Jump to content

Neuroinformatics: Difference between revisions

From Wikipedia, the free encyclopedia
Content deleted Content added
KolbertBot (talk | contribs)
No edit summary
Tags: Mobile edit Mobile web edit
 
(93 intermediate revisions by 46 users not shown)
Line 1: Line 1:
{{for|the scientific journal|Neuroinformatics (journal)}}
{{For|the scientific journal|Neuroinformatics (journal)}}
{{Short description|Field of research}}
{{multiple issues|
'''Neuroinformatics''' is the emergent field that combines [[informatics]] and [[neuroscience]]. Neuroinformatics is related with neuroscience data and information processing by [[artificial neural network]]s.<ref>{{Cite web |title=Frontiers in Neuroinformatics |url=https://www.frontiersin.org/journals/neuroinformatics |website=www.frontiersin.org |language=en}}</ref> There are three main directions where neuroinformatics has to be applied:<ref>{{Cite web |title=Working groups {{!}} INCF|url=https://www.incf.org/resources/working-groups |website=www.incf.org}}</ref>
{{cleanup list|article|date=April 2009}}
* the development of computational models of the nervous system and neural processes;
{{more footnotes|date=April 2009}}
* the development of tools for analyzing and modeling neuroscience data; and
}}
* the development of tools and databases for management and sharing of neuroscience data at all levels of analysis.
'''Neuroinformatics''' is a research field concerned with the organization of [[neuroscience]] data by the application of computational models and analytical tools. These areas of research are important for the integration and analysis of increasingly large-volume, high-dimensional, and fine-grain experimental data. Neuroinformaticians provide computational tools, mathematical models, and create interoperable databases for clinicians and research scientists. Neuroscience is a heterogeneous field, consisting of many and various sub-disciplines (e.g., [[cognitive psychology]], [[behavioral neuroscience]], and [[behavioral genetics]]). In order for our understanding of the brain to continue to deepen, it is necessary that these sub-disciplines are able to share data and findings in a meaningful way; Neuroinformaticians facilitate this.<ref>{{Cite journal
| last1 = Adee | first1 = Sally
| title = Reverse engineering the brain
| doi = 10.1109/MSPEC.2008.4531462
| journal = [[IEEE Spectrum]]
| volume = 45
| issue = 6
| pages = 51–55
| date=June 2008
| url = http://spectrum.ieee.org/biomedical/ethics/reverse-engineering-the-brain/0
}}</ref>


Neuroinformatics encompasses [[philosophy]] ([[computational theory of mind]]), [[psychology]] ([[information processing theory]]), [[computer science]] ([[natural computing]], [[bio-inspired computing]]), among others disciplines. Neuroinformatics doesn't deal with matter or energy,<ref>{{Cite journal |last=Wang |first=Yingxu |date=2003-08-01 |title=On Cognitive Informatics |url=https://doi.org/10.1023/A:1025401527570 |journal=Brain and Mind |language=en |volume=4 |issue=2 |pages=151–167 |doi=10.1023/A:1025401527570 |s2cid=61495426 |issn=1573-3300}}</ref> so it can be seen as a branch of [[neurobiology]] that studies various aspects of [[nervous system]]s. The term ''neuroinformatics'' seems to be used synonymously with [[cognitive informatics]], described by ''[[Journal of Biomedical Informatics]]'' as interdisciplinary domain that focuses on human information processing, mechanisms and processes within the context of [[computing]] and computing applications.<ref>{{Cite journal |date=2015-02-01 |title=Cognitive informatics in biomedicine and healthcare |journal=Journal of Biomedical Informatics |language=en |volume=53 |pages=3–14 |doi=10.1016/j.jbi.2014.12.007 |issn=1532-0464|last1=Patel|first1=Vimla L. |last2=Kannampallil |first2=Thomas G.|pmid=25541081|doi-access=free}}</ref> According to [[German National Library]], neuroinformatics is synonymous with [[neurocomputing]].<ref>{{Cite web |title=Katalog der Deutschen Nationalbibliothek |url=https://portal.dnb.de/opac.htm?method=simpleSearch&cqlMode=true&query=nid=4655105-0 |access-date=2020-12-12|website=portal.dnb.de}}</ref> At ''Proceedings of the 10th IEEE International Conference on Cognitive Informatics and Cognitive Computing'' was introduced the following description: ''Cognitive Informatics (CI) as a transdisciplinary enquiry of computer science, information sciences, cognitive science, and intelligence science. CI investigates into the internal information processing mechanisms and processes of the brain and natural intelligence, as well as their engineering applications in cognitive computing.<ref>{{Cite journal |title=Cognitive Informatics in Year 10 and Beyond: summary of the plenary panel |url=https://www.researchgate.net/publication/221470928 |journal=Proceedings of the 10th IEEE International Conference on Cognitive Informatics and Cognitive Computing}}</ref> According to ''INCF, neuroinformatics is a research field devoted to the development of neuroscience data and knowledge bases together with computational models.<ref>{{Cite web |title=What is Neuroinformatics {{!}} INCF |url=https://www.incf.org/about/what-is-neuroinformatics |website=www.incf.org}}</ref>
Neuroinformatics stands at the intersection of [[neuroscience]] and [[information science]]. Other fields, like [[genomics]], have demonstrated the effectiveness of freely distributed databases and the application of theoretical and computational models for solving complex problems. In Neuroinformatics, such facilities allow researchers to more easily quantitatively confirm their working theories by computational modeling. Additionally, neuroinformatics fosters collaborative research—an important fact that facilitates the field's interest in studying the multi-level complexity of the brain.


==Neuroinformatics in neuropsychology and neurobiology==
There are three main directions where neuroinformatics has to be applied:<ref>{{cite web|title=INCF Strategy Overview|url=http://www.incf.org/documents/incf-core-documents/INCFStrategyOverview}}</ref>
===Models of neural computation===
{{Main|Models of neural computation}}
Models of neural computation are attempts to elucidate, in an abstract and mathematical fashion, the core principles that underlie information processing in biological nervous systems, or functional components thereof. Due to the complexity of nervous system behavior, the associated experimental error bounds are ill-defined, but the relative merit of the different models of a particular subsystem can be compared according to how closely they reproduce real-world behaviors or respond to specific input signals. In the closely related field of computational neuroethology, the practice is to include the environment in the model in such a way that the loop is closed. In the cases where competing models are unavailable, or where only gross responses have been measured or quantified, a clearly formulated model can guide the scientist in designing experiments to probe biochemical mechanisms or network connectivity.


{{See also|Cognitive science|Cognitive informatics|Cognitive psychology|Computational neuroscience|Brain science}}
# the development of tools and databases for management and sharing of neuroscience data at all levels of analysis,
# the development of tools for analyzing and modeling neuroscience data,
# the development of computational models of the [[nervous system]] and neural processes.


==Neurocomputing technologies==
In the recent decade, as vast amounts of diverse data about the brain were gathered by many research groups, the problem was raised of how to integrate the data from thousands of publications in order to enable efficient tools for further research. The biological and neuroscience data are highly interconnected and complex, and by itself, integration represents a great challenge for scientists.
{{Main|Bio-inspired computing}}


===Artificial neural networks===
Combining [[Informatics (academic field)|informatics]] research and [[brain]] research provides benefits for both fields of science. On one hand, informatics facilitates brain [[data processing]] and data handling, by providing new electronic and software technologies for arranging [[database]]s, modeling and communication in brain research. On the other hand, enhanced discoveries in the field of neuroscience will invoke the development of new methods in [[information technologies]] (IT).
{{Main|Artificial neural networks|Neural computation}}
Artificial neural networks (ANNs), usually simply called neural networks (NNs), are computing systems vaguely inspired by the [[biological neural network]]s that constitute animal [[brain]]s.<ref>{{Cite journal |last1=Chen |first1=Yung-Yao |last2=Lin |first2=Yu-Hsiu |last3=Kung |first3=Chia-Ching |last4=Chung |first4=Ming-Han |last5=Yen |first5=I.-Hsuan |date=January 2019 |title=Design and Implementation of Cloud Analytics-Assisted Smart Power Meters Considering Advanced Artificial Intelligence as Edge Analytics in Demand-Side Management for Smart Homes |journal=Sensors |volume=19 |issue=9 |pages=2047 |doi=10.3390/s19092047 |pmc=6539684 |pmid=31052502 |bibcode=2019Senso..19.2047C |doi-access=free}}</ref> An ANN is based on a collection of connected units or nodes called [[artificial neuron]]s, which loosely model the [[neuron]]s in a biological brain. Each connection, like the [[synapse]]s in a biological brain, can transmit a signal to other neurons. An artificial neuron that receives a signal then processes it and can signal neurons connected to it. The "signal" at a connection is a [[real number]], and the output of each neuron is computed by some non-linear function of the sum of its inputs. The connections are called ''edges''. Neurons and edges typically have a ''[[weight (mathematics)|weight]]'' that adjusts as learning proceeds. The weight increases or decreases the strength of the signal at a connection. Neurons may have a threshold such that a signal is sent only if the aggregate signal crosses that threshold. Typically, neurons are aggregated into layers. Different layers may perform different transformations on their inputs. Signals travel from the first layer (the input layer), to the last layer (the output layer), possibly after traversing the layers multiple times.


===Brain emulation and mind uploading===
==History==
{{Main|Brain emulation|Mind uploading}}
Starting in 1989, the United States [[National Institute of Mental Health]] (NIMH), the [[National Institute of Drug Abuse]] (NIDA) and the [[National Science Foundation]] (NSF) provided the National Academy of Sciences [[Institute of Medicine]] with funds to undertake a careful analysis and study of the need to create databases, share neuroscientific data and to examine how the field of information technology could create the tools needed for the increasing volume and modalities of neuroscientific data. {{Citation needed|date=May 2009}} The positive recommendations were reported in 1991 ("Mapping The Brain And Its Functions. Integrating Enabling Technologies Into Neuroscience Research." [[National Academy Press]], Washington, D.C. ed. Pechura, C.M., and Martin, J.B.) This positive report enabled NIMH, now directed by Allan Leshner, to create the "Human Brain Project" (HBP), with the first grants awarded in 1993. The HBP was led by Koslow along with cooperative efforts of other [[NIH]] Institutes, the NSF, the [[National Aeronautics and Space Administration]] and the [[United States Department of Energy|Department of Energy]]. The HPG and grant-funding initiative in this area slightly preceded the explosive expansion of the World Wide Web. From 1993 through 2004 this program grew to over 100 million dollars in funded grants.
[[Brain emulation]] is the concept of creating a functioning computational model and [[Emulator|emulation]] of a brain or part of a brain. In December 2006,<ref>{{cite web|url=http://bluebrain.epfl.ch/Jahia/site/bluebrain/op/edit/pid/19085|title=Project Milestones |work=Blue Brain|access-date=2008-08-11}}</ref> the [[Blue Brain]] project completed a simulation of a rat's [[cortical column|neocortical column]]. The neocortical column is considered the smallest functional unit of the [[neocortex]]. The neocortex is the part of the brain thought to be responsible for higher-order functions like conscious thought, and contains 10,000 neurons in the rat brain (and 10<sup>8</sup> [[synapse]]s). In November 2007,<ref>{{cite web|url=http://bluebrain.epfl.ch/page18700.html |title=News and Media information|work=Blue Brain|access-date=2008-08-11|url-status=dead|archive-url=https://web.archive.org/web/20080919051656/http://bluebrain.epfl.ch/page18700.html|archive-date=2008-09-19}}</ref> the project reported the end of its first phase, delivering a data-driven process for creating, validating, and researching the neocortical column. An [[artificial neural network]] described as being "as big and as complex as half of a mouse brain"<ref>{{Cite news|url=https://www.huffingtonpost.com/2007/04/28/supercomputer-mimics-mous_n_47135.html|title=Supercomputer Mimics Mouse's Brain |date=2008-03-28 |work=Huffington Post|access-date=2018-06-05 |language=en-US}}</ref> was run on an IBM [[Blue Gene]] supercomputer by the University of Nevada's research team in 2007. Each second of simulated time took ten seconds of computer time. The researchers claimed to observe "biologically consistent" nerve impulses that flowed through the virtual cortex. However, the simulation lacked the structures seen in real mice brains, and they intend to improve the accuracy of the neuron and synapse models.<ref>{{Cite news |url=http://news.bbc.co.uk/1/hi/technology/6600965.stm |work=[[BBC News]] |date=27 April 2007 |title=Mouse brain simulated on computer}}</ref>
[[Mind uploading]] is the process of [[brain scanning|scanning]] a physical structure of the brain accurately enough to create an [[emulator|emulation]] of the mental state (including long-term memory and "self") and copying it to a computer in a [[Digital data|digital]] form. The [[computer]] would then run a [[computer simulation|simulation]] of the brain's information processing, such that it would respond in essentially the same way as the original brain and experience having a [[sentient]] [[conscious]] [[mind]].<ref name="sim.me.uk"/><ref>{{Cite journal |title=Introduction|journal=International Journal of Machine Consciousness |volume=04|pages=1–3|doi=10.1142/S1793843012020015|year=2012|last1=Goertzel|first1=BEN|last2=Ikle'|first2=Matthew}}</ref><ref name="kajsotala.fi"/> Substantial mainstream research in related areas is being conducted in animal brain mapping and simulation, development of faster supercomputers, [[virtual reality]], [[brain–computer interface]]s, [[connectomics]], and information extraction from dynamically functioning brains.<ref>{{cite journal|vauthors=Kay KN, Naselaris T, Prenger RJ, Gallant JL|date=March 2008 |title=Identifying natural images from human brain activity |journal=Nature |volume=452 |issue=7185 |pages=352–5 |bibcode=2008Natur.452..352K |doi=10.1038/nature06713|pmc=3556484|pmid=18322462}}</ref> According to supporters, many of the tools and ideas needed to achieve mind uploading already exist or are currently under active development; however, they will admit that others are, as yet, very speculative, but say they are still in the realm of engineering possibility.


[[File:Brain-computer interface (schematic).jpg|thumb|Diagram of the BCI developed by Miguel Nicolelis and colleagues for use on [[rhesus monkeys]]]]
Next, Koslow pursued the globalization of the HPG and neuroinformatics through the [[European Union]] and the [[Office for Economic Co-operation and Development]] (OECD), Paris, France. Two particular opportunities occurred in 1996.


===Brain–computer interface===
* The first was the existence of the US/European Commission Biotechnology Task force co-chaired by Mary Clutter from NSF. Within the mandate of this committee, of which Koslow was a member the United States European Commission Committee on Neuroinformatics was established and co-chaired by Koslow from the United States. This committee resulted in the European Commission initiating support for neuroinformatics in Framework 5 and it has continued to support activities in neuroinformatics research and training.
{{Main|Brain–computer interface}}
* A second opportunity for globalization of neuroinformatics occurred when the participating governments of the Mega Science Forum (MSF) of the OECD were asked if they had any new scientific initiatives to bring forward for scientific cooperation around the globe. The [[White House Office of Science and Technology Policy]] requested that agencies in the federal government meet at NIH to decide if cooperation were needed that would be of global benefit. The NIH held a series of meetings in which proposals from different agencies were discussed. The proposal recommendation from the U.S. for the MSF was a combination of the NSF and NIH proposals. Jim Edwards of NSF supported databases and data-sharing in the area of biodiversity; Koslow proposed the HPG [[?]] as a model for sharing neuroscientific data, with the new moniker of ''neuroinformatics''.
Research on brain–computer interface began in the 1970s at the [[University of California, Los Angeles]] under a grant from the [[National Science Foundation]], followed by a contract from [[DARPA]].<ref name="Vidal1">{{cite journal |last1=Vidal |first1=JJ |year=1973 |title=Toward direct brain–computer communication|journal=Annual Review of Biophysics and Bioengineering |volume=2 |issue=1 |pages=157–80|doi=10.1146/annurev.bb.02.060173.001105|pmid=4583653|doi-access=free }}</ref><ref name="Vidal2">{{cite journal|author=J. Vidal |year=1977 |title=Real-Time Detection of Brain Events in EEG|url=http://www.cs.ucla.edu/~vidal/Real_Time_Detection.pdf |journal=Proceedings of the IEEE|volume=65|issue=5|pages=633–641|doi=10.1109/PROC.1977.10542|s2cid=7928242}}</ref> The papers published after this research also mark the first appearance of the expression ''brain–computer interface'' in scientific literature. Recently, studies in [[Human-computer interaction]] through the application of [[machine learning]] with statistical temporal features extracted from the [[frontal lobe]], [[Electroencephalography|EEG brainwave]] data has shown high levels of success in classifying [[mental state]]s (Relaxed, Neutral, Concentrating) mental emotional states (Negative, Neutral, Positive)<ref>{{cite book |last1=Bird|first1=Jordan J.|url=https://www.disp-conference.org|title=Mental Emotional Sentiment Classification with an EEG-based Brain-Machine Interface|last2=Ekart|first2=Aniko|last3=Buckingham|first3=Christopher D.|last4=Faria|first4=Diego R. |date=2019 |publisher=The International Conference on Digital Image and Signal Processing (DISP'19)|location=St Hugh's College, University of Oxford, United Kingdom|ref=birdeegemotions|access-date=3 December 2018|archive-url=https://web.archive.org/web/20181203202733/https://www.disp-conference.org/|archive-date=3 December 2018|url-status=dead}}</ref> and [[thalamocortical dysrhythmia]].<ref>{{cite journal |vauthors=Vanneste S, Song JJ, De Ridder D |date=March 2018 |title=Thalamocortical dysrhythmia detected by machine learning |journal=Nature Communications |language=En |volume=9 |issue=1 |pages=1103 |bibcode=2018NatCo...9.1103V |doi=10.1038/s41467-018-02820-0 |pmc=5856824 |pmid=29549239}}</ref>


===Neuroengineering & Neuroinformatics===
The two related initiates were combined to form the United States proposal on "Biological Informatics". This initiative was supported by the [[White House Office of Science and Technology Policy]] and presented at the OECD MSF by Edwards and Koslow. An MSF committee was established on Biological Informatics with two subcommittees: 1. Biodiversity (Chair, James Edwards, NSF), and 2. Neuroinformatics (Chair, Stephen Koslow, NIH). At the end of two years the Neuroinformatics subcommittee of the Biological Working Group issued a report supporting a global neuroinformatics effort. Koslow, working with the NIH and the White House Office of Science and Technology Policy to establishing a new Neuroinformatics working group to develop specific recommendation to support the more general recommendations of the first report. The Global Science Forum (GSF; renamed from MSF) of the OECD supported this recommendation.
[[File:Neuron reconstruction and tracing illustration.png|250px|thumb|right|Schematic illustration of digital tracing of a neuron's morphology]]


Neuroinformatics is the scientific study of information flow and processing in the nervous system. Institute scientists utilize brain imaging techniques, such as [[magnetic resonance imaging]], to reveal the organization of brain networks involved in human thought. Brain simulation is the concept of creating a functioning [[Computer simulation|computer model]] of a brain or part of a brain. There are three main directions where neuroinformatics has to be applied:
===The International Neuroinformatics Coordinating Facility===
* the development of [[Models of neural computation|computational model]]s of the [[nervous system]] and neural processes,
This committee presented 3 recommendations to the member governments of GSF. These recommendations were:
* the development of tools for analyzing data from devices for neurological diagnostic devices,
* the development of tools and databases for management and sharing of patients brain data in healthcare institutions.


===Brain mapping and simulation===
# National neuroinformatics programs should be continued or initiated in each country should have a national node to both provide research resources nationally and to serve as the contact for national and international coordination.
[[Brain simulation]] is the concept of creating a functioning computational model of a brain or part of a brain.<ref>{{Cite journal |last1=Fan |first1=Xue |last2=Markram |first2=Henry |date=2019 |title=A Brief History of Simulation Neuroscience |journal=Frontiers in Neuroinformatics |volume=13 |page=32 |doi=10.3389/fninf.2019.00032 |doi-access=free |issn=1662-5196 |pmc=6513977 |pmid=31133838}}</ref> In December 2006,<ref>{{cite web |url=http://bluebrain.epfl.ch/Jahia/site/bluebrain/op/edit/pid/19085|title=Project Milestones|work=Blue Brain |access-date=2008-08-11}}</ref> the [[Blue Brain]] project completed a simulation of a rat's [[cortical column|neocortical column]]. The neocortical column is considered the smallest functional unit of the [[neocortex]]. The neocortex is the part of the brain thought to be responsible for higher-order functions like conscious thought, and contains 10,000 neurons in the rat brain (and 10<sup>8</sup> [[synapse]]s). In November 2007,<ref>{{cite web|url=http://bluebrain.epfl.ch/page18700.html|title=News and Media information |work=Blue Brain|access-date=2008-08-11|url-status=dead|archive-url=https://web.archive.org/web/20080919051656/http://bluebrain.epfl.ch/page18700.html |archive-date=2008-09-19}}</ref> the project reported the end of its first phase, delivering a data-driven process for creating, validating, and researching the neocortical column. An [[artificial neural network]] described as being "as big and as complex as half of a mouse brain"<ref>{{cite news |url=https://www.huffingtonpost.com/2007/04/28/supercomputer-mimics-mous_n_47135.html|title=Supercomputer Mimics Mouse's Brain |date=2008-03-28 |work=HuffPost |access-date=2018-06-05 |language=en-US}}</ref> was run on an IBM [[Blue Gene]] supercomputer by the University of Nevada's research team in 2007. Each second of simulated time took ten seconds of computer time. The researchers claimed to observe "biologically consistent" nerve impulses that flowed through the virtual cortex. However, the simulation lacked the structures seen in real mice brains, and they intend to improve the accuracy of the neuron and synapse models.<ref>{{cite news |url=http://news.bbc.co.uk/1/hi/technology/6600965.stm |work=[[BBC News]] |date=27 April 2007 |title=Mouse brain simulated on computer}}</ref>
# An [[International Neuroinformatics Coordinating Facility]] (INCF) should be established. The INCF will coordinate the implementation of a global neuroinformatics network through integration of national neuroinformatics nodes.
# A new international funding scheme should be established. This scheme should eliminate national and disciplinary barriers and provide a most efficient approach to global collaborative research and data sharing. In this new scheme, each country will be expected to fund the participating researchers from their country.


===Mind uploading===
The GSF neuroinformatics committee then developed a business plan for the operation, support and establishment of the [[INCF]] which was supported and approved by the GSF Science Ministers at its 2004 meeting. In 2006 the INCF was created and its central office established and set into operation at the Karolinska Institute, Stockholm, Sweden under the leadership of [[Sten Grillner]]. Sixteen countries (Australia, Canada, China, the Czech Republic, Denmark, Finland, France, Germany, India, Italy, Japan, the Netherlands, Norway, Sweden, Switzerland, the United Kingdom and the United States), and the EU Commission established the legal basis for the INCF and Programme in International Neuroinformatics (PIN). To date, eighteen countries (Australia, Belgium, Czech Republic, Finland, France, Germany, India, Italy, Japan, Malaysia, Netherlands, Norway, Poland, Republic of Korea, Sweden, Switzerland, the United Kingdom and the United States) are members of the INCF. Membership is pending for several other countries.
[[Mind uploading]] is the process of [[brain scanning|scanning]] a physical structure of the brain accurately enough to create an [[emulator|emulation]] of the mental state (including long-term memory and "self") and copying it to a computer in a [[Digital data|digital]] form. The [[computer]] would then run a [[computer simulation|simulation]] of the brain's information processing, such that it would respond in essentially the same way as the original brain and experience having a [[sentient]] [[conscious]] [[mind]].<ref name="sim.me.uk">{{cite journal |vauthors=Bamford S |title=A framework for approaches to transfer of a mind's substrate. |journal=International Journal of Machine Consciousness |date=June 2012 |volume=4 |issue=1 |pages=23–34 |doi=10.1142/S1793843012400021 |url=http://www.sim.me.uk/neural/JournalArticles/Bamford2012IJMC.pdf}}</ref><ref>{{cite journal |vauthors=Goertzel B, Ikle M |year=2012 |title=Introduction |journal=International Journal of Machine Consciousness |volume=04 |pages=1–3 |doi=10.1142/S1793843012020015}}</ref><ref name="kajsotala.fi">{{cite journal |vauthors=Sotala K, Valpola H |title=Coalescing minds: brain uploading-related group mind scenarios. |journal=International Journal of Machine Consciousness |date=June 2012 |volume=4 |issue=1 |pages=293–312 |doi=10.1142/S1793843012400173 |url=http://kajsotala.fi/Papers/CoalescingMinds.pdf}}</ref> Substantial mainstream research in related areas is being conducted in animal brain mapping and simulation, development of faster supercomputers, [[virtual reality]], [[brain–computer interface]]s, [[connectomics]], and information extraction from dynamically functioning brains.<ref>{{cite journal |vauthors=Kay KN, Naselaris T, Prenger RJ, Gallant JL |title=Identifying natural images from human brain activity |journal=Nature |volume=452 |issue=7185 |pages=352–5 |date=March 2008 |pmid=18322462 |pmc=3556484 |doi=10.1038/nature06713 |bibcode=2008Natur.452..352K}}</ref> According to supporters, many of the tools and ideas needed to achieve mind uploading already exist or are currently under active development; however, they will admit that others are, as yet, very speculative, but say they are still in the realm of engineering possibility.


==Auxiliary sciences of neuroinformatics==
The goal of the INCF is to coordinate and promote international activities in neuroinformatics. The INCF contributes to the development and maintenance of database and computational infrastructure and support mechanisms for neuroscience applications. The system is expected to provide access to all freely accessible human brain data and resources to the international research community. The more general task of INCF is to provide conditions for developing convenient and flexible applications for neuroscience laboratories in order to improve our knowledge about the human brain and its disorders.
===Data analysis and knowledge organisation===
{{Main|Data analysis|Library science}}
Neuroinformatics (in context of [[library science]]) is also devoted to the development of neurobiology knowledge with computational models and analytical tools for sharing, integration, and analysis of experimental [[data]] and advancement of theories about the [[nervous system]] function. In the INCF context, this field refers to scientific information about primary experimental data, ontology, metadata, analytical tools, and computational models of the nervous system. The primary data includes experiments and experimental conditions concerning the genomic, molecular, structural, cellular, networks, systems and behavioural level, in all species and preparations in both the normal and disordered states.<ref>{{Cite web|url=https://www.incf.org/about/what-is-neuroinformatics |title=What is Neuroinformatics {{!}} INCF - International Neuroinformatics Coordinating Facility |website=www.incf.org |access-date=2020-04-19}}</ref> In the recent decade, as vast amounts of diverse data about the brain were gathered by many research groups, the problem was raised of how to integrate the data from thousands of publications in order to enable efficient tools for further research. The biological and neuroscience data are highly interconnected and complex, and by itself, integration represents a great challenge for scientists.


==History==
===Society for Neuroscience Brain Information Group===
The United States [[National Institute of Mental Health]] (NIMH), the [[National Institute of Drug Abuse]] (NIDA) and the [[National Science Foundation]] (NSF) provided the National Academy of Sciences [[Institute of Medicine]] with funds to undertake a careful analysis and study of the need to introduce computational techniques to brain research. The positive recommendations were reported in 1991.<ref>{{cite report |date=1991 |title=Mapping the Brain and Its Functions: Integrating Enabling Technologies into Neuroscience Research |type=Consensus study report |publisher=[[National Academy Press]] |location=Washington, DC |editor1-last=Pechura |editor1-first=Constance M. |editor2-last=Martin |editor2-first=Joseph B. |isbn=978-0-309-04497-4 |doi=10.17226/1816 |doi-access= |url=https://archive.org/details/mappingbrainits00inst }}</ref> This positive report enabled NIMH, now directed by Allan Leshner, to create the "Human Brain Project" (HBP), with the first grants awarded in 1993. Next, Koslow pursued the globalization of the HPG and neuroinformatics through the [[European Union]] and the [[Office for Economic Co-operation and Development]] (OECD), Paris, France. Two particular opportunities occurred in 1996.
On the foundation of all of these activities, Huda Akil, the 2003 President of the [[Society for Neuroscience]] (SfN) established the Brain Information Group (BIG) to evaluate the importance of neuroinformatics to neuroscience and specifically to the SfN. Following the report from BIG, SfN also established a neuroinformatics committee.
* The first was the existence of the US/European Commission Biotechnology Task force co-chaired by [[Mary Clutter]] from NSF. Within the mandate of this committee, of which Koslow was a member the United States European Commission Committee on Neuroinformatics was established and co-chaired by Koslow from the United States. This committee resulted in the European Commission initiating support for neuroinformatics in Framework 5 and it has continued to support activities in neuroinformatics research and training.
* A second opportunity for globalization of neuroinformatics occurred when the participating governments of the Mega Science Forum (MSF) of the OECD were asked if they had any new scientific initiatives to bring forward for scientific cooperation around the globe. The [[White House Office of Science and Technology Policy]] requested that agencies in the federal government meet at NIH to decide if cooperation were needed that would be of global benefit. The NIH held a series of meetings in which proposals from different agencies were discussed. The proposal recommendation from the U.S. for the MSF was a combination of the NSF and NIH proposals. Jim Edwards of NSF supported databases and data-sharing in the area of biodiversity.
The two related initiatives were combined to form the United States proposal on "Biological Informatics". This initiative was supported by the [[White House Office of Science and Technology Policy]] and presented at the OECD MSF by Edwards and Koslow. An MSF committee was established on Biological Informatics with two subcommittees: 1. Biodiversity (Chair, James Edwards, NSF), and 2. Neuroinformatics (Chair, Stephen Koslow, NIH). At the end of two years the Neuroinformatics subcommittee of the Biological Working Group issued a report supporting a global neuroinformatics effort. Koslow, working with the NIH and the White House Office of Science and Technology Policy to establishing a new Neuroinformatics working group to develop specific recommendation to support the more general recommendations of the first report. The Global Science Forum (GSF; renamed from MSF) of the OECD supported this recommendation.


==Community==
In 2004, SfN announced the Neuroscience Database Gateway (NDG) as a universal resource for neuroscientists through which almost any neuroscience databases and tools may be reached. The NDG was established with funding from NIDA, NINDS and NIMH. The Neuroscience Database Gateway has transitioned to a new enhanced platform, the [[Neuroscience Information Framework]] <http://www.neuinfo.org>. Funded by the NIH Neuroscience BLueprint, the NIF is a dynamic portal providing access to neuroscience-relevant resources (data, tools, materials) from a single search interface. The NIF builds upon the foundation of the NDG, but provides a unique set of tools tailored especially for neuroscientists: a more expansive catalog, the ability to search multiple databases directly from the NIF home page, a custom web index of neuroscience resources, and a neuroscience-focused literature search function.
; Institute of Neuroinformatics, University of Zurich
: The Institute of Neuroinformatics was established at the [[University of Zurich]] and ETH Zurich at the end of 1995. The mission of the Institute is to discover the key principles by which brains work and to implement these in artificial systems that interact intelligently with the real world.<ref>{{Cite web |last=ETH|first=Zurich|title=Institute of Neuroinformatics, University of Zurich |date=11 September 2023 |url=https://www.ini.uzh.ch/en.html}}</ref>
; '''Institute for Adaptive and Neural Computation, School of Informatics, University of Edinburgh'''
: ''Computational Neuroscience and Neuroinformatics Group'' in Institute for Adaptive and Neural Computation of [[University of Edinburgh]]'s [[School of Informatics, University of Edinburgh|School of Informatics]] study how the brain [[Information processing (psychology)|processes information]].<ref>{{Cite web |title=Computational Neuroscience and Neuroinformatics {{!}} InfWeb |url=https://web.inf.ed.ac.uk/anc/research/neuroscience|access-date=2020-12-12 |website=web.inf.ed.ac.uk|date=5 November 2020 |language=en}}</ref>


;The International Neuroinformatics Coordinating Facility
==Collaboration with other disciplines==
: An international organization with the mission<ref>{{Cite web|url=https://www.incf.org/about-incf|title=Mission {{!}} INCF |website=www.incf.org |language=en |access-date=2019-10-09}}</ref> to develop, evaluate, and endorse standards and best practices that embrace the principles of open, fair,<ref>{{Cite news |url=https://www.force11.org/group/fairgroup/fairprinciples|title=The FAIR Data Principles |last=Hagstrom |first=Stephanie |date=2014-09-03 |work=FORCE11|access-date=2017-12-04|language=en}}</ref> and citable neuroscience. As of October 2019, the INCF has active nodes in 18 countries.<ref>{{Cite web|url=https://www.incf.org/network/nodes |title=Governing and Associate Nodes {{!}} INCF|website=www.incf.org|language=en|access-date=2019-10-09}}</ref> This committee presented 3 recommendations to the member governments of GSF. These recommendations were:
Neuroinformatics is formed at the intersections of the following fields:
# National neuroinformatics programs should be continued or initiated in each country should have a national node to both provide research resources nationally and to serve as the contact for national and international coordination.
{{columns-list|3|
# An International Neuroinformatics Coordinating Facility should be established. The INCF will coordinate the implementation of a global neuroinformatics network through integration of national neuroinformatics nodes.
* [[neuroscience]]
# A new international funding scheme should be established.
* [[computer science]]
This scheme should eliminate national and disciplinary barriers and provide a most efficient approach to global collaborative research and data sharing. In this new scheme, each country will be expected to fund the participating researchers from their country. The GSF neuroinformatics committee then developed a business plan for the operation, support and establishment of the INCF which was supported and approved by the GSF Science Ministers at its 2004 meeting. In 2006 the INCF was created and its central office established and set into operation at the Karolinska Institute, Stockholm, Sweden under the leadership of [[Sten Grillner]]. Sixteen countries (Australia, Canada, China, the Czech Republic, Denmark, Finland, France, Germany, India, Italy, Japan, the Netherlands, Norway, Sweden, Switzerland, the United Kingdom and the United States), and the EU Commission established the legal basis for the INCF and Programme in International Neuroinformatics (PIN). To date, eighteen countries (Australia, Belgium, Czech Republic, Finland, France, Germany, India, Italy, Japan, Malaysia, Netherlands, Norway, Poland, Republic of Korea, Sweden, Switzerland, the United Kingdom and the United States) are members of the INCF. Membership is pending for several other countries. The goal of the INCF is to coordinate and promote international activities in neuroinformatics. The INCF contributes to the development and maintenance of database and computational infrastructure and support mechanisms for neuroscience applications. The system is expected to provide access to all freely accessible human brain data and resources to the international research community. The more general task of INCF is to provide conditions for developing convenient and flexible applications for neuroscience laboratories in order to improve our knowledge about the human brain and its disorders.
* [[biology]]
* [[experimental psychology]]
* [[medicine]]
* [[engineering]]
* [[physical sciences]]
* [[mathematics]]
* [[chemistry]]
}}
Biology is concerned with molecular data (from genes to cell specific expression); medicine and anatomy with the structure of synapses and systems level anatomy; engineering – [[electrophysiology]] (from single channels to scalp surface EEG), brain imaging; computer science – databases, software tools, mathematical sciences – models, chemistry – [[neurotransmitter]]s, etc. Neuroscience uses all aforementioned experimental and theoretical studies to learn about the brain through its various levels. Medical and biological specialists help to identify the unique cell types, and their elements and anatomical connections. Functions of complex organic molecules and structures, including a myriad of biochemical, molecular, and genetic mechanisms which regulate and control brain function, are determined by specialists in chemistry and cell biology. Brain imaging determines structural and functional information during mental and behavioral activity. Specialists in [[biophysics]] and physiology study physical processes within neural cells neuronal networks. The data from these fields of research is analyzed and arranged in databases and neural models in order to integrate various elements into a sophisticated system; this is the point where neuroinformatics meets other disciplines.

Neuroscience provides the following types of data and information on which neuroinformatics operates:
* Molecular and cellular data ([[ion channel]], [[action potential]], genetics, cytology of neurons, [[protein pathway]]s),
* Data from organs and systems ([[visual cortex]], [[perception]], audition, [[sensory system]], pain, taste, [[motor system]], [[spinal cord]]),
* [[Cognitive]] data (language, emotion, [[motor learning]], [[sexual behavior]], [[decision making]], [[social neuroscience]]),
* Developmental information ([[neuronal differentiation]], cell survival, [[synaptic formation]], motor differentiation, injury and regeneration, axon guidance, [[growth factor]]s),
* Information about diseases and aging (autonomic nervous system, depression, anxiety, Parkinson's disease, addiction, [[memory loss]]),
* Neural engineering data ([[brain-computer interface]]), and
* Computational neuroscience data (computational models of various neuronal systems, from membrane currents, proteins to learning and memory).

Neuroinformatics uses databases, the Internet, and visualization in the storage and analysis of the mentioned neuroscience data.


; Laboratory of Neuroinformatics, Nencki Institute of Experimental Biology
==Research programs and groups==
: The main activity of the group is development of computational tools and models, and using them to understand brain structure and function.<ref>{{Cite web |last=Javatech|title=Nencki Institute of Experimental Biology - Nencki Institute of Experimental Biology |url=http://en.nencki.gov.pl/laboratory-of-neuroinformatics |website=en.nencki.gov.pl|language=en}}</ref>


=== Australia ===
; Neuroimaging & Neuroinformatics, Howard Florey Institute, University of Melbourne
; Neuroimaging & Neuroinformatics, Howard Florey Institute, University of Melbourne
: Institute scientists utilize brain imaging techniques, such as magnetic resonance imaging, to reveal the organization of brain networks involved in human thought. Led by Gary Egan.
: Institute scientists utilize brain imaging techniques, such as magnetic resonance imaging, to reveal the organization of brain networks involved in human thought. Led by Gary Egan.


; Montreal Neurological Institute, McGill University
=== Canada ===
: Led by Alan Evans, MCIN conducts computationally-intensive brain research using innovative mathematical and statistical approaches to integrate clinical, psychological and brain imaging data with genetics. MCIN researchers and staff also develop infrastructure and software tools in the areas of image processing, databasing, and high performance computing. The MCIN community, together with the [http://ludmercentre.ca Ludmer Centre for Neuroinformatics and Mental Health], collaborates with a broad range of researchers and increasingly focuses on open data sharing and open science, including for the Montreal Neurological Institute.
; [http://mcin-cnim.ca/ McGill Centre for Integrative Neuroscience (MCIN)], Montreal Neurological Institute, McGill University
: Led by Alan Evans, MCIN conducts computationally-intensive brain research using innovative mathematical and statistical approaches to integrate clinical, psychological and brain imaging data with genetics. MCIN researchers and staff also develop infrastructure and software tools in the areas of image processing, databasing, and high performance computing. The MCIN community, together with the [http://ludmercentre.ca Ludmer Centre for Neuroinformatics and Mental Health], collaborates with a broad range of researchers and increasingly focuses on open data sharing and open science, including for the Montreal Neurological Institute.


=== Denmark ===
; The THOR Center for Neuroinformatics
; The THOR Center for Neuroinformatics
: Established April 1998 at the Department of Mathematical Modelling, Technical University of Denmark. Besides pursuing independent research goals, the THOR Center hosts a number of related projects concerning neural networks, functional neuroimaging, multimedia signal processing, and biomedical signal processing.
: Established April 1998 at the Department of Mathematical Modelling, Technical University of Denmark. Besides pursuing independent research goals, the THOR Center hosts a number of related projects concerning neural networks, functional neuroimaging, multimedia signal processing, and biomedical signal processing.


=== Germany ===
; The Neuroinformatics Portal Pilot
; The Neuroinformatics Portal Pilot
: The project is part of a larger effort to enhance the exchange of neuroscience data, data-analysis tools, and modeling software. The portal is supported from many members of the OECD Working Group on Neuroinformatics. The Portal Pilot is promoted by the German Ministry for Science and Education.
: The project is part of a larger effort to enhance the exchange of neuroscience data, data-analysis tools, and modeling software. The portal is supported from many members of the OECD Working Group on Neuroinformatics. The Portal Pilot is promoted by the German Ministry for Science and Education.
; Computational Neuroscience, ITB, Humboldt-University Berlin
; Computational Neuroscience, ITB, Humboldt-University Berlin
: This group focuses on computational neurobiology, in particular on the dynamics and signal processing capabilities of systems with [[spiking neuron]]s. Lead by Andreas VM Herz.
: This group focuses on computational neurobiology, in particular on the dynamics and signal processing capabilities of systems with [[spiking neuron]]s. Led by Andreas VM Herz.
; The Neuroinformatics Group in Bielefeld
; The Neuroinformatics Group in Bielefeld
: Active in the field of Artificial Neural Networks since 1989. Current research programmes within the group are focused on the improvement of man-machine-interfaces, robot-force-control, eye-tracking experiments, machine vision, virtual reality and distributed systems.
: Active in the field of Artificial Neural Networks since 1989. Current research programmes within the group are focused on the improvement of man-machine-interfaces, robot-force-control, eye-tracking experiments, machine vision, virtual reality and distributed systems.


; Laboratory of Computational Embodied Neuroscience (LOCEN)<ref>{{cite web|url=http://www.istc.cnr.it/group/locen|title=Laboratory of Computational Embodied Neuroscience - Institute of Cognitive Sciences and Technologies|website=www.istc.cnr.it|access-date=2 April 2018}}</ref>
=== Italy ===
; Laboratory of Computational Embodied Neuroscience (LOCEN)<ref>http://www.istc.cnr.it/group/locen</ref>
: This group, part of the Institute of Cognitive Sciences and Technologies, Italian National Research Council (ISTC-CNR) in Rome and founded in 2006 is currently led by Gianluca Baldassarre. It has two objectives: (a) understanding the brain mechanisms underlying learning and expression of sensorimotor behaviour, and related motivations and higher-level cognition grounded on it, on the basis of embodied computational models; (b) transferring the acquired knowledge to building innovative controllers for autonomous humanoid robots capable of learning in an open-ended fashion on the basis of intrinsic and extrinsic motivations.
: This group, part of the Institute of Cognitive Sciences and Technologies, Italian National Research Council (ISTC-CNR) in Rome and founded in 2006 is currently led by Gianluca Baldassarre. It has two objectives: (a) understanding the brain mechanisms underlying learning and expression of sensorimotor behaviour, and related motivations and higher-level cognition grounded on it, on the basis of embodied computational models; (b) transferring the acquired knowledge to building innovative controllers for autonomous humanoid robots capable of learning in an open-ended fashion on the basis of intrinsic and extrinsic motivations.


=== Japan ===
; Japan national neuroinformatics resource
; Japan national neuroinformatics resource
: The Visiome Platform is the Neuroinformatics Search Service that provides access to mathematical models, experimental data, analysis libraries and related resources. An online portal for neurophysiological data sharing is also available at [http://brainliner.jp BrainLiner.jp] as part of the [[Ministry of Education, Culture, Sports, Science and Technology|MEXT]] Strategic Research Program for Brain Sciences (SRPBS).
: The Visiome Platform is the Neuroinformatics Search Service that provides access to mathematical models, experimental data, analysis libraries and related resources. An online portal for neurophysiological data sharing is also available at [http://brainliner.jp BrainLiner.jp] as part of the [[Ministry of Education, Culture, Sports, Science and Technology|MEXT]] Strategic Research Program for Brain Sciences (SRPBS).
; Laboratory for Mathematical Neuroscience, [[RIKEN Brain Science Institute]] (Wako, Saitama)
; Laboratory for Mathematical Neuroscience, RIKEN Brain Science Institute (Wako, Saitama)
: The target of Laboratory for Mathematical Neuroscience is to establish mathematical foundations of brain-style computations toward construction of a new type of information science. Led by Shun-ichi Amari.
: The target of Laboratory for Mathematical Neuroscience is to establish mathematical foundations of brain-style computations toward construction of a new type of information science. Led by Shun-ichi Amari.


=== The Netherlands ===
; Netherlands state program in neuroinformatics
; Netherlands state program in neuroinformatics
: Started in the light of the international OECD Global Science Forum which aim is to create a worldwide program in Neuroinformatics.
: Started in the light of the international OECD Global Science Forum which aim is to create a worldwide program in Neuroinformatics.


; NUST-SEECS Neuroinformatics Research Lab<ref>{{cite web|url=http://neuro.seecs.nust.edu.pk/|title=Neuro-Informatics Lab @ SEECS, NUST - School of Electrical Engineering & Computer Sciences, National University of Sciences & Technology |website=neuro.seecs.nust.edu.pk|access-date=2 April 2018}}</ref>
=== Pakistan ===
; NUST-SEECS Neuroinformatics Research Lab<ref>http://neuro.seecs.nust.edu.pk/</ref>
: Establishment of the Neuro-Informatics Lab at SEECS-NUST has enabled Pakistani researchers and members of the faculty to actively participate in such efforts, thereby becoming an active part of the above-mentioned experimentation, simulation, and visualization processes. The lab collaborates with the leading international institutions to develop highly skilled human resource in the related field. This lab facilitates neuroscientists and computer scientists in Pakistan to conduct their experiments and analysis on the data collected using state of the art research methodologies without investing in establishing the experimental neuroscience facilities. The key goal of this lab is to provide state of the art experimental and simulation facilities, to all beneficiaries including higher education institutes, medical researchers/practitioners, and technology industry.
: Establishment of the Neuro-Informatics Lab at SEECS-NUST has enabled Pakistani researchers and members of the faculty to actively participate in such efforts, thereby becoming an active part of the above-mentioned experimentation, simulation, and visualization processes. The lab collaborates with the leading international institutions to develop highly skilled human resource in the related field. This lab facilitates neuroscientists and computer scientists in Pakistan to conduct their experiments and analysis on the data collected using state of the art research methodologies without investing in establishing the experimental neuroscience facilities. The key goal of this lab is to provide state of the art experimental and simulation facilities, to all beneficiaries including higher education institutes, medical researchers/practitioners, and technology industry.


=== Switzerland ===
; The Blue Brain Project
; The Blue Brain Project
: The [[Blue Brain]] Project was founded in May 2005, and uses an 8000 processor [[Blue Gene]]/L supercomputer developed by IBM. At the time, this was one of the fastest supercomputers in the world.
: The [[Blue Brain]] Project was founded in May 2005, and uses an 8000 processor [[Blue Gene]]/L supercomputer developed by IBM. At the time, this was one of the fastest supercomputers in the world.
Line 129: Line 112:
:* '''Simulations and experiments''': iterations between large-scale simulations of neocortical microcircuits and experiments in order to verify the computational model and explore predictions.
:* '''Simulations and experiments''': iterations between large-scale simulations of neocortical microcircuits and experiments in order to verify the computational model and explore predictions.
: The mission of the Blue Brain Project is to understand mammalian brain function and dysfunction through detailed simulations. The Blue Brain Project will invite researchers to build their own models of different brain regions in different species and at different levels of detail using Blue Brain Software for simulation on Blue Gene. These models will be deposited in an internet database from which Blue Brain software can extract and connect models together to build brain regions and begin the first whole brain simulations.
: The mission of the Blue Brain Project is to understand mammalian brain function and dysfunction through detailed simulations. The Blue Brain Project will invite researchers to build their own models of different brain regions in different species and at different levels of detail using Blue Brain Software for simulation on Blue Gene. These models will be deposited in an internet database from which Blue Brain software can extract and connect models together to build brain regions and begin the first whole brain simulations.
; The Institute of Neuroinformatics (INI)
: Established at the University of Zurich at the end of 1995, the mission of the Institute is to discover the key principles by which brains work and to implement these in artificial systems that interact intelligently with the real world.


; Genes to Cognition Project
=== United Kingdom ===
: Genes to Cognition Project, a neuroscience research programme that studies genes, the brain and behaviour in an integrated manner. It is engaged in a large-scale investigation of the function of molecules found at the synapse. This is mainly focused on proteins that interact with the NMDA receptor, a receptor for the neurotransmitter, glutamate, which is required for processes of synaptic plasticity such as long-term potentiation (LTP). Many of the techniques used are high-throughout in nature, and integrating the various data sources, along with guiding the experiments has raised numerous informatics questions. The program is primarily run by Professor [[Seth Grant]] at the [[Wellcome Trust]] [[Sanger Institute]], but there are many other teams of collaborators across the world.
; [[Genes to Cognition Project]]
; The CARMEN project<ref>{{cite web|url=http://www.carmen.org.uk/|title=Welcome to CARMEN|website=Welcome to CARMEN|access-date=2 April 2018|archive-url=https://web.archive.org/web/20191030005343/http://www.carmen.org.uk/|archive-date=30 October 2019|url-status=dead}}</ref>
: A neuroscience research programme that studies genes, the brain and behaviour in an integrated manner. It is engaged in a large-scale investigation of the function of molecules found at the synapse. This is mainly focused on proteins that interact with the NMDA receptor, a receptor for the neurotransmitter, glutamate, which is required for processes of synaptic plasticity such as long-term potentiation (LTP). Many of the techniques used are high-throughout in nature, and integrating the various data sources, along with guiding the experiments has raised numerous informatics questions. The program is primarily run by Professor [[Seth Grant]] at the [[Wellcome Trust]] [[Sanger Institute]], but there are many other teams of collaborators across the world.
; The CARMEN project<ref>http://www.carmen.org.uk/</ref>
: The CARMEN project is a multi-site (11 universities in the United Kingdom) research project aimed at using [[GRID computing]] to enable experimental neuroscientists to archive their datasets in a structured database, making them widely accessible for further research, and for modellers and algorithm developers to exploit.
: The CARMEN project is a multi-site (11 universities in the United Kingdom) research project aimed at using [[GRID computing]] to enable experimental neuroscientists to archive their datasets in a structured database, making them widely accessible for further research, and for modellers and algorithm developers to exploit.
; EBI Computational Neurobiology, EMBL-EBI (Hinxton)
; EBI Computational Neurobiology, EMBL-EBI (Hinxton)
: The main goal of the group is to build realistic models of neuronal function at various levels, from the synapse to the micro-circuit, based on the precise knowledge of molecule functions and interactions (Systems Biology). Led by Nicolas Le Novère.
: The main goal of the group is to build realistic models of neuronal function at various levels, from the synapse to the micro-circuit, based on the precise knowledge of molecule functions and interactions (Systems Biology). Led by Nicolas Le Novère.


=== United States ===
; Neuroscience Information Framework
: The [[Neuroscience Information Framework]] (NIF) is an initiative of the [[NIH Blueprint for Neuroscience Research]], which was established in 2004 by the [[National Institutes of Health]]. Unlike general [[search engine]]s, NIF provides deeper access to a more focused set of resources that are relevant to neuroscience, search strategies tailored to neuroscience, and access to content that is traditionally "hidden" from [[web search engine]]s. The NIF is a dynamic inventory of neuroscience databases, annotated and integrated with a unified system of biomedical terminology (i.e. [[NeuroLex]]). NIF supports concept-based queries across multiple scales of biological structure and multiple levels of biological function, making it easier to search for and understand the results. NIF will also provide a registry through which resources providers can disclose availability of resources relevant to neuroscience research. NIF is not intended to be a warehouse or repository itself, but a means for disclosing and locating resources elsewhere available via the [[World Wide Web|web]].
; Neurogenetics GeneNetwork
; Neurogenetics GeneNetwork
: [[Genenetwork]] started as component of the NIH Human Brain Project in 1999 with a focus on the genetic analysis of brain structure and function. This international program consists of tightly integrated genome and phenome data sets for human, mouse, and rat that are designed specifically for large-scale systems and network studies relating gene variants to differences in mRNA and protein expression and to differences in CNS structure and behavior. The great majority of data are open access. GeneNetwork has a companion neuroimaging web site—the Mouse Brain Library—that contains high resolution images for thousands of genetically defined strains of mice.
: [[Genenetwork]] started as component of the NIH Human Brain Project in 1999 with a focus on the genetic analysis of brain structure and function. This international program consists of tightly integrated genome and phenome data sets for human, mouse, and rat that are designed specifically for large-scale systems and network studies relating gene variants to differences in mRNA and protein expression and to differences in CNS structure and behavior. The great majority of data are open access. GeneNetwork has a companion neuroimaging web site—the Mouse Brain Library—that contains high resolution images for thousands of genetically defined strains of mice.
; The Neuronal Time Series Analysis (NTSA)<ref>{{cite web |title=NTSA Workbench |url=http://soma.npa.uiuc.edu/ntsa/ |publisher=University of Illinois Urbana-Champaign |archive-date=21 July 2006 |archive-url=https://web.archive.org/web/20060721115355/http://soma.npa.uiuc.edu/ntsa/ }}</ref>
; The Neuronal Time Series Analysis (NTSA)<ref>{{cite web |title=NTSA Workbench |url=http://soma.npa.uiuc.edu/ntsa/ |publisher=University of Illinois Urbana-Champaign |archive-date=21 July 2006 |archive-url=https://web.archive.org/web/20060721115355/http://soma.npa.uiuc.edu/ntsa/ }}</ref>
: NTSA Workbench is a set of tools, techniques and standards designed to meet the needs of neuroscientists who work with neuronal time series data. The goal of this project is to develop information system that will make the storage, organization, retrieval, analysis and sharing of experimental and simulated neuronal data easier. The ultimate aim is to develop a set of tools, techniques and standards in order to satisfy the needs of neuroscientists who work with neuronal data.
: NTSA Workbench is a set of tools, techniques and standards designed to meet the needs of neuroscientists who work with neuronal time series data. The goal of this project is to develop information system that will make the storage, organization, retrieval, analysis and sharing of experimental and simulated neuronal data easier. The ultimate aim is to develop a set of tools, techniques and standards in order to satisfy the needs of neuroscientists who work with neuronal data.
; The Cognitive Atlas<ref>http://www.cognitiveatlas.org/</ref>
; The Cognitive Atlas<ref>{{cite web|url=http://www.cognitiveatlas.org/|title=Cognitive Atlas|website=www.cognitiveatlas.org|access-date=2 April 2018}}</ref>
: The Cognitive Atlas is a project developing a shared knowledge base in cognitive science and neuroscience. This comprises two basic kinds of knowledge: tasks and concepts, providing definitions and properties thereof, and also relationships between them. An important feature of the site is ability to cite literature for assertions (e.g. "The Stroop task measures executive control") and to discuss their validity. It contributes to [[NeuroLex]] and the [[Neuroscience Information Framework]], allows programmatic access to the database, and is built around [[semantic web]] technologies.
: The Cognitive Atlas is a project developing a shared knowledge base in cognitive science and neuroscience. This comprises two basic kinds of knowledge: tasks and concepts, providing definitions and properties thereof, and also relationships between them. An important feature of the site is ability to cite literature for assertions (e.g. "The Stroop task measures executive control") and to discuss their validity. It contributes to [[NeuroLex]] and the [[Neuroscience Information Framework]], allows programmatic access to the database, and is built around [[semantic web]] technologies.
; Brain Big Data research group at the Allen Institute for Brain Science (Seattle, WA)
; Brain Big Data research group at the Allen Institute for Brain Science (Seattle, WA)
: Led by Hanchuan Peng,<ref>http://home.penglab.com</ref> this group has focused on using large-scale imaging computing and data analysis techniques to reconstruct single neuron models and mapping them in brains of different animals.
: Led by Hanchuan Peng,<ref>{{cite web|url=http://home.penglab.com|title=Hanchuan Peng's Homepage|website=home.penglab.com|access-date=2 April 2018}}</ref> this group has focused on using large-scale imaging computing and data analysis techniques to reconstruct single neuron models and mapping them in brains of different animals.

==Technologies and developments==
The main technological tendencies in neuroinformatics are:

# Application of computer science for building databases, tools, and networks in neuroscience;
# Analysis and modeling of neuronal systems.
In order to organize and operate with neural data scientists need to use the standard terminology and atlases that precisely describe the brain structures and their relationships.

* [[Neuron tracing|Neuron Tracing and Reconstruction]] is an essential technique to establish digital models of the morphology of neurons. Such morphology is useful for neuron classification and simulation.
* '''BrainML'''<ref>http://www.brainml.org</ref> is a system that provides a standard XML metaformat for exchanging neuroscience data.
* The '''[[Biomedical Informatics Research Network]]''' (BIRN)<ref>http://www.birncommunity.org/</ref> is an example of a [[grid computing|grid system]] for neuroscience. BIRN is a geographically distributed virtual community of shared resources offering vast scope of services to advance the diagnosis and treatment of disease. BIRN allows combining databases, interfaces and tools into a single environment.
* '''[[Budapest Reference Connectome]]''' is a web-based 3D visualization tool to browse connections in the human brain. Nodes, and connections are calculated from the [[MRI]] datasets of the [[Human Connectome Project]].
* '''GeneWays'''<ref>http://anya.igsb.anl.gov/Geneways/GeneWays.html</ref> is concerned with cellular morphology and circuits. GeneWays is a system for automatically extracting, analyzing, visualizing and integrating molecular pathway data from the research literature. The system focuses on interactions between molecular substances and actions, providing a graphical view on the collected information and allows researchers to review and correct the integrated information.
* '''Neocortical Microcircuit Database''' (NMDB).<ref>[[Henry Markram]], X. Luo, G. Silberberg, M. Toledo-Rodriguez and A. Gupta. The Neocortical Microcircuit Database (NMDB), in ''Databasing the Brain: From Data to Knowledge (Neuroinformatics)'', p. 327-342, 2005.</ref> A database of versatile brain's data from cells to complex structures. Researchers are able not only to add data to the database but also to acquire and edit one.
* '''SenseLab'''.<ref>http://senselab.med.yale.edu/</ref> SenseLab is a long-term effort to build integrated, multidisciplinary models of neurons and neural systems. It was founded in 1993 as part of the original [[Human Brain Project]]. A collection of multilevel neuronal databases and tools. SenseLab contains six related databases that support experimental and theoretical research on the membrane properties that mediate information processing in nerve cells, using the olfactory pathway as a model system.
* '''BrainMaps.org'''<ref>http://brainmaps.org/</ref> is an interactive high-resolution digital [[brain atlas]] using a high-speed database and virtual microscope that is based on over 12 million megapixels of scanned images of several species, including human.
Another approach in the area of the [[brain map]]pings is the probabilistic atlases obtained from the real data from different group of people, formed by specific factors, like age, gender, diseased etc. Provides more flexible tools for brain research and allow obtaining more reliable and precise results, which cannot be achieved with the help of traditional brain atlases.


==See also==
==See also==
{{columns-list|3|
{{columns-list|colwidth=22em|
* [[Outline of the human brain]]
* [[Outline of the human brain]]
* [[Outline of brain mapping]]
* [[Outline of brain mapping]]
Line 185: Line 145:
}}
}}


== References ==
==Notes and references==
=== Citations ===
{{Reflist|30em}}
{{Reflist}}


==Bibliography==
=== Sources ===
{{refbegin}}
* {{Cite journal |last=Adee |first=Sally |date=June 2008 |title=Reverse Engineering the Brain |journal=IEEE Spectrum |volume=45 |issue=6 |pages=51–53 |doi=10.1109/MSPEC.2008.4531462 |subscription=yes }}
* {{cite journal |last=Adee |first=Sally |date=June 2008 |title = Reverse Engineering the Brain |journal = [[IEEE Spectrum]] |volume=45 |issue=6 |pages = 51–53 |doi = 10.1109/MSPEC.2008.4531462 |s2cid=41761224 }}
* {{Cite web |title=Strategy Overview 2008–2010 |date=8 July 2008 |website=INCF |publisher=International Neuroinformatics Coordinating Facility |url=https://files.incf.org/dl/y7FLrWCmVh }}
* {{cite web |year = 2006 |website = Society for neuroscience |title = Annual Report FY2006: Navigating a changing landscape |url = http://www.sfn.org/~/media/SfN/Documents/Annual%20Reports/2006_annual_report.ashx |format = PDF }}
* {{Cite journal |last1=Gardner |first1=Daniel |last2=Shepherd |first2=Gordon M. |author2-link=Gordon M Shepherd (neuroscientist) |date=September 2004 |title=A gateway to the future of Neuroinformatics |journal=[[Neuroinformatics (journal)|Neuroinformatics]] |volume=2 |issue=3 |pages=271–274 |doi=10.1385/NI:2:3:271 |pmid=15365191 |subscription=yes }}
* {{cite journal |last1=Ascoli |first1=Giorgio A. |last2=De Schutter |first2=Erik |last3=Kennedy |first3=David N. |title=An information science infrastructure for neuroscience |journal=Neuroinformatics |volume=1 |issue=1 |pages=1–2 |date=March 2003 |pmid=15055390 |doi=10.1385/NI:1:1:001 |subscription=yes }}
* {{cite book |editor1-last = Arbib |editor1-first = Michael A. |editor2-last = Grethe |editor2-first = Jeffrey S. |year = 2001 |title = Computing the Brain, A Guide to Neuroinformatics |publisher = Academic Press |location = San Diego, CA |isbn = 978-0-12-059781-9 |oclc = 162129478 }}
* {{cite journal |last1 = Ascoli |first1 = Giorgio A. |last2 = De Schutter |first2 = Erik |last3 = Kennedy |first3 = David N. |title = An information science infrastructure for neuroscience |journal = [[Neuroinformatics (journal)|Neuroinformatics]] |volume=1 |issue=1 |pages=001–002 |date = March 2003 |pmid = 15055390 |doi = 10.1385/NI:1:1:001 |s2cid = 34221083 }}
* {{cite web |date=2006 |website=Society for neuroscience |title=Annual Report FY2006: Navigating a changing landscape |url=http://www.sfn.org/~/media/SfN/Documents/Annual%20Reports/2006_annual_report.ashx |format=PDF }}
* {{cite journal |last1 = Beltrame |first1 = F. |last2 = Koslow |first2 = S.H. |title = Neuroinformatics as a megascience issue |journal = [[IEEE Transactions on Information Technology in Biomedicine]] |volume=3 |issue=3 |pages=239–40 |date=September 1999 |pmid = 10719488 |doi = 10.1109/4233.788587 |s2cid = 346372 }}
* {{cite book |editor1-last=Koslow |editor1-first=Stephen H. |editor2-last=Huerta |editor2-first=Michael F. |date=1997 |title=Neuroinformatics: An overview of the Human Brain Project |series=Progress in neuroinformatics research |publisher=L. Erlbaum |location=Mahwah, NJ |isbn=978-0-8058-2099-7 |oclc=34958678 }}
* {{cite journal |last1=Beltrame |first1=F. |last2=Koslow |first2=S.H. |title=Neuroinformatics as a megascience issue |journal=IEEE Transactions on Information Technology in Biomedicine |volume=3 |issue=3 |pages=239–40 |date=September 1999 |pmid=10719488 |doi=10.1109/4233.788587 |subscription=yes }}
* {{cite journal |last1 = Gardner |first1 = Daniel |last2 = Shepherd |first2 = Gordon M. |author2-link=Gordon M Shepherd (neuroscientist) |date = September 2004 |title = A gateway to the future of Neuroinformatics |journal = [[Neuroinformatics (journal)|Neuroinformatics]] |volume = 2 |issue = 3 |pages=271–274 |doi = 10.1385/NI:2:3:271 |pmid = 15365191 |s2cid = 6011369 }}
* {{Cite book |editor1-last=Koslow |editor1-first=Steven H. |editor2-last=Subramaniam |editor2-first=Shankar |date=2005 | title=Databasing the Brain: From Data to Knowledge |series=Neuroinformatics |publisher=Wiley-Liss |location=Hoboken, NJ |isbn=978-0-471-30921-5 |oclc=60194822 }}
* {{cite book |editor1-last = Koslow |editor1-first = Stephen H. |editor2-last = Huerta |editor2-first = Michael F. |year = 1997 |title = Neuroinformatics: An overview of the Human Brain Project |series = Progress in neuroinformatics research |publisher = L. Erlbaum |location = Mahwah, NJ |isbn = 978-0-8058-2099-7 |oclc = 34958678 }}
* {{cite book |editor1-last=Arbib |editor1-first=Michael A. |editor2-last=Grethe |editor2-first=Jeffrey S. |date=2001 |title=Computing the Brain, A Guide to Neuroinformatics |publisher=Academic Press |location=San Diego, CA |isbn=978-0-12-059781-9 |oclc=162129478 }}
* {{cite book |editor1-last = Koslow |editor1-first = Steven H. |editor2-last = Subramaniam |editor2-first = Shankar |year = 2005 |title = Databasing the Brain: From Data to Knowledge |series = Neuroinformatics |publisher = Wiley-Liss |location = Hoboken, NJ |isbn = 978-0-471-30921-5 |oclc = 60194822 }}
* {{cite web |title = Strategy Overview 2008–2010 |date = 8 July 2008 |website = INCF |publisher = International Neuroinformatics Coordinating Facility |url = https://files.incf.org/dl/y7FLrWCmVh }}{{Dead link|date=April 2020 |bot=InternetArchiveBot |fix-attempted=yes }}
{{refend}}


==Further reading==
==Further reading==
===Books===
===Books===
{{refbegin}}
* {{cite book |editor-last=Ascoli |editor-first=Giorgio |date=2002 |title=Computational Neuroanatomy: Principles and Methods |publisher=Humana |location=Totowa, NJ |isbn=978-1-58829-000-7 |oclc=48399178 }}
* {{cite book |editor-last=Crasto |editor-first=Chiquito Joaquim |date=2007 |title=Neuroinformatics |series=Methods in Molecular Biology |volume=401 |publisher=Humana |location=Totowa, NJ |isbn=978-1-58829-720-4 |oclc=123798711 |url=https://archive.org/details/neuroinformatics00cras }}
* {{cite book |editor1-last=Koslow |editor1-first=Stephen H. |editor2-last=Huerta |editor2-first=Michael F. |date=2000 |title=Electronic Collaboration in Science |series=Progress in Neuroinformatics Research |volume=2 |isbn=978-1-138-00318-7 |oclc=47009543 }}
* {{cite book |editor1-last=Koslow |editor1-first=Stephen H. |editor2-last=Huerta |editor2-first=Michael F. |date=2000 |title=Electronic Collaboration in Science |series=Progress in Neuroinformatics Research |volume=2 |isbn=978-1-138-00318-7 |oclc=47009543 }}
* {{cite book |last=Kötter |first=Rolf |date=2003 |title=Neuroscience Databases: A Practical Guide |publisher=Springer |location=Boston, MA |isbn=978-1-4615-1079-6 |oclc=840283587 }}
* {{cite book |last=Kötter |first=Rolf |date=2003 |title=Neuroscience Databases: A Practical Guide |publisher=Springer |location=Boston, MA |isbn=978-1-4615-1079-6 |oclc=840283587 }}
* {{cite book |last1=Mitra |first1=Partha P. |last2=Bokil |first2=Hemant |date=2008 |title=Observed Brain Dynamics |publisher=Oxford University Press |location=Oxford |isbn=978-0-19-517808-1 |oclc=213446303 }}
* {{cite book |editor1-last=Shortliffe |editor1-first=Edward H. |editor1-link=Edward H. Shortliffe |editor2-last=Cimino |editor2-first=James J. |editor2-link=James J. Cimino |date=2013 |title=Biomedical Informatics: Computer Applications in Health Care and Biomedicine |edition=4th |series=Health Informatics |publisher=Springer |location=New York |isbn=978-1-4471-4474-8 |oclc=937648601 }}
* {{cite book |editor1-last=Shortliffe |editor1-first=Edward H. |editor1-link=Edward H. Shortliffe |editor2-last=Cimino |editor2-first=James J. |editor2-link=James J. Cimino |date=2013 |title=Biomedical Informatics: Computer Applications in Health Care and Biomedicine |edition=4th |series=Health Informatics |publisher=Springer |location=New York |isbn=978-1-4471-4474-8 |oclc=937648601 }}
* {{cite book |editor-last=Ascoli |editor-first=Giorgio |date=2002 |title=Computational Neuroanatomy: Principles and Methods |publisher=Humana |location=Totowa, NJ |isbn=978-1-58829-000-7 |oclc=48399178 }}
* {{cite book |last1=Mitra |first1=Partha P. |last2=Bokil |first2=Hemant |date=2008 |title=Observed Brain Dynamics |publisher=Oxford University Press |location=Oxford |isbn=978-0-19-517808-1 |oclc=213446303 }}
* {{cite book |editor-last=Crasto |editor-first=Chiquito Joaquim |date=2007 |title=Neuroinformatics |series=Methods in Molecular Biology |volume=401 |publisher=Humana |location=Totowa, NJ |isbn=978-1-58829-720-4 |oclc=123798711 }}
* {{cite book |last1=Sterratt |first1=David |last2=Graham |first2=Bruce |last3=Gillies |first3=Andrew |last4=Willshaw |first4=David |date=2011 |title=Principles of Computational Modeling in Neuroscience |publisher=Cambridge University Press |location=Cambridge |isbn=978-1-139-04255-0 |oclc=739098279 }}
* {{cite book |last1=Sterratt |first1=David |last2=Graham |first2=Bruce |last3=Gillies |first3=Andrew |last4=Willshaw |first4=David |date=2011 |title=Principles of Computational Modeling in Neuroscience |publisher=Cambridge University Press |location=Cambridge |isbn=978-1-139-04255-0 |oclc=739098279 }}
{{refend}}


===Journals===
===Journals and conferences===
{{columns-list|2|
{{columns-list|colwidth=30em|
* ''[[Conference on Neural Information Processing Systems]]''
* ''International Journal of Cognitive Informatics and Natural Intelligence''
* ''[https://web.archive.org/web/20111016112903/http://www.springerlink.com/content/100465/ Biological Cybernetics]''
* ''[https://www.springer.com/computer/ai/journal/40708 Brain Informatics]''
* ''[http://frontiersin.org/neuroinformatics Frontiers in Neuroinformatics]''
* ''[http://frontiersin.org/neuroinformatics Frontiers in Neuroinformatics]''
* ''[[Interdisciplinary Description of Complex Systems]]''
* ''[[Neuroinformatics (journal)|Neuroinformatics]]''
* ''[http://www.springerlink.com/content/100282/ Journal of Computational Neuroscience]''
* ''[https://web.archive.org/web/20111016121751/http://www.springerlink.com/content/100282/ Journal of Computational Neuroscience]''
* ''[[Journal of Integrative Neuroscience]]''
* ''[[PLOS Computational Biology|PLoS Computational Biology]]''
* ''[[The Journal of Neuroscience|Journal of Neuroscience]]''
* ''[https://www.springer.com/computer/ai/journal/40708 Brain Informatics]''
* ''[[Journal of Web Semantics]]''
* ''[http://www.springerlink.com/content/100465/ Biological Cybernetics]''
* ''[[Neural Computation (journal)|Neural Computation]]''
* ''[[Neural Computation (journal)|Neural Computation]]''
* ''[[Journal of Web Semantics]]''
* ''[[Journal of Integrative Neuroscience]]''
* ''[[The Journal of Neuroscience]]''
* ''Neural Information Processing'' (In [[Springer Science+Business Media|Springer]]'s ''[[Lecture Notes in Computer Science]]'')
* ''Neural Information Processing'' (In [[Springer Science+Business Media|Springer]]'s ''[[Lecture Notes in Computer Science]]'')
* ''[[Neuroinformatics (journal)|Neuroinformatics]]''
* ''[[Interdisciplinary Description of Complex Systems]]''
* ''[[Neuron (journal)|Neuron]]''
* ''[[Neuron (journal)|Neuron]]''
* ''[[PLOS Computational Biology|PLoS Computational Biology]]''
* ''[[Science (journal)|Science]]''
* ''[[Science (journal)|Science]]''
}}
}}


{{Neuroscience}}
{{Neuroscience}}
{{Emerging technologies}}
{{emerging technologies|topics=yes|neuro=yes|infocom=yes}}
{{Informatics}}
{{Portal bar|Neuroscience}}
{{Authority control}}


[[Category:Neuroinformatics| ]]
[[Category:Neuroinformatics| ]]
[[Category:Computational neuroscience]]
[[Category:Computational neuroscience]]
[[Category:Emerging technologies]]
[[Category:Bioinformatics]]
[[Category:Bioinformatics]]
[[Category:Computational fields of study]]
[[Category:Computational fields of study]]

Latest revision as of 18:17, 3 April 2024

Neuroinformatics is the emergent field that combines informatics and neuroscience. Neuroinformatics is related with neuroscience data and information processing by artificial neural networks.[1] There are three main directions where neuroinformatics has to be applied:[2]

  • the development of computational models of the nervous system and neural processes;
  • the development of tools for analyzing and modeling neuroscience data; and
  • the development of tools and databases for management and sharing of neuroscience data at all levels of analysis.

Neuroinformatics encompasses philosophy (computational theory of mind), psychology (information processing theory), computer science (natural computing, bio-inspired computing), among others disciplines. Neuroinformatics doesn't deal with matter or energy,[3] so it can be seen as a branch of neurobiology that studies various aspects of nervous systems. The term neuroinformatics seems to be used synonymously with cognitive informatics, described by Journal of Biomedical Informatics as interdisciplinary domain that focuses on human information processing, mechanisms and processes within the context of computing and computing applications.[4] According to German National Library, neuroinformatics is synonymous with neurocomputing.[5] At Proceedings of the 10th IEEE International Conference on Cognitive Informatics and Cognitive Computing was introduced the following description: Cognitive Informatics (CI) as a transdisciplinary enquiry of computer science, information sciences, cognitive science, and intelligence science. CI investigates into the internal information processing mechanisms and processes of the brain and natural intelligence, as well as their engineering applications in cognitive computing.[6] According to INCF, neuroinformatics is a research field devoted to the development of neuroscience data and knowledge bases together with computational models.[7]

Neuroinformatics in neuropsychology and neurobiology

[edit]

Models of neural computation

[edit]

Models of neural computation are attempts to elucidate, in an abstract and mathematical fashion, the core principles that underlie information processing in biological nervous systems, or functional components thereof. Due to the complexity of nervous system behavior, the associated experimental error bounds are ill-defined, but the relative merit of the different models of a particular subsystem can be compared according to how closely they reproduce real-world behaviors or respond to specific input signals. In the closely related field of computational neuroethology, the practice is to include the environment in the model in such a way that the loop is closed. In the cases where competing models are unavailable, or where only gross responses have been measured or quantified, a clearly formulated model can guide the scientist in designing experiments to probe biochemical mechanisms or network connectivity.

Neurocomputing technologies

[edit]

Artificial neural networks

[edit]

Artificial neural networks (ANNs), usually simply called neural networks (NNs), are computing systems vaguely inspired by the biological neural networks that constitute animal brains.[8] An ANN is based on a collection of connected units or nodes called artificial neurons, which loosely model the neurons in a biological brain. Each connection, like the synapses in a biological brain, can transmit a signal to other neurons. An artificial neuron that receives a signal then processes it and can signal neurons connected to it. The "signal" at a connection is a real number, and the output of each neuron is computed by some non-linear function of the sum of its inputs. The connections are called edges. Neurons and edges typically have a weight that adjusts as learning proceeds. The weight increases or decreases the strength of the signal at a connection. Neurons may have a threshold such that a signal is sent only if the aggregate signal crosses that threshold. Typically, neurons are aggregated into layers. Different layers may perform different transformations on their inputs. Signals travel from the first layer (the input layer), to the last layer (the output layer), possibly after traversing the layers multiple times.

Brain emulation and mind uploading

[edit]

Brain emulation is the concept of creating a functioning computational model and emulation of a brain or part of a brain. In December 2006,[9] the Blue Brain project completed a simulation of a rat's neocortical column. The neocortical column is considered the smallest functional unit of the neocortex. The neocortex is the part of the brain thought to be responsible for higher-order functions like conscious thought, and contains 10,000 neurons in the rat brain (and 108 synapses). In November 2007,[10] the project reported the end of its first phase, delivering a data-driven process for creating, validating, and researching the neocortical column. An artificial neural network described as being "as big and as complex as half of a mouse brain"[11] was run on an IBM Blue Gene supercomputer by the University of Nevada's research team in 2007. Each second of simulated time took ten seconds of computer time. The researchers claimed to observe "biologically consistent" nerve impulses that flowed through the virtual cortex. However, the simulation lacked the structures seen in real mice brains, and they intend to improve the accuracy of the neuron and synapse models.[12] Mind uploading is the process of scanning a physical structure of the brain accurately enough to create an emulation of the mental state (including long-term memory and "self") and copying it to a computer in a digital form. The computer would then run a simulation of the brain's information processing, such that it would respond in essentially the same way as the original brain and experience having a sentient conscious mind.[13][14][15] Substantial mainstream research in related areas is being conducted in animal brain mapping and simulation, development of faster supercomputers, virtual reality, brain–computer interfaces, connectomics, and information extraction from dynamically functioning brains.[16] According to supporters, many of the tools and ideas needed to achieve mind uploading already exist or are currently under active development; however, they will admit that others are, as yet, very speculative, but say they are still in the realm of engineering possibility.

Diagram of the BCI developed by Miguel Nicolelis and colleagues for use on rhesus monkeys

Brain–computer interface

[edit]

Research on brain–computer interface began in the 1970s at the University of California, Los Angeles under a grant from the National Science Foundation, followed by a contract from DARPA.[17][18] The papers published after this research also mark the first appearance of the expression brain–computer interface in scientific literature. Recently, studies in Human-computer interaction through the application of machine learning with statistical temporal features extracted from the frontal lobe, EEG brainwave data has shown high levels of success in classifying mental states (Relaxed, Neutral, Concentrating) mental emotional states (Negative, Neutral, Positive)[19] and thalamocortical dysrhythmia.[20]

Neuroengineering & Neuroinformatics

[edit]
Schematic illustration of digital tracing of a neuron's morphology

Neuroinformatics is the scientific study of information flow and processing in the nervous system. Institute scientists utilize brain imaging techniques, such as magnetic resonance imaging, to reveal the organization of brain networks involved in human thought. Brain simulation is the concept of creating a functioning computer model of a brain or part of a brain. There are three main directions where neuroinformatics has to be applied:

  • the development of computational models of the nervous system and neural processes,
  • the development of tools for analyzing data from devices for neurological diagnostic devices,
  • the development of tools and databases for management and sharing of patients brain data in healthcare institutions.

Brain mapping and simulation

[edit]

Brain simulation is the concept of creating a functioning computational model of a brain or part of a brain.[21] In December 2006,[22] the Blue Brain project completed a simulation of a rat's neocortical column. The neocortical column is considered the smallest functional unit of the neocortex. The neocortex is the part of the brain thought to be responsible for higher-order functions like conscious thought, and contains 10,000 neurons in the rat brain (and 108 synapses). In November 2007,[23] the project reported the end of its first phase, delivering a data-driven process for creating, validating, and researching the neocortical column. An artificial neural network described as being "as big and as complex as half of a mouse brain"[24] was run on an IBM Blue Gene supercomputer by the University of Nevada's research team in 2007. Each second of simulated time took ten seconds of computer time. The researchers claimed to observe "biologically consistent" nerve impulses that flowed through the virtual cortex. However, the simulation lacked the structures seen in real mice brains, and they intend to improve the accuracy of the neuron and synapse models.[25]

Mind uploading

[edit]

Mind uploading is the process of scanning a physical structure of the brain accurately enough to create an emulation of the mental state (including long-term memory and "self") and copying it to a computer in a digital form. The computer would then run a simulation of the brain's information processing, such that it would respond in essentially the same way as the original brain and experience having a sentient conscious mind.[13][26][15] Substantial mainstream research in related areas is being conducted in animal brain mapping and simulation, development of faster supercomputers, virtual reality, brain–computer interfaces, connectomics, and information extraction from dynamically functioning brains.[27] According to supporters, many of the tools and ideas needed to achieve mind uploading already exist or are currently under active development; however, they will admit that others are, as yet, very speculative, but say they are still in the realm of engineering possibility.

Auxiliary sciences of neuroinformatics

[edit]

Data analysis and knowledge organisation

[edit]

Neuroinformatics (in context of library science) is also devoted to the development of neurobiology knowledge with computational models and analytical tools for sharing, integration, and analysis of experimental data and advancement of theories about the nervous system function. In the INCF context, this field refers to scientific information about primary experimental data, ontology, metadata, analytical tools, and computational models of the nervous system. The primary data includes experiments and experimental conditions concerning the genomic, molecular, structural, cellular, networks, systems and behavioural level, in all species and preparations in both the normal and disordered states.[28] In the recent decade, as vast amounts of diverse data about the brain were gathered by many research groups, the problem was raised of how to integrate the data from thousands of publications in order to enable efficient tools for further research. The biological and neuroscience data are highly interconnected and complex, and by itself, integration represents a great challenge for scientists.

History

[edit]

The United States National Institute of Mental Health (NIMH), the National Institute of Drug Abuse (NIDA) and the National Science Foundation (NSF) provided the National Academy of Sciences Institute of Medicine with funds to undertake a careful analysis and study of the need to introduce computational techniques to brain research. The positive recommendations were reported in 1991.[29] This positive report enabled NIMH, now directed by Allan Leshner, to create the "Human Brain Project" (HBP), with the first grants awarded in 1993. Next, Koslow pursued the globalization of the HPG and neuroinformatics through the European Union and the Office for Economic Co-operation and Development (OECD), Paris, France. Two particular opportunities occurred in 1996.

  • The first was the existence of the US/European Commission Biotechnology Task force co-chaired by Mary Clutter from NSF. Within the mandate of this committee, of which Koslow was a member the United States European Commission Committee on Neuroinformatics was established and co-chaired by Koslow from the United States. This committee resulted in the European Commission initiating support for neuroinformatics in Framework 5 and it has continued to support activities in neuroinformatics research and training.
  • A second opportunity for globalization of neuroinformatics occurred when the participating governments of the Mega Science Forum (MSF) of the OECD were asked if they had any new scientific initiatives to bring forward for scientific cooperation around the globe. The White House Office of Science and Technology Policy requested that agencies in the federal government meet at NIH to decide if cooperation were needed that would be of global benefit. The NIH held a series of meetings in which proposals from different agencies were discussed. The proposal recommendation from the U.S. for the MSF was a combination of the NSF and NIH proposals. Jim Edwards of NSF supported databases and data-sharing in the area of biodiversity.

The two related initiatives were combined to form the United States proposal on "Biological Informatics". This initiative was supported by the White House Office of Science and Technology Policy and presented at the OECD MSF by Edwards and Koslow. An MSF committee was established on Biological Informatics with two subcommittees: 1. Biodiversity (Chair, James Edwards, NSF), and 2. Neuroinformatics (Chair, Stephen Koslow, NIH). At the end of two years the Neuroinformatics subcommittee of the Biological Working Group issued a report supporting a global neuroinformatics effort. Koslow, working with the NIH and the White House Office of Science and Technology Policy to establishing a new Neuroinformatics working group to develop specific recommendation to support the more general recommendations of the first report. The Global Science Forum (GSF; renamed from MSF) of the OECD supported this recommendation.

Community

[edit]
Institute of Neuroinformatics, University of Zurich
The Institute of Neuroinformatics was established at the University of Zurich and ETH Zurich at the end of 1995. The mission of the Institute is to discover the key principles by which brains work and to implement these in artificial systems that interact intelligently with the real world.[30]
Institute for Adaptive and Neural Computation, School of Informatics, University of Edinburgh
Computational Neuroscience and Neuroinformatics Group in Institute for Adaptive and Neural Computation of University of Edinburgh's School of Informatics study how the brain processes information.[31]
The International Neuroinformatics Coordinating Facility
An international organization with the mission[32] to develop, evaluate, and endorse standards and best practices that embrace the principles of open, fair,[33] and citable neuroscience. As of October 2019, the INCF has active nodes in 18 countries.[34] This committee presented 3 recommendations to the member governments of GSF. These recommendations were:
  1. National neuroinformatics programs should be continued or initiated in each country should have a national node to both provide research resources nationally and to serve as the contact for national and international coordination.
  2. An International Neuroinformatics Coordinating Facility should be established. The INCF will coordinate the implementation of a global neuroinformatics network through integration of national neuroinformatics nodes.
  3. A new international funding scheme should be established.

This scheme should eliminate national and disciplinary barriers and provide a most efficient approach to global collaborative research and data sharing. In this new scheme, each country will be expected to fund the participating researchers from their country. The GSF neuroinformatics committee then developed a business plan for the operation, support and establishment of the INCF which was supported and approved by the GSF Science Ministers at its 2004 meeting. In 2006 the INCF was created and its central office established and set into operation at the Karolinska Institute, Stockholm, Sweden under the leadership of Sten Grillner. Sixteen countries (Australia, Canada, China, the Czech Republic, Denmark, Finland, France, Germany, India, Italy, Japan, the Netherlands, Norway, Sweden, Switzerland, the United Kingdom and the United States), and the EU Commission established the legal basis for the INCF and Programme in International Neuroinformatics (PIN). To date, eighteen countries (Australia, Belgium, Czech Republic, Finland, France, Germany, India, Italy, Japan, Malaysia, Netherlands, Norway, Poland, Republic of Korea, Sweden, Switzerland, the United Kingdom and the United States) are members of the INCF. Membership is pending for several other countries. The goal of the INCF is to coordinate and promote international activities in neuroinformatics. The INCF contributes to the development and maintenance of database and computational infrastructure and support mechanisms for neuroscience applications. The system is expected to provide access to all freely accessible human brain data and resources to the international research community. The more general task of INCF is to provide conditions for developing convenient and flexible applications for neuroscience laboratories in order to improve our knowledge about the human brain and its disorders.

Laboratory of Neuroinformatics, Nencki Institute of Experimental Biology
The main activity of the group is development of computational tools and models, and using them to understand brain structure and function.[35]
Neuroimaging & Neuroinformatics, Howard Florey Institute, University of Melbourne
Institute scientists utilize brain imaging techniques, such as magnetic resonance imaging, to reveal the organization of brain networks involved in human thought. Led by Gary Egan.
Montreal Neurological Institute, McGill University
Led by Alan Evans, MCIN conducts computationally-intensive brain research using innovative mathematical and statistical approaches to integrate clinical, psychological and brain imaging data with genetics. MCIN researchers and staff also develop infrastructure and software tools in the areas of image processing, databasing, and high performance computing. The MCIN community, together with the Ludmer Centre for Neuroinformatics and Mental Health, collaborates with a broad range of researchers and increasingly focuses on open data sharing and open science, including for the Montreal Neurological Institute.
The THOR Center for Neuroinformatics
Established April 1998 at the Department of Mathematical Modelling, Technical University of Denmark. Besides pursuing independent research goals, the THOR Center hosts a number of related projects concerning neural networks, functional neuroimaging, multimedia signal processing, and biomedical signal processing.
The Neuroinformatics Portal Pilot
The project is part of a larger effort to enhance the exchange of neuroscience data, data-analysis tools, and modeling software. The portal is supported from many members of the OECD Working Group on Neuroinformatics. The Portal Pilot is promoted by the German Ministry for Science and Education.
Computational Neuroscience, ITB, Humboldt-University Berlin
This group focuses on computational neurobiology, in particular on the dynamics and signal processing capabilities of systems with spiking neurons. Led by Andreas VM Herz.
The Neuroinformatics Group in Bielefeld
Active in the field of Artificial Neural Networks since 1989. Current research programmes within the group are focused on the improvement of man-machine-interfaces, robot-force-control, eye-tracking experiments, machine vision, virtual reality and distributed systems.
Laboratory of Computational Embodied Neuroscience (LOCEN)[36]
This group, part of the Institute of Cognitive Sciences and Technologies, Italian National Research Council (ISTC-CNR) in Rome and founded in 2006 is currently led by Gianluca Baldassarre. It has two objectives: (a) understanding the brain mechanisms underlying learning and expression of sensorimotor behaviour, and related motivations and higher-level cognition grounded on it, on the basis of embodied computational models; (b) transferring the acquired knowledge to building innovative controllers for autonomous humanoid robots capable of learning in an open-ended fashion on the basis of intrinsic and extrinsic motivations.
Japan national neuroinformatics resource
The Visiome Platform is the Neuroinformatics Search Service that provides access to mathematical models, experimental data, analysis libraries and related resources. An online portal for neurophysiological data sharing is also available at BrainLiner.jp as part of the MEXT Strategic Research Program for Brain Sciences (SRPBS).
Laboratory for Mathematical Neuroscience, RIKEN Brain Science Institute (Wako, Saitama)
The target of Laboratory for Mathematical Neuroscience is to establish mathematical foundations of brain-style computations toward construction of a new type of information science. Led by Shun-ichi Amari.
Netherlands state program in neuroinformatics
Started in the light of the international OECD Global Science Forum which aim is to create a worldwide program in Neuroinformatics.
NUST-SEECS Neuroinformatics Research Lab[37]
Establishment of the Neuro-Informatics Lab at SEECS-NUST has enabled Pakistani researchers and members of the faculty to actively participate in such efforts, thereby becoming an active part of the above-mentioned experimentation, simulation, and visualization processes. The lab collaborates with the leading international institutions to develop highly skilled human resource in the related field. This lab facilitates neuroscientists and computer scientists in Pakistan to conduct their experiments and analysis on the data collected using state of the art research methodologies without investing in establishing the experimental neuroscience facilities. The key goal of this lab is to provide state of the art experimental and simulation facilities, to all beneficiaries including higher education institutes, medical researchers/practitioners, and technology industry.
The Blue Brain Project
The Blue Brain Project was founded in May 2005, and uses an 8000 processor Blue Gene/L supercomputer developed by IBM. At the time, this was one of the fastest supercomputers in the world.
The project involves:
  • Databases: 3D reconstructed model neurons, synapses, synaptic pathways, microcircuit statistics, computer model neurons, virtual neurons.
  • Visualization: microcircuit builder and simulation results visualizator, 2D, 3D and immersive visualization systems are being developed.
  • Simulation: a simulation environment for large-scale simulations of morphologically complex neurons on 8000 processors of IBM's Blue Gene supercomputer.
  • Simulations and experiments: iterations between large-scale simulations of neocortical microcircuits and experiments in order to verify the computational model and explore predictions.
The mission of the Blue Brain Project is to understand mammalian brain function and dysfunction through detailed simulations. The Blue Brain Project will invite researchers to build their own models of different brain regions in different species and at different levels of detail using Blue Brain Software for simulation on Blue Gene. These models will be deposited in an internet database from which Blue Brain software can extract and connect models together to build brain regions and begin the first whole brain simulations.
Genes to Cognition Project
Genes to Cognition Project, a neuroscience research programme that studies genes, the brain and behaviour in an integrated manner. It is engaged in a large-scale investigation of the function of molecules found at the synapse. This is mainly focused on proteins that interact with the NMDA receptor, a receptor for the neurotransmitter, glutamate, which is required for processes of synaptic plasticity such as long-term potentiation (LTP). Many of the techniques used are high-throughout in nature, and integrating the various data sources, along with guiding the experiments has raised numerous informatics questions. The program is primarily run by Professor Seth Grant at the Wellcome Trust Sanger Institute, but there are many other teams of collaborators across the world.
The CARMEN project[38]
The CARMEN project is a multi-site (11 universities in the United Kingdom) research project aimed at using GRID computing to enable experimental neuroscientists to archive their datasets in a structured database, making them widely accessible for further research, and for modellers and algorithm developers to exploit.
EBI Computational Neurobiology, EMBL-EBI (Hinxton)
The main goal of the group is to build realistic models of neuronal function at various levels, from the synapse to the micro-circuit, based on the precise knowledge of molecule functions and interactions (Systems Biology). Led by Nicolas Le Novère.
Neurogenetics GeneNetwork
Genenetwork started as component of the NIH Human Brain Project in 1999 with a focus on the genetic analysis of brain structure and function. This international program consists of tightly integrated genome and phenome data sets for human, mouse, and rat that are designed specifically for large-scale systems and network studies relating gene variants to differences in mRNA and protein expression and to differences in CNS structure and behavior. The great majority of data are open access. GeneNetwork has a companion neuroimaging web site—the Mouse Brain Library—that contains high resolution images for thousands of genetically defined strains of mice.
The Neuronal Time Series Analysis (NTSA)[39]
NTSA Workbench is a set of tools, techniques and standards designed to meet the needs of neuroscientists who work with neuronal time series data. The goal of this project is to develop information system that will make the storage, organization, retrieval, analysis and sharing of experimental and simulated neuronal data easier. The ultimate aim is to develop a set of tools, techniques and standards in order to satisfy the needs of neuroscientists who work with neuronal data.
The Cognitive Atlas[40]
The Cognitive Atlas is a project developing a shared knowledge base in cognitive science and neuroscience. This comprises two basic kinds of knowledge: tasks and concepts, providing definitions and properties thereof, and also relationships between them. An important feature of the site is ability to cite literature for assertions (e.g. "The Stroop task measures executive control") and to discuss their validity. It contributes to NeuroLex and the Neuroscience Information Framework, allows programmatic access to the database, and is built around semantic web technologies.
Brain Big Data research group at the Allen Institute for Brain Science (Seattle, WA)
Led by Hanchuan Peng,[41] this group has focused on using large-scale imaging computing and data analysis techniques to reconstruct single neuron models and mapping them in brains of different animals.

See also

[edit]

References

[edit]

Citations

[edit]
  1. ^ "Frontiers in Neuroinformatics". www.frontiersin.org.
  2. ^ "Working groups | INCF". www.incf.org.
  3. ^ Wang, Yingxu (2003-08-01). "On Cognitive Informatics". Brain and Mind. 4 (2): 151–167. doi:10.1023/A:1025401527570. ISSN 1573-3300. S2CID 61495426.
  4. ^ Patel, Vimla L.; Kannampallil, Thomas G. (2015-02-01). "Cognitive informatics in biomedicine and healthcare". Journal of Biomedical Informatics. 53: 3–14. doi:10.1016/j.jbi.2014.12.007. ISSN 1532-0464. PMID 25541081.
  5. ^ "Katalog der Deutschen Nationalbibliothek". portal.dnb.de. Retrieved 2020-12-12.
  6. ^ "Cognitive Informatics in Year 10 and Beyond: summary of the plenary panel". Proceedings of the 10th IEEE International Conference on Cognitive Informatics and Cognitive Computing.
  7. ^ "What is Neuroinformatics | INCF". www.incf.org.
  8. ^ Chen, Yung-Yao; Lin, Yu-Hsiu; Kung, Chia-Ching; Chung, Ming-Han; Yen, I.-Hsuan (January 2019). "Design and Implementation of Cloud Analytics-Assisted Smart Power Meters Considering Advanced Artificial Intelligence as Edge Analytics in Demand-Side Management for Smart Homes". Sensors. 19 (9): 2047. Bibcode:2019Senso..19.2047C. doi:10.3390/s19092047. PMC 6539684. PMID 31052502.
  9. ^ "Project Milestones". Blue Brain. Retrieved 2008-08-11.
  10. ^ "News and Media information". Blue Brain. Archived from the original on 2008-09-19. Retrieved 2008-08-11.
  11. ^ "Supercomputer Mimics Mouse's Brain". Huffington Post. 2008-03-28. Retrieved 2018-06-05.
  12. ^ "Mouse brain simulated on computer". BBC News. 27 April 2007.
  13. ^ a b Bamford S (June 2012). "A framework for approaches to transfer of a mind's substrate" (PDF). International Journal of Machine Consciousness. 4 (1): 23–34. doi:10.1142/S1793843012400021.
  14. ^ Goertzel, BEN; Ikle', Matthew (2012). "Introduction". International Journal of Machine Consciousness. 04: 1–3. doi:10.1142/S1793843012020015.
  15. ^ a b Sotala K, Valpola H (June 2012). "Coalescing minds: brain uploading-related group mind scenarios" (PDF). International Journal of Machine Consciousness. 4 (1): 293–312. doi:10.1142/S1793843012400173.
  16. ^ Kay KN, Naselaris T, Prenger RJ, Gallant JL (March 2008). "Identifying natural images from human brain activity". Nature. 452 (7185): 352–5. Bibcode:2008Natur.452..352K. doi:10.1038/nature06713. PMC 3556484. PMID 18322462.
  17. ^ Vidal, JJ (1973). "Toward direct brain–computer communication". Annual Review of Biophysics and Bioengineering. 2 (1): 157–80. doi:10.1146/annurev.bb.02.060173.001105. PMID 4583653.
  18. ^ J. Vidal (1977). "Real-Time Detection of Brain Events in EEG" (PDF). Proceedings of the IEEE. 65 (5): 633–641. doi:10.1109/PROC.1977.10542. S2CID 7928242.
  19. ^ Bird, Jordan J.; Ekart, Aniko; Buckingham, Christopher D.; Faria, Diego R. (2019). Mental Emotional Sentiment Classification with an EEG-based Brain-Machine Interface. St Hugh's College, University of Oxford, United Kingdom: The International Conference on Digital Image and Signal Processing (DISP'19). Archived from the original on 3 December 2018. Retrieved 3 December 2018.
  20. ^ Vanneste S, Song JJ, De Ridder D (March 2018). "Thalamocortical dysrhythmia detected by machine learning". Nature Communications. 9 (1): 1103. Bibcode:2018NatCo...9.1103V. doi:10.1038/s41467-018-02820-0. PMC 5856824. PMID 29549239.
  21. ^ Fan, Xue; Markram, Henry (2019). "A Brief History of Simulation Neuroscience". Frontiers in Neuroinformatics. 13: 32. doi:10.3389/fninf.2019.00032. ISSN 1662-5196. PMC 6513977. PMID 31133838.
  22. ^ "Project Milestones". Blue Brain. Retrieved 2008-08-11.
  23. ^ "News and Media information". Blue Brain. Archived from the original on 2008-09-19. Retrieved 2008-08-11.
  24. ^ "Supercomputer Mimics Mouse's Brain". HuffPost. 2008-03-28. Retrieved 2018-06-05.
  25. ^ "Mouse brain simulated on computer". BBC News. 27 April 2007.
  26. ^ Goertzel B, Ikle M (2012). "Introduction". International Journal of Machine Consciousness. 04: 1–3. doi:10.1142/S1793843012020015.
  27. ^ Kay KN, Naselaris T, Prenger RJ, Gallant JL (March 2008). "Identifying natural images from human brain activity". Nature. 452 (7185): 352–5. Bibcode:2008Natur.452..352K. doi:10.1038/nature06713. PMC 3556484. PMID 18322462.
  28. ^ "What is Neuroinformatics | INCF - International Neuroinformatics Coordinating Facility". www.incf.org. Retrieved 2020-04-19.
  29. ^ Pechura, Constance M.; Martin, Joseph B., eds. (1991). Mapping the Brain and Its Functions: Integrating Enabling Technologies into Neuroscience Research (Consensus study report). Washington, DC: National Academy Press. doi:10.17226/1816. ISBN 978-0-309-04497-4.
  30. ^ ETH, Zurich (11 September 2023). "Institute of Neuroinformatics, University of Zurich".
  31. ^ "Computational Neuroscience and Neuroinformatics | InfWeb". web.inf.ed.ac.uk. 5 November 2020. Retrieved 2020-12-12.
  32. ^ "Mission | INCF". www.incf.org. Retrieved 2019-10-09.
  33. ^ Hagstrom, Stephanie (2014-09-03). "The FAIR Data Principles". FORCE11. Retrieved 2017-12-04.
  34. ^ "Governing and Associate Nodes | INCF". www.incf.org. Retrieved 2019-10-09.
  35. ^ Javatech. "Nencki Institute of Experimental Biology - Nencki Institute of Experimental Biology". en.nencki.gov.pl.
  36. ^ "Laboratory of Computational Embodied Neuroscience - Institute of Cognitive Sciences and Technologies". www.istc.cnr.it. Retrieved 2 April 2018.
  37. ^ "Neuro-Informatics Lab @ SEECS, NUST - School of Electrical Engineering & Computer Sciences, National University of Sciences & Technology". neuro.seecs.nust.edu.pk. Retrieved 2 April 2018.
  38. ^ "Welcome to CARMEN". Welcome to CARMEN. Archived from the original on 30 October 2019. Retrieved 2 April 2018.
  39. ^ "NTSA Workbench". University of Illinois Urbana-Champaign. Archived from the original on 21 July 2006.
  40. ^ "Cognitive Atlas". www.cognitiveatlas.org. Retrieved 2 April 2018.
  41. ^ "Hanchuan Peng's Homepage". home.penglab.com. Retrieved 2 April 2018.

Sources

[edit]

Further reading

[edit]

Books

[edit]

Journals and conferences

[edit]