The Wide Role of Informatics at Universities
Abstract
The report presents the results of the online survey conducted by Informatics Europe Task Force on the Wide Role of Informatics at Universities. The main goals were to understand the value universities place on interdisciplinary research and teaching, what happens in practice with hiring and supporting interdisciplinary academics, and what structures are in place to support interdisciplinary work. The Data Science’s impact was also examined in detail, given its rapid rise and importance. Forty eight universities from nineteen European countries have participated in the survey providing answers on these strategic topics.
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THE WIDE ROLE OF INFORMATICS AT UNIVERSITIES Elisabetta Di Nitto Susan Eisenbach Inmaculada García Fernández Eduard Gröller
The Wide Role of Informatics at Universities RESEARCH EVALUATION of Computer Science (Draft) An Informatics Europe Report Report Title Prepared by: •Elisabetta Di Nitto, Politecnico di Milano, Italy •Susan Eisenbach, Imperial College London, United Kingdom •Inmaculada García Fernández, University of Malaga, Spain •Eduard Gröller, TU Wien, Austria
The Wide Role of Informatics at Universities October 2019 Published by: Informatics Europe Binzmühlestrasse 14/54 8050 Zurich, Switzerland www.informatics-europe.org [email protected] © Informatics Europe, 2019 Other Informatics Europe Reports ●Industry Funding for Academic Research in Informatics in Europe. Pilot Study. (2018, Data Collection and Reporting Working Group of Informatics Europe). ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2012-2017 (2018, Svetlana Tikhonenko, Cristina Pereira). ●Informatics Research Evaluation (2018, Research Evaluation Working Group of Informatics Europe). ●Informatics for All: The strategy (2018, Informatics Europe & ACM Europe) ●When Computers Decide: Recommendations on Machine-Learned Automated Decision Making (2018, Informatics Europe & EUACM, joint report with ACM Europe) ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2011-2016 (2017, Cristina Pereira, Svetlana Tikhonenko). ●Informatics Education in Europe: Are We All In The Same Boat? (2017, The Committee on European Computing Education. Joint report with ACM Europe). ●Informatics in the Future: Proceedings of the 11th European Computer Science Summit (ECSS 2015), Vienna, October 2015 (2017, eds. Hannes Werthner and Frank van Harmelen, Springer Open). ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2010-2015 (2016, Cristina Pereira). ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2009-2014 (2015, Cristina Pereira). ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2008-2013 (2014, Cristina Pereira, Bertrand Meyer, Enrico Nardelli, Hannes Werthner). ●Informatics Education in Europe: Institutions, Degrees, Students, Positions, Salaries. Key Data 2008-2012 (2013, Cristina Pereira and Bertrand Meyer). ●Informatics Doctorates in Europe - Some Facts and Figures (2013, ed. Manfred Nagl). ●Informatics Education in Europe: Europe Cannot Afford to Miss the Boat (2013, ed. Walter Gander, Joint report with ACM Europe) All these reports and others can be downloaded at: www.informatics-europe.org
E S In this report, we discuss the results of the online survey conducted by Informatics Europe Working Group on the Wide Role of Informatics at Universities. The main goals were to understand the value universities place on interdisciplinary research and teaching, what happens in practice with hiring and supporting interdisciplinary academics, and what structures are in place to support interdisciplinary work. We also examined Data Science’s impact in detail, given its rapid rise and importance. Forty eight universities from nineteen European countries have participated in the survey providing answers on these strategic topics. The results of our invesgaon have shown that: •In any area examined a significant majority of surveyed universies were engaged with interdisciplinarity. However, there were Informacs academics concerned about the development of interdisciplinary research mainly owing to limited funding, low esteem compared with discipline-specific research or lack of strategic direcon. •The majority of surveyed universies run joint degrees, including Informacs, most frequently in the area of Business and Economics, Natural and Life Sciences, and Engineering. The universies not already offering joint degrees showed a considerable interest in running new joint degrees including Informacs in Mathemacs and Stascs, Natural and Life Sciences, Law, Social and Polical Sciences, and Business and Economics. •With regard to teaching of Informacs in non-informacs programmes, there was not a uniform paern. While for some universies there existed a clear disciplineresponsibility, in others there was no clear policy about which department teaches Informacs in non-informacs programmes. Moreover, in several universies the lack of human resources prevented the Informacs departments from being in charge of teaching Informacs subjects in non-informacs degree programmes. •In terms of policies for interdisciplinarity and financial support for staff and centres, the range of answers was very large from no policy or financial support to using significant resources for hiring staff and seng up and funding centres. In the case where universies were largely autonomous from naonal agencies, hiring interdisciplinary researchers was encouraged when there was some funding, oen by third pares, dedicated to this. Respondents from countries where the hiring system was strongly regulated by some naonal agency highlighted the difficulty to introduce some flexibility and to define long-term plans which include muldisciplinarity. •The most commonly found centres were in Data Science, an area which was largely seen to emerge from Informacs and Stascs. According to the majority of surveyed universies, the rise of Data Science has changed the percepon of Informacs resulng in increasing relevance of ethics and other social aspects and in developing introductory courses on digital literacy and skills in all study programs. Informacs was considered to be the main knowledge centre in the digital transformaon of society and many ini- aves are under way changing how Informacs is perceived. For all the quesons there were a significant number of universies that have not engaged in official interdisciplinary acvity. 1
1. I In the 1970s with the advent of the personal computer we entered into the Digital or Informaon Age. However it has only been in this century with the ubiquity of the internet, the smartphone, cloud, and the internet of things that digital has become truly pervasive. How do universies respond to this massive change? Informacs Europe established in 2018 a new working group to invesgate what universies are doing to ensure that non-informacs teaching and research is informed by best pracce in Informacs. To beer understand the state of affairs on this topic and discover best pracces at European Universies, the working group conducted an online survey. We invited heads and members of Informacs/Computer Science/IT Departments (Schools, Facules, Instutes) to complete a quesonnaire in autumn 2018. The request to fill out our survey was sent to all Informacs Europe members and it was also publicly available from the Informacs Europe website. For the locaon of the respondents see Figure 1. Forty eight universies from nineteen countries filled it out (see Appendix B). Our survey was wide ranging. We wanted to understand how universies valued interdisciplinary research, about teaching Informacs to non-specialist students, what happens in pracce with hiring and supporng interdisciplinary academics, and what structures are in place to support interdisciplinary work. We chose to examine Data Science’s impact in detail, given its importance and newness. For the actual survey quesons see Appendix A. Although how Informacs (also called Computer Science or Compung) should posion itself in a university is a polical decision, in many universies what happens has arisen organically rather than strategically. There are a wide range of models with the extremes ranging from primarily being a service department to being primarily a research area that is isolated from other departments. 2. Universies are normally structured into disciplines which foster disciplinary research. However, the ubiquity of Informacs in our culture has led to pressures for research that is interdisciplinary. Pressures in favour of such research comes from academics themselves, student interests, external funding sources, and somemes from university leadership. The following subsecons discuss the answers obtained for each specific queson. 2
3 () Countries () Regions F 1. Locaon of Respondents F 2. What is the University atude towards Interdisciplinary research? 2.1. Desirability of interdisciplinary research. The first part of the survey quesoned respondents on university atudes and acons in respect of interdisciplinary research.1 A large majority (71%) claimed that their university encouraged interdisciplinary research when compared with single discipline research (see Figure 2). This seems to imply that universies favour interdisciplinary research over single discipline research. However, several respondents indicated that their encouragement was largely ‘theorecal’ and accompanied by lile, if any, funding. Some respondents said that much of the interdisciplinary work at their instuon occurred between departments other than Informacs. Only one respondent indicated that their 1The survey does not differenate between interdisciplinary work in general and that with an Informacs component. Given who answered the quesonnaire, one can assume that Informacs is included.
4 university actually discouraged interdisciplinary research although others menoned that their departments were judged, usually naonally, against discipline-specific criteria. F 3. What is the Department atude towards interdisciplinary research? 2.2. Department atude towards Interdisciplinary research. With the same queson directed at Informacs Departments rather than the whole university (see Figure 3), two thirds of respondents sll claimed that interdisciplinary research was favoured over single discipline topics. However, similar comments are made about encouragement being in principle rather than in pracce and about being judged on discipline-specific criteria. F 4. Are there interdisciplinary areas of research where your university could enter but aren’t due to lack of university support? 2.3. University support. However, just over half (51%) of the respondents recorded (see Figure 4) that their university supported all areas of interdisciplinary research which required support. Others (30%) menoned a variety of potenal Informacs areas where university support for interdisciplinary research was lacking. Others talked of the need for strategic planning to direct interdisciplinary efforts or of the need to focus given the wide range of potenal opportunies.
5 F 5. Are there other players who have helped increase the interdisciplinary research in your university? 2.4. Addional support. When asked about external support for interdisciplinary research directed towards their university (see Figure 5), 50% of the respondents responded posively with 40% stang that naonal public funding sources had helped to increase interdisciplinary research. A further 22% mainly discussed specific formal or informal arrangements between their department and others in their instuon. 2.5. Final thoughts. Respondents were asked to make some more general comments. Not all respondents were especially supporve of interdisciplinary research per se. It was noted that, because some funding streams demand interdisciplinarity, it is possible that ‘arficial collabora- ons’ were formed that aracted the funds but did not make good use of the capabilies of the researchers. Frequently interdisciplinary projects are focussed on how informaon technology can serve the other discipline so the progress made and any breakthroughs that occur advance the other discipline but have no impact on the development of Informacs. One respondent suggested that the excitement and interest in supporng interdisciplinary projects could make it likely that lower quality proposal were accepted (compared with single discipline ones). Respondents with more posive atudes towards interdisciplinary research were oen nevertheless concerned about its development mainly owing to limited funding, low esteem compared with discipline-specific research or lack of strategic direcon. 3. When teaching is run by departments it is easier to have single discipline degrees rather than joint degrees, and there is no shortage of students wanng to study Informacs as a single discipline. Nonetheless there is pressure (from prospecve students, academics, industry, and
6 somemes university leadership) to have joint degrees. The following subsecons discuss the answers obtained for each specific queson. F 6. Does your university run joint degrees? 3.1. Joint degrees. 30% of the universies do not run a joint degree that includes Informacs (see Figure 6). Within this group of universies, some specified that all their programs entail technical aspects of IT, such as programming or data base technology. At some of these universies there are plans for some joint programmes, e.g. a Data Science BSc programme that joins Computer Science, Maths and Industrial Engineering, and an MSc in Game Design and Produc- on jointly with the Arts School. These are collaborave iniaves in new direcons, where the Informacs Department is one of the partners. Occasionally another department has a small Informacs group who provides the Informacs teaching for a joint subject degree. The remaining 70% of the universies run joint degrees, the most popular joint degrees including Informacs are Business and Economics (Business Informacs; CS and Business; Compung and Economics; Informaon Systems combining Informacs and Business Administra- on; CS and Management; Informacs and Economics; Informacs and Finance; Economics and Business Informacs; Data Science and Entrepreneurship) followed by Mathemacs and Stascs (Informacs and Mathemacs; Data Science; Informacs and Applied Mathemacs; Informacs and Stascs), Natural and Life Sciences (Bioinformacs; Informacs and Natural Sciences; CS and Physics; AI for Biomedicine; Precision Medicine; Geoinformacs; Chemistry and Informacs; Biology and Informacs; Informacs Health) and Engineering (Computaonal Engineering; Computer Engineering; Electronics and Informaon Engineering; Informacs and Electronics; Informacs and Telecommunicaons; Informacs and Cybernecs; Informacs and Mechatronics; Informacs and Aerospace Engineering; Informacs and Civil Engineering; Informacs and Industrial Engineering). Joint degrees in Informacs plus Arts, Design and Media (Technical Communicaon; Design Informacs; CS and Communicaon, CS and Design; ICT and Media; Informacs and Informaon Science; Informacs and Library Science) or Law,
13 the scientific and societal impact of Data Science and Arficial Intelligence rather in the (external) applicaon domains, although an increase in Informacs students is recognisable. The early awareness of Data Science and Machine Learning as areas of rapidly increasing importance is considered crucial. Due to ineral forces (especially at larger universies), however, somemes acve strategies from the top university level are lagging, though boom up approaches might compensate for this. As in analogous situaons in the past, Informacs is struggling to be viewed only as a service department to help other domains in solving their Data Science problems. This is similar to previous interdisciplinary approaches (e.g., Mulmedia, Computer Graphics, Animaon) where Informacs is used as a tool, but gradually also as a research partner on an equal foong. The surge in interest in Data Science is accompanied by larger resource flows. The uncertainty about where to locate the Data Science acvies might lead to the simultaneous development of several research groups at one university. This decentralised approach might allow the different departments to grow and manage their own Data Science groups with discriminave strengths. The quickly amplified interest in Data Science is primarily considered an opportunity, where it is challenging to follow and sustain all parallel acvies. Currently the interest in Data Science, Machine Learning, and Arficial Intelligence is so large that this might overshadow all other areas of Informacs. Too imbalanced funding opportunies and student flows should be avoided to provide a well-adjusted porolio of competences to the society and economy. 5.4. Final Thoughts. The interest and popularity of Data Science and Arficial Intelligence has dramacally risen in the last 10-20 years. These technologies have the potenal to be driving and enabling technologies for the rapidly unfolding digital transformaon of society. The very fast developments lead to many daunng challenges, e.g., concerning privacy, security, bias, reliability, robustness, legal and ethical implicaons. It is not yet clear where Data Science should be anchored, e.g., in the Informacs Department, mul-department units, applicaon domains, also. Due to the developmental speed, established organisaons like universies are struggling to swily adjust their organisaonal structures and educaonal porolios, where long term changes have yet to be implemented. For some experts in potenal applicaons fields Data Science and Arficial Intelligence might be perceived as a hype that will cool down eventually. Despite this, most experts see the growing and pervasive importance of Informacs methods for their research area. The Data Scienst as a profession will be much more heterogeneous in the required skill set as compared to other interdisciplinary approaches, like Business Informacs, Bio-Informacs, or Medical Informacs, which basically involve two disciplines each. Considering the wide array of concerned fields, the Data Scienst will have a deep knowledge in just one or a few speciales and have a broad (and shallow) knowledge of the many other concerned areas. Data Science encompasses a mixture of muldisciplinary skills ranging from Mathemacs/Stascs, Programming/Databases, Domain Knowledge/So Skills, Communicaon and Visualisaon. The fluidity of the development and the breadth of the area will transfer to Data Science groups, centres, and curricula with largely varying specialisaons. It seems very likely that Informacs will play a key role in all these developments, where we should proacvely use the many emerging opportunies.
14 6. Creang actual rather than virtual interdisciplinary centres is likely to improve the chances of interdisciplinary research and teaching lasng. The following subsecons discuss the answers obtained for each specific queson. F 16. Does your university set up centres for interdisciplinary work? 6.1. Interdisciplinary centres. 28% of respondents said their university did not have real interdisciplinary centres (see Figure 16). Of those who commented on why there was a lack of centres only one actually replied that their management was averse to seng up addional administrave structures. The rest just said there were informal groupings, but nothing officially supported. 45% of all of the interdisciplinary centres were set up primarily for research and only 18% for teaching. The rest were primarily involved with industry. There were a broad range of centres in the different universies – clearly what experse is in a university and what the structure of the different departments/schools/facules impacts which centres are set up in addion to the exisng primary structures. The most common centres menoned with a significant Informacs component were in Computaonal Science, Data Science, Life Science, Digital Society, Energy, and Security. There were also more than one university with the following centres: Biomedical Engineering, Environment/Climate, Medical Imaging, and Complex Systems. There were a wide range of centres which only menoned at one university: Health, FinTech, Digital Humanies, Roboc Surgery, Cognive Ageing, Bioinformatics, and Geoinformacs. F 17. Why were the centres created?
15 6.2. Purpose of interdisiciplinary centres. 45% of all of the interdisciplinary centres were set up primarily for research and only 18% for teaching (see Figure 17). The rest were primarily involved with industry collaboraon or consultancy. F 18. Which enty control the interdisciplinary centres? 6.3. Ownership of interdisciplinary centres. Of the 36 respondents, 21 (or 58%) were independent enes within their university, 12 (or 1/3) were co-owned by the departments that are involved and the rest had a single department that owned them (see Figure 18). It is surprising that so many were separate enes as this means if they are not self-funding money will be an issue. F 19. Where are the centres located? 6.4. Locaon of interdisciplinary centres. More than half of the respondents said that the centres they were reporng on were located ‘elsewhere’ on campus (see Figure 19). Although a significant minority described the centres as ‘virtual’ implying that they actually had no physical locaon. One contributor disnguished between a large centre that had its own space, and smaller ones that were embedded in departments. Others spoke of large buildings that accommodated many different groups such that a nearby centre may not be associated with a department. 6.5. Funding of interdisciplinary centres. Only 25% of the interdisciplinary centres reported on were funded enrely externally, the funding sources of the rest were equally split between enrely internal and mixed sources of funding (see Figure 20). In the majority of cases where funding is enrely internal, the bulk of the actual cash seems to come from central funds with departments providing resources ‘in kind’. Frequently, me-limits were expressed (five and six years are menoned) aer which the centre is expected to be self-financing. For the universies
16 F 20. Who funds interdisciplinary centres? that reported on (enrely or parally) external funding, in many cases only government and EU programmes were explicitly cited as sources of funds. F 21. Are there changes planned for seng up or closing centres? 6.6. Planning for changing interdisciplinary centres. A quarter of respondents reported on plans to set up new centres (see Figure 21). Some described a noon of connuous evoluon of interdisciplinary work. Only AI was explicitly menoned as a target for the development of new centres. Other respondents, although not explicitly planning a new centre, menoned the issue of the periodic review of exisng centres cing various opons including merging centres and/or creang new centres. 6.7. Drivers for new acvies. Nearly one third of respondents reported on internal drivers and pressures bearing on innovave acvity (see Figure 22). Amongst the drivers, academic curiosity of staff and students was cited alongside a need for research collaboraon. Pressures included demands to increase students enrolment, to modify the curriculum and university ini- aves to set up a centre. One university also menoned limitaons of student numbers and limitaons on joint degrees that inhibited their development goals. The other respondents addressed external drivers and pressures. The most significant cited pressure concerned the societal influence of globalisaon together with an associated driver on universies to promote innovaon and technology transfer (47%). The next most significant pressure was the search for funding driven by government iniaves (30%) whilst other respondents observed the expanding role of Informacs in other disciplines and the pressure on Informacs Departments to support these disciplines (20%). Finally, one respondent menoned compeon between universies as an external pressure.
17 F 22. What are the drivers and pressures for new centres? F 23. Is any support provided for interdisciplinary work? 6.8. Support for interdisciplinary work. Respondents were evenly split over this queson (see Figure 23) although several of those who claimed instuonal support were rather equivocal - ”I would guess so” and “Some departments …”. Respondents who reported no instuonal support divided into those who spulated some form of external support and those who did it “as a hobby” ( 25%). F 24. Are there any centres for interdisciplinary work created from strategic iniaves?
18 6.9. Strategic vision. More than half of the respondents reported on centres created from strategic iniaves (see Figure 24). Many of these were oriented towards Informacs themes (FinTech, Crypto-currencies, Data Science) but several other types of centre were menoned (Learning and Educaon, Cultural Heritage, Sustainability and Energy). F 25. Is there an official strategy to widen the role of Informacs? 6.10. Official strategic vision. Respondents were exactly split on this queson (see Figure 25). Of those who answered posively, the emphasis was on muldisciplinarity for about half the respondents. Informacs topics cited by others included Cyber Security, Data-driven Innova- on, Intelligent Systems, Applied Computer Science and Digital Humanies. Respondents who answered “No” were not very forthcoming with their comments. 6.11. Final thoughts. Nineteen respondents contributed their overall views on the current situaon in their universies. One response was wholeheartedly supporve cing good funding, strong collaboraon and a sound internaonal reputaon as aracve to world-class researchers. Other respondents menoned limited or non-existent funding and other, higher priories (like increased student enrolment as factors which retarded interdisciplinary inia- ves. Two universies thought that Informacs was too junior a partner in the context of their university to make much impact. By far the most significant issue concerned the nature of either the central or departmental strategic direcon. Three respondents asked for greater freedom for individual researchers to be more creave with ideas, contacts and funding. However, there were ten contributors who asked for beer communicaon between facules, more structured research management or further internaonalisaon. A few just wanted more substance to the strategy - “It is only a goal without supporng instruments. ”; “Sll under construcon - too early to conclude …”. 7. C Despite the ubiquity of Informacs, in any area we examined there were a significant minority of surveyed universies that have not really engaged with interdisciplinarity. This does not preclude individual academics within these universies working on muldiscipline research and teaching. On the other hand there are Informacs academics who are concerned that the pressure towards muldisciplinary research is at the cost of core Informacs research. How much a university’s leadership want to encourage interdisciplinarity can be seen in its policies and financial support for staff and centres. The range is very large from no policy or financial support to using significant resources for hiring staff and seng up and funding centres. The most commonly found centres are in Data Science and this is an arena which is largely seen to
19 arise from Informacs and Stascs. It seems quite early to see a paern on how universies are going to develop with respect to interdisciplinary research. As to joint teaching, there are a very wide range of courses offered that include Informacs. Acknowledgements. We would like to thank all the respondents who wrote many thoughul answers and provided the raw data. In addion to the authors, there are many people who have put significant me into both designing the quesons and reading earlier dras. These include Stuart Anderson, Luis Caires, Brian Keegan, Ulf Lesser, Chris Sadler, and Hannes Werthner. Finally, this document would not exist without the broad and extensive help from Svetlana Tikhonenko of the Informacs Europe office.
20 A A. S: T W R I U (1) Research (a) When compared with single disciplinary research, does your university encourage or discourage (or neither) interdisciplinary research? If so how? (e.g. funding, me, physical centres) •Encourage •Discourage •Neither encourage nor discourage (b) Does your Informacs Department encourage or discourage (or neither) interdisciplinary research? If so how? •Encourage •Discourage •Neither encourage nor discourage (c) Are there interdisciplinary areas of research where your university could (should) enter but aren’t due to lack of university support? If so what are they? (d) Are there other players who have helped increase the interdisciplinary research in your university? For example has a funding body focused a programme on interdisciplinary PhD studentships which academics applied for?If so what external organisaons and what programmes have increased interdisciplinary research at your university? (e) Please comment on any advantages or disadvantages you perceive of your university’s arrangements. (2) Teaching (a) Does your university run joint degrees (e.g. X and Informacs, Informacs and X, X with Informacs, Informacs with X). If yes, what are they? •Yes •No (b) Are there plans to run new joint degrees or to close down joint degrees? If yes what are they? •Run new joint degrees •Close down joint degrees •Neither run nor close down (c) Who teaches the Informacs component of non-informacs degrees? For example, is programming taught to Physicists by members of the Physics Department, of the
21 Informacs Department or is there a servicing organisaon within your university that teaches Physics students to code (or some other mechanism)? (d) If Informacs is taught by people not located in an Informacs department are they Computer Sciensts by training or research? •They are Computer Sciensts •They are not Computer Sciensts •Informacs is not taught by people not located in an Informacs Department (e) Please comment on any advantages or disadvantages you perceive of your university's arrangements. (3) People (a) Does your university explicitly adverse/hire academics who focus on interdisciplinary research? •Yes •No (b) Are they rooted in a department, have a joint appointment across departments, or rooted in a centre? •Rooted in a department •Have a joint appointment across departments •Rooted in a centre (c) How is their quality judged for both appointment and for promoon?For example are they judged according to the criteria of one of the departments or both? Are the people who judge from a single department or both? (d) Are there any iniaves planned to hire in interdisciplinary areas? •Yes •No (e) Please comment on any advantages or disadvantages you perceive of your university's arrangements. (4) Data Science (a) Which department in your university is seen to own this area? Is it Informacs, Stascs, jointly or somewhere else? •Informacs Department •Stascs Department •Jointly Informacs and Stascs Department
22 •Somewhere else (please specify) (b) Has the rise of this area changed the percepon of Informacs overall in your university? •Yes •No (c) Please comment on any advantages or disadvantages you perceive of your university's arrangements. (5) Structure (a) Does your university set up centres for interdisciplinary work? If yes can you say which they are? •Yes •No (b) Are they for research, translaon (technology transfer), consultancy, and/or teaching? •Research •Translaon (technology transfer) •Consultancy •Teaching (c) Are they rooted in a single department (say which one), owned by the departments involved or independent? •Rooted in a single department •Owned by the departments involved •Independent (d) Are they physically located within a department, nearby or elsewhere on campus? •Within a department •Nearby a department •Elsewhere on campus (e) How are any centres funded? Does the university provide any money to startup or are they funded by external money? Does the university provide longer term money? (f) Are there plans to set up more centres or to close centres? If so what will they be? •Set up more centres •Close centres