69 research outputs found

    Uplink beamforming for the FDD mode of UTRA

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    This paper presents some link level simulation results for the evaluation of adaptive antennas in the uplink of the FDD mode of UTRA (UMTS terrestrial radio access). Two families of algorithms were initially considered, the basic difference between them being their ability/disability to suppress the contribution from W-CDMA directional interfering sources. Two distinct schemes were established as representatives for each family and their performance was evaluated in presence of some illustrative interfering scenarios. In the light of the results it is shown that time-reference beamforming algorithms suffer from severe beam pattern distortion effects when applied as such. This in turn causes harsh performance degradation in terms of raw BER, especially at high SINR levels. It is shown that these shortcomings are essentially caused by the uplink multiplexing of the traffic channel, which is seen by the base station as a powerful interfering source coming from the direction of arrival of the desired user.Peer ReviewedPostprint (published version

    Interference Suppression Using Knowledge-Aided Subarray Pattern Synthesis

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    Most phased array systems subarray many antenna elements into far fewer digitized channels. While having more degrees of freedom (DOF) yields better performance, adding channels to create more digital DOF increases system cost and data throughput requirements. A subarray itself constitutes a phased array with as many DOF as it has antenna element weights. Typically, only one degree of freedom is used to steer the maximum gain direction of the subarray pattern. For typical antenna geometries a single subarray will provide many more spatial DOF than there are digitized channels. The inherent DOF of the subarrays could be used to mitigate selected interference signals with the subarray pattern if the antenna manifold, the angle of arrival (AOA), and the power of interference sources at the array face are known. Interference AOA and power can be derived from external knowledge sources (e.g., intelligence, additional sensor packages, monopulse beams) or can also be found by processing channel data. The AOA and power estimates can then be used to adapt a subarray pattern to null interference and restore dynamic range while allowing digital DOF to be utilized for other purposes (such as clutter mitigation). Simulations are used to illustrate the implementation tradeoffs and a proposed concept of operations for dividing spatial nulling duties between subarray and digital beamformers, referred to herein as Knowledge-Aided Subarray Pattern Synthesis (KASPS). Performance is simulated for multiple antenna geometries and interference parameters. The technique is shown to outperform conventional digital-only adaption for subarrayed antennas and approach optimum performance bounds under some conditions. KASPS is shown to improve performance even with misestimated interference parameters, unknown manifold error, and quantized subarray weights

    Adaptive multibeam phased array design for a Spacelab experiment

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    The parametric tradeoff analyses and design for an Adaptive Multibeam Phased Array (AMPA) for a Spacelab experiment are described. This AMPA Experiment System was designed with particular emphasis to maximize channel capacity and minimize implementation and cost impacts for future austere maritime and aeronautical users, operating with a low gain hemispherical coverage antenna element, low effective radiated power, and low antenna gain-to-system noise temperature ratio

    Including the Angular Domain in the Analysis of Finite Multi-Packet Peer-to-Peer Networks with Uniformly Distributed Sources

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    2noThis paper presents a mathematical framework for including the angular domain beside the radial one in the theoretical modeling of wireless networks, in which spatial reuse enables the coexistence of multiple single-hop peer-to-peer communications inside a finite region. The proposed model analyzes a scenario where the transmitting sources are uniformly distributed over a disk and the communications are subjected to path-loss attenuation and multipath-fading, considering the actual location of each destination and its antenna system. Different from most of the previous theories in which the coverage probability of a destination is estimated assuming that the destination itself is positioned at the center of the network, in the proposed analysis, the destination location is generic. This generalization, together with the consideration of the spatial channel model and of the actual receiving pattern, allows one to investigate the influence of the angular domain on the statistic of the interference power and on the coverage probability. The conceived theory, which is further verified by Monte Carlo validations, is finally exploited to derive the network transmission capacity, with the purpose to illustrate the possible advantages that may derive from a reliable modeling of the non-isotropic context, in which each destination has to operate realistically.partially_openopenBabich, Fulvio; Comisso, MassimilianoBabich, Fulvio; Comisso, Massimilian

    Analysis and design of smart antenna arrays (SAAs) for improved directivity at GHz range for wireless communication systems.

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    Doctor of Philosophy in Electronic Engineering. University of KwaZulu-Natal, Durban 2018.Abstract available in PDF file

    Compact adaptive planar antenna arrays for robust satellite navigation systems

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    In den zurückliegenden zwei Jahrzehnten ist die Abhängigkeit der Industriegesellschaft von satellitengestützten Ortungssystemen, Navigationsdiensten und Zeitsignalen dramatisch gewachsen. Darauf aufbauende moderne Anwendungen reichen von hochgenauen Ortungsgeräten bis zu intelligenten Transportsystemen und von der Synchronisation mobiler Netzwerke zu Wetter- und Klimabeobachtung. Dies setzt neue höhere Standards in der Robustheit, Genauigkeit, Verfügbarkeit und Verlässlichkeit moderner Navigationsempfänger voraus. Möglich werden diese Verbesserungen aktuell mit der Einführung von Multiantennensystemen in den Navigationsgeräten. Jedoch wird die Nutzung dieses Ansatzes durch die größeren Abmessungen der Antennenarrays erschwert, weil standardmäßig der Elementabstand zu einer halben Freiraumwellenlänge gewählt wird, was im L Band ca. 10 cm bedeutet. In dieser Arbeit werden kompakte Antennenarrays für Navigationsempfänger mit geringerem Elementabstand vorgeschlagen, die eine Miniaturisierung der Empfängerabmessungen erlauben. Diese kompakten Arrays werden in ihrer Leistungsfähigkeit jedoch durch die negativen Effekte der Verkopplung zwischen den Einzelelementen beeinträchtigt. Für die Beurteilung der Empfängerleistungsfähigkeit existieren verschiedene Qualitätsparameter für Analyse und Entwurf der planaren Arrays. Damit werden z. B. Diversity Freiheitsgrade, Qualität der Richtungsschätzung, Polarisationsreinheit und die wechselseitigen Kopplungen gemessen und eine Entwurfsumgebung wird vorgestellt, in der das optimale kompakte Antennenarray für den jeweiligen Einsatzzweck ausgewählt und konfiguriert werden kann. Dieser Prozess wird durch eine Analyse des Rauschens und seiner Korrelationseigenschaften für den gesamten Empfänger begleitet. Darüber hinaus wird ein analytisches Modell des effektiven carrier-to-interference-plus-noise ratio abgeleitet, um die Leistungsfähigkeit der Navigationsempfänger in Szenarien mit Störsignalen zu untersuchen. Schließlich werden diese Betrachtungen durch den Aufbau eines kompletten Satellitennavigationsempfängers ergänzt, um mit ihm den Nachweis der Funktionsfähigkeit und der stabilen Funktion des entworfenen Systems mit kompaktem Array unter Störereinfluss bei Laborbedingungen und in den reale Außeneinsatz zu erbringen.Over the past two decades, humankind's reliance on global navigation satellite systems for precise positioning, navigation and timing services has grown remarkably. Such advanced applications vary from highly accurate surveying to intelligent transport systems, and from mobile network timing synchronization to weather and climate monitoring. This envisages new and higher standards of robustness, accuracy, coverage and integrity in modern navigation receivers. Recently, this has been accomplished with the incorporation of the multi-element navigation antenna receiver. However, the industrialization of this approach is limited due to the large antenna array size, hindered by the inter-element separation of half of the free-space wavelength, i.e. ≈ 10 cm at L band 1-2 GHz. In this thesis, compact navigation antenna arrays with smaller inter-element separations are proposed for the miniaturization of the overall size. However, these arrays become afflicted with the adverse effects of mutual coupling. Therefore, various figures-of-merit for the analysis and design of a compact planar navigation antenna array, such as performance diversity degrees-of-freedom, directional finding capabilities, and polarization purity, including mutual coupling effects, have been presented. This provides a general framework for the selection and configuration of the optimum compact navigation antenna array. In order to mitigate the mutual coupling, integration of the decoupling and matching network into customized compact navigation antenna array designs is performed. This is fostered by the correlated noise characterization of the complete receiver. Furthermore, an analytical model of the equivalent carrier-to-interference-plus-noise ratio is derived to investigate the navigation performance in interference scenarios. In the end, this is complemented by the implementation of the complete navigation receiver for verification and robustness validation of the derived compact antenna array concepts in indoor and outdoor interference scenarios

    AODV enhanced by Smart Antennas

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    Spatio-Temporal processing for Optimum Uplink-Downlink WCDMA Systems

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    The capacity of a cellular system is limited by two different phenomena, namely multipath fading and multiple access interference (MAl). A Two Dimensional (2-D) receiver combats both of these by processing the signal both in the spatial and temporal domain. An ideal 2-D receiver would perform joint space-time processing, but at the price of high computational complexity. In this research we investigate computationally simpler technique termed as a Beamfom1er-Rake. In a Beamformer-Rake, the output of a beamfom1er is fed into a succeeding temporal processor to take advantage of both the beamformer and Rake receiver. Wireless service providers throughout the world are working to introduce the third generation (3G) and beyond (3G) cellular service that will provide higher data rates and better spectral efficiency. Wideband COMA (WCDMA) has been widely accepted as one of the air interfaces for 3G. A Beamformer-Rake receiver can be an effective solution to provide the receivers enhanced capabilities needed to achieve the required performance of a WCDMA system. We consider three different Pilot Symbol Assisted (PSA) beamforming techniques, Direct Matrix Inversion (DMI), Least-Mean Square (LMS) and Recursive Least Square (RLS) adaptive algorithms. Geometrically Based Single Bounce (GBSB) statistical Circular channel model is considered, which is more suitable for array processing, and conductive to RAKE combining. The performances of the Beam former-Rake receiver are evaluated in this channel model as a function of the number of antenna elements and RAKE fingers, in which are evaluated for the uplink WCDMA system. It is shown that, the Beamformer-Rake receiver outperforms the conventional RAKE receiver and the conventional beamformer by a significant margin. Also, we optimize and develop a mathematical formulation for the output Signal to Interference plus Noise Ratio (SINR) of a Beam former-Rake receiver. In this research, also, we develop, simulate and evaluate the SINR and Signal to Noise Ratio (Et!Nol performances of an adaptive beamforming technique in the WCDMA system for downlink. The performance is then compared with an omnidirectional antenna system. Simulation shows that the best perfom1ance can be achieved when all the mobiles with same Angle-of-Arrival (AOA) and different distance from base station are formed in one beam
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