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- 14 participants
- 7397 messages
***INDIN 2016 special session: Cognitive computing for Cyber Physical Systems ***
by Evgeny Osipov
Dear colleagues,
Sorry for a possible cross-posting
Please consider to submit your publication to special session “Biologically-Inspired Cognitive Architectures in Dependable Cyber-Physical Systems” on IEEE INDIN 2016
>> EXTENDED (FINAL) DEADLINE FEBRUARY 29, 2016 <<
>> LINK FOR SUBMISSION: http://vps.ieee-ies.org/submit-cgi-bin/authorlogin.pl?event=INDIN16 <<
>> Choose “SS Biologically Inspired Cognitive Architectures in Dependable Cyber-Physical Systems” as Technical Track when submitting your contribution. <<
IEEE INTERNATIONAL CONFERENCE ON
INDUSTRIAL INFORMATICS INDIN’16
18-21 JULY 2016, FUTUROSCOPE-POITIERS, FRANCE
Special Session on “Biologically-Inspired Cognitive Architectures in Dependable Cyber-Physical Systems”
Organized by
IEEE Industrial Electronic Society. Technical Committee on Industrial Informatics. Sub-Committee on Bio-inspired industrial informatics
Principal Organizer: Prof. Evgeny Osipov, Luleå University of Technology
————————————————————
INDIN 2016 (http://ieee-indin2016.sciencesconf.org/) is an IEEE International Conference on Industrial Informatics will be held on 18-23 July 2016, Futuroscope-Poitiers, France.
The conference is sponsored by IEEE Industrial Electronics Society and Pprime Institute, Futuroscope-Poitiers, France. The proceedings are indexed by the Web of Science.
Note that good quality papers may be considered for publication in IEEE Transactions on Industrial Informatics subject to further rounds of review.
————————————————————
Call for Papers
Traditional computing architectures are designed to produce reliable systems with specifiable
behaviours and properties. Their major strengths come from easiness of inspection, maintenance,
interoperability, and reuse. However, all modern computing systems operate based on strict
assumptions about their environments, thus are too inflexible to react to changing demands. In
critical environments such as industrial automation, smart grids and dependable cyber-physical
systems in general, this inflexibility results in serious in many cases life-critical errors. Alternative
computing architectures, which greatly borrow their functionality from the versatility and efficiency
of systems developed by nature, are known as biologically-inspired cognitive computing
architectures (BICA). Traditionally these architectures find their applications in areas like natural
language processing, image and speech processing. Very little attention so far was paid at exploring
their applicability in the context of dependable industrial systems. This special session solicits
contributions exploring diverse applications of BICA architectures for enriching intelligent
functionality of industrial systems. Topics of interest include, but are not limited to:
• Associative memory based reasoning
• Combined machine learning / BICA solutions
• Neural networks in cognitive computing architectures
• Cognitive architectures for continuous signal processing
• Cognitive fault detection and system identification
• Cognitive and hybrid automatic control
• Cognitive wireless communications
• Symbiosis of cognitive and Von-Neumann computing architectures
• Novel application areas and use-cases for BICA architectures in CPS and IoT.
• BICA empowered software engineering
• Spiking Neural Networks interfacing BICA architectures. Industrial usecases.
--
Prof. Evgeny Osipov
Dependable Communication and Computation Systems
Department of Computer Science
Electrical and Space Engineering
Luleå University of Technology
Tel. +46 920 49 15 78
Web. https://sites.google.com/site/evgenyosipov/
Feb. 2, 2016
Ph.D. and PostDoctoral positions on High-Performance Brain Simulations
by C. Strydis
Dear all,
Please find below new job postings in the field of High-Performance Brain Simulations
https://www.hipeac.net/jobs/9011/one-phd-position-and-one-postdoctoral-posi…
Please direct all queries and applications to: c.strydis(a)erasmusmc.nl
Lab job listings at: www.erasmusbrainproject.com/index.php/workopen/positions
Kind regards,
Christos Strydis
--
==============================
Christos Strydis, Ph.D.
Assistant Professor
Neuroscience Department
Erasmus Medical Center
Wytemaweg 80 (12th floor)
Office Ee1210a
3015 CN
Rotterdam
Tel: +31 - 10 - 70 - 43294
Fax: +31 - 10 - 70 - 44734
E-mail: C.Strydis(a)erasmusmc.nl
Web: www.erasmusbrainproject.com/index.php/strydis
==============================
Feb. 2, 2016
Postdoctoral position in computational neuroscience in New York
by Ruben Coen Cagli
Postdoctoral position in the Coen-Cagli Laboratory
Albert Einstein College of Medicine, New York, NY
Start date August 2016 or later
We are looking for a highly creative and motivated postdoctoral fellow to work in the field of computational and systems neuroscience in the laboratory of Ruben Coen-Cagli - Department of Systems and Computational Biology and Department of Neuroscience at Albert Einstein College of Medicine (AECOM) in New York City
(https://sites.google.com/site/rubencoencagli/<https://sites.google.com/site/rubencoencagli/>).
Our lab studies how biological sensory systems interpret the surrounding environment. Topics include probabilistic representations of natural images; models of selectivity and variability in large cortical populations; the behavioral consequences of neuronal variability; and uncertainty in visual and auditory perception. We combine theories of probabilistic neural coding, tools from computer vision and machine learning, eye-tracking experiments, and neurophysiology through collaborations. The candidate is expected to perform research related to these topics. The lab features state of the art computing and eye-tracking facilities. Close interaction and collaboration with other members of the department is anticipated.
Applicants must have a Ph.D. in a relevant discipline, with an academic record of scientific excellence and independent research. Prior experience should include areas such as computational neuroscience, machine learning, computer vision, or statistics. Applicants should have a keen interest in interdisciplinary approaches to biological and neural systems.
AECOM offers a vibrant interdisciplinary environment, with a growing systems and computational contingent. It is located in a quiet neighborhood of New York, only a short subway ride from Manhattan. Information about working at the AECOM, including benefits and housing for postdocs, can be found at https://www.einstein.yu.edu/research/belfer-institute/
The position starts in or after August 2016, and is funded for several years, with an initial one year appointment and expectation of extension given satisfactory performance. Salary is competitive and will be commensurate with experience.
Candidates should send a single pdf file, consisting of a 1-page motivation letter, CV, and publication list to ruben.coencagli(a)gmail.com. Furthermore, candidates should organize two letters of reference, to be sent to the same e-mail address. The position is open until filled.
Albert Einstein College of Medicine, Inc. is an equal opportunity employer committed to hiring minorities, women, individuals with disabilities and protected veterans.
-----------------
Ruben Coen-Cagli will be available at Cosyne to meet with candidates.
Feb. 1, 2016
Postdoctoral position in Computational Neuroscience at NYU-Shanghai
by Sukbin Lim
Multiple postdoctoral positions are available in Sukbin Lim's lab at
NYU-Shanghai as part of NYU’s global network and the NYU-ECNU Institute of
Brain and Cognitive Science (https://shanghai.nyu.edu/research/brain) The
overarching goal of our lab is to understand network interactions and
dynamics in neuronal systems. In particular, our work is focused on
investigating network mechanisms and synaptic plasticity for higher
cognitive functions such as learning and memory. More information on the
research can be found at
http://shanghai.nyu.edu/research/brain/faculty/Sukbin-Lim.
Environment:
Institute of Brain and Cognitive Science at NYU-Shanghai is a
multidisciplinary and collaborative research environment. Candidates will
be encouraged to collaborate with experimental and computational groups at
NYU and NYU-Shanghai, and will have the opportunities to spend time at NYU
in New York in case of a collaboration between Shanghai and New York. The
initial appointment is for 1 year, renewable up to 3 years subject to
progress and globally competitive compensations will be provided.
To Apply:
Qualified applicants are expected to hold a PhD by the start date of the
position in computational and theoretical neuroscience, or related
discipline with a strong quantitative training in Mathematics, Physics,
Computer Sciences and Engineering. Strong programming skills (e.g., Python,
MATLAB or C/C++) and experience in modeling networks/complex systems will
be highly valued. Knowledge of Neuroscience would be a plus.
Applications will be reviewed until the position is filled. To be
considered, please send a curriculum vitae, short research statement and
the names and contact information of two references to *sukbin.lim(a)**nyu.edu
<xinying.cai(a)nyu.edu>*.
Feb. 1, 2016
CfP: SASO 2016 - IEEE International Conference on Self-Adaptive and Self-Organizing Systems, September 12-16, Augsburg, Germany
by newsletter
*************************************************************************
CALL FOR PAPERS
Tenth IEEE International Conference on Self-Adaptive and Self-Organizing Systems
(SASO 2016)
Augsburg, Germany; 12-16 September 2016
http://uni-augsburg.de/saso2016
@SASO2016Conf
*************************************************************************
Part of FAS* - Foundation and Applications of Self* Computing Conferences
Co-located with:
The International Conference on Cloud and Autonomic Computing (ICCAC 2016)
http://iccac2016.se.rit.edu
-------------------
Aims and Scope
-------------------
The aim of the Self-Adaptive and Self-Organizing systems conference series (SASO) is to provide a forum for the foundations of a principled approach to engineering systems, networks, and services based on self-adaptation and self-organization. The complexity of current and emerging networks, software, and services, especially when dealing with dynamics in the environment and problem domain, has led the software engineering, distributed systems, and management communities to look for inspiration in diverse fields (e.g., complex systems, control theory, artificial intelligence, sociology, and biology) to find new ways of designing and managing such computing systems. In this endeavor, self-organization and self-adaptation have emerged as two promising interrelated approaches. They form the basis for many other self-* properties, such as self-configuration, self-healing, or self-optimization. Systems exhibiting such properties are often referred to as self-* systems.
The tenth edition of the SASO conference embraces the inter-disciplinary nature and the scientific, empirical, and application dimensions of self-* systems and welcomes novel results on both self-adaptive and self-organizing systems research. The topics of interest include, but are not limited to:
- Systems theory: theoretical frameworks and models; biologically- and socially-inspired paradigms; inter-operation of self-* mechanisms;
- Systems techniques: techniques to specify and analyze self-* systems, like statistical physics, machine learning, multi-agent systems, or other novel techniques;
- Systems engineering: reusable mechanisms, design patterns, architectures, methodologies; software and middleware development frameworks and methods, platforms
and toolkits; hardware; self-* materials; governance of self-* systems, emergent behavior in self-* systems;
- System properties: robustness, resilience, and stability; emergence; computational awareness and self-awareness; reflection; anti-fragility;
- Cyber-physical and socio-technical systems: human factors and visualization; self-* social computers; crowdsourcing and collective awareness; human-in-the-loop;
- Data-driven approaches: data mining; machine learning; data science and other statistical techniques to analyze, understand, and manage behavior of complex systems;
- Education: experience reports; curricula; innovative course concepts; methodological aspects of self-* systems education;
- Ethics and Humanities in self-* systems;
- Applications and experiences with self-* systems in any of the following domains:
+ Smart-*: application of self-* principles to smart-grids, smart-cities, smart-environments, smart-vehicles
+ Industrial automation: embedded self-* systems, adaptive industrial plants, smart industries (Industry 4.0)
+ Transportation: autonomous vehicles, coordination between vehicles, pedestrians, and infrastructure, and traffic optimization
+ Unmanned systems: aerial vehicles, undersea vehicles, other robotic platforms
+ Internet of Things: challenges, applications, and benefits; self-* for network management, self-* applied to Cybersecurity
We are looking for contributions that present novel theoretical or experimental results, novel design patterns, mechanisms, system architectures, frameworks or tools, or practical approaches and experiences in building or deploying real-world systems and applications. Contributions contrasting different approaches for engineering a given family of systems, or demonstrating the applicability of a certain approach for different systems, are equally encouraged. Likewise, papers describing substantial innovation or insights in the use and communication of self-* systems in the classroom are welcome.
Where relevant and appropriate, accepted papers will also be encouraged to participate in the Demo or Poster Sessions.
--------------------
Important Dates
--------------------
Abstract submission: May 2, 2016
Paper submission: May 9, 2016
Rebuttal phase: June 16-20, 2016
Notification: June 23, 2016
Camera ready copy due: July 5, 2016
Conference: September 12-16, 2016
----------------------------
Submission Instructions
----------------------------
Submissions can be up to 10 pages, formatted according to the standard IEEE Computer Society Press proceedings style guide, and submitted electronically in PDF format. Please register as authors and submit your papers using the SASO 2016 conference management system https://easychair.org/conferences/?conf=saso2016.
The proceedings will be published by IEEE Computer Society Press, and made available as a part of the IEEE Digital Library. Note that a separate Call for Poster and Demo Submissions will also be issued.
As per the standard IEEE policies, all submissions should be original, i.e., they should not have been previously published in any conference proceedings, book, or journal and should not currently be under review for another archival conference. We also highlight IEEE’s policies regarding plagiarism and self-plagiarism (http://www.ieee.org/publications_standards/publications/rights/ID_Plagiaris…)
---------------------
Review Criteria
---------------------
Papers should present novel ideas in the cross-disciplinary research context described in this call, motivated by problems from current practice or applied research. Both theoretical and empirical contributions should be highlighted, substantiated by formal analysis, simulation, experimental evaluations, comparative studies, and so on. Appropriate references must be made to related work. Because SASO is a cross-disciplinary conference, we encourage papers to be intelligible and relevant to researchers who are not members of the same specialized sub-field.
Authors are also encouraged to submit papers describing applications. Application papers should provide an indication of the real world relevance of the problem that is solved, including a description of the deployment domain, and some form of evaluation of performance, usability, or comparison to alternative approaches. Experience papers are also welcome, especially if they highlight insights into any aspect of design, implementation or management of self-* systems that would be of benefit to practitioners and the SASO community.
All submissions will be rigorously peer reviewed and evaluated on the basis of the quality of their technical contribution, originality, soundness, significance, presentation, understanding of the state of the art, and overall quality.
-------------------------------
Conference General Chair
-------------------------------
Wolfgang Reif
University of Augsburg, DE
--------------------
Program Chairs
--------------------
Giacomo Cabri,
University of Modena and Reggio Emilia, IT
Gauthier Picard,
École Nationale Supérieure des Mines de Saint-Étienne, FR
Niranjan Suri,
Florida Institute of Human and Machine Cognition, FL, USA
Jan. 31, 2016
Postdoc position in large-scale neural modeling -- Eliasmith lab
by Peter Blouw
In brief, the Eliasmith lab at the Centre for Theoretical Neuroscience has
a position available for a 2-year postdoc. The focus is on large-scale
spiking neural models that exhibit interesting behaviors and run on
supercomputing infrastructure. "Interesting behaviour" is broadly defined,
including vision, motor control, decision making, any variety of learning,
audition, language processing, and so on.
Full details below:
*SOSCIP/IBM Canada Post-Doctoral Fellow (PDF) Research Scientist*
Launched in 2012, SOSCIP was founded by seven Ontario universities and IBM
Canada Limited as a collaborative research consortium, with a mandate to
bring together academic researchers and small- and medium-sized companies
to drive innovation using state-of-the-art advanced computing and big data
analytics technologies, commercial outcomes for social and economic
development in Ontario. New investments from IBM Canada and other
stakeholders have enabled SOSCIP to expand its computing platforms and
resources to increase capacity and add new members. With the addition of
our three new academic partners, membership in the consortium has more than
doubled over the last two years to 16 organizations.
The IBM Canada Research & Development Centre is expanding, and we are
seeking a post-doctoral fellow who has a PhD in Theoretical or
Computational Neuroscience or a related field, with strong programming
skills and experience in high-performance computing environments.
This role will support a research project led by Dr. Chris Eliasmith in the
Centre for Theoretical Neuroscience at the University of Waterloo. Dr.
Eliasmith's lab constructs state-of-the-art, large-scale, neuron-level
models of a wide variety of behaviours, recently publishing what remains
the world's largest functional brain model, Spaun, in Science. These
models are simulated in the software Nengo, which is able to run models on
a wide variety of hardware platforms, or 'backends', including neuromorphic
hardware. Recently, a backend for BlueGene/Q has been developed, allowing
Nengo models, including Spaun, to run on the supercomputers housed at
SOSCIP. The successful candidate will focus on scaling up models,
including Spaun, to take full advantage of these hardware resources.
Scaling will include developing theory and implementation of new
behaviours, as well as increasing the biological fidelity of Nengo models.
A strong publication record, with demonstrated applications of neural-level
models to behaviour (e.g. vision, motor control, memory, decision making,
etc.), neuron-level compartmental modeling, various applications of
learning (deep learning, reinforcement learning, STDP, etc.), and
large-scale modeling are greatly desired. Familiarity with Python, MPI,
and Javascript would be beneficial.
Education and Experience
- PhD in Theoretical or Computational Neuroscience, or a related field
- strong programming skills and experience in high-performance
computing environments
- experience working as part of a research team
Work Location: Waterloo, Ontario
Term of Contract: 2-years maximum
IBM is committed to creating a diverse environment and is proud to be an
equal opportunity employer. All qualified applicants will receive
consideration for employment without regard to race, color, religion,
gender, gender identity or expression, sexual orientation, national origin,
genetics, disability, age, or veteran status.
Jan. 31, 2016
Okinawa/OIST Computational Neuroscience Course 2016: one week left to apply
by Erik De Schutter
OKINAWA/OIST COMPUTATIONAL NEUROSCIENCE COURSE 2016
Methods, Neurons, Networks and Behaviors
June 13 - June 30, 2016
Okinawa Institute of Science and Technology Graduate University, Japan
https://groups.oist.jp/ocnc
The aim of the Okinawa/OIST Computational Neuroscience Course is to
provide opportunities for young researchers with theoretical backgrounds
to learn the latest advances in neuroscience, and for those with experimental
backgrounds to have hands-on experience in computational modeling.
We invite graduate students and postgraduate researchers to participate
in the course, held from June 13th through June 30th, 2016 at an oceanfront
seminar house of the Okinawa Institute of Science and Technology Graduate
University. Applications are through the course web page
(https://groups.oist.jp/ocnc) only; January 4 - February 5, 2016.
Applicants will receive confirmation of acceptance in March.
Like in preceding years, OCNC will be a comprehensive three-week course
covering single neurons, networks, and behaviors with ample time for
student projects. The first week will focus exclusively on methods with
hands-on tutorials during the afternoons, while the second and third weeks
will have lectures by international experts. The course has a strong hands-on
component based on student proposed modeling or data analysis projects,
which are further refined with the help of a dedicated tutor. Applicants are
required to propose their project at the time of application.
There is no tuition fee. The sponsor will provide lodging and meals during
the course and may support travel for those without funding. We hope that
this course will be a good opportunity for theoretical and experimental
neuroscientists to meet each other and to explore the attractive nature and
culture of Okinawa, the southernmost island prefecture of Japan.
Invited faculty:
• Erik De Schutter (OIST)
• Sophie Deneve (École Normale Supérieure, France)
• Kenji Doya (OIST)
• Chris Eliasmith (University of Waterloo, Canada)
• Tomoki Fukai (RIKEN BSI, Japan)
• Michael Häusser (University College London, UK)
• Yukiyasu Kamitani (ATR & Kyoto University, Japan)
• Etienne Koechlin (École Normale Supérieure, France)
• Bernd Kuhn (OIST)
• Stefan Mihalas (Allen Institute for Brain Science, USA)
• Partha Mitra (Cold Spring Harbor, USA)
• Astrid Prinz (Emory University, USA)
• John Rinzel (New York University, USA)
• Yoko Yazaki-Sugiyama (OIST)
Jan. 29, 2016
Conference announcement: "The neuroscience of decision-making"
by Paul Cisek
38th International Symposium of the GRSNC
The neuroscience of decision-making
May 2-3, 2016
Université de Montréal
WEBSITE: <http://www.grsnc.umontreal.ca/38s/>
http://www.grsnc.umontreal.ca/38s/
PROGRAM: <http://www.grsnc.umontreal.ca/38s/prog_e.html>
http://www.grsnc.umontreal.ca/38s/prog_e.html
REGISTRATION:
<http://appl.grsnc.umontreal.ca/en/symposium/38s/registration.cfm>
http://appl.grsnc.umontreal.ca/en/symposium/38s/registration.cfm
POSTER: <http://www.grsnc.umontreal.ca/38s/38s_poster.pdf>
http://www.grsnc.umontreal.ca/38s/38s_poster.pdf
We are pleased to announce the 38th symposium of the Groupe de Recherche sur
le Système Nerveux Central (GRSNC) which is entitled "The neurosciences of
decision-making".
This symposium will be held on May 2-3, 2016 at the Université de Montréal,
Pavillon 3200 Jean-Brillant, room B-2245 and the organizers are Drs Paul
Cisek (UdeM), Alain Dagher (McGill), Lesley Fellows (McGill), John Kalaska
(UdeM) et Peter Shizgal (Concordia).
Research on the neural bases of decision-making has experienced a rapid
growth in the last 20 years. It addresses a great diversity of questions,
ranging from how animals weigh the costs and benefits of different actions
to what goes wrong when humans exhibit maladaptive behavior, such as in
addiction. In this symposium, we will discuss cutting-edge research on this
topic, reviewing the progress that has been made and addressing the central
open questions facing this rapidly developing field. In planning the
sessions, we have paid particular attention to issues that stretch from the
most basic neuroscience all the way to clinical applications. We will
highlight converging evidence from the full range of neuroscientific methods
applied in this field, considered within a diversity of conceptual
frameworks. There will be four sessions of presentations by invited speakers
from around the world as well as two contributed poster sessions.
The presentations are regrouped in for sessions:
* Brain representations of value: Common or multiple (Chairperson:
Peter Shizgal)
* Encoding and learning values: Neural and computational mechanisms
(Chairperson: Alain Dagher)
* Decision in the wild (Chairperson: John Kalaska)
* Diseases and deviances (Chairperson: Lesley Fellows)
Lecturers: Joshua D. Berke, Thomas Boraud, Paul Cisek, Alain
Dagher, Peter Dayan, Nathaniel Daw, Lesley Fellows, J. Randall Flanagan,
Michael J. Frank, Karl Friston, Hugh Garavan, Paul W. Glimcher, Joseph
Kable, Elizabeth A. Murray, Michael L. Platt, David Redish, Michael N.
Shadlen, Peter Shizgal, Daphna Shohamy and Jonathan D. Wallis.
Submissions are invited for poster presentations. The deadline for
submission is March 31, 2016
We would appreciate if you could forward this message to colleagues and
students.
Manon Dumas for the organizing committee
Groupe de recherche sur le système nerveux central (GRSNC)
Université de Montréal
Département de neurosciences
Pavillon Paul-G.-Desmarais, bureau 4115
Courriel: <mailto:m.dumas@umontreal.ca> m.dumas(a)umontreal.ca
Téléphone: (514) 343-6366
Télécopieur: (514) 343-6113
Jan. 28, 2016
Research Internship position at Numenta
by Subutai Ahmad
RESEARCH INTERNSHIP POSITION IN COMPUTATIONAL NEUROSCIENCE AND MACHINE
LEARNING
NUMENTA, Inc.
About Numenta:
Numenta was founded in 2005 and is a leader in the emerging field of
machine intelligence. Its biologically inspired technology is based on a
detailed and evolving theory of the neocortex first described in co-founder
Jeff Hawkins’ book, On Intelligence. The current technology can be applied
to anomaly detection in servers and applications, human behavior, and
geo-spatial tracking data. Numenta is focused on understanding the
computational principles behind the cortex in detail, and implementing
practical systems that operate on those principles. NuPIC, Numenta's open
source code base, is one of the top three most active machine learning
projects on Github. For more details, please see www.numenta.com
Job description:
The Research Group at Numenta is looking for outstanding MS or PhD students
or other research scientists for a paid internship during the Spring,
Summer or Fall 2016. We are looking for candidates with expertise in
Machine Learning, Computational Neuroscience and/or Natural Language
Processing. Preference given to candidates with experience in one or more
of the following areas: sequence learning, natural language processing,
neuron modeling, and computational models of cortex.
Numenta's interns will get exposure to all aspects of Hierarchical Temporal
Memory (HTM) learning algorithms, participate in leading edge research in
computational neuroscience, and get full clearance to publish their work
and research source code. The internship commitment is for 3 to 4 months
full time (longer appointments up to one year may be possible). We are
located in Silicon Valley (Redwood City, CA).
What you can expect to learn and how you might contribute:
- The challenges of designing and implementing detailed models of cortical
function that can be applied to real-world problems
- Gain experience solving hard problems in domains such as natural language
processing, streaming analytics, sensorimotor inference, and/or
reinforcement learning
- Participate in designing functional models of Layers 2/3, 4, 5, and 6,
thalamocortical circuits, feedback circuits, and sensorimotor processing
- Learn how to contribute to a top open source project, and improve your
software engineering skills
- Obtain a detailed understanding of Hierarchical Temporal Memory
Desired qualifications:
- Currently enrolled in a PhD program, or a recent PhD graduate, or
equivalent research experience
- Strong research background in machine learning or machine intelligence
- Strong research background in computational neuroscience
- Excellent algorithmic problem solving skills, and the ability to
implement solutions in Python, C/C++, Java, etc.
- Established track record of publications in leading peer reviewed
conferences and journals
- Excellent programming skills
- Working knowledge of HTM algorithms a plus
- Excellent written and verbal communication skills, and the ability to
work in a team oriented environment
- A belief that the best way to build intelligent machines is to understand
the cortex
How to apply:
Qualified applicants should send the following to interns(a)numenta.com:
- Cover letter describing their specific interest in Numenta. Please
include any relevant experience with HTM algorithms or NuPIC.
- Resume or CV, including list of relevant courses and published papers.
Numenta is an equal opportunity employer supporting workforce diversity.
IMPORTANT NOTE: Numenta is unable to consider internship applications from
international researchers unless they are US Citizens, hold a Green Card,
or are currently enrolled in a US University and eligible for OPT.
Jan. 28, 2016
Re: [Comp-neuro] Postdocs integrated into the Human brain Project – specifically data-driven modeling at the subcellular or network levels, or tool development/support
by Prof. Dr. Jordi Vallverdú
*CFP*
Call for Chapters, for the book *“Blended Cognition. The Robotic
Challenge”,* edited by Jordi Vallverdú and Vincent C. Müller, and published
by *Springer Verlag*. To be released in January 2017.
*Main aims of the book:*
This book introduces a new concept into cognitive sciences research, which
will contribute to the design of more realistic and efficient robots: *blended
cognition*. Looking at human daily decision-making, we can observe a
mixture of methods, as well as lots of intuition-driven actions that are
not properly decision-taking at all. Humans blend and combine several kinds
of heuristics, consciously or not, at symbolic and sensory-motor levels.
The blending can be parallel or sequential, or both. Human beings use a
large array of methods and techniques in order to decide a broad range of
actions. It can be considered an integrated multi-heuristic activity that
runs at several formal as well as informal and even unconscious levels.
Our aim is to join re-searchers who are trying to integrate multitask
skills into robotic and cognitive systems and to analyze the possible
connections of a subsumptioned architecture, with bio-inspired as well as
artificial approaches working together. Between classic top down and
bottom-up approaches to cognitive processing, we look for the creation of a
space for cognitive systems experts that makes possible to select the best
and optimal strategy for each decision situation. Blended cognition is,
thus, the study of how an intelligent system can use or even partially
combine several methods to decide among possible action outputs or data
evaluation and storage. A combination of possible data- and task-demands:
Semantics-Body-Mind. By ‘semantics’ we mean the value of information at a
specific moment for the agent; by ‘body’ we mean the bodily requirements
and possibilities (DOF, flexibility, impact absorption, …) that the agent
exhibits; and by ‘mind’ we refer to the heuristic mechanisms designed to
give answers to the data flows. The importance of blended cognition is that
there is no pre-established and rigid hierarchy of control among these
possible main layers, as well as for their sub-layers. There are optimized
functional strategies of agreement and combination but the key point here
is the *flexibility* and *adaptability *of the system.
*Suggested Topics:*
§ A-modal and Modal approaches to decision
§ Abductive reasoning
§ Automated discovery
§ Autonomous robots
§ Bayesian analysis
§ Bio-inspired computing
§ Bounded rationality
§ Computational Creativity
§ Data Integration
§ Embodied cognition
§ Emotional Architectures
§ Epigenetic robotics
§ Extended cognition
§ Genetic algorithms
§ Grounded cognition
§ Heuristics
§ Incremental active learning
§ Meta-heuristics
§ Morphological computing
§ Multi-heuristics
§ Non-monotonic logic
§ Procedural reasoning
§ Statistical processing
§ Subsumption architectures
§ Swarm intelligence
*Deadlines :*
I. CFP: January, 2016.
II. Paper proposals: May 4th, 2016.
III. Editors acceptance: May 2nd, 2016.
IV. Full materials August 25th, 2016.
V. Last reviews: October 24th, 2016.
VI. Camera-Ready: November 28th, 2016.
VII. Releasement: January, 2017.
*Guidelines for manuscript preparation:*
https://www.springer.com/gp/authors-editors/book-authors-editors/manuscript…
Please, take into account that all submissions have abstracts, keywords,
and a completed and signed consent to publish form.
*Send proposals to jordi.vallverdu(a)uab.cat <jordi.vallverdu(a)uab.cat>. All
e-mails will be answered in order to check deliveries! *
Prof. Dr. Jordi Vallverdú, B. Phil, B. Mus, M.Sci, Ph.D.
Room B7/104, Philosophy Dept. UAB
08193 Bellaterra (BCN)
CATALONIA
-------------------
FULL CV/Publications: https://uab.academia.edu/JordiVallverdu
<https://uab.academia.edu/JordiVallverd%C3%BA>
ORCID: http://orcid.org/0000-0001-9975-7780
ResearcherID: http://www.researcherid.com/rid/K-5536-2014
Researchgate: https://www.researchgate.net/profile/Jordi_Vallverdu
2016-01-23 15:12 GMT+01:00 Jeanette Hällgren Kotaleski <jeanette(a)csc.kth.se>
:
> Dear Colleagues, dear all,
>
>
> KTH Royal Institute of Technology, Stockholm, is currently recruiting
> postdocs to be working within the Human Brain Project.
>
> 1) Postdoc/application expert – specifically development of brain modeling
> tools:
>
> Specifically for the current position software applications providing
> user-friendly interface to cellular-level modelling tools will be
> developed, supported and used. These will include an optimization framework
> (for fitting electrical models of neurons to their observed electrical
> behaviour) and also a morphology pipeline (the tool used to analyse and
> validate neuron morphologies).
> More info and how to apply at:
> https://intra.kth.se/en/anstallning/karriar/karriar-och-kompetensutveckling…
>
>
>
> 2) Postdoc in computational systems (neuro)biology – specifically synaptic
> plasticity and neuromodulation:
>
> Specifically for the above position data-driven modeling of receptor
> induced cascades such as GPCR dependent cascades involved in
> neuromodulation and synaptic signaling will be done.
> More info and how to apply at:
> https://intra.kth.se/en/anstallning/karriar/karriar-och-kompetensutveckling…
>
>
>
> 3) Postdoc in brain simulations - specifically motor control and selection
> of behaviour:
>
> Specifically for the position, modeling of motor control and learning with
> basal ganglia as important components will be done. The modeling tools are
> mainly Nest and Neuron.
> More info and how to apply at:
> https://intra.kth.se/en/anstallning/karriar/karriar-och-kompetensutveckling…
>
>
>
> All the best,
> Jeanette Hellgren Kotaleski
> Prof, School of Computer Science and Communication,
> KTH Royal Institute of Technology, Stockholm
>
>
>
> _______________________________________________
> Comp-neuro mailing list
> Comp-neuro(a)neuroinf.org
> http://www.neuroinf.org/mailman/listinfo/comp-neuro
>
>
Jan. 28, 2016