698 research outputs found

    Reconfigurable Receiver Front-Ends for Advanced Telecommunication Technologies

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    The exponential growth of converging technologies, including augmented reality, autonomous vehicles, machine-to-machine and machine-to-human interactions, biomedical and environmental sensory systems, and artificial intelligence, is driving the need for robust infrastructural systems capable of handling vast data volumes between end users and service providers. This demand has prompted a significant evolution in wireless communication, with 5G and subsequent generations requiring exponentially improved spectral and energy efficiency compared to their predecessors. Achieving this entails intricate strategies such as advanced digital modulations, broader channel bandwidths, complex spectrum sharing, and carrier aggregation scenarios. A particularly challenging aspect arises in the form of non-contiguous aggregation of up to six carrier components across the frequency range 1 (FR1). This necessitates receiver front-ends to effectively reject out-of-band (OOB) interferences while maintaining high-performance in-band (IB) operation. Reconfigurability becomes pivotal in such dynamic environments, where frequency resource allocation, signal strength, and interference levels continuously change. Software-defined radios (SDRs) and cognitive radios (CRs) emerge as solutions, with direct RF-sampling receivers offering a suitable architecture in which the frequency translation is entirely performed in digital domain to avoid analog mixing issues. Moreover, direct RF- sampling receivers facilitate spectrum observation, which is crucial to identify free zones, and detect interferences. Acoustic and distributed filters offer impressive dynamic range and sharp roll off characteristics, but their bulkiness and lack of electronic adjustment capabilities limit their practicality. Active filters, on the other hand, present opportunities for integration in advanced CMOS technology, addressing size constraints and providing versatile programmability. However, concerns about power consumption, noise generation, and linearity in active filters require careful consideration.This thesis primarily focuses on the design and implementation of a low-voltage, low-power RFFE tailored for direct sampling receivers in 5G FR1 applications. The RFFE consists of a balun low-noise amplifier (LNA), a Q-enhanced filter, and a programmable gain amplifier (PGA). The balun-LNA employs noise cancellation, current reuse, and gm boosting for wideband gain and input impedance matching. Leveraging FD-SOI technology allows for programmable gain and linearity via body biasing. The LNA's operational state ranges between high-performance and high-tolerance modes, which are apt for sensitivityand blocking tests, respectively. The Q-enhanced filter adopts noise-cancelling, current-reuse, and programmable Gm-cells to realize a fourth-order response using two resonators. The fourth-order filter response is achieved by subtracting the individual response of these resonators. Compared to cascaded and magnetically coupled fourth-order filters, this technique maintains the large dynamic range of second-order resonators. Fabricated in 22-nm FD-SOI technology, the RFFE achieves 1%-40% fractional bandwidth (FBW) adjustability from 1.7 GHz to 6.4 GHz, 4.6 dB noise figure (NF) and an OOB third-order intermodulation intercept point (IIP3) of 22 dBm. Furthermore, concerning the implementation uncertainties and potential variations of temperature and supply voltage, design margins have been considered and a hybrid calibration scheme is introduced. A combination of on-chip and off-chip calibration based on noise response is employed to effectively adjust the quality factors, Gm-cells, and resonance frequencies, ensuring desired bandpass response. To optimize and accelerate the calibration process, a reinforcement learning (RL) agent is used.Anticipating future trends, the concept of the Q-enhanced filter extends to a multiple-mode filter for 6G upper mid-band applications. Covering the frequency range from 8 to 20 GHz, this RFFE can be configured as a fourth-order dual-band filter, two bandpass filters (BPFs) with an OOB notch, or a BPF with an IB notch. In cognitive radios, the filter’s transmission zeros can be positioned with respect to the carrier frequencies of interfering signals to yield over 50 dB blocker rejection

    A Millimeter-Wave Coexistent RFIC Receiver Architecture in 0.18-µm SiGe BiCMOS for Radar and Communication Systems

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    Innovative circuit architectures and techniques to enhance the performance of several key BiCMOS RFIC building blocks applied in radar and wireless communication systems operating at the millimeter-wave frequencies are addressed in this dissertation. The former encapsulates the development of an advanced, low-cost and miniature millimeter-wave coexistent current mode direct conversion receiver for short-range, high-resolution radar and high data rate communication systems. A new class of broadband low power consumption active balun-LNA consisting of two common emitters amplifiers mutually coupled thru an AC stacked transformer for power saving and gain boosting. The active balun-LNA exhibits new high linearity technique using a constant gm cell transconductance independent of input-outputs variations based on equal emitters’ area ratios. A novel multi-stages active balun-LNA with innovative technique to mitigate amplitude and phase imbalances is proposed. The new multi-stages balun-LNA technique consists of distributed feed-forward averaging recycles correction for amplitude and phase errors and is insensitive to unequal paths parasitic from input to outputs. The distributed averaging recycles correction technique resolves the amplitude and phase errors residuals in a multi-iterative process. The new multi-stages balun-LNA averaging correction technique is frequency independent and can perform amplitude and phase calibrations without relying on passive lumped elements for compensation. The multi-stage balun-LNA exhibits excellent performance from 10 to 50 GHz with amplitude and phase mismatches less than 0.7 dB and 2.86º, respectively. Furthermore, the new multi-stages balun-LNA operates in current mode and shows high linearity with low power consumption. The unique balun-LNA design can operates well into mm-wave regions and is an integral block of the mm-wave radar and communication systems. The integration of several RFIC blocks constitutes the broadband millimeter-wave coexistent current mode direct conversion receiver architecture operating from 22- 44 GHz. The system and architectural level analysis provide a unique understanding into the receiver characteristics and design trade-offs. The RF front-end is based on the broadband multi-stages active balun-LNA coupled into a fully balanced passive mixer with an all-pass in-phase/quadrature phase generator. The trans-impedance amplifier converts the input signal current into a voltage gain at the outputs. Simultaneously, the high power input signal current is channelized into an anti-aliasing filter with 20 dB rejection for out of band interferers. In addition, the dissertation demonstrates a wide dynamic range system with small die area, cost effective and very low power consumption

    A Millimeter-Wave Coexistent RFIC Receiver Architecture in 0.18-µm SiGe BiCMOS for Radar and Communication Systems

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    Innovative circuit architectures and techniques to enhance the performance of several key BiCMOS RFIC building blocks applied in radar and wireless communication systems operating at the millimeter-wave frequencies are addressed in this dissertation. The former encapsulates the development of an advanced, low-cost and miniature millimeter-wave coexistent current mode direct conversion receiver for short-range, high-resolution radar and high data rate communication systems. A new class of broadband low power consumption active balun-LNA consisting of two common emitters amplifiers mutually coupled thru an AC stacked transformer for power saving and gain boosting. The active balun-LNA exhibits new high linearity technique using a constant gm cell transconductance independent of input-outputs variations based on equal emitters’ area ratios. A novel multi-stages active balun-LNA with innovative technique to mitigate amplitude and phase imbalances is proposed. The new multi-stages balun-LNA technique consists of distributed feed-forward averaging recycles correction for amplitude and phase errors and is insensitive to unequal paths parasitic from input to outputs. The distributed averaging recycles correction technique resolves the amplitude and phase errors residuals in a multi-iterative process. The new multi-stages balun-LNA averaging correction technique is frequency independent and can perform amplitude and phase calibrations without relying on passive lumped elements for compensation. The multi-stage balun-LNA exhibits excellent performance from 10 to 50 GHz with amplitude and phase mismatches less than 0.7 dB and 2.86º, respectively. Furthermore, the new multi-stages balun-LNA operates in current mode and shows high linearity with low power consumption. The unique balun-LNA design can operates well into mm-wave regions and is an integral block of the mm-wave radar and communication systems. The integration of several RFIC blocks constitutes the broadband millimeter-wave coexistent current mode direct conversion receiver architecture operating from 22- 44 GHz. The system and architectural level analysis provide a unique understanding into the receiver characteristics and design trade-offs. The RF front-end is based on the broadband multi-stages active balun-LNA coupled into a fully balanced passive mixer with an all-pass in-phase/quadrature phase generator. The trans-impedance amplifier converts the input signal current into a voltage gain at the outputs. Simultaneously, the high power input signal current is channelized into an anti-aliasing filter with 20 dB rejection for out of band interferers. In addition, the dissertation demonstrates a wide dynamic range system with small die area, cost effective and very low power consumption

    Arquiteturas paralelas avançadas para transmissores 5G totalmente digitais

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    The fifth generation of mobile communications (5G) is being prepared and should be rolled out in the early coming years. Massive number of Radio-Frequency (RF) front-ends, peak data rates of 10 Gbps (everywhere and everytime), latencies lower than 10 msec and huge device densities are some of the expected disruptive capabilities. At the same time, previous generations can not be jeopardized, fostering the design of novel flexible and highly integrated radio transceivers able to support the simultaneous transmission of multi-band and multi-standard signals. The concept of all-digital transmission is being pointed out as a promising architecture to cope with such challenging requirements, due to its fully digital radio datapath. This thesis is focused on the proposal and validation of fully integrated and advanced digital transmitter architectures that excel the state-of-the-art in different figures of merit, such as transmission bandwidth, spectral purity, carrier agility, flexibility, and multi-band capability. The first part of this thesis introduces the concept of all-digital RF transmission. In particular, the foundations inherent to this thematic line are given, together with the recent advances reported in the state-of-the-art architectures.The core of this thesis, containing the main developments achieved during the Ph.D. work, is then presented and discussed. The first key contribution to the state-of-the-art is the use of cascaded Delta-Sigma (∆Σ) architectures to relax the analog filtering requirements of the conventional All-Digital Transmitters while maintaining the constant envelope waveform. Then, it is presented the first reported architecture where Antenna Arrays are directly driven by single-chip and single-bit All-Digital Transmitters, with promising results in terms of simplification of the RF front-ends and overall flexibility. Subsequently, the thesis proposes the first reported RF-stage All-Digital Transmitter that can be embedded within a single Field-Programmable Gate Array (FPGA) device. Thereupon, novel techniques to enable the design of wideband All-Digital Transmitters are reported. Finally, the design of concurrent multi-band transmitters is introduced. In particular, the design of agile and flexible dual and triple bands All-DigitalTransmitter (ADT) is demonstrated, which is a very important topic for scenarios that demand carrier aggregation. This Ph.D. contributes withseveral advances to the state-of-the-art of RF all-digital transmitters.A quinta geração de comunicações móveis (5G) está a ser preparada e deve ser comercializada nos próximos anos. Algumas das caracterı́sticas inovadoras esperadas passam pelo uso de um número massivo de font-ends de Rádio-Frequência (RF), taxas de pico de transmissão de dados de 10 Gbps (em todos os lugares e em todas as ocasiões), latências inferiores a 10 mseg e elevadas densidades de dispositivos. Ao mesmo tempo, as gerações anteriores não podem ser ignoradas, fomentando o design de novos transceptores de rádio flexı́veis e altamente integrados, capazes de suportar a transmissão simultânea de sinais multi-banda e multi-standard. O conceito de transmissão totalmente digital é considerado como um tipo de arquitetura promissora para lidar com esses requisitos desafiantes, devido ao seu datapath de rádio totalmente digital. Esta tese é focada na proposta e validação de arquiteturas de transmissores digitais totalmente integradas e avançadas que ultrapassam o estado da arte em diferentes figuras de mérito, como largura de banda de transmissão, pureza espectral, agilidade de portadora, flexibilidade e capacidade multibanda. A primeira parte desta tese introduz o conceito de transmissores de RF totalmente digitais. Em particular, os fundamentos inerentes a esta linha temática são apresentados, juntamente com os avanços mais recentes do estado-da-arte. O núcleo desta tese, contendo os principais desenvolvimentos alcançados durante o trabalho de doutoramento, é então apresentado e discutido. A primeira contribuição fundamental para o estado da arte é o uso de arquiteturas em cascata com moduladores ∆Σ para relaxar os requisitos de filtragem analógica dos transmissores RF totalmente digitais convencionais, mantendo a forma de onda envolvente constante. Em seguida, é apresentada a primeira arquitetura em que agregados de antenas são excitados diretamente por transmissores digitais de um único bit inseridos num único chip, com resultados promissores em termos de simplificação dos front-ends de RF e flexibilidade em geral. Posteriormente, é proposto o primeiro transmissor totalmente digital RF-stage relatado que pode ser incorporado dentro de um único Agregado de Células Lógicas Programáveis. Novas técnicas para permitir o desenho de transmissores RF totalmente digitais de banda larga são também apresentadas. Finalmente, o desenho de transmissores simultâneos de múltiplas bandas é exposto. Em particular, é demonstrado o desenho de transmissores de duas e três bandas ágeis e flexı́veis, que é um tópico essencial para cenários que exigem agregação de múltiplas bandas.Apoio financeiro da Fundação para a Ciência e Tecnologia (FCT) no âmbito de uma bolsa de doutoramento, ref. PD/BD/105857/2014.Programa Doutoral em Telecomunicaçõe

    Programmable DSP-enabled multi-adaptive optical transceivers based on OFDM technology for software defined networks

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    The dynamic behavior of the traffic demand, due to the advent of technologies such as cloud services or Internet of Things (IoT), is increasing. In fact, heterogeneous connections with different characteristics (bandwidth or bit rate) are expected that coexist in the optical networks. In this respect, an evolution towards Elastic Optical Networks (EONs) has emerged as a cost-effective, flexible and dynamic solution, to face the new claims. The main idea is the efficient utilization of the optical spectrum by combining flexible transceivers, flexi-grid and flexible optical switching. Including the principles of Software Defined Network (SDN) paradigm further flexibility and adaptability can be achieved. The Sliceable Bandwidth Variable Transceiver (S-BVT), as a key element in EONs, provides flexibility and adaptability to the optical networks. It is able to dynamically tune the optical bandwidth or bit rate changing parameters such as the modulation format, bandwidth, among others, to find a trade-off between transmission reach and spectral efficiency, serving multiples destinations. The combination of programmable Digital Signal Processing (DSP) modules with advanced transmission techniques based on Orthogonal Frequency Division Multiplexing (OFDM) technology using Direct Detection (DD) or COherent (CO) detection are proposed to be implemented at the S-BVT making it suitable for elastic optical metro/regional networks. Furthermore, the envisioned migration from fixed-grid to flexi-grid, can benefit from the use of S-BVTs since they are able to generate or receive multiple channels and slicing the aggregated flow into multiples flows with different capacities and destinations. We propose the use of S-BVTs based on multi-band OFDM systems. In particular, we focus on the theoretical model of an advanced transmission technique based on OFDM technology with DD. Then we evaluate the system for a realistic optical metro network. In the context of flexi-grid optical metro/regional networks, as well as the sliceability of the channels, the reduction of channel width for low bit rate connections can be envisioned. It involves that the signal traverses several nodes with the corresponding filtering elements, causing a substantially decrease and distortion of the signal bandwidth. This phenomenon known as filter narrowing effect has been also studied in this thesis, by simulations and experimentally for an adaptive cost-effective OFDM system using DD and for a standard OOK system. Apart from adaptive, flexible and programmable transceivers, metro optical networks have to be equipped with flexible optical switching systems at the node level. In this respect, we propose the adoption of adaptive S-BVTs based on advanced transmission techniques using DD with Discrete MultiTone (DMT) modulation and adaptive capabilities in combination with Semiconductor Optical Amplier (SOA)-based switching nodes. SOAs can be conveniently used for optical switching in metro networks because of their low cost or low power consumption, among others relevant characteristics. The system has been experimentally analyzed with and without considering filtering elements. Thanks to the combination of adaptive DMT modulation and SOA-based switching nodes, impairments due to the fiber links and the filtering elements can be compensated. Finally, to enhance the tranmission distance and data rate, we propose the combination of multidimensional constellations implemented at the DSP modules of the S-BVT with CO detection and OFDM technology. Thus, the deployed infrastructure is more efficiently exploited since the quadrature and the polarization dimensions are used to transmit the signal. In particular, we focus on CO-OFDM systems using Dual Polarization Quadrature Phase Shift Keying (DPQPSK) constellation transmitting the signal over the time and the polarization dimensions in the optical domain.El comportamiento dinámico de la demanda de tráfico, debido a la llegada de tecnologías como los servicios en la nube o el Internet of Things (IoT), está aumentando. De hecho, se espera que coexistan en las redes ópticas conexiones heterogéneas con características diferentes, tales como ancho de banda o tasa de bits. Para hacer frente a estas demandas es crucial una evolución de las redes ópticas. En este sentido, las Elastic Optical Networks (EONs) emergen como una solución rentable, flexible y dinámica. La idea principal se basa en la utilización eficiente del espectro óptico mediante la combinación de transceptores flexibles, redes flexibles y conmutación óptica flexible. Una mayor flexibilidad y adaptabilidad se puede conseguir incluyendo los principios del paradigma conocido como Software Defined Network (SDN). La adopción de la arquitectura SDN implica la separación del plano de control y de datos, permitiendo la programabilidad dinámica de la red. Un elemento clave en las EONs es el Sliceable Bandwidth Variable Transceiver (SBVT), ya que provee de flexibilidad y adaptabilidad a las redes ópticas. El S-BVT es capaz de cambiar el ancho de banda o la tasa de bits medicando parámetros como el formato de modulación, el ancho de banda o la codificación de Forward Error Correction (FEC), entre otros, para encontrar un equilibrio entre el alcance de la transmisión y la eficiencia espectral, sirviendo múltiples destinos. La combinación de módulos programables de Digital Signal Processing (DSP) con técnicas de transmisión avanzadas, basadas en la tecnología Orthogonal Frequency Division Multiplexing (OFDM) con detección directa o detección coherente, se han propuesto para ser implementadas en el S-BVT, haciéndolo adecuado para su uso en redes ópticas elásticas metropolitanas y regionales. Además, la migración prevista de las redes fijas a las redes flexibles, con el fin de explotar la granularidad de 12:5 GHz, puede beneficiarse del uso de S-BVTs ya que son capaces de generar y recibir múltiples canales y dividir el flujo agregado en múltiples flujos con diferentes capacidades y destinos. A este respecto, proponemos el uso de S-BVTs basados en señales OFDM multi banda combinadas en el dominio eléctrico con el fin de limitar los recursos optoelectrónicas y relajar los requerimientos de los convertidores digitales analógicos y analógicos digitales. En particular, nos centramos en el modelo teórico de una técnica de transmisión avanzada basada en la tecnología OFDM con detección directa. A continuación, evaluamos el sistema para una red metropolitana óptica realista. En el contexto de redes metropolitanas y regionales flexibles, además de la capacidad de división de los canales, se puede prever una posible reducción del ancho de canal para las conexiones de baja tasa de bits. Esto implica que la señal atraviese varios nodos con los correspondientes elementos filtrantes causando un substancial decremento y distorsión del ancho de banda de la señal. Este fenómeno conocido como el efecto de estrechamiento de filtrado ha sido también estudiado en esta tesis, mediante simulaciones y de manera experimental para un sistema OFDM rentable y adaptativo usando detección directa y un sistema estándar On-Off Keying (OOK). El sistema OFDM de detección directa ha resultado ser un buen candidato para aumentar la flexibilidad y la robustez frente a las deficiencias de transmisión sin necesidad de compensar la dispersión. Aparte de los transceptores adaptables, flexibles y programables, las redes ópticas metropolitanas deben estar equipadas con sistemas de conmutación óptica flexible a nivel de nodo. En este sentido, proponemos la adopción de S-BVTs adaptativos basados en técnicas de transmisión avanzadas usando detección directa con modulación Discrete MultiTone (DMT) y capacidades adaptativas, adoptando nodos de conmutación basados en Semiconductor Optical Amplifier (SOA). Los SOAs pueden ser utilizados para la conmutación óptica en redes metropolitanas debido a su bajo coste o bajo consumo de energía, entre otras características relevantes. El sistema ha sido analizado experimentalmente considerando y sin considerar la presencia de elementos filtrantes. Gracias a la combinación de la modulación DMT adaptativa y los nodos de conmutación basados en SOA, las degradaciones debidas a los enlaces de fibra y a los elementos filtrantes se pueden compensar. Finalmente, para mejorar la distancia de transmisión y la tasa de datos, proponemos la combinación de constelaciones multidimensionales implementadas en los módulos DSP del S-BVT utilizando detectaron coherente y la tecnología OFDM. De hecho, los sistemas OFDM coherentes tienen un espacio de señal 4D (dos cuadraturas y dos polarizaciones), que puede ser utilizado con constelaciones multidimensionales, pudiendo éstas ser más eficientes que las convencionales Binary Phase-Shift Keying (BPSK) o Quadrature Phase-Shift Keying (QPSK). De este modo, la infraestructura desplegada se explota de manera más eficiente, ya que tanto la dimensión de cuadratura como de polarización se utilizan para transmitir la señal. Además, los sistemas OFDM coherentes pueden recuperar la amplitud y la fase de la señal en el receptor, mitigando los efectos de la fibra aumentando, de esta forma, la distancia de transmisión. El sistema OFDM coherente que utiliza el formato de constelación Dual Polarization Quadrature Phase Shift Keying (DPQPSK) y que transmite la señal a lo largo del tiempo ha demostrado ser una solución prometedora.El comportament dinàmic de la demanda de transit, a causa de l'arribada de tecnologies, com poden ser els serveis al núvol o l'Internet of Things (IoT), està creixent. De fet, s'espera que coexisteixin a les xarxes òptiques connexions heterogènies amb característiques diferents, tal com l'ample de banda o la taxa de bits. Per a fer front a aquestes demandes és crucial una revolució de les xarxes òptiques. En aquest sentit, les Elastic Optical Networks (EONs) emergeixen com una solució rendible, flexible i dinàmica. La idea principal es basa en la utilització eficient de l'espectre òptic mitjançant la combinació de transceptors flexibles, xarxes flexibles i commutació òptica flexible. Una major flexibilitat i adaptabilitat es pot aconseguir incloent els principis del paradigma conegut com a Software Defined Networks (SDN). L’adopció de l'arquitectura SDN implica la separació del plànol de control i de dades permetent la programabilitat de la xarxa d'una forma dinàmica. Un element clau en les EONs és l'Sliceable Bandwith Variable Transceiver (S-BVT), ja que aporta flexibilitat i adaptabilitat a les xarxes òptiques. L' S-BVT és capaç de canviar l'ample de banda o la taxa de bits modificant paràmetres com el format de modulació, l'ample de banda o la codificació del Forward Error Correction (FEC), entre altres, per a trobar un equilibri entre l’assistència assolida i l’eficiència espectral, servint múltiples destinacions. La combinació de mòduls de Digital Signal Processing (DSP) amb tècniques de transmissió avançades basades en la tecnologia Orthogonal Frequency Division Multiplexing (OFDM) i detecció directa o detecció coherent s'han proposat per a ser implementades en l'S-BVT, fent-lo adient per a les xarxes òptiques elàstiques metropolitanes i regionals. A més, la migració prevista des de les xarxes fixes a les xarxes flexibles, amb el fi d'explotar la granuralitat de 12:5GHz, pot beneficiar-se de l’ús d'S-BVTs ja que són capaços de generar i rebre múltiples canals i dividir el flux agregat en múltiples fluxos amb diferents capacitats i destinacions. Per aquest motiu, proposem l’ús d'S-BVTs basats en senyals OFDM multi banda combinats en el domini elèctric amb el fi de limitar els recursos optoelectrònics i relaxar els requeriments dels convertidors digitals analògics i analògics digitals. Particularment, ens centrem en el model teòric d'una tècnica de transmissió avançada basada en la tecnologia OFDM amb detecció directa. A continuació, avaluem el sistema per a una xarxa metropolitana òptica realista. En el context de xarxes metropolitanes i regionals flexibles, a més de la propietat de divisió dels canals, es pot preveure una possible reducció de l'ample de canal per a les connexions de baixa taxa de bits. Això implica que el senyal travessi diversos nodes amb els corresponents elements filtrants causant un substancial decrement i distorsió de l'ample de banda del senyal. Aquest fenomen conegut com l'efecte d'estretament de filtrat ha sigut també estudiat en aquesta tesi, mitjançant simulacions i de manera experimental en el cas d'un sistema OFDM rendible i adaptatiu utilitzant detecció directa i un sistema estàndard On-Off Keying (OOK). El sistema OFDM de detecció directa ha resultat ser un bon candidat per augmentar la flexibilitat i la robustesa front a les deficiències de transmissió sense necessitat de compensar la dispersió. A part dels transceptors adaptables, flexibles i programables, les xarxes òptiques metropolitanes han d'estar equipades amb sistemes de commutació òptica flexible a nivell de node. En aquest sentit, proposem l’adopció d'un S-BVT adaptatiu basat en tècniques de transmissió avançades i utilitzant detecció directa amb modulació Discrete MultiTone (DMT) i capacitats adaptatives, adoptant nodes de comunicació basats en Semi-conductor Optical Amplifier (SOA). Els SOAs poden ser utilitzats per la commutació _òptica en xarxes metropolitanes degut al seu baix cost o baix consum d'energia, entre altres característiques rellevants. El sistema ha sigut analitzat experimentalment considerant i sense considerar la presència d'elements filtrants. Gràcies a la combinació de la modulació DMT adaptativa i dels nodes de commutació basats en SOA, les degradacions degudes als enllaços de fibra i als elements filtrants es poden compensar. Finalment, per a millorar la distància de transmissió i la taxa de dades, proposem la combinació de constel·lacions multidimensionals implementades als mòduls DSP de l'SBVT utilitzant detecció coherent i la tecnologia OFDM. De fet, els sistemes coherents OFDM tenen un espai de senyal 4D (dues quadratures i dues polaritzacions), que pot ser utilitzat amb constel·lacions multidimensionals, arribant a ser més eficients que les modulacions convencionals Binary Phase-Shift Keying (BPSK) o Quadrature Phase-Shift Keying (QPSK). D'aquesta manera, la infraestructura desplegada s'explota de forma més eficient, ja que tant la dimensió de quadratura com de polarització s'utilitzen per transmetre el senyal. A més, els sistemes coherents basats en OFDM poden recuperar l'amplitud i la fase del senyal en el receptor, mitigant els efectes de la fibra i d'aquesta forma augmentant la distància de transmissió. El sistema OFDM coherent que utilitza el format de constel·lació Dual Polarization Quadrature Phase Shift Keying (DPQPSK) i que transmet el senyal al llarg del temps ha demostrat ser una solució prometedora.Postprint (published version

    Four-element phased-array beamformers and a self-interference canceling full-duplex transciver in 130-nm SiGe for 5G applications at 26 GHz

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    This thesis is on the design of radio-frequency (RF) integrated front-end circuits for next generation 5G communication systems. The demand for higher data rates and lower latency in 5G networks can only be met using several new technologies including, but not limited to, mm-waves, massive-MIMO, and full-duplex. Use of mm-waves provides more bandwidth that is necessary for high data rates at the cost of increased attenuation in air. Massive-MIMO arrays are required to compensate for this increased path loss by providing beam steering and array gain. Furthermore, full duplex operation is desirable for improved spectrum efficiency and reduced latency. The difficulty of full duplex operation is the self-interference (SI) between transmit (TX) and receive (RX) paths. Conventional methods to suppress this interference utilize either bulky circulators, isolators, couplers or two separate antennas. These methods are not suitable for fully-integrated full-duplex massive-MIMO arrays. This thesis presents circuit and system level solutions to the issues summarized above, in the form of SiGe integrated circuits for 5G applications at 26 GHz. First, a full-duplex RF front-end architecture is proposed that is scalable to massive-MIMO arrays. It is based on blind, RF self-interference cancellation that is applicable to single/shared antenna front-ends. A high resolution RF vector modulator is developed, which is the key building block that empowers the full-duplex frontend architecture by achieving better than state-of-the-art 10-b monotonic phase control. This vector modulator is combined with linear-in-dB variable gain amplifiers and attenuators to realize a precision self-interference cancellation circuitry. Further, adaptive control of this SI canceler is made possible by including an on-chip low-power IQ downconverter. It correlates copies of transmitted and received signals and provides baseband/dc outputs that can be used to adaptively control the SI canceler. The solution comes at the cost of minimal additional circuitry, yet significantly eases linearity requirements of critical receiver blocks at RF/IF such as mixers and ADCs. Second, to complement the proposed full-duplex front-end architecture and to provide a more complete solution, high-performance beamformer ICs with 5-/6- b phase and 3-/4-b amplitude control capabilities are designed. Single-channel, separate transmitter and receiver beamformers are implemented targeting massive- MIMO mode of operation, and their four-channel versions are developed for phasedarray communication systems. Better than state-of-the-art noise performance is obtained in the RX beamformer channel, with a full-channel noise figure of 3.3 d

    Contribution à l’étude et la réalisation d’un générateur de signaux radiofréquences analogiques pour la radio logicielle intégrale

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    The increasing density of wireless devices and the associated communication flows sharing the same air interface will require a smart and agile use of frequency resources. This thesis proposes a flexible, low cost and low power disruptive transmitter architecture. It uses a differentiating coding scheme which leverages a mathematical and technological reduction of the energy cost of information conversion. The design of a DAC suited to this architecture is developed and its performances are assessed toward RF signal generation. The measurements of a demonstrator designed in 65 nm CMOS technology bring a proof of concept.Une utilisation intelligente de l’espace Hertzien sera nécessaire pour permettre au nombre croissant d’objets sans-fil connectés de communiquer dans le même espace de propagation. Ces travaux de thèse proposent une architecture d’émetteur radiofréquence flexible, faible coût et faible consommation, en rupture avec les techniques conventionnelles. Cet émetteur est fondé sur un encodage de la dérivée du signal à générer, ce qui permet de réduire le coût énergétique de la conversion de l’information. Un convertisseur numérique analogique compatible avec cette architecture est présenté et ses performances sont évaluées dans le cadre de la génération de signaux radiofréquence. Les résultats de mesures obtenus avec un prototype réalisé en technologie CMOS 65 nm apporte la preuve du concept

    Dynamic Optical Networks for Data Centres and Media Production

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    This thesis explores all-optical networks for data centres, with a particular focus on network designs for live media production. A design for an all-optical data centre network is presented, with experimental verification of the feasibility of the network data plane. The design uses fast tunable (< 200 ns) lasers and coherent receivers across a passive optical star coupler core, forming a network capable of reaching over 1000 nodes. Experimental transmission of 25 Gb/s data across the network core, with combined wavelength switching and time division multiplexing (WS-TDM), is demonstrated. Enhancements to laser tuning time via current pre-emphasis are discussed, including experimental demonstration of fast wavelength switching (< 35 ns) of a single laser between all combinations of 96 wavelengths spaced at 50 GHz over a range wider than the optical C-band. Methods of increasing the overall network throughput by using a higher complexity modulation format are also described, along with designs for line codes to enable pulse amplitude modulation across the WS-TDM network core. The construction of an optical star coupler network core is investigated, by evaluating methods of constructing large star couplers from smaller optical coupler components. By using optical circuit switches to rearrange star coupler connectivity, the network can be partitioned, creating independent reserves of bandwidth and resulting in increased overall network throughput. Several topologies for constructing a star from optical couplers are compared, and algorithms for optimum construction methods are presented. All of the designs target strict criteria for the flexible and dynamic creation of multicast groups, which will enable future live media production workflows in data centres. The data throughput performance of the network designs is simulated under synthetic and practical media production traffic scenarios, showing improved throughput when reconfigurable star couplers are used compared to a single large star. An energy consumption evaluation shows reduced network power consumption compared to incumbent and other proposed data centre network technologies
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