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- 19 participants
- 7402 messages
Extension Call for Abstracts: New Deadline August 31 - Cognitive Computing - Merging Concepts with Hardware
by Prof. Dr. Gordon Pipa
Upon demand and the holiday period in August we extend the Deadline for submissions of abstracts until the end of August.
New Deadline for Abstract submission: August 31
Call for participation and contributions:
COGNITIVE COMPUTING: MERGING CONCEPTS WITH HARDWARE
December 18-20, 2018, Hannover, Germany
http://www.cognitive-comp.org/
** An interdisciplinary networking event / scientific conference **
We would like to draw your attention to an upcoming scientific community event. The aim of this conference is to work towards a general, productive, and rigorous theory of “computing” in non-digital, nonlinear physical substrates. Biological brains and unconventional computing machines would become understandable as different instantiations of the same underlying principles.
Three scientific communities, namely
- cognitive and computational neurosciences,
- theory of computation, and
- nonlinear materials, devices and systems
have since long been exploring diverse facets of such principles of non-digital computing. But differences in terminology, discipline-specific objectives and a scattered spectrum of formal methods have handicapped cross-fertilization. Everything in this conference is geared toward stimulating linkages between these fields:
- single-track with few but rather long oral presentations,
- long break and poster session times for person-to-person interaction,
- keynote and plenary speakers with interdisciplinary renown,
- a limited (200) number of participants,
- a splendid setting in the Castle of Herrenhausen, a heritage of the Kings of Hannover, with adjoining hectares of classical French gardening.
Invited and confirmed speakers:
- Kwabena Boahen, Stanford University
- Joanna J. Bryson, Univ. of Bath and Princeton University
- Chris Eliasmith, University of Waterloo
- Edward A. Lee, UC Berkeley
- Demetri Psaltis, EPFL Lausanne
- Pieter Roelfsema, Vrije Universiteit Amsterdam & Netherlands Institute for Neuroscience
- Susan Stepney, University of York
- Ipke Wachsmuth, University of Bielefeld
- David Wolpert, Santa Fe Institute
We solicit the submission of 2-page abstracts, with themes oriented toward our five topical sessions:
- applications of unconventional computing systems,
- theoretical concepts and mathematical foundations,
- neuromorphic hardware,
- novel physical substrates,
- guides from neuroscience for computing technologies.
In addition to latest specific achievements, we specifically encourage survey / introductory / didactic contributions. Detailed information can be found on http://www.cognitive-comp.org/ and in the Call for Abstracts that is posted there. Timelines:
- Abstract submission: July 31
- Notification of acceptance: September 30
- Final abstract for online publication: October 31
Registration fees:
- Students (incl. PhD students): 150 Euro
- Others (academic): 300 Euro
- Industry: 900 Euro
Contributors of accepted oral presentations will be exempted from fees and will receive travel refunding. The event was made possible by the generous support from the Volkswagen Foundation, Germany’s largest private organization for the advancement of scientific research.
The organizers:
- Daniel Brunner (photonics, neuromorphic architectures; CNRS / University of Burgundy - Franche-Comté)
- Herbert Jaeger (machine learning, nonlinear dynamics; Jacobs University
Bremen)
- Stuart Parkin (nano systems, quantum electronic materials; Max-Planck-Institute for Microstructure Physics, Halle)
- Gordon Pipa (neuroinformatics and cognitive computing; University of
Osnabrück)
Aug. 6, 2018
One postdoc and two PhD positions in Emmy-Noether group "Decision Neuroscience of Human Cooperation" in Hamburg, Germany
by Christoph Korn
Dear all,
I would be very grateful, if you could circulate the following job
announcements.
One postdoc and two PhD positions are available within the newly funded
Emmy-Noether research group "Decision Neuroscience of Human Cooperation"
led by Christoph Korn.
*Research topic and group:*
The group's aim is to investigate the decision-making and learning
processes relevant for successful social cooperation between humans. The
planned projects rely on a variety of theoretical and methodological
approaches including computational modeling of behavioral data,
evolutionary game theory, model-based and multivariate analyses of fMRI
data, pupillometry, virtual reality, and testing of psychiatric patients.
The group is based at the Institute of Systems Neuroscience (head: Prof.
Christian Büchel) at the University Medical Center Hamburg-Eppendorf in
Hamburg, Germany. Psychiatric patients are tested in collaboration with
Sabine Herpertz and her lab at the Heidelberg University Hospital.
You can find more information here: http://christoph-korn.net/
*What the group offers:*
- Opportunity to get hands-on supervision for learning various data
acquisition and analysis techniques
- Dynamic, interdisciplinary, and international research environment
within the Institute of Systems Neuroscience
- Research-dedicated T3 MR scanner (PRISMA), eye-tracking and VR
laboratories, excellent infrastructure for behavioral testing
- Multiple training opportunities within the institute (e.g.,
https://goo.gl/pU44vP)
- Possibility to join the local graduate school, which is a member
of national and international networks
- Possibility of research stay with collaboration partners in the US
*Your profile:*
- You are interested in investigating how cooperation,
decision-making, and learning relate to human brain activity and how they
go awry in psychiatric disorders.
- You like to design experiments, devise models, and analyze various
types of data.
- You have experience in conducting and analyzing behavioral
experiments with human participants.
- You are fluent in English. For the postdoc position and for one of
the PhD positions, knowledge of German is not necessary.
*Requirements for the postdoc position:*
- A PhD (completed or close to the completion) in neuroscience,
cognitive science, psychology, economics, medicine, or a related discipline.
- Experience in conducting and analyzing neuroimaging experiments
(including familiarity with SPM, FSL, or similar programs).
- Experience in using programming languages such as Matlab, R, or
Python.
- Experience in writing and publishing peer reviewed scientific
papers.
*Requirements for the PhD positions:*
- A Master of Science or an equivalent degree in neuroscience,
cognitive science, psychology, economics, medicine, or a related discipline.
- Experience in programming and in conducting or analyzing
neuroimaging experiments is a big plus.
- One of the PhD candidates will be (partly) based in Heidelberg to
test psychiatric patients. This position is ideal for applicants with an
interest in clinical psychiatry and requires knowledge of German to
interact with patients.
*Application and job specifications:*
Applications will be accepted until the positions are filled. The first
review of applications will be in the beginning of September 2018.
Preferred starting date is January 2019 but later starting dates may be
possible. Salary depends on experience and is based on German regulations
(the postdoc position is remunerated with the factor 100%, the PhD
positions with the factor 65%). The appointments will be initially for 3
years with the possibility for continuation. The group is committed to
maintaining a diverse and inclusive environment.
If you are interested, please send one pdf-document including your CV, a
brief statement of research interest, and the contact details of two
academic referees to *c.korn(a)uke.de <c.korn(a)uke.de>*. Informal inquiries
are welcome.
Looking forward to hearing from you,
Christoph
Aug. 3, 2018
A biologically motivated and more powerful alternative to locality-sensitive hashing
by Rod Rinkus
I believe this community will be interested in a new downloadable Java app
that I 've just made available on my web site (on this page
<http://www.sparsey.com/CSA_explainer_app_page.html>), which describes an
alternative, biologically motivated/plausible, way to achieve the goals of
locality-sensitive hashing (LSH). This alternative model, called Sparsey,
achieves a more graded notion of similarity preservation than LSH, and has
many other advantages as well. Sparsey has a natural correspondence to the
brain's cortex, centering on the idea that all items of information are
stored as sparse distributed codes (SDCs), a.k.a., cell assemblies, in
superposition in mesoscale cortical modules, e.g., macrocolumns (though
other structures, e.g., mushroom bodies, are also candidates).
Briefly, Sparsey preserves similarity from input space to SDR code space
(measured as intersection size) as follows.
- The process of choosing an SDC takes the form of Q independent softmax
choices, one in each of the Q WTA competitive modules (CMs) that comprise
the SDR coding field.
- The familiarity (inverse novelty) of the input, denoted "G", which is
in [0,1], is computed. This is an extremely simple computation.
- The amount of noise in those Q softmax choice processes is modulated
as a function of G. Basically, the softmax is over the distribution of
input summations of the competing cells (in a given CM), but we use G to
modulate (i.e. sharpen vs. flatten) those distributions.
- When G is near 1 (perfect familiarity), the distributions are greatly
sharpened, causing the expected number of CMs in which the cell with the
highest input summation wins (and thus, the expected intersection of the
resulting SDR with the closest matching previously stored SDR) to increase
towards Q. When G is near 0 (completely novel), the distributions are
flattened, causing the expected number of CMs in which the cell with max
input summation wins (and thus, the expected intersection of the resulting
SDR with the closest matching previously stored SDR) to decrease towards
chance. In other words, this G-based modulation of the distributions,
which can be viewed as varying the amount of noise in the choice process,
achieves similarity preservation.
I encourage members of this community to explore the app to understand this
simple and more powerful alternative to LSH. I welcome your feedback.
Sincerely,
Rod Rinkus
--
Gerard (Rod) Rinkus, PhD
President,
rod at neurithmicsystems dot com
Neurithmic Systems LLC <http://sparsey.com>
275 Grove Street, Suite 2-400
Newton, MA 02466
617-997-6272
Visiting Scientist, Lisman Lab
Volen Center for Complex Systems
Brandeis University, Waltham, MA
grinkus at brandeis dot edu
http://people.brandeis.edu/~grinkus/
<http://people.brandeis.edu/%7Egrinkus/>
Aug. 2, 2018
Postdoc position in Geometric Methods for Deep and Reinforcement Learning at RIST
by Luigi Malagò
===========================================================
*Subject*: Postdoc position in Machine Learning (1 year, renewable up to 2
years)
*Institution*: RIST - Romanian Institute of Science and Technology,
Cluj-Napoca
*Keywords*: Deep Learning, Reinforcement Learning, Stochastic Optimization,
Optimization over Manifolds, Information Geometry, Riemannian Geometry
*Application deadline*: 15 August 2018 (applicants are encouraged to apply
earlier)
*Salary*: around 2200 euro net
*Official announcement*: http://rist.ro/en/details/news/postdoc-positio
ns-in-deep-learning-and-machine-learning.html
===========================================================
Dear colleagues,
the Romanian Institute of Science and Technology (RIST) has an opening for
a postdoc position, in the context of the DeepRiemann project
“Riemannian Optimization
Methods for Deep Learning”, funded by European structural funds through the
Competitiveness Operational Program (POC 2014-2020). The appointments will
be for 1 year, with possible extensions up to 2 years.
The DeepRiemann project aims at the design and analysis of novel training
algorithms for Neural Networks in Deep Learning, by applying notions of
Riemannian optimization and differential geometry. The task of the training
a Neural Network is studied by employing tools from Optimization over
Manifolds and Information Geometry, by casting the learning process to an
optimization problem defined over a statistical manifold, i.e., a set of
probability distributions. The project is highly interdisciplinary, with
competences spanning from Machine Learning to Optimization, Deep Learning,
Statistics, and Differential Geometry. The objectives of the project are
multiple and include both theoretical and applied research, together with
industrial activities oriented to transfer knowledge, from the institute to
a startup or spin-off of the research group.
The positions will be part of the new Machine Learning and Optimization
group https://rist.ro/en/teams.html, which performs research at the
intersection of Machine Learning, Stochastic Optimization, Deep Learning,
and Optimization over Manifolds, using geometric methods based on
Information Geometry. The group is one of two newly-formed groups in
Machine Learning at RIST.
The official job announcement can be seen here:
http://rist.ro/en/details/news/postdoc-positions-in-deep-lea
rning-and-machine-learning.html
Informal inquiries can be sent to Dr. Luigi Malagò <malago(a)rist.ro>,
principal investigator of the DeepRiemann project.
Application deadline: 15 August 2018 (applicants are encouraged to apply
earlier)
best regards,
Luigi Malagò
Aug. 2, 2018
PhD positions at the Univ. of Leicester (for UK/EU candidates only)
by Okun, Michael (Dr.)
Fully Funded PhD Studentships (for UK/EU candidates only) to work at Prof. Quian Quiroga's lab at the Centre for Systems Neuroscience, University of Leicester, UK ( www.le.ac.uk/csn ).
The Centre for Systems Neuroscience at the University of Leicester, UK, offers up to 2, 3-Year Fully Funded (stipend plus fees) PhD positions for UK/EU candidates, to study single cell recordings in humans – performed in epileptic patients for curative surgery.
The project will investigate concept cells (a.k.a. Jennifer Aniston neurons) – that means, neurons in the hippocampus and surrounding areas that selectively fire to specific concepts, like different pictures and the written or spoken name of a particular person (e.g. Quian Quiroga et al, Nature 2005; Quian Quiroga Nature Reviews Neuroscience 2012), which are involved in declarative memory functions. The successful candidate will contribute to performing recordings with patients in collaborating hospitals and the analysis of the data to investigate the role of these neurons in memory formation.
Candidates should have very good quantitative skills (data processing, and programing e.g. in Matlab) and a strong background or interest in neuroscience. They should be able to work both independently and as part of a research team within the Centre for System Neuroscience at Leicester and with our external collaborators.
Informal enquiries are welcome and should be made to Emma Hawkins, Research Centre Manager, eeh18(a)le.ac.uk or 0116 252 3249. Interested candidates should send their curriculum vitae and a brief description of their scientific interests to Emma Hawkins (eeh18(a)le.ac.uk)
The closing date for the applications is Friday 5th September. Interviews are anticipated to take place on the 12th September.
Aug. 2, 2018
CfP : Workshop on Continual Unsupervised Sensorimotor Learning, IEEE ICDL 2018
by Nguyen, Sao Mai
*2nd Call for Contributions*
IEEE ICDL -2018 workshop on Continual Unsupervised Sensorimotor Learning
17th September 2018, Tokyo, Japan
Website : http://conferences.au.dk/icdl-epirob-2018-workshop
Participants are invited to submit short papers (max 4 pages) following the
standard IEEE conference template. Selected contributions will be presented
during the workshop as spotlight talks and in a poster session. Authors
will be invited to submit extended versions of their papers for a special
issue on Continual Unsupervised Sensorimotor Learning at IEEE TCDS.
==================================================================
Scope
As the algorithms for learning single tasks in restricted environments are
improving, new challenges have gained relevance. They include multi-task
learning, multimodal sensorimotor learning in open worlds and lifelong
adaptation to injury, growth and ageing.
In this workshop we will discuss the developmental processes involved in
the emergence of representations of action and perception in humans and
artificial agents in continual learning. These processes include
action-perception cycle, active perception, continual sensory-motor
learning, environmental-driven scaffolding, and intrinsic motivation.
The discussion will be strongly motivated by behavioural and neural data.
We hope to provide a discussion friendly environment to connect with
research with similar interest regardless of their area of expertise which
could include robotics, computer science, psychology, neuroscience, etc. We
would also like to devise a roadmap or strategies to develop mathematical
and computational models to improve robot performance and/or to attempt to
unveil the underlying mechanisms that lead to continual adaptation to
changing environment or embodiment and continual learning in open-ended
environments.
The primary list of topics covers the following (but not limited to):
-
Emergence of representations via continual interaction
-
Continual sensory-motor learning
-
Action-perception cycle
-
Active perception
-
Environmental-driven scaffolding
-
Intrinsic motivation
-
Neural substrates, neural circuits and neural plasticity
-
Human and animal behaviour experiments and models
-
Reinforcement learning and deep reinforcement learning for life-long
learning
-
Multisensory robot learning
-
Multimodal sensorimotor learning
-
Affordance learning
-
Prediction learning
Invited Speakers
-
Jochen Triesch, Frankfurt Institute of Advanced Studies, Germany
-
Emre Ugur, Boğaziçi University, Turkey (to be confirmed)
-
Yukie Nagai, Center for Information and Neural Networks, Japan (to be
confirmed)
-
David Ha, Google Brain (to be confirmed)
Call for Papers:
Prospective participants in the workshop are required to submit a
contribution as a short paper (max 4 pages)
Submissions must be in PDF following the standard IEEE conference style
<https://www.ieee.org/conferences/publishing/templates.html>. Send your PDF
manuscript indicating [ICDL-EPIROB 2018] in the subject to:
erhan.oztop(a)ozyegin.edu.tr
Selected contributions will be presented during the workshop as spotlight
talks and in a poster session.
Contributors to the workshop will be encouraged to submit extended versions
of the manuscripts to a special issue at IEEE Transactions on Cognitive and
Developmental Systems (TCDS). Submissions will be peer reviewed consistent
with the journal practices.
Important Dates:
Paper submission deadline: 5th August 2018
Notification of acceptance: 20th August 2018
Camera-ready version: 9th September 2018
Half-day workshop: 17th September 2018
Organizers:
-
Nicolás Navarro-Guerrero, Aarhus University, Aarhus, Denmark
-
Sao Mai Nguyen, IMT Atlantique, France
-
Erhan Öztop, Özyeğin University, Turkey
-
Junpei Zhong, National Institute of Advanced Industrial Science and
Technology (AIST), Japan
Nguyen Sao Mai
nguyensmai(a)gmail.com
Researcher in Cognitive Developmental Robotics
http://nguyensmai.free.fr
July 31, 2018
[CFP] IROS-2018 Workshop: Towards Intelligent Social Robots: From Naive Robots to Robot Sapiens
by Amir Aly
CALL FOR PAPERS
**Apologies for cross posting **
We are pleased to call for papers for the IROS-2018 workshop:
"*Towards Intelligent Social Robots: From Naive Robots to Robot Sapiens*"
In conjunction with the *IEEE/RSJ International Conference on Intelligent
Robots and Systems (IROS)** - Madrid - Spain - October *
*5th, 2018*
*Webpage: **http://intelligent-social-robots-ws.com/*
<http://intelligent-social-robots-ws.com/>
*I. Aim and Scope *Robots that cook creatively, clean up our rooms
dutifully, entertain our guests wittily and keep us company loyally. Robots
that assist human users in their daily chores and provide support in times
of need. Researchers around the world have envisioned such robot companions
for a long time. Thanks to numerous innovations in sensor technology and
software development, robots are now increasingly able to plan complex
tasks in unknown environments, learn from experience and adapt to changes
in the environment. The greatest challenges in robotics now lie in the
development of robot skills and high-level AI-based functionalities that
enable robots to work effectively in close collaboration with humans.
Aside from the numerous technical challenges, which must be overcome before
this vision can become a reality, multi-disciplinary research efforts are
also invested into the social engineering of robots. In order to engineer
“smart” robots that we accept, trust and welcome into our homes, it is
paramount that we identify and investigate the factors that affect social
interactions between humans and robots. For this purpose, computer
scientists, AI researchers, engineers and psychologists tackle important
questions that will determine whether robots will be perceived as helpful
and reliable companions or as irritating nuisances. How should robots look,
behave and communicate with us? What are our expectations of robot behavior
in a social context? How can robots learn using the capabilities of their
environments to achieve tasks and to address the needs of their human
co-inhabitants? What kind of robot intelligence is required for what kind
of tasks?
In this workshop, participants will discuss with seasoned experts and young
researchers what defines social and artificial intelligence for “smart”
robots and how modern technological advances can equip robots with such
intelligence. As such, this workshop aims to shed light on the intersection
between cognitive science, artificial intelligence, and robotics research
both from the theoretical and technical perspectives. Recent advances and
possible avenues for future research in the field of “smart” robotics are
principal topics of discussion during the workshop.
** *This workshop is endorsed by the IEEE Technical Committees*: *Human-Robot
Interaction and Coordination, Cognitive Robotics, and Robot Learning*.
*II. Keynote Speakers *
1. * Angelo Cangelosi *– University of Manchester/Plymouth – UK
2. *Yiannis Aloimonos *– University of Maryland – USA
3. * Selma Sabanovic *– Indiana University – USA
4. *Michael Beetz* – University of Bremen – Germany
5. *Matthias Scheutz *– Tufts University – USA
*III. Submission *
1. For paper submission, use the following EasyChair web link: *Paper
Submission
<https://easychair.org/account/signin.cgi?key=75348348.9VXAN4Pe7LmBAKCx;time…>*
.
2. Use the IEEE style (two-column format – US letter): *IEEE Templates
<https://www.ieee.org/conferences/publishing/templates.html>*.
3. Submitted papers should be limited to 2-6 pages maximum.
The primary list of topics covers the following points (but not limited
to):
- Multimodal human robot interaction
- Cognitive modeling of human behavior
- Cognitive architectures and strategies for intelligent interaction
with the environment
- AI and machine learning approaches applied to human-robot-environment
interaction
- Cloud robotics and ubiquitous computing
- Ambient assisted living
- Human intention recognition and prediction
- Robot acceptance
- Social engineering
- Language learning, embodiment, and social intelligence
- Computational modeling for high-level human cognitive functions
- Predictive learning from sensorimotor information
- Multimodal interaction and concept formulation
- Language and action development
- Learning, reasoning, and adaptation in collaborative human-robot tasks
- Affordance learning
- Learning by demonstration and imitation
- Language and grammar induction in robots
* IV. Important Dates *
1. Paper submission:
*20-August-2018 *
2. Notification of acceptance: *30-August-2018*
3. Camera-ready version:* 7-September-2018 *
4. Workshop: *5-October-2018*
*V. Organizers *
1. *Amir Aly *– Ritsumeikan University – Japan
2. *Sascha Griffiths *– Hamburg University – Germany
3. * Verena Nitsch *– Bundeswehr University – Germany
4. *Katerina Pastra* – Cognitive Systems Research Institute – Greece
5. *Tadahiro Taniguchi* – Ritsumeikan University – Japan
----------------------
*Amir Aly, Ph.D.*
Senior Researcher
Emergent Systems Laboratory
College of Information Science and Engineering
Ritsumeikan University
1-1-1 Noji Higashi, Kusatsu, Shiga 525-8577
Japan
July 31, 2018
3 Independent Academic Fellowship positions Computational Neuroscience
by Mark van Rossum
Academic Fellowship positions
The University of Nottingham is a research intensive university ranked
in the top 10 in the UK and in the top 30 of Europe. It has a strong
tradition in Cognition, Perception, Mathematical Biology, and structural
and functional Imaging. To support further development across these
areas, and stimulate new research opportunities, the University has
recently made a major investment in Computational Neuroscience.
As part of this investment we are inviting applications for three
independent fellowships (3 years). The positions are ideal for
researchers with a strong vision that are planning to develop their own
research group in a supportive, interdisciplinary environment with
outstanding research facilities.
We are interested in candidates working across a broad spectrum of
research topics areas in Computational Neuroscience, including
functional neuroimaging, neural networks, and models of cognition.
Research methodologies could include numerical simulation, machine
learning, theoretical neuroscience, and innovative data analysis. The
Fellows will be based in the School of Psychology and/or Mathematical
Sciences.
For the online application form see
https://www.nottingham.ac.uk/jobs/currentvacancies/ref/SCI219418
Informal inquiries:
Prof Mark van Rossum, mark.vanrossum(a)nottingham.ac.uk, or
Prof Mark Humphries, lpzmdh(a)exmail.nottingham.ac.uk.
--
Mark van Rossum,
Professor, Schools of Psychology and Maths, U Nottingham
Psych Bldg Rm LG.19, 44-115-74 86851, 44-7722049644
This message and any attachment are intended solely for the addressee
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Any views or opinions expressed by the author of this email do not
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where permitted by law.
July 31, 2018
CFP: Workshop on Crossmodal Learning for Intelligent Robotics in conjunction with IEEE/RSJ IROS 2018
by Pablo Barros
**Apologies for cross-posting**
1st CALL FOR PAPERS for the international workshop:
* Crossmodal Learning for Intelligent Robotics * in conjunction with
IEEE/RSJ IROS 2018
* Madrid, Spain - Friday 5 October 2018 *
* Website:
http://www.informatik.uni-hamburg.de/wtm/WorkshopCLIR18/index.php *
I. Aim and Scope
The ability to efficiently process crossmodal information is a key
feature of the human brain that provides a robust perceptual experience
and behavioural responses. Consequently, the processing and integration
of multisensory information streams such as vision, audio, haptics and
proprioception play a crucial role in the development of autonomous
agents and cognitive robots, yielding an efficient interaction with the
environment also under conditions of sensory uncertainty.
Multisensory representations have been shown to improve performance in
the research areas of human-robot interaction and sensory-driven motor
behaviour. The perception, integration, and segregation of multisensory
cues improve the capability to physically interact with objects and
persons with higher levels of autonomy. However, the multisensory input
must be represented and integrated in an appropriate way so that they
result in a reliable perceptual experience aimed to trigger adequate
behavioural responses. The interplay of multisensory representations can
be used to solve stimulus-driven conflicts for executive control.
Embodied agents can develop complex sensorimotor behaviour through the
interaction with a crossmodal environment, leading to the development
and evaluation of scenarios that better reflect the challenges faced by
operating robots in the real world.
This half-day workshop focuses on presenting and discussing new
findings, theories, systems, and trends in crossmodal learning applied
to neurocognitive robotics. The workshop will feature a list of invited
speakers with outstanding expertise in crossmodal learning.
II. Target Audience
This workshop is open to doctoral students and senior researchers
working in computer and cognitive science, psychology, neuroscience
and related areas with the focus on crossmodal learning.
III. Confirmed Speakers
1. * Yulia Sandamirskaya *
Institute of Neuroinformatics (INI), University and ETH Zurich
2. * Angelo Cangelosi *
Plymouth University and University of Manchester, UK
3. * Stefan Wermter *
Hamburg University, Germany
IV. Submission
1. Topics of interest:
- New methods and applications for crossmodal processing
(e.g., integrating vision, audio, haptics, proprioception)
- Machine learning and neural networks for multisensory robot perception
- Computational models of crossmodal attention and perception
- Bio-inspired approaches for crossmodal learning
- Crossmodal conflict resolution and executive control
- Sensorimotor learning for autonomous agents and robots
- Crossmodal learning for embodied and cognitive robots
2. For paper submission, use the following IEEE template:
<http://ras.papercept.net/conferences/support/support.php>*
3. Submitted papers should be limited to *2 pages (extended
abstract)* or *4 pages (short paper)*.
4. Send your pdf file to barros(a)informatik.uni-hamburg.de AND
jirak(a)informatik.uni-hamburg.de
Selected contributions will be presented during the workshop as
spotlight talks and in a poster session.
Contributors to the workshop will be invited to submit extended versions
of the manuscripts to a special issue (to be arranged). Submissions
will be peer reviewed consistent with the journal practices.
V. Important Dates
* Paper submission deadline: August 15, 2018
* Notification of acceptance: September 5, 2018
* Camera-ready version: September 15, 2018
* Workshop: Friday 5 October 2018
VI. Organizers
* German I. Parisi * Hamburg University, Germany
* Pablo Barros * Hamburg University, Germany
* Doreen Jirak * Hamburg University, Germany
* Jun Tani * Okinawa Institute of Science and Technology, Japan
* Yoonsuck Choe * Samsung Research & Texas A&M University, TX, USA
--
Dr.rer.nat. Pablo Barros
Postdoctoral Research Associate - Crossmodal Learning Project (CML)
Knowledge Technology
Department of Informatics
University of Hamburg
Vogt-Koelln-Str. 30
22527 Hamburg, Germany
Phone: +49 40 42883 2535
Fax: +49 40 42883 2515
barros at informatik.uni-hamburg.de
https://www.inf.uni-hamburg.de/en/inst/ab/wtm/people/barros.html
https://www.inf.uni-hamburg.de/en/inst/ab/wtm/
July 30, 2018
Four-year PhD in Computational Psychiatry at University College London
by Hrvoje Stojic
Four-year PhD in Computational Psychiatry at University College London
The International Max Planck Research School on Computational Methods in Psychiatry and Ageing Research (https://www.mps-ucl-centre.mpg.de/en) seeks applicants for PhD fellowships to be based at University College London (UCL). The PhD programme is strongly interdisciplinary and invites applications from potential students with a broad range of backgrounds including, but not limited to, neuroscience, mathematics, statistics, machine learning, computer science, physics, psychology, and medicine.
This is an international doctoral programme of the Max Planck UCL Centre for Computational Psychiatry and Ageing Research, which has sites in London and Berlin. The programme offers unique training in concepts and methods from computer science and statistics in relation to substantive research questions in cognitive neuroscience, psychiatry, and lifespan psychology. Training involves seminars, methods workshops, participation in summer schools, and collaboratively supervised research. Students will take one module per semester for the first two years of the programme on topics that range from psychiatry and decision science to advanced computational and statistical methods.
The main focus of the London site is to address cognitive and theoretical neuroscience questions relevant to understanding psychiatric disorders. Methods include neuroimaging and pharmacology, computational modelling of behaviour (learning, decision-making, emotion), and large-scale smartphone- and internet-based data collection. Students will have a primary supervisor within the Centre and possible supervisors include Tobias Hauser (http://v1.tobiashauser.ch/) and Quentin Huys (https://quentinhuys.com/) Collaboration is encouraged within the Centre and with other UCL departments including the Wellcome Centre for Human Neuroimaging (https://www.fil.ion.ucl.ac.uk/) and Gatsby Computational Neuroscience Unit (http://www.gatsby.ucl.ac.uk/)
We offer a generous four-year studentship stipend of £23,263 (tax free) per year, PhD registration fees at the current Home/EU rate, research expenses, and funds for travel to conferences or courses. (If you are an international student please note that this studentship only covers UK/EU fees and you will need to provide the difference between UK/EU and overseas fees.) Students will participate in international summer schools, seminars and workshops linked to the Berlin site, and have the opportunity to conduct a research project of up to 6 months in Berlin.
Requirements: This is a highly competitive programme. Successful applicants should have, or expect to get, at least an upper 2nd class degree (or the foreign equivalent), and should have some familiarity with computational and statistical methods. Students wishing to undertake a PhD with Quentin Huys are expected to take and pass courses (http://www.gatsby.ucl.ac.uk/teaching/courses/index.html) at the Gatsby Computational Unit. The next intake of students will be October 2018 (with the possibility for a later start date). UCL is committed to employing more people with disabilities and especially encourages them to apply. UCL also seeks to increase the number of women in those areas where they are underrepresented and therefore explicitly encourages women to apply.
Deadline: 26 August 2018. Shortlisted candidates will be interviewed in early September 2018 via Skype.
HOW TO APPLY. Please send: 1) a CV, 2) a statement of why you want to do the PhD (no more than 1 page), 3) a copy of your strongest piece of academic work (e.g., thesis, publication). Please also arrange for two reference letters to be sent to us by referees. Your surname should be the first word in the subject line of these emails. The statement should indicate which of the named supervisors you would be most interested in having as a primary supervisor (multiple faculty can be listed as potential supervisors). Please ensure that your surname is the first word in the subject line of the email and that all documents are clearly labelled with your surname and the type of document. All documents and references should be sent to MaxPlanckPhD(a)ucl.ac.uk by 26 August 2018 at midnight. Questions about the programme can be directed to MaxPlanckPhD(a)ucl.ac.uk.
July 30, 2018