Moor Instruments (United Kingdom)
Moor Instruments (United Kingdom)
2 Projects, page 1 of 1
assignment_turned_in Project2008 - 2013Partners:Astron Clinica, Baxter (United States), Plus Orthopedics UK Ltd, Anson Medical Ltd, Boston Scientific +75 partnersAstron Clinica,Baxter (United States),Plus Orthopedics UK Ltd,Anson Medical Ltd,Boston Scientific,Brunel University London,Plus Orthopedics UK Ltd,Cinimod IP Ltd,Invest Northern Ireland,Brunel University,Oxford BioSignals Ltd,Bayer AG,3M Health Care Ltd,Baxter (United States),BSC,NHS Institute for Innovation and Improve,BFC,NHS Institute for Innovation and Improve,3dMD (United Kingdom),National Patient Safety Agency,3dMD Ltd,Moor Instruments (United Kingdom),3M Health Care Ltd,Bayer (United Kingdom),Sensor Technology & Devices Ltd,Smiths Group plc,Olympus Optical Co (UK),Active4Life Healthcare Technologies Ltd,Moor Instruments (United Kingdom),HeartSine Technologies Ltd,Apatech Ltd,Corin Group PLC,3M (United Kingdom),Adams Business Associates (United Kingdom),Active4Life Healthcare Technologies Ltd,DePuy Synthes (International),Datalink Electronics,Bayer plc,Smith and Nephew Healthcare Ltd,Invest Northern Ireland,Lombard Medical (United Kingdom),NPSA,Finsbury Orthopaedics Ltd,Luxfer Group (United Kingdom),Finsbury Orthopaedics Ltd,MSI Consultancy Ltd,Stryker (United Kingdom),Triteq Ltd,DePuy Orthopaedics Inc,Molnlycke Healthcare Ltd,Investment Belfast,Mölnlycke Health Care (United Kingdom),Apatech Ltd,Pearson Matthews Design Partnership,NHS Purchasing and Supply Agency,Investment Belfast,Translucency Ltd,Partnerships for Health,Olympus Optical Co (UK),NHS Purchasing and Supply Agency,British Council,Datalink Electronics,Cinimod IP Ltd,Zimmer GmbH,Corin (United Kingdom),Smith and Nephew Healthcare Ltd,Luxfer Gas Cylinders Ltd,Translucency Ltd,Pearson Matthews Design Partnership,Smiths Group (United Kingdom),Zimmer (Switzerland),Orthodocs Ltd,Smith & Nephew (United Kingdom),Sensor Technology & Devices Ltd,Astron Clinica,Triteq Ltd,Partnerships for Health,ABA Adams Business Associates,OBS Medical (United Kingdom),MSI Consultancy LtdFunder: UK Research and Innovation Project Code: EP/F063822/1Funder Contribution: 6,760,670 GBPTo maintain continuity with MATCH Phase 1, it has been requested that MATCH Phase 2 follows the current programme breakdown in terms of Projects A-F from 2008-2013 / a vision that is described below. We note that MATCH changed dramatically in creating the projects A-F and that further changes in the themes are inevitable. An overview of these themes is given below.Projects A, B and C address economic evaluation and its impact in decision-making by companies, governments and procurement agencies. We have identified a major demand for such research, but note that there is some convergence between these themes (for instance, A and C may well coalesce under the Bayesian banner). In particular, a 'methodologies' theme is likely to emerge in this. Under the former theme, a truly integrated Bayesian framework for medical devices would represent a strategically important achievement.On the other hand, the business of delivering these developments to industry, and the organisations or franchises that might ultimately provide the best vehicle for doing so, still requires further exploration and negotiation, and at this point there is considerable uncertainty about how this will best be done. However the critical element has been established, namely that MATCH can provide useful tools for, and attract significant levels of funding from industry. To this extent, the applied side of Project A-F and Project 5 might well evolve into a series of programmes designed to spin out tools, training and best practice into industry. Project 5 remains for the present because we have set it up with a framework within which company IP can be protected, and within which we can expedite projects to company goals and time scales.A similar pattern is likely to emerge from the single User project (D), where there is considerable scope for capability, and methodological development / and the size of this team needs to increase. The aim is to develop a suite of methods, guidelines and examples, describing when a given method is useful and when user needs assessment must be cost-effective. We will gain and share experience on what approach works best where. Our taxonomy will recognise circumstances where the novelty of a proposed device may undermine the validity of user needs assessment conducted before the 'technological push' has had a fair opportunity to impact on the human imagination.Moreover, new research is needed to 'glue' some of these themes together. Some of this is already included (for instance, in Projects C and D below) to link the user-facing social science with the economics, or the pathway-changing experiences (F) with formal economic evaluation, will require new, cross-disciplinary research. This type of research is essential to developing the shared view of value, which MATCH is pursuing. Similarly, integrating supply-chain decision-making and procurement elements of theme (E) with economic evaluation would represent an important element of unification.To achieve this, we will need to bring in some news skills. For instance, we are already freeing up some funding to bring in an economics researcher at Ulster; more statistical mathematical support may be needed to further develop the Bayesian theme; and we need to bolster the sociological element within the team.Finally, this vision cannot be funded entirely within a research framework, and we expect critical elements to be achieved under other funding (for instance, Theme E by the NHS, in due course).
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2014 - 2023Partners:Columbia University, Chinese Academy of Sciences, Swimovate Ltd, CAS, Toshiba (United Kingdom) +80 partnersColumbia University,Chinese Academy of Sciences,Swimovate Ltd,CAS,Toshiba (United Kingdom),Huber+Suhner (UK) Ltd,Lockheed Martin (United States),Hitachi Cambridge Laboratory,UK Innovation Forum Limited,TeraView (United Kingdom),Thales (United Kingdom),University of Cambridge,Fraunhofer UK Research Ltd,Dow Chemical (United States),Hamamatsu Photonics (United Kingdom),TREL,Leonardo (United Kingdom),Defence Science & Tech Lab DSTL,Fraunhofer UK Research Ltd,Innovate UK,Huawei Technologies (United Kingdom),XYRATEX,BAE Systems (UK),Chinese Academy of Sciences,Photon Design (United Kingdom),UK Innovation Forum Limited,CIP Technologies,Dow Corning Corporation,X-FAB,Oclaro (United Kingdom),Selex ES Ltd,UNIVERSITY OF CAMBRIDGE,University of Cambridge,Excelitas Technologies (United Kingdom),Costain (United Kingdom),THALES UK,Hitachi (Japan),Teraview Ltd,UCL,Xtera Communications Limited,CERN,SWISSto12 SA,Columbia University,Teraview Ltd,LOCKHEED MARTIN ACULIGHT CORPORATION,Moor Instruments (United Kingdom),Zinwave,Xilinx Corp,Inphi Ltd UK,McWane Technology (United Kingdom),Qioptiq Ltd,Moor Instruments (United Kingdom),Inphi (United Kingdom),Dow Corning Corporation (International),CERN,PervasID Ltd,Silixa Ltd,Hitachi Ltd,Innovate UK,Precision Acoustics (United Kingdom),Xtera Communications Limited,Oclaro Technology UK,SWISSto12 SA,Technology Strategy Board (Innovate UK),Broadcom (United Kingdom),Defence Science & Tech Lab DSTL,Columbia University,Silixa Ltd,X-Fab (Germany),BAE Systems (Sweden),Defence Science and Technology Laboratory,BAE Systems (United Kingdom),Swimovate Ltd,Avago Technologies,COSTAIN LTD,Hitachi Cambridge Laboratory,Selex-ES Ltd,Hamamatsu Photonics UK Ltd,Xilinx (United States),PHOTON DESIGN LIMITED,PervasID Ltd,Precision Acoustics (United Kingdom),Seagate (United Kingdom),Thales UK Ltd,Polatis LtdFunder: UK Research and Innovation Project Code: EP/L015455/1Funder Contribution: 4,361,750 GBPThis proposal seeks funding to create a Centre for Doctoral Training (CDT) in Integrated Photonic and Electronic Systems. Photonics plays an increasing role in systems, ranging from sensing, biophotonics and manufacturing, through communications from the chip-to-chip to transcontinental scale, to the plethora of new screen and projection display technologies that have been developed, bringing higher resolution, lower power operation and enabling new ways of human-machine interaction. These advances have set the scene for a major change in commercialisation activity where photonics and electronics will converge in a wide range of information, sensing, communications, manufacturing and personal healthcare systems. Currently, systems are realised by combining separately developed photonic components, such as lasers and photodetectors with electronic circuits. This approach is labour intensive and requires many electrical interconnects as well as optical alignment on the micron scale. Devices are optimised separately and then brought together to meet systems specifications. Such an approach, although it has delivered remarkable results, not least the communications systems upon which the internet depends, limits the benefits that could come from the full integration of photonics with electronics and systems. To achieve such integration requires researchers who have not only deep understanding of their specialist area, but also an excellent understanding across the fields of electronic and photonic hardware and software. This proposal therefore seeks to meet this important need, building upon the uniqueness and extent of the UCL and Cambridge research, where research activities are already focussing on the direct monolithic integration of lasers with silicon electronics, new types of displays based on polymer and holographic projection technology, the application of photonic communications to computing, personal information systems and indeed consumer products (via board-to-board, chip to chip and later on-chip interconnects), the increased use of photonics in industrial processing and manufacture, techniques for the low-cost roll-out of optical fibre to replace the copper network, the substitution of many conventional lighting products with photonic light sources and extensive application of photonics in medical diagnostics and personalised medicine. Many of these activities will increasingly rely on more advanced electronic systems integration, and so the proposed CDT includes experts in electronic circuits, computer systems and software. By drawing these complementary activities together, and building upon initial work towards this goal carried out within our previously funded CDT in Photonic Systems Development, it is proposed to develop an advanced training programme to equip the next generation of very high calibre doctoral students with the required technical expertise, commercial and business skills, and thus provide innovation opportunities for the integration of photonic and electronics in new systems in the coming years. It should be stressed that the CDT will provide a wide range of methods for learning for research students, well beyond that conventionally available, so that they can gain the required skills. In addition to conventional lectures and seminars, for example, there will be bespoke experimental coursework activities, reading clubs, roadmapping activities, secondments to companies and other research laboratories and business planning courses. The integration of photonic and electronic systems is likely to widen the range of systems into which these technologies are deployed in other key sectors of the economy, such as printing, consumer electronics, computing, defence, energy, engineering, security and medicine. As a result, a key feature of the CDT will be a developed awareness in its student cohorts of the breadth of opportunity available and a confidence that they can make impact therein.
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