sobre as acções empreendidas pela Coca-Cola na Bretanha, do outro lado. Este estudo mostra que a Coca-Cola anda nos passos de Breizh Cola, a fim de melhor atender às expectativas local.

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Particle Swarm Optimization is a metaheuristic that arose in order to simulate the behavior of a number of birds in flight, with its random movement locally, but globally determined. This technique has been widely used to address non-liner continuous problems and yet little explored in discrete problems. This paper presents the operation of this metaheuristic, and propose strategies for implementation of optimization discret problems as form of execution parallel as sequential. The computational experiments were performed to instances of the TSP, selected in the library TSPLIB contenct to 3038 nodes, showing the improvement of performance of parallel methods for their sequential versions, in executation time and results

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The bidimensional periodic structures called frequency selective surfaces have been well investigated because of their filtering properties. Similar to the filters that work at the traditional radiofrequency band, such structures can behave as band-stop or pass-band filters, depending on the elements of the array (patch or aperture, respectively) and can be used for a variety of applications, such as: radomes, dichroic reflectors, waveguide filters, artificial magnetic conductors, microwave absorbers etc. To provide high-performance filtering properties at microwave bands, electromagnetic engineers have investigated various types of periodic structures: reconfigurable frequency selective screens, multilayered selective filters, as well as periodic arrays printed on anisotropic dielectric substrates and composed by fractal elements. In general, there is no closed form solution directly from a given desired frequency response to a corresponding device; thus, the analysis of its scattering characteristics requires the application of rigorous full-wave techniques. Besides that, due to the computational complexity of using a full-wave simulator to evaluate the frequency selective surface scattering variables, many electromagnetic engineers still use trial-and-error process until to achieve a given design criterion. As this procedure is very laborious and human dependent, optimization techniques are required to design practical periodic structures with desired filter specifications. Some authors have been employed neural networks and natural optimization algorithms, such as the genetic algorithms and the particle swarm optimization for the frequency selective surface design and optimization. This work has as objective the accomplishment of a rigorous study about the electromagnetic behavior of the periodic structures, enabling the design of efficient devices applied to microwave band. For this, artificial neural networks are used together with natural optimization techniques, allowing the accurate and efficient investigation of various types of frequency selective surfaces, in a simple and fast manner, becoming a powerful tool for the design and optimization of such structures

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The frequency selective surfaces, or FSS (Frequency Selective Surfaces), are structures consisting of periodic arrays of conductive elements, called patches, which are usually very thin and they are printed on dielectric layers, or by openings perforated on very thin metallic surfaces, for applications in bands of microwave and millimeter waves. These structures are often used in aircraft, missiles, satellites, radomes, antennae reflector, high gain antennas and microwave ovens, for example. The use of these structures has as main objective filter frequency bands that can be broadcast or rejection, depending on the specificity of the required application. In turn, the modern communication systems such as GSM (Global System for Mobile Communications), RFID (Radio Frequency Identification), Bluetooth, Wi-Fi and WiMAX, whose services are highly demanded by society, have required the development of antennas having, as its main features, and low cost profile, and reduced dimensions and weight. In this context, the microstrip antenna is presented as an excellent choice for communications systems today, because (in addition to meeting the requirements mentioned intrinsically) planar structures are easy to manufacture and integration with other components in microwave circuits. Consequently, the analysis and synthesis of these devices mainly, due to the high possibility of shapes, size and frequency of its elements has been carried out by full-wave models, such as the finite element method, the method of moments and finite difference time domain. However, these methods require an accurate despite great computational effort. In this context, computational intelligence (CI) has been used successfully in the design and optimization of microwave planar structures, as an auxiliary tool and very appropriate, given the complexity of the geometry of the antennas and the FSS considered. The computational intelligence is inspired by natural phenomena such as learning, perception and decision, using techniques such as artificial neural networks, fuzzy logic, fractal geometry and evolutionary computation. This work makes a study of application of computational intelligence using meta-heuristics such as genetic algorithms and swarm intelligence optimization of antennas and frequency selective surfaces. Genetic algorithms are computational search methods based on the theory of natural selection proposed by Darwin and genetics used to solve complex problems, eg, problems where the search space grows with the size of the problem. The particle swarm optimization characteristics including the use of intelligence collectively being applied to optimization problems in many areas of research. The main objective of this work is the use of computational intelligence, the analysis and synthesis of antennas and FSS. We considered the structures of a microstrip planar monopole, ring type, and a cross-dipole FSS. We developed algorithms and optimization results obtained for optimized geometries of antennas and FSS considered. To validate results were designed, constructed and measured several prototypes. The measured results showed excellent agreement with the simulated. Moreover, the results obtained in this study were compared to those simulated using a commercial software has been also observed an excellent agreement. Specifically, the efficiency of techniques used were CI evidenced by simulated and measured, aiming at optimizing the bandwidth of an antenna for wideband operation or UWB (Ultra Wideband), using a genetic algorithm and optimizing the bandwidth, by specifying the length of the air gap between two frequency selective surfaces, using an optimization algorithm particle swarm

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This thesis describes design methodologies for frequency selective surfaces (FSSs) composed of periodic arrays of pre-fractals metallic patches on single-layer dielectrics (FR4, RT/duroid). Shapes presented by Sierpinski island and T fractal geometries are exploited to the simple design of efficient band-stop spatial filters with applications in the range of microwaves. Initial results are discussed in terms of the electromagnetic effect resulting from the variation of parameters such as, fractal iteration number (or fractal level), fractal iteration factor, and periodicity of FSS, depending on the used pre-fractal element (Sierpinski island or T fractal). The transmission properties of these proposed periodic arrays are investigated through simulations performed by Ansoft DesignerTM and Ansoft HFSSTM commercial softwares that run full-wave methods. To validate the employed methodology, FSS prototypes are selected for fabrication and measurement. The obtained results point to interesting features for FSS spatial filters: compactness, with high values of frequency compression factor; as well as stable frequency responses at oblique incidence of plane waves. This thesis also approaches, as it main focus, the application of an alternative electromagnetic (EM) optimization technique for analysis and synthesis of FSSs with fractal motifs. In application examples of this technique, Vicsek and Sierpinski pre-fractal elements are used in the optimal design of FSS structures. Based on computational intelligence tools, the proposed technique overcomes the high computational cost associated to the full-wave parametric analyzes. To this end, fast and accurate multilayer perceptron (MLP) neural network models are developed using different parameters as design input variables. These neural network models aim to calculate the cost function in the iterations of population-based search algorithms. Continuous genetic algorithm (GA), particle swarm optimization (PSO), and bees algorithm (BA) are used for FSSs optimization with specific resonant frequency and bandwidth. The performance of these algorithms is compared in terms of computational cost and numerical convergence. Consistent results can be verified by the excellent agreement obtained between simulations and measurements related to FSS prototypes built with a given fractal iteration

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Image segmentation is one of the image processing problems that deserves special attention from the scientific community. This work studies unsupervised methods to clustering and pattern recognition applicable to medical image segmentation. Natural Computing based methods have shown very attractive in such tasks and are studied here as a way to verify it's applicability in medical image segmentation. This work treats to implement the following methods: GKA (Genetic K-means Algorithm), GFCMA (Genetic FCM Algorithm), PSOKA (PSO and K-means based Clustering Algorithm) and PSOFCM (PSO and FCM based Clustering Algorithm). Besides, as a way to evaluate the results given by the algorithms, clustering validity indexes are used as quantitative measure. Visual and qualitative evaluations are realized also, mainly using data given by the BrainWeb brain simulator as ground truth

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This work develops a methodology for defining the maximum active power being injected into predefined nodes in the studied distribution networks, considering the possibility of multiple accesses of generating units. The definition of these maximum values is obtained from an optimization study, in which further losses should not exceed those of the base case, i.e., without the presence of distributed generation. The restrictions on the loading of the branches and voltages of the system are respected. To face the problem it is proposed an algorithm, which is based on the numerical method called particle swarm optimization, applied to the study of AC conventional load flow and optimal load flow for maximizing the penetration of distributed generation. Alternatively, the Newton-Raphson method was incorporated to resolution of the load flow. The computer program is performed with the SCILAB software. The proposed algorithm is tested with the data from the IEEE network with 14 nodes and from another network, this one from the Rio Grande do Norte State, at a high voltage (69 kV), with 25 nodes. The algorithm defines allowed values of nominal active power of distributed generation, in percentage terms relative to the demand of the network, from reference values

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The objective of this work was the development and improvement of the mathematical models based on mass and heat balances, representing the drying transient process fruit pulp in spouted bed dryer with intermittent feeding. Mass and energy balance for drying, represented by a system of differential equations, were developed in Fortran language and adapted to the condition of intermittent feeding and mass accumulation. Were used the DASSL routine (Differential Algebraic System Solver) for solving the differential equation system and used a heuristic optimization algorithm in parameter estimation, the Particle Swarm algorithm. From the experimental data food drying, the differential models were used to determine the quantity of water and the drying air temperature at the exit of a spouted bed and accumulated mass of powder in the dryer. The models were validated using the experimental data of drying whose operating conditions, air temperature, flow rate and time intermittency, varied within the limits studied. In reviewing the results predicted, it was found that these models represent the experimental data of the kinetics of production and accumulation of powder and humidity and air temperature at the outlet of the dryer

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)