MTT-S DML Talk: mm-Wave System and Circuit Design for Highly-Integrated Radar Transceivers

Room: Nyquist Meeting room, Bldg: Cittadella Politecnica, IV floor, corso Duca degli Abruzzi 24, Torino, Piemonte, Italy

Abstract: This talk focusses on system and circuit design considerations for highly-integrated radar transceivers in CMOS and SiGe HBT technologies. The speaker will first provide motivation for realization of radar sensors at mm-wave frequencies by showing the possible applications. Then, frequency band allocations for radar at mm-wave frequencies are discussed. Next, speaker will discuss system level consideration in detail and will present step-by-step system design steps for an integrated fast-chirp FMCW radar transceiver, such as level budget calculation, phase noise considerations, PLL linearity, design of the analog baseband. The system considerations will be systematically translated into specifications of circuit blocks (e.g. LNA, mixer, PA, VCO, analog baseband etc.) of the radar transceiver. Additionally, digital modulation techniques such as phase-modulated continuous-wave (PMCW) will be discussed and a systematic comparison with FMCW will be given. Next, technology-dependent considerations and challenges related to critical building blocks are discussed (e.g. phase noise, noise figure, operating frequency, routing density, digital baseband). Then, the speaker will present several design examples of integrated radar transceivers operating at V-band and D-band and will discuss the circuit architectures. The talk is rounded out by a vision on novel modulation techniques and trends in MIMO radar array realizations. Speaker(s): Prof. Vadim Issakov Room: Nyquist Meeting room, Bldg: Cittadella Politecnica, IV floor, corso Duca degli Abruzzi 24, Torino, Piemonte, Italy

Physics-embedded Deep Learning for Electromagnetic Data Inversion

Room: 2R, Bldg: DICAM, Via Mesiano 77, Trento, Trentino-Alto Adige, Italy, Virtual: https://events.vtools.ieee.org/m/479465

Recent research in deep learning techniques has attracted much attention. They have also been applied to electromagnetic engineering. Data-driven approaches allow machines to “learn” from a large amount of data and “master” the physical laws in certain controlled boundary conditions. However, this technique also faces many challenges, such as inaccuracy, limited generalization ability, etc. In electromagnetic engineering, physical laws, i.e., Maxwell’s equations, set major guidelines in research and development. They discover the nature of electromagnetic fields and waves and are universal across various scenarios. Incorporating physical principles into the deep learning framework significantly improves deep neural networks' learning capacity and generalization ability, hence increasing the accuracy and reliability of deep learning techniques in modeling electromagnetic phenomena. In this talk, we will study several techniques to embed physical simulation into deep learning to model electromagnetic wave propagation. With the help of both physical simulation and deep learning, we can improve the accuracy and computational efficiency of electromagnetic modeling and data inversion. Hybridizing fundamental physical principles with “knowledge” from big data could help electromagnetic technologies be more automatic, accurate, and reliable. Speaker(s): Prof. Maokun LI Room: 2R, Bldg: DICAM, Via Mesiano 77, Trento, Trentino-Alto Adige, Italy, Virtual: https://events.vtools.ieee.org/m/479465

Metasurfaces for Next-Gen Applications: A Platform for Communication, Sensing, Imaging, and Energy Innovations

Virtual: https://events.vtools.ieee.org/m/473785

This talk explores the transformative role of metasurfaces as versatile platforms for next-generation electromagnetic (EM) wave manipulation across a wide range of applications. Metasurfaces have the potential to revolutionize communication, sensing, imaging, and sustainable energy by enabling unprecedented control over EM waves in ultra-thin and highly customizable structures. The presentation will cover advanced metasurface applications, such as reconfigurable intelligent surfaces for 5G/6G communication, high-sensitivity sensors for medical and environmental monitoring, high-resolution imaging systems, and energy-efficient absorbers for solar and thermophotovoltaic devices. By examining recent breakthroughs and future directions, this talk aims to inspire innovative solutions and collaborations within the AP-S community. Speaker(s): Prof. Muhammad Zubair, Virtual: https://events.vtools.ieee.org/m/473785

Reconfigurable Intelligent Surfaces (RIS) for Integrated Communication, Sensing, and Localisation

Room: Sala Polifunzionale BUM, Bldg: Biblioteca Universitaria di Mesiano, Via Mesiano 77, Trento, Trentino-Alto Adige, Italy, 38123, Virtual: https://events.vtools.ieee.org/m/476463

Reconfigurable Intelligent Surfaces (RIS) have emerged as a transformative technology for next-generation wireless networks, enabling precise control of electromagnetic waves to enhance communication, sensing, and localisation. RIS leverages programmable metasurfaces composed of sub-wavelength reflective elements to dynamically manipulate the amplitude, phase, and polarization of incident waves. This capability supports diverse applications in 6G scenarios, including high-speed data transmission, real-time health monitoring, and indoor localisation. In communication, RIS improves energy efficiency and signal coverage, particularly in Non-Line-of-Sight (NLoS) environments. It achieves efficient beamforming with minimal power consumption and low hardware complexity. For sensing applications, RIS enables high-accuracy vital sign detection, including real-time heartbeat and respiration monitoring in NLoS conditions, overcoming limitations of conventional RF sensing technologies. For localisation, RIS enhances the performance of machine-learning-based indoor positioning systems by reshaping radio wave propagation and reducing multipath fading effects. The technology supports both active and passive localisation methods, making it ideal for complex, dynamic environments. RIS holds immense potential in integrated sensing and communication (ISAC) systems, paving the way for innovative solutions in smart homes, healthcare, and urban environments. By addressing challenges such as NLoS coverage, hardware constraints, and energy efficiency, RIS is poised to play a critical role in realising the vision of ubiquitous, intelligent, and sustainable wireless networks. Speaker(s): Prof. Qammer H. Abbasi Room: Sala Polifunzionale BUM, Bldg: Biblioteca Universitaria di Mesiano, Via Mesiano 77, Trento, Trentino-Alto Adige, Italy, 38123, Virtual: https://events.vtools.ieee.org/m/476463

Summer School ”Microwaves and mm-waves for the design of advanced wireless links: communication, sensing and power transfer”

Bldg: Department of Information Engineering, Via G. Caruso, n.16, Pisa, Toscana, Italy

The second edition of the Summer School ”Microwaves and mm-waves for the design of advanced wireless links: communication, sensing and power transfer” aims to introduce the attendees to the building blocks required to understand the basic principles, the implementation strategies and the design criteria of the most common wireless systems operating in the microwaves and mm-waves frequency bands. The Summer School can be of interest for students (PhD students, postgraduate students, and undergraduate students who are close to getting their degree), practitioners and industry employees, who are involved in any Information and Communication Technology (ICT) fields and aim to exploit the EM phenomena to shape future communication systems, radars, wireless sensing systems, wireless networks and high-frequency circuits. Co-sponsored by: University of Pisa Bldg: Department of Information Engineering, Via G. Caruso, n.16, Pisa, Toscana, Italy

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