
NEC Telecom MODUS Ltd
NEC Telecom MODUS Ltd
16 Projects, page 1 of 4
assignment_turned_in Project2014 - 2018Partners:EE Limited, BT Innovate, JDSU UK Ltd, Everything Everywhere Ltd., Techgate plc +11 partnersEE Limited,BT Innovate,JDSU UK Ltd,Everything Everywhere Ltd.,Techgate plc,BT Innovate,British Telecom,Qualcomm Cambridge Limited,Qualcomm Cambridge Limited,University of Kent,University of Kent,JDSU UK Ltd,NEC Telecom MODUS Ltd,Techgate plc,Cambridge Silicon Radio Ltd,NEC Telecom MODUS LtdFunder: UK Research and Innovation Project Code: EP/L026031/1Funder Contribution: 926,416 GBPThe Internet is expanding towards mobile wireless connectivity rapidly. However, to enable this for increasing numbers of users and connected devices, and increasingly bandwidth-, processing power- and energy-hungry applications, will require a transformation in the way in which current mobile and wireless networks perform. Shorter wireless distances (small cells, picocells, femtocells) and different network types for the connection (WiFi, 3G, 4G, 5G) depending on the availability and suitability for different applications, is a process that is already happening and expected to continue. This will manifest itself with simpler remote radio heads providing coverage in otherwise difficult to penetrate locations (and the main processing functions gathered together in a centralised pool of base station baseband units), and with the appearance of new wireless standards. NIRVANA takes this evolution and proposes a transformative step: the incorporation of fast, hardware-based, network monitoring, and intelligence (using the monitoring/gathered information) close to the pool of base stations. The proximity of the intelligence enables low-overhead control of a range of operational functions, which allow users to be moved from one connection type to another, according to their application and the load on the network, and to match the network's resources precisely to user needs. It allows energy efficiency to be optimised throughout the network and in the mobile device, too. The latter is augmented by locating the computing resources for a "mobile cloud" near the base station pool. Some processing is offloaded to the mobile cloud instead of being done on the mobile, and even some mobile-to- mobile communication may be done within this cloud - saving the mobile device (and the network) energy that would have been used in radio transmissions. Finally, among the new wireless connection types to be investigated, millimetre-wave communications, using the most up-to-date releases of the wireless local area network standard (802.11ad/j), will be fashioned into a device-to-device mesh network, for mobile distributed caching, which will be shown to further enhance the capacity of the network and its energy efficiency.
more_vert assignment_turned_in Project2019 - 2023Partners:University of Sheffield, BAE Systems (Sweden), HMG, Bae Systems Defence Ltd, Virtual Centre of Excellence in Mobile a +16 partnersUniversity of Sheffield,BAE Systems (Sweden),HMG,Bae Systems Defence Ltd,Virtual Centre of Excellence in Mobile a,NEC Telecom MODUS Ltd,NEC Telecom MODUS Ltd,Samsung Electronics Research Institute,TREL,Samsung R&D Institute UK,RMRL,Real Wireless Ltd,Virtual Centre of Excellence in Mobile a,His Majesty's Government Communications,[no title available],BAE Systems (UK),University of Sheffield,Roke Manor Research Ltd,Real Wireless Ltd,BAE Systems (United Kingdom),Toshiba Research Europe LtdFunder: UK Research and Innovation Project Code: EP/S008101/1Funder Contribution: 617,539 GBPIn recent years there has been a huge explosion in the use of mobile devices such as smartphones, laptop computers and tablets which require a wireless connection to the internet. Numbers are forecast to reach 40 billion worldwide by 2020 as areas as diverse as the home, transport, healthcare, military and infrastructure experience increasing levels of embedded 'smart' functionality and user operability. Major applications such as future 5G communications systems, the Internet of Things and Autonomous Vehicles are driving this technology. At present wireless systems operate at frequencies up to 6GHz. However, there is a growing realisation that the spectrum below 6GHz cannot support the huge data rates being demanded by future users and applications. The next step is to develop technologies utilising much higher frequencies to give data rates compatible with future demand. Currently, world licencing bodies such as ETSI and ITU have identified millimetre wave frequencies up to 90 GHz as most likely for this expansion in the spectrum. Strategically, the UK must develop wireless technologies to compete on the world stage and increase its competitiveness particularly in competition with the Far East. Superfast 5G level Telecoms infrastructure is central to the Industrial Strategy Green Paper, which the UK government has been championing and highlighting in the ten pillars of combined strategy. Two technology bottlenecks in millimetre wave receivers, which are important aspects of future communication systems, are: 1) current receiver architectures are unable to directly digitise millimetre wave signals with acceptable power consumption, and 2) antenna arrays are not sufficiently frequency agile. This project aims to address both bottlenecks using new techniques developed on the FARAD project. The proposed research will embrace the co-design of antennas, filters and amplifiers with track-and-hold-amplifiers, analogue-to-digital-convertors and digital down conversion. This will result in new receiver architectures for fully digital massive MIMO systems. The techniques and architectures developed in this project will enable future high-frequency networks to operate efficiently in the new millimetre wave transmission bands. The research will have far-reaching consequences for solving the wireless capacity bottleneck over the next 20 to 30 years and keeping the UK at the forefront of millimetre wave technology and innovation.
more_vert assignment_turned_in Project2011 - 2023Partners:His Majesty's Government Communications, NEC Telecom MODUS Ltd, Toshiba Research Europe Ltd, TREL, NMI (National Microelectronics Inst) +52 partnersHis Majesty's Government Communications,NEC Telecom MODUS Ltd,Toshiba Research Europe Ltd,TREL,NMI (National Microelectronics Inst),EADS Airbus,Geomerics Ltd,ICERA Inc,STFC - LABORATORIES,Thales Research and Technology UK Ltd,GCHQ,Defence Science & Tech Lab DSTL,MBDA UK Ltd,Provision Communications Ltd,PicoChip Designs Limited,Systems Engineering and Assessment Ltd,Toshiba Research Europe Limited,PicoChip Designs Limited,University of Bristol,PLESSEY SEMICONDUCTORS LIMITED,DYNNIQ UK LTD,NEC Telecom MODUS Ltd,Thales Aerospace,DSTL,MBDA UK Ltd,CSR plc,Plessey Semiconductors Ltd,HMG,Science and Technology Facilities Council,Provision Communications Ltd,Digital Communications - KTN,TRTUK,BT Innovate,GE Aviation,Technology Strategy Board,General Dynamics UK Ltd,RENISHAW,Thales Alenia Space UK Ltd,NMI,ICERA Inc,STFC - Laboratories,Airbus Group Limited (UK),University of Bristol,BT Innovate,Renishaw plc (UK),Defence Science & Tech Lab DSTL,Cambridge Silicon Radio Ltd,GCHQ,CSR,Imagination Technologies Ltd UK,Imagination Technologies (United Kingdom),Airbus (United Kingdom),Imagination Technologies (United Kingdom),ARM Ltd,Diameter Ltd,British Telecom,ARM LtdFunder: UK Research and Innovation Project Code: EP/I028153/1Funder Contribution: 2,216,770 GBPThe Communications sector is a vital component within the UK economy, with revenues in this area totalling around 129B. Recognised as a key enabler of telecommunications, broadcasting and ICT, communications is also poised to be a transformational technology in areas such as energy, the environment, health and transport. The UK is well placed to reap the full economic and social benefits enabled by communications and investment in a CDT, embracing the breath and reach of the discipline, will help to facilitate our economic recovery and growth and enhance our global standing.There is a serious and growing concern over the future availability of suitably skilled staff to work in the communications sector in the UK. International competition is fierce, with large investments being made by competitor countries in research and in the training of personnel. IT and telecoms companies in the UK are reporting difficulties in attracting candidates with the right skills. In this context, the National Microelectronics Institute and the IET have warned that the ICT sector is facing a growing recruitment crisis with little confidence that the problem will improve in the short or medium term. Various organisations (eg DC-KTN and Royal Academy of Engineering) with support from industry are addressing this issue but acknowledge that it cannot be achieved without relevant high quality under- and postgraduate degrees through which specialist skills can be obtained.To address this shortage, a new Centre for Doctoral Training (CDT) in 'Future Communication' is proposed. The University of Bristol has a world leading reputation in this field, focused on its Centre for Communications Research (CCR), but built on close collaboration between colleagues from Mathematics, Computer Science, Safety Systems and industry. Our vision is to establish a world-leading research partnership which is focused on demand and firmly footed in a commercial context, but with freedom to conduct academically lead blue skies research.The Bristol CDT will be focused on people: not just as research providers, but also as technology consumers and, importantly, as solutions to the UK skills shortage. It will develop the skilled entrepreneurial engineers of the future, provide a coherent advanced training network for the communications community that will be recognised internationally and produce innovative solutions to key emerging research challenges. Over the next eight years, the CDT will build on Bristol's core expertise in Efficient Systems and Enabling Technologies to engineer novel solutions, offering enhanced performance, lower cost and reduced environmental impact. The taught component of the Programme will build on our MSc programme in Communication Systems & Signal Processing, acknowledged as leading in the UK, complemented by additional advanced material in statistics, optimisation and Human-Computer Interaction. This approach will leverage existing commitment and teaching expertise. Enterprise will form a core part of the programme, including: Project Management, Entrepreneurship, Public Communication, Marketing and Research Methods. Through its research programme and some 50 new PhD students, the CDT will undertake fundamental work in communication theory, optimisation and reliability. This will be guided by the commercial imperatives from our industry partners, and motivated by application drivers in Smart Grid, transport, healthcare, military/homeland security, safety critical systems and multimedia delivery. While communications technology is the enabler it is humans that are the consumers, users and beneficiaries in terms of its broader applications. In this respect we will focus our research programme on the challenges within and interactions between the key domains of People, Power and Performance.
more_vert assignment_turned_in Project2016 - 2023Partners:University of Bristol, Mobile VCE, Telefonica S.A, BT Group, NEC Telecom MODUS Ltd +62 partnersUniversity of Bristol,Mobile VCE,Telefonica S.A,BT Group,NEC Telecom MODUS Ltd,National Inst of Info & Comm Tech (NICT),HMG,Agilent Technologies (United Kingdom),Modern Built Environment,Rohde & Schwarz UK Limited,National Inst of Info & Comm Tech (NICT),ICERA Inc,Ofcom,GCHQ,Osaka University,UKRI,Thales Aerospace,National Instruments Corp (UK) Ltd,University of Bristol,Agilent Technologies UK Ltd,Roke Manor Research Ltd,NMI,West of England Local Enterprise Partner,Bristol City Council,Imagination Technologies Ltd UK,RMRL,NMI (National Microelectronics Inst),BAE Systems (United Kingdom),Toshiba Electronics (U K) Ltd,BAE Systems (Sweden),ADVA AG Optical Networking,Virtual Centre of Excellence in Mobile a,West of England Local Enterprise Partner,UPC,Centre of Res and Develop in telecoms,nVIDIA UK,Technology Strategy Board (Innovate UK),Bae Systems Defence Ltd,Toshiba Electronics (UK) Ltd,u-blox UK ltd.,mVCE,Imagination Technologies (United Kingdom),TRTUK,SETsquared Partnership,u-blox UK Ltd,Technical University of Catalonia,ADVA Optical Networking SE,Setsquared,Ofcom,British Telecom,NATIONAL INSTRUMENTS CORPORATION(UK) LIMITED,Thales Research and Technology UK Ltd,Rohde & Schwarz (United Kingdom),Bristol City Council,BBC,BT Group,NEC Telecom MODUS Ltd,BAE Systems (UK),BBC Television Centre/Wood Lane,GCHQ,His Majesty's Government Communications,Agilent Technologies (United States),Imagination Technologies (United Kingdom),Telefonica S.A,Innovate UK,nVIDIA UK,British Broadcasting Corporation - BBCFunder: UK Research and Innovation Project Code: EP/L016656/1Funder Contribution: 3,078,570 GBPWe are living through a revolution, as electronic communications become ever more ubiquitous in our daily lives. The use of mobile and smart phone technology is becoming increasingly universal, with applications beyond voice communications including access to social and business data, entertainment through live and more immersive video streaming and distributed processing and storage of information through high performance data centres and the cloud. All of this needs to be achieved with high levels of reliability, flexibility and at low cost, and solutions need to integrate developments in theoretical algorithms, optimization of software and ongoing advances in hardware performance. These trends will continue to shape our future. By 2020 it is predicted that the number of network-connected devices will reach 1000 times the world's population: there will be 7 trillion connected devices for 7 billion people. This will result in 1.3 zettabytes of global internet traffic by 2016 (with over 80% of this being due to video), requiring a 27% increase in energy consumption by telecommunications networks. The UK's excellence in communications has been a focal point for inward investment for many years - already this sector has a value of £82Bn a year to the UK economy (~5.7% GDP). However this strength is threatened by an age imbalance in the workforce and a shortage of highly skilled researchers. Our CDT will bridge this skills gap, by training the next generation of researchers, who can ensure that the UK remains at the heart of the worldwide communications industry, providing a much needed growth dividend for our economy. It will be guided by the commercial imperatives from our industry partners, and motivated by application drivers in future cities, transport, e-health, homeland security and entertainment. The expansion of the UK internet business is fuelled by innovative product development in optical transport mechanisms, wireless enabled technologies and efficient data representations. It is thus essential that communications practitioners of the future have an overall system perspective, bridging the gaps between hardware and software, wireless and wired communications, and application drivers and network constraints. While communications technology is the enabler, it is humans that are the producers, consumers and beneficiaries in terms of its broader applications. Our programme will thus focus on the challenges within and the interactions between the key domains of People, Power and Performance. Over three cohorts, the new CDT will build on Bristol's core expertise in Efficient Systems and Enabling Technologies to engineer novel solutions, offering enhanced performance, lower cost and reduced environmental impact. We will train our students in the mathematical fundamentals which underpin modern communication systems and deliver both human and technological solutions for the communication systems landscape of the future. In summary, Future Communications 2 will produce a new type of PhD graduate: one who is intellectually leading, creative, mathematically rigorous and who understands the commercial implications of his or her work - people who are the future technical leaders in the sector.
more_vert assignment_turned_in Project2019 - 2021Partners:The MathWorks Inc, JDSU UK Ltd, VIAVI Solutions, The MathWorks Inc, NEC Telecom MODUS Ltd +4 partnersThe MathWorks Inc,JDSU UK Ltd,VIAVI Solutions,The MathWorks Inc,NEC Telecom MODUS Ltd,University of Glasgow,NEC Telecom MODUS Ltd,University of Glasgow,VIAVI SolutionsFunder: UK Research and Innovation Project Code: EP/S02476X/1Funder Contribution: 233,477 GBPFuture wireless communication networks are expected to address unprecedented challenges to cope with a high degree of heterogeneity in terms of devices, deployment types, environments, carrier frequency, etc. Moreover, they are expected to provide orders of magnitude improvement to such heterogeneous networks in key technical requirements including throughput, number of connected devices, latency and reliability. With such diverse services and diverging requirements, it is cumbersome to design a unified all-in-one radio system to meet the technical needs for all types of services. In addition, designing separate systems that run on separate infrastructures make the operation and management of the system highly complex, expensive and spirally inefficient. The scope of the project is to establish a radio ecosystem on a common infrastructure that efficiently accommodates communication services for all vertical sections from manufacturing, entertainment, public safety, public transport, healthcare, financial services, automotive and energy utilities. This can be enabled by an algorithmic framework orchestrating all radio slices that are individually customised and optimally designed. Network slicing is an overarching feature towards 5G-and-beyond to support all scenarios efficiently. Core network slicing has attracted much attention through network functions virtualisation. However, from the radio level, an algorithmic framework for spectrum- and cost-efficient air-interface to achieve the true potential of end-to-end network slicing for the future diverse radio systems is still an open problem yet to be solved. To guarantee the required performance for each individual user case efficiently, the physical layer (PHY) configurations should be delicately optimised and medium access control layer (MAC) radio resource should be allocated on-demand. For instance, subcarrier spacing is one of the paramount importance parameters for modern multicarrier communication systems (e.g., LTE, WiFi, etc.), the service for future massive machine type communications (mMTC) might require smaller subcarrier spacing (thus larger symbol duration) to support massive delay-tolerant devices. While vehicle to vehicle (V2V) communications, on the other hand, have more stringent latency requirements, thus, symbol duration should be significantly reduced compared to mMTC. However, cohabitation of the individually optimised services in one system may bring several technical challenges from both PHY and MAC. It will destroy the system orthogonality and PHY algorithm framework that the state-of-the-art telecommunication systems built on. From the resource allocation perspective, one of the challenges is that not only the multi-slice system forests a complex multiple layers resource structure, but also technical requirement of each slice can be significantly different. Thus, a cross-layer and cross-slice optimisation is envisioned to maximise the overall air-inference performance. The aim of REORDER is to address the abovementioned challenges, by establishing the framework of air-interface heterogeneous signal orchestration and efficient resource allocation. The proposed work fills in the last piece of the puzzle for realistic and efficient end-to-end network slicing. From this sense, REORDER will "reorder" the radio resource allocation caused by slice configuration disorders. The project will be undertaken in the Communication, Sensing and Imaging research group (CSI) in the University of Glasgow, by the PI, a PDRA and a PhD student based at the University of Glasgow. Our industrial partners include NEC Telecom MODUS (UK), Mathworks Research Centre Glasgow, and VIAVI Solutions (UK). The radical approaches proposed in this project will be verified though both state-of-the-art standard compatible system-level simulation and software defined radio (SDR) based over-the-air experimentations.
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