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- 19 participants
- 7402 messages
Graduate studies in the neuroscience of decision-making
by Paul Cisek
Graduate studies in the neuroscience of decision-making
Department of neuroscience, laboratory of Paul Cisek
Applications are invited for a master's or doctoral
studentship in cognitive neuroscience. The successful
applicant will join a research group studying the neural
mechanisms of decision-making in humans and non-human
primates using a combination of computational and
experimental techniques. Research in our laboratory involves
computational models of the nervous system as well as
behavioral experiments, transcranial magnetic stimulation,
functional magnetic resonance imaging, and multi-electrode
recording from the cerebral cortex and subcortical regions.
Depending on the applicant's qualifications and interests,
they will help to design and conduct behavioral and
neurophysiological experiments, analyze data, develop
theoretical models of neural systems, prepare manuscripts
for publication, and participate in international
conferences. See www.cisek.org/pavel for information on
current projects and a list of sample publications.
While students with a strong background in mathematics,
computer science, or biological sciences are particularly
encouraged to apply, all motivated students with an interest
in understanding the brain will be considered. The
successful applicant will receive a competitive salary in
accordance with university guidelines. For further
information, please contact Dr. Paul Cisek
(paul.cisek(a)umontreal.ca) Applicants are asked to submit a
cover letter, curriculum vita, copies of academic
transcripts, and the names and contact information of 2
references, to:
Dr. Paul Cisek
Department of neuroscience
University of Montréal
C.P. 6128 Succursale Centre-ville
Montréal, QC H3C 3J7, CANADA
Phone: 514-343-6111 x4355
Web: www.cisek.org/pavel
email: paul.cisek(a)umontreal.ca
Applications will be accepted until the position is filled,
but preference will be given to applications received before
August 31, 2014.
Interviews may be possible at the Bernstein conference
(Göttingen, Sept 2-5, 2014,
http://www.bernstein-conference.de/) the INT neuroscience
conference (Marseille, Oct 2-3, 2014,
http://www.int.univ-amu.fr/2nd-colloque-de-l-INT) or the
Society for Neuroscience meeting (Washington DC, November
15-19, 2014,
http://www.sfn.org/annual-meeting/neuroscience-2014)
Montréal is consistently rated as one of the world's most
livable cities and has been called "Canada's Cultural
Capital". It has the highest number of university students
per capita in the continent, with more than 17,000 foreign
students from 150 countries and among the lowest tuition
fees in North America. Montréal's vibrant neuroscience
community spans four major universities (University of
Montréal, McGill University, Concordia University, and the
University of Québec at Montréal) and the Montréal
Neurological Institute. The University of Montréal is the
largest university in Québec and the second largest in
Canada, with over 55,000 students and 10,000 employees.
Deeply rooted in Montréal and dedicated to its international
mission, the Université de Montréal is one of the top
universities in the French-speaking world.
The University of Montréal is a French-speaking institution,
and most coursework is in French. However, the master's or
PhD thesis can be written in French or English.
-----------------------------------------------
Paul Cisek, Ph.D.
Groupe de recherche sur le système nerveux central
Département de neuroscience, local 4117
Université de Montréal
C.P. 6128 Succursale Centre-ville
Montréal QC H3C 3J7 Canada
Tél: 514-343-6111 x4355
Fax: 514-343-2111
e-mail: paul.cisek(a)umontreal.ca
-----------------------------------------------
Aug. 13, 2014
3 open PhD psoitions at the Neuroinformatics Lab at the Institute of Cognitive Science, University of Osnabrück, Germany
by Prof. Dr. Gordon Pipa
The Neuroinformatics Research Group (Prof. Dr. Gordon Pipa) of the Institute
of Cognitive Science invites applications for
3 Research Assistants (PhD student level), (Salary level E 13 TV-L 50%) to
be filled as soon as possible for a period of three years. The position
allows for further scientific qualification.
We invite applicants that are interested in research in Neuroinformatics,
with an emphasis on dynamical systems, machine learning, virtual reality,
computational linguistics and electrophysiology. Candidates will participate
in a highly international PhD program on cognitive science (with >40
currently enrolled students) and interdisciplinary research projects that
can involve cooperation with other disciplines of our institute. Candidates
should be highly motivated to understand the structure of neuronal coding
and neuronal representations. To study this, we involve different research
strategies that range from the development of highly sophisticated data
analysis strategies, to modelling of neuronal processes on the level of
recurrent networks.
The qualification profile of the candidates can range from a purely
mathematical neuroscientist, a dynamical systems researcher to
interdisciplinary candidates that share interest in performing experiments
with the virtual reality combined with EEG and sophisticated machine
learning-based analysis of recorded activity (at
http://ikw.uni-osnabrueck.de/en/ni/publications you find an overview of
recent research topics).
Description of Responsibilities:
The successful candidate will be involved in several research projects that
range from BSc to MSc projects. The position also involves teaching
Cognitive Science courses at BSc and MSc level
(2 hours/week).
Required Qualifications:
Candidates are expected to have an excellent academic degree
(Master/diploma). Applicants should have an excellent knowledge in the field
of machine learning, i.e. generalized linear and state space models, kernel
methods, reservoir computing and deep learning. Experience or a strong
interest in the fields of complex systems, computational neurosciences,
dynamical systems theory and the concepts to study these, i.e. bifurcation
and stability analysis, and delay- coupled differential equations,
measurements of complexity, are encouraged. Experience or a strong interest
in experimental methods such as EEG, and virtual reality are highly welcome.
In addition, a strong interest or experience in the estimation of causal
interactions from time series is welcome.
As a certified family-friendly institution, Osnabrück University is
committed to furthering the compatibility between work/studies and family
life.
As an employer, Osnabrück University is particularly concerned with creating
equal opportunities for women and men. Women with relevant qualifications
are therefore strongly encouraged to apply for the position. Preference will
be given to women with equal qualifications. Furthermore, qualified
applicants with disabilities will be favored.
Applications with the usual documentation, including two letters of
recommendation, should be submitted by e-mail in a single PDF file to the
Director of the Institute of Cognitive Science
(office(a)ikw.uni-osnabrueck.de) no later than 08.09.2014. An electronic copy
should be sent to Prof. Dr. Gordon Pipa (gpipa(a)uni-osnabrueck.de) who can
also be contacted for further information.
----------------------------------------------------------------------------
---
Professor and Chair of the Neuroinformatics Department
Dr. rer. nat. Gordon Pipa
Institute of Cognitive Science, Room 31/404
University of Osnabrueck
Albrechtstr. 28, 49069 Osnabrueck, Germany
tel. +49 (0) 541-969-2277
fax (private). +49 (0) 5405- 500 80 98
home office. +49 (0) 5405- 500 90 95
e-mail: <mailto:gpipa@uos.de> gpipa(a)uos.de
webpage: <http://www.ni.uos.de/> http://www.ni.uos.de
research gate:
<https://www.researchgate.net/profile/Gordon_Pipa/?ev=prf_act>
https://www.researchgate.net/profile/Gordon_Pipa/?ev=prf_act
google scholar: <http://scholar.google.de/citations?user=joR6mgEAAAAJ>
http://scholar.google.de/citations?user=joR6mgEAAAAJ
Personal Assistent and Secretary of the Neuroinformatics lab:
Anna Jungeilges
Tel. +49 (0)541 969-2390
Fax +49 (0)541 969-2246
Email: <mailto:anna.jungeilges@uni-osnabrueck.de>
anna.jungeilges(a)uni-osnabrueck.de
visit us on
<http://www.facebook.com/CognitiveScienceOsnabruck>
http://www.facebook.com/CognitiveScienceOsnabruck
<https://twitter.com/#!/CogSciUOS> https://twitter.com/#!/CogSciUOS
Aug. 13, 2014
Workshop on Stochastic Neural Computation in Paris
by Wolfgang Maass
I am organizing a Workshop on Stochastic Neural Computation on Nov.27
and 28, 2014 in Paris, at the European Institute for Theoretical
Neuroscience. You are welcome to attend, and present a poster (if it
fits into the context of this workshop).
This will be a very informal "working" workshop, where we want to bring
together experts from neuroscience, cognitive science, theory, and
neuromorphic hardware, that are working on different angles of
stochastic neural computation with biological or artificial spiking
neurons. The talks will focus on new results. We will also have plenty
of time to discuss open problems and challenges that arise. Possibly
this meeting could mark the beginning of some loose research network
around this exciting research topic.
You can find a preliminary program at
https://flagship.kip.uni-heidelberg.de/jss/Ag?eMAt=38&showAgenda=x&eKn=SCom…
Information on the venue and hotel information is available at
https://flagship.kip.uni-heidelberg.de/jss/Ag?eMAt=38&SiD=x&eKn=SComNo27
The participation is free, but prior registration by October 1 is
required on
https://flagship.kip.uni-heidelberg.de/jss/Ag?eMAt=38&eKrn=SComNo27
Under "Registration type" on the registration page you can indicate
whether you want to present a poster (please send title and abstract to
me per email). There will be no registration fee.
best regards
Wolfgang Maass
--
Prof. Dr. Wolfgang Maass
Institut fuer Grundlagen der Informationsverarbeitung
Technische Universitaet Graz
Inffeldgasse 16b , A-8010 Graz, Austria
Tel.: ++43/316/873-5822
Fax ++43/316/873-5805
http://www.igi.tugraz.at/maass/Welcome.html
Aug. 13, 2014
Neural plasticity for rich and uncertain robotic information streams, abstract deadline extended 12th September.
by f.vandervelde@utwente.nl
Dear All,
We extended the abstract submission deadline for the research topic “Neural plasticity for rich and uncertain information streams”, hosted by Frontiers in Neurorobotics, due to requests. The new deadline is 12th of September. Note that the paper submission deadline remains unchanged (Jan 12, 2015).
Description: Models of adaptation and neural plasticity are often demonstrated in robotic scenarios with heavily pre-processed and regulated information streams to provide learning algorithms with appropriate, well timed, and meaningful data to match the assumptions of learning rules. On the contrary, natural scenarios are often rich of raw, asynchronous, overlapping and uncertain inputs and outputs whose relationships and meaning are progressively acquired, disambiguated, and used for further learning. Therefore, recent research efforts focus on neural embodied systems that rely less on well timed and pre-processed inputs, but rather extract autonomously relationships and features in time and space. In particular, realistic and more complete models of plasticity must account for delayed rewards, noisy and ambiguous data, emerging and novel input features during online learning. Such approaches model the progressive acquisition of knowledge into neural systems through experience in environments that may be affected by ambiguities, uncertain signals, delays, or novel features. This research topic promises to unveil fundamental properties and dynamics of neural learning system that are naturally immersed in a rich information flow. We invite papers describing advances in robotic neural learning systems that model adaptation or plasticity with a rich and realistic stream of information.
Abstract Submission Deadline (extended): Sep 12, 2014,
Article Submission Deadline: Jan 12, 2015
Topic Editor(s): Andrea Soltoggio, Frank van der Velde
Frontiers, a Swiss open-access publisher, recently partnered with Nature Publishing Group to expand its researcher-driven Open Science platform. Frontiers articles are rigorously peer-reviewed, can be disseminated freely and are widely read by your colleagues and by the broader scientific and medical research communities.
The idea behind a research topic is to create an organized, comprehensive collection of several contributions, as well as a forum for discussion and debate. Contributions can be articles describing original research, methods, hypothesis & theory, opinions, etc.
We have created a homepage on the Frontiers website (Frontiers in Neurorobotics) where all articles will appear after peer-review and where participants in the topic will be able to hold relevant discussions:
http://www.frontiersin.org/Neurorobotics/researchtopics/Neural_plasticity_f….
Frontiers will also compile an e-book, as soon as all contributing articles are published, that can be used in classes, be sent to foundations that fund your research, to journalists and press agencies, or to any number of other organizations.
As such, a manuscript accepted for publication incurs a publishing fee, which varies depending on the article type. Research Topic manuscripts receive a significant discount on publishing fees. Please take a look at this fee table: http://www.frontiersin.org/about/PublishingFees.
Once published, your articles will remain free to access for all readers, and will be indexed in PubMed and other academic archives. As an author in Frontiers, you retain the copyright to your own papers and figures.
Should you choose to participate, please confirm by sending me a quick email and then your abstract no later than Sep 12, 2014 using the following link:http://www.frontiersin.org/Neurorobotics/researchtopics/Neural_plastic…
With best regards,
Frank van der Velde and Andrea Soltoggio
Guest Associate Editors, Frontiers in Neurorobotics
www.frontiersin.org
Aug. 13, 2014
Seeking community input for Neurodata Without Borders
by Jeff Teeters
Dear Colleague,
The Neurodata Without Borders (NWB) project has just started. The project
goal is to build a common data format for neurophysiology data from Allen
Brain Institute, Janelia Farm and two labs from NYU and Caltech. Although
focusing on a limited set of use cases, the project also aims to develop
products that will serve the broader community.
At this point we would like to solicit community input about
ideas/approaches for designing a generalizable neurophysiology data format.
If you are interested in contributing to this project, please review the
project description at:
https://crcns.org/NWB
and fill out the questionnaire:
https://docs.google.com/forms/d/1CNTd4M-8kQ_WhEZc7n7WxpTa0LOupt_q3z21E1fRxj…
On the basis of the questionnaire responses and ensuing communication, we
will organize the first hackathon meeting of the project, to be held November
20 – 22, 2014 (just after SfN) at Janelia Farm, in Ashburn, Virginia. At
this hackathon we will discuss in detail the requirements for a common
format based on the project use cases and also discuss, compare and
evaluate alternative techniques for implementing the common format.
More information about the project is available in a recent press release:
http://www.kavlifoundation.org/kavli-news/prominent-us-research-institution…
Please forward this email to anyone you know with relevant expertise who
may be interested in contributing to this project.
Thank you,
Fritz Sommer and Jeff Teeters
Redwood Center for Theoretical Neuroscience
UC Berkeley
Aug. 13, 2014
DEADLINE EXTENDED: 8th International Conference on Bio-inspired Information and Communications Technologies (BICT 2014, formerly BIONETICS)
by Jun Suzuki
CFP: 8th International Conference on Bio-inspired Information and
Communications Technologies (BICT 2014, formerly BIONETICS)
http://www.bionetics.org/
Paper submission deadline extended: September 1, 2014
December 1 (Mon) - December 3, 2014 (Wed)
Boston, MA, USA
In-corporation with ACM
BICT 2014 aims to provide a world-leading and multidisciplinary venue
for researchers and practitioners in diverse disciplines that seek the
understanding of key principles, processes and mechanisms in biological
systems and leverage those understandings to develop novel information
and communications technologies (ICT). BICT 2014 targets two thrusts:
THRUST 1: Indirect/Weak Bioinspiration (ICT designed after biological
principles, processes and mechanisms). Examples include evolutionary
computation, artificial gene regulatory networks, neural computation,
swarm intelligence, cellular automata, artificial immune systems,
artificial life, artificial chemistry, reaction-diffusion computing,
simulated annealing, self-organization and network science.
THRUST 2: Direct/Strong Bioinspiration (ICT utilizing biological
materials and systems). Examples include cellular computing, molecular
computing/communication, membrane computing, DNA computing and memory,
bacterial computing, Physarum computing and quantum computing.
Expected, but not exclusive, topics are:
* Signal/information processing and communication for bio-inspired ICT
* Algorithms and their applications for bio-inspired ICT
* Formal models and methods for bio-inspired ICT
* Bio-inspired software and hardware systems
* Modeling, simulations and empirical experiments of bio-inspired ICT
* Self-* and stability properties in bio-inspired ICT
* Security, robustness and resilience in bio-inspired ICT
* Design, configuration and management issues in bio-inspired ICT
* Software engineering and performance engineering in bio-inspired ICT
* Tools, testbeds and deployment aspects in bio-inspired ICT
* Applications, experiences and standardization of bio-inspired ICT
* Socially-aware, game theoretic and other metaphor-assisted
interdisciplinary research
Application domains include, but not limited to, autonomic computing,
bioinformatics, biomedical engineering, computer networks, computer
vision, data mining, e-health, green computing and networking,
grid/cloud computing, intelligent agents, mechanical engineering,
molecular communication, nano-scale computing and networking,
optimization, pervasive computing, robotics, security, social networks,
software engineering and systems engineering.
IMPORTANT DATES:
Regular paper submission due: September 1
Short and poster/demo paper submission due: September 22
Notification for regular papers: September 22
Notification for short and poster/demo papers: October 6
Camera ready due: October 13
SPECIAL TRACKS:
In addition to the regular track that covers general/mainstream topics,
BICT 2014 features the following special tracks that focus on specific,
emerging or underrepresented topics.
* Artificial, Biological and Bio-Inspired Intelligence (ABBII)
* Artificial Intelligence and Software Engineering (AISE)
* Body Area Soft Computing (BASC)
* Biologically-Inspired Process Calculi (BIPC)
* Bio-Inspired Machine Vision (BIMV)
* Bio-inspired/Biomimetic Microsystems & Microdevices (BMM)
* Bio-inspired Wireless Network Security (BWNS)
* Complex Adaptive Systems (CAS)
* Engineering Applications from Molecular and Gene Regulatory Networks
(EMNET)
* Molecular Communication and Networking (MCN)
* Morphogenetic Collective Systems (MCS)
* Modularization for Practical Software Engineering (MPSE)
* Resilient Networks (RN)
* Swarm and Modular Robotics (SAMR)
* Smart Body Area Networks (SBAN)
* Security and Privacy in Bio-inspired Networks (SPBN)
PAPER SUBMISSION:
Authors are invited to submit regular papers (up to 8 pages each), short
papers (up to 4 pages each) or poster/demo papers (up to 2 pages each)
in ACM's paper template. Up to two extra pages are allowed for each
paper with extra page charges. See
http://bionetics.org/2014/show/initial-submission for more details.
PUBLICATION:
All accepted paper will be published through ACM Digital Library and
submitted for indexing by SI, EI Compendex, Scopus, ACM Library, Google
Scholar and many more. Selected papers will be considered for
publication in leading journals including:
* ACM/Springer Mobile Networks and Applications
* Elsevier Information Sciences
* Elsevier Nano Communication Networks Journal
* Int'l Journal of Software Engineering and Knowledge Engineering
* Cloud-integrated Cyber-Physical Systems (Springer book)
KEYNOTE SPEAKERS:
* Andrew Adamatzky, University of the West of England, Bristol, UK
* Gabriel Ciobanu, Romanian Academy, ICS, Iasi, Romania
* Andrew Eckford, York University, Canada
* Valeriy Perminov, BioTeckFarm, Ltd., Russia
* Hiroki Sayama, SUNY Binghamton, USA
* Theresa Schubert, Bauhaus-Universität Weimar, Germany
* Jon Timmis, University of York, UK
* Honggang Wang, University of Massachusetts, Dartmouth, USA
* Justin Werfel, Harvard University, USA
GENERAL CHAIR:
Jun Suzuki, University of Massachusetts, Boston, USA
PC CHAIR:
Tadashi Nakano, Osaka University, Japan
PC VICE CHAIRS:
Andrew Adamatzky, University of the West of England, UK
Gabriel Ciobanu, Romanian Academy, Institute of Computer Science, Romania
Douglas Dow, Wentworth Institute of Technology, USA
Hiroaki Fukuda, Shibaura Institute of Technology, Japan
Tyler Garaas, Mitsubishi Electric Research Laboratories, USA
Preetam Ghosh, Virginia Commonwealth University, USA
Isao Hayashi, Kansai University, Japan
Yu-Hsiang Hsu, National Taiwan University, Taiwan
Saori Iwanaga, Japan Coast Guard Academy, Japan
Masao Kubo, National Defense Academy, Japan
Paul Leger, Universidad Católica del Norte, Chile
Shih-Hsi "Alex" Liu, California State University, Fresno, USA
Michael L. Mayo, US Army Engineer Research and Development Center, USA
Parisa Memarmoshrefi, University of Goettingen, Germany
Marjan Mernik, University of Maribor, Slovenia
Alan Millard, University of York, UK
Michael Moore, USA
Marc Pomplun, University of Massachusetts Boston, USA
Florian Raudies, Boston University, USA
Hiroshi Sato, National Defense Academy, Japan
Hiroki Sayama, SUNY Binghamton, USA
Tomohiro Shirakawa, National Defense Academy of Japan, Japan
Jon Timmis, University of York, UK
Athanasios Vasilakos, University of Western Macedonia, Greece
Honggang Wang, University of Massachusetts Dartmouth, USA
Jun Zhou, Shanghai Jiao Tong University, China
Aug. 12, 2014
Parallel computing workshop at SFN 2014 meeting
by Ted Carnevale
What: Using the Neuroscience Gateway Portal for Parallel Simulations
A Satellite Symposium at the 2014 Society for Neuroscience Meeting
Where: Location to be announced in downtown Washington, DC
When: 9 AM - Noon on Saturday, November 15, 2014
Speakers to include: A. Majumdar, S. Sivagnanam, and T. Carnevale
Registration deadline: Friday, October 31, 2014
This workshop is for neuroscientists who need to use parallel
supercomputers for large modeling projects. With support from
NSF, we have been developing the Neuroscience Gateway Portal (NSG)
http://www.nsgportal.org/, which
* provides free CPU time on NSF-supported high performance
computing resources
* has a browser-based interface that simplifies the tasks of
uploading models, specifying job parameters, monitoring job
status, and storing and retrieving output data
* already has many widely-used simulatiors optimally installed
and configured, including Brian, GENESIS3, NEST, NEURON,
and PyNN
The workshop will combine didactic presentations by NSG's developers,
discussions with experienced users, and hands on instruction in how
to use the portal. Come find out how the NSG can be useful in your
own research!
For more information and the online registration form see
http://www.neuron.yale.edu/neuron/static/courses/nsg2014/nsg2014.html
--Ted
Aug. 12, 2014
postdoctoral position, Deep Brain Stimulation in Parkinson's disease, IUPUI and Purdue University
by Leonid Rubchinsky
Postdoctoral opening in computational neuroscience
The Department of Mathematical Sciences at Indiana University-Purdue
University Indianapolis (IUPUI) invites applications for a postdoctoral
position in the area of mathematical and computational neuroscience. The
position is with a collaborative group of scholars from the Department of
Mathematical Sciences at IUPUI, Weldon School of Biomedical Engineering at
Purdue University and the Department of Neurosurgery of the Indiana
University School of Medicine. The current research project is aimed at the
development of adaptive deep brain stimulators for Parkinson's disease. Part
of the duties may also include some teaching in the Mathematical Sciences.
The position offers excellent interdisciplinary training possibilities in
mathematical biology and computational neuroscience.
Qualifications: Applicants are expected to have a Ph.D. in mathematics,
physics, neuroscience, biomedical engineering, computer science or other
related field. Applicants should have strong quantitative skills in data
analysis and modeling and a strong interest in neuroscience applications.
Experience in nonlinear dynamics/control theory/neurophysiology is a plus.
How to apply: Send your CV with a list of publications, research statement,
and arrange two-three recommendation letters to be sent to Dr. Leonid
Rubchinsky via e-mail: leo(a)math.iupui.edu. Address all your inquiries to the
same e-mail. Alternatively send your application by regular mail to: Dr.
Leonid Rubchinsky, Department of Mathematical Sciences, IUPUI, 402 N.
Blackford Street, LD 270, Indianapolis, IN 46202. Screening of applications
will continue until position is filled.
IUPUI is an EEO/AA Employer, M/F/D.
***********************
Leonid Rubchinsky, PhD
Associate Professor
Department of Mathematical Sciences, Indiana University - Purdue University,
Indianapolis
Stark Neurosciences Research Institute, Indiana University School of
Medicine
402 N. Blackford St
Indianapolis, IN 46202
leo(a)math.iupui.edu
http://www.math.iupui.edu/~leo
317-274-9745
317-274-3460 (fax)
***********************
Aug. 12, 2014
Job offer: PhD student position
by Seeger, Simone
The Department of Theoretical Neuroscience (Head: Prof. Daniel Durstewitz) at the Central
Institute of Mental Health (Mannheim) invites applications for a
PhD student position (E 13 TV-L)
(50% of the fulltime weekly hours) in the newly founded research group Data-driven network
models of higher cognitive functions (Head: Dr. Joachim Hass) to be filled as soon as
possible. The position is initially limited for 3 years.
The research group develops biologically realistic computational neural network models of the
neocortical structures such as the prefrontal cortex and the motor cortex. These models closely
adhere to physiological data from both in vitro and in vivo experiments and are used to study
higher cognitive functions such as time perception and working memory.
The successful candidate will work in the project "The human mirror neuron system -
measurement and beyond" funded by the Heidelberg Academy for Sciences and
Humanities. The joint project of the Departments of Theoretical Neuroscience and Clinical
Psychology of the Central Institute of Mental Health aims at a deeper understanding of the
mirror neuron system in humans, which is thought to play a crucial role in social cognition by
representing the emotions and intentions of others in the motor cortex. The project combines
multimodal measurements (involving fMRI, EEG, transcranial magnetic stimulation and
genotyping) with computational modeling.
The Central Institute of Mental Health is an internationally renowned research institute for
psychiatry and neuroscience as well as a clinic for psychiatry, psychotherapy and
psychosomatics (part of the medical faculty of the University of Heidelberg). The research group
closely interacts with neurobiologists and psychologists at the institute. The Department of
Theoretical Neuroscience is focused on computational modeling and statistical data analysis of
prefrontal cortex and hippocampus functions. It is one of the core research units of the
Bernstein Center for Computational Neuroscience (BCCN) Heidelberg-Mannheim. Access to
high-performance computing facilities is provided.
Tasks: The project involves the development of a rate-based, brain-scale model as well as the
further development of an existing spiking network model of the motor cortex. The resulting twostage
model is then being adapted to the multimodal experimental data using stochastic
optimization techniques. In particular, the effects of the transcranial magnetic stimulation and
different levels of dopamine and oxytocin are to be implemented in the model and directly
compared with the experimental data. Participation in the project organization and publication
writing is also expected. It is also possible to participate in the analysis of the fMRI data.
Requirements: The candidate should have a university degree (master or equivalent) in
physics, mathematics, computer science, computational neuroscience or similar, a strong
interest in neurobiological research and very good programming skills (ideally in MATLAB and
C). Good communication skills in English as well as knowledge in nonlinear dynamics,
numerical optimization or neural modeling are also required. Knowledge in neuroscience or
experimental psychology is beneficial.
Applicants should sent their application documents (cover letter including a brief description of
personal qualifications and future research interests, CV and contact details of two personal
references) to joachim.hass(a)zi-mannheim.de<mailto:joachim.hass@zi-mannheim.de>. Questions and informal discussions about the
position are also welcome under this email address. The call is open until the position is filled.
***
Simone Seeger, M.A.
Administration Bernstein Center for Computational Neuroscience
Zentralinstitut für Seelische Gesundheit
Postfach 12 21 20, 68072 Mannheim
J5, 68159 Mannheim
Telefon: 0621/1703-1326 oder 06221/54-8310
Fax: 0621/1703-2915
E-Mail: Simone.Seeger(a)zi-mannheim.de<mailto:Simone.Seeger@zi-mannheim.de>
Internet: http://www.bccn-heidelberg-mannheim.de<http://www.bccn-heidelberg-mannheim.de/>
***
Simone Seeger, M.A.
Administration Bernstein Center for Computational Neuroscience
Zentralinstitut für Seelische Gesundheit
Postfach 12 21 20, 68072 Mannheim
J5, 68159 Mannheim
Telefon: 0621/1703-1326 oder 06221/54-8310
Fax: 0621/1703-2915
E-Mail: Simone.Seeger(a)zi-mannheim.de<mailto:Simone.Seeger@zi-mannheim.de>
Internet: http://www.bccn-heidelberg-mannheim.de<http://www.bccn-heidelberg-mannheim.de/>
Aug. 12, 2014
Call for Papers: IEEE Computational Intelligence Magazine (CIM) Special Issue: "Computational Intelligence for Changing Environments"
by Dr Amir Hussain
Call for Papers (Please also forward to any interested colleagues -
with advance apologies for any cross-postings!)
IEEE Computational Intelligence Magazine (CIM)
(http://cis.ieee.org/ieee-computational-intelligence-magazine.html)
Special Issue on "Computational Intelligence for Changing
Environments" (Submission Deadline: 15 Nov 2014)
(http://www.cs.stir.ac.uk/~ahu/IEEE-CIM-CICE2015.pdf)
Guest Editors: Amir Hussain, Dacheng Tao, Jonathan Wu and Dongbin Zhao
Aims and Scope:
Over the past decade or so, computational intelligence techniques have
been highly successful for solving big data challenges in changing
environments. In particular, there has been growing interest in so
called biologically inspired learning (BIL), which refers to a wide
range of learning techniques, motivated by biology, that try to mimic
specific biological functions or behaviors. Examples include the
hierarchy of the brain neocortex and neural circuits, which have
resulted in biologically-inspired features for encoding, deep neural
networks for classification, and spiking neural networks for general
modelling.
To ensure these models are generalizable to unseen data, it is common
to assume that the training and test data are independently sampled
from an identical distribution, known as the sample i.i.d. assumption.
In dynamic and non-stationary environments, the distribution of data
changes over time, resulting in the phenomenon of ‘concept drift’
(also known as population drift or concept shift), which is a
generalization of covariance shift in statistics. Over the last five
years, transfer learning and multitask learning have been used to
tackle this problem. Fundamental analyses using probably approximately
correct (PAC) and Rademacher complexity frameworks have explained why
appropriate incorporation of context and concept drift can improve
generalizability in changing environments.
It is possible to use human-level processing power to tackle concept
drift in changing environments. Concept drift is a real-world problem,
usually associated with online and concept learning, where the
relationships between input data and target variables dynamically
change over time. Traditional learning schemes do not adequately
address this issue, either because they are offline or because they
avoid dynamic learning. However, BIL seems to possess properties that
would be helpful for solving concept drift problems in changing
environments. Intuitively, the human capacity to deal with concept
drift is innate to cognitive processes, and the learning problems
susceptible to concept drift seem to share some of the dynamic demands
placed on plastic neural areas in the brain. Using improved biological
models in neural networks can provide insight into cognitive
computational phenomena.
However, a main outstanding issue in using computational intelligence
for changing environments and domain adaptation is how to build
complex networks, or how networks should be connected to the features,
samples, and distribution drifts. Manual design and building of these
networks are beyond current human capabilities. Recently,
computational intelligence methods has been used to address concept
drift in changing environments, with promising results. A Hebbian
learning model has been used to handle random, as well as correlated,
concept drift. Neural networks have been used for concept drift
detection, and the influence of latent variables on concept drift in a
neural network has been studied. In another study, a timing-dependent
synapse model has been applied to concept drift. These works mainly
apply biologically-plausible computational models to concept drift
problems. Although these results are still in their infancy, they open
up new possibilities to achieve brain-like intelligence for solving
concept drift problems in changing environments.
Taking the current state of research in computational intelligence for
changing environments into account, the objective of this special
issue is to collate this research to help unify the concepts and
terminology of computational intelligence in changing environments,
and to survey state-of-the-art computational intelligence
methodologies and the key techniques investigated to date. Therefore,
this special issue invites submissions on the most recent developments
in computational intelligence for changing environments algorithms and
architectures, theoretical foundations, and representations, & their
application to real world problems. We also welcome timely surveys &
review papers.
Topics of Interest include (but are not limited to):
• Computational intelligence methodologies and implementation for
changing environments
• Transfer learning, Multitask learning, Domain adaption
• Incremental Learning architectures, Unsupervised and semi-supervised
learning architectures
• Incremental Knowledge augmentation, Representation learning and disentangling
• Incremental Adaptive Neuro-fuzzy systems
• Incremental and single-pass data mining
• Incremental Neural Clustering & Regression
• Incremental Adaptive decision systems
• Incremental Feature selection and reduction
• Incremental Constructive Learning
• Novelty detection in Incremental learning
Submission Process
The maximum length for the manuscript is typically 25 pages in single
column format with double-spacing, including figures and references.
Authors should specify in the first page of their manuscripts the
corresponding author’s contact and up to 5 keywords. Submission should
be made via: https://easychair.org/conferences/?conf=ieee-cim-cice2015
Important Dates (for August 2015 Issue)
15th November, 2014: Submission of Manuscripts
15th January, 2015: Notification of Review Results
15th February, 2015: Submission of Revised Manuscripts
15th March, 2015: Submission of Final Manuscripts
Guest Editors
Professor Amir Hussain,
University of Stirling,
Stirling FK9 4LA, Scotland UK
Email: ahu(a)cs.stir.ac.uk
http://cs.stir.ac.uk/~ahu/
Professor Dacheng Tao,
University of Technology,
Sydney, 235 Jones Street,
Ultimo, NSW 2007, Australia
Email: dacheng.tao(a)uts.edu.au
Professor Jonathan Wu
University of Windsor
401 Sunset Avenue, Windsor,
ON, Canada
Email: jwu(a)uwindsor.ca
Professor Dongbin Zhao
Institute of Automation, Chinese
Academy of Sciences,
Beijing 100190, China
E-mail: dongbin.zhao(a)gmail.com
--
The University of Stirling has been ranked in the top 12 of UK universities for graduate employment*.
94% of our 2012 graduates were in work and/or further study within six months of graduation.
*The Telegraph
The University of Stirling is a charity registered in Scotland, number SC 011159.
Aug. 11, 2014