Ciena (United Kingdom)
Ciena (United Kingdom)
2 Projects, page 1 of 1
assignment_turned_in Project2012 - 2018Partners:Cable & Wireless Global, Arden Photonics, Gennum UK Ltd, ARDEN, Google (United States) +23 partnersCable & Wireless Global,Arden Photonics,Gennum UK Ltd,ARDEN,Google (United States),Los Alamos National Laboratory,Huawei Technologies (China),Ciena Ltd,Cable & Wireless Global,EnSilica (United Kingdom),British Telecommunications plc,Deutsche Telekom (Germany),Ciena (United Kingdom),Orange (France),Xtera Communications Limited,Oclaro Technology UK,ORANGE LABS,Xtera Communications Limited,BT Group (United Kingdom),DT,Oclaro (United Kingdom),UCL,BT Group (United Kingdom),EnSilica Ltd,Google Inc,LANL,Semtech (United Kingdom),Huawei Technologies (China)Funder: UK Research and Innovation Project Code: EP/J017582/1Funder Contribution: 4,803,340 GBPIt is recognised that global communication systems are rapidly approaching the fundamental information capacity of current transmission technologies. Saturation of the capacity of the communication systems might have detrimental impact on the economy and social progress and public, business and government activities. The aim of the proposed research is to develop, through theory and experiment, disruptive approaches to unlocking the capacity of future information systems that go beyond the limits of current optical communications systems. The research will combine techniques from information theory, coding, study of advanced modulation formats, digital signal processing and advanced photonic concepts to make possible breakthrough developments to ensure a robust communications infrastructure beyond tomorrow. Increasing the total capacity of communication systems requires a multitude of coordinated efforts: new materials and device bases, new fibres, amplifiers and network paradigms, new ways to generate, transmit, detect and process optical signals and information itself - all must be addressed. In particular, the role of fibre communications, providing the capacity for a lion share of the total information traffic, is vital. One of the important directions to avoid the so-called "capacity crunch", the exhaust in fibre capacity - is to develop completely new transmission fibres and amplifiers. However, there is also a growing need for complimentary actions - innovative and radically novel approaches to coding, transmission and processing of information. Our vision is focused on the need to quantify the fundamental limits to the nonlinear channels carried over optical fibres and to develop techniques to approach those limits so as to maximise the achievable channel capacity. The information capacity of a linear channel with white Gaussian noise is well known and is defined by the Shannon limit. Wireless systems can approach this limit very closely - to within fractions of a dB. However, the optical channel is nonlinear. Fibre nonlinearity mixes noise with signal. Therefore, results of the linear theories on capacity can be applied in fibre channels only in the limit of very small nonlinear effects. Optical communication systems are undergoing another revolution with the development of techniques of coherent detection, the ability to detect both the amplitude and the phase of a transmitted signal and use of digital signal processing techniques to reconstruct the original signal. Use of the optical phase in emerging coherent transmission schemes opens up fundamentally new theoretical and technical possibilities most as yet unexplored. The challenge is to understand to what degree optical nonlinearity can also be compensated or, indeed, used to unlock the fibre capacity, maximise both the information transmission rate and the total bandwidth, to determine the fundamental Shannon limit for nonlinear channels and to develop methods to approach this capacity. We propose to explore fundamentally new nonlinear information technologies and to develop a practical design framework based on integration of DSP techniques, novel modulation formats, and novel source and line coding approaches tailored to the nonlinear optical channels. We believe this to be the key to designing the intelligent information infrastructure of the future.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2024 - 2029Partners:Chase Cryogenics, Ciena (United Kingdom), Crypta Labs Ltd, Wideblue Ltd, ID Quantique (Switzerland) +37 partnersChase Cryogenics,Ciena (United Kingdom),Crypta Labs Ltd,Wideblue Ltd,ID Quantique (Switzerland),Technology Scotland,Nokia Bell Labs,Craft Prospect Ltd,nodeQ,euNetworks Fiber UK Ltd,Toshiba Research Europe Limited,Bay Photonics Ltd,Nu Quantum,PsiQuantum Ltd,Coherent Corp,Satellite Applications Catapult,Cyber Reach,KETS Quantum Security Ltd,Amazon Web Services EMEA SARL,Honeywell UK,Oxford Quantum Circuits,Alter Technology UK Ltd,Quandela SAS,Digital Catapult,Veriqloud,Arqit Limited,National Cyber Security Centre,BT plc,Fortanix,Quantinuum,ORCA Computing Ltd,Heriot-Watt University,Quantum Dice,Scottish Enterprise,LTIMindtree,Duality Quantum Photonics Ltd,Elson Space Engineering,CENSIS,Leonardo,Angoka Limited,European Telecommunications Standards Institute,AegiQFunder: UK Research and Innovation Project Code: EP/Z533208/1Funder Contribution: 21,272,300 GBPo achieve this vision, we will address major global research challenges towards the establishment of the "quantum internet" —?globally interlinked quantum networks which connect quantum nodes via quantum channels co-existing with classical telecom networks. These research challenges include: low-noise quantum memories with long storage time; connecting quantum processors at all distance scales; long-haul and high-rate quantum communication links; large-scale entanglement networks with agile routing capabilities compatible with - and embedded in - classical telecommunicatons networks; cost-effective scalability, standardisation, verification and certification. By delivering technologies and techniques to our industrial innovation partners, the IQN Hub will enable UK academia, national laboratories, industry, and end-users to be at the forefront of the quantum networking revolution. The Hub will utilise experience in the use of photonic entanglement for quantum key distribution (QKD) alongside state-of-the art quantum memory research from existing EPSRC Quantum Technology Hubs and other projects to form a formidable consortium tackling the identified challenges. We will research critical component technology, which will underpin the future national supply chain, and we will make steps towards global QKD and the intercontinental distribution of entanglement via satellites. This will utilise the Hub Network's in-orbit demonstrator due to be launched in late 2024, as well as collaboration with upcoming international missions. With the National Quantum Computing Centre (NQCC), we will explore applications towards quantum advantage demonstrations such as secure access to the quantum cloud, achievable only through entanglement networks. Hub partner National Physical Laboratory (NPL) working with our academic partners and the National Cyber Security Centre (NCSC) will ensure that our efforts are compatible with emerging quantum regulatory standards and post-quantum cybersecurity to bolster national security. We will foster synergies with competing international efforts through healthy exchange with our global partners. The Hub's strong industrial partner base will facilitate knowledge exchange and new venture creation. Achieving the IQN Hub's vision will provide a secure distributed and entanglement-enabled quantum communication infrastructure for UK end-users. Industry, government stakeholders and the public will be able to secure data in transit, in storage and in computation, exploiting unique quantum resources and functionalities. We will use a hybrid approach with existing classical cyber-security standards, including novel emerging post-quantum algorithms as well as hardware security modules. We will showcase our ambition with target use-cases that have emerged as barriers for industry, after years of investigation within the current EPSRC QT Hubs as well as other international efforts. These barriers include security and integrity of: (1) device authentication, identification, attestation, verification; (2) distributed and cloud computing; (3) detection, measurement, sensing, synchronisation. We will demonstrate novel applications as well as identify novel figures of merit (such as resilience, accuracy, sustainability, communication complexity, cost, integrity, etc.) beyond security enhancement alone to ensure the national quantum entanglement network can be fully exploited by our stakeholders and our technology can be rapidly translated into a commercial setting.
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