Hiển thị các bài đăng có nhãn human brain. Hiển thị tất cả bài đăng
Hiển thị các bài đăng có nhãn human brain. Hiển thị tất cả bài đăng

Thứ Tư, 22 tháng 6, 2016

“Artificial Synapses” Could Let Supercomputers Mimic the Human Brain

Researchers say the technology could improve robots, self-driving cars and stock trading



Large-scale brain-like machines with human-like abilities to solve problems could become a reality, now that researchers have invented microscopic gadgets that mimic the connections between neurons in the human brain better than any previous devices.

The new research could lead to better robots, self-driving cars, data mining, medical diagnosis, stock-trading analysis and "other smart human-interactive systems and machines in the future," said Tae-Woo Lee, a materials scientist at the Pohang University of Science and Technology in Korea and senior author of the study.

The human Brain’s enormous computing power stems from its connections. Previous research suggested that the brain has approximately 100 billion neurons and roughly 1 quadrillion (1 million billion) connections wiring these cells together. At each of these connections, or synapses, a neuron typically fires about 10 times per second.

In principle, the human brain can perform about 10 quadrillion operations per second. In comparison, the world's fastest supercomputers, Tianhe-2 in China, is capable of carrying out up to about 55 quadrillion calculations per second, according to the TOP500 project, which ranks the 500 most powerful computers in the world. However, previous research suggests that the human brain consumes only about 20 watts of power, which is barely enough to run a dim light bulb, whereas Tianhe-2 consumes about 17.8 megawatts of power, which is enough to run about 900,000 such light bulbs.



Scientists would like to build computers that mimic the human brain’s power and efficiency. "Development of artificial synapses with comparable behaviors of biological ones will be a critical step," Lee told Live Science.
Until now, artificial synapses consumed much more energy than biological synapses do.

Previous research suggested that biological synapses consume about 10 femtojoules every time a neuron fires. Now, Lee and his colleagues have created artificial synapses that require only about 1.23 femtojoules per synaptic event, making them the lowest-energy artificial synapses developed yet, they said. (For comparison, a small apple falling about 3.3 feet (1 meter) to Earth would generate about 1 quadrillion femtojoules of kinetic energy.)

This research suggests that the "energy consumption and memory density of artificial brains will ultimately rival, and even exceed, [those of] biological brains in the future," Lee said.

These new artificial synapses are a kind of transistor, or electronic switch. By flicking on and off, they can mimic how a synapse fires.

The researchers fabricated 144 synaptic transistors on a 4-inch (10-centimeter) wafer. At the heart of these devices are wires that are 200 to 300 nanometers (billionths of a meter) wide. (For comparison, the average human hair is about 100,000 nanometers wide.) The small features of the devices help to lower the amount of energy they consume, the researchers said.



The new devices are made out of one kind of organic material wrapped around another. These materials help the artificial synapses trap or release electrically charged ions, mimicking how biological synapses work, and how an electric switch can be flicked on or off, the researchers explained.

The artificial synapses mimic the structure of actual human nerve fiber long shape and flexibility. In principle, the researchers could also arrange these devices in 3D grids, somewhat imitating the human brain, Lee said. However, advances in 3D printing are needed to create such 3D grids of artificial synapses, he added.

The researchers are now working to develop organic nanowires only a few dozen nanometers wide, Lee said. They also think that they can reduce synaptic transistor energy consumption even further by tinkering with the selection and structure of the materials they use, he added.



The scientists detailed their findings online June 17 in the journal Science Advances.

Source: Charles Q. Choi, Live Science

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Thứ Ba, 31 tháng 5, 2016

The incredible “Human Brain Project”: It’s Beyond reality

As a society living in the 21st century, we have just begun to realize how little we know about the brain. We desperately need to understand how our brain works because that will allow for developments towards new treatments for different mental and neurological disorders. Subsequently, this has become one of the greatest challenges in modern science.

Computing technologies represent some kind of new hope in this quest for better understanding our three-pound pink organ. That is why lately the Human Brain Project (HBP) is grabbing all of the media attention in the Neuroscience sphere.

The HBP is a $1.2 billion and 10 year long global project that will give us a comprehensive and more meaningful understanding of how the human brain operates. The project comprises of 130 research institutions throughout Europe, and is coordinated through the “Ecole Polytechnique Fedérate de Lausanne” (EFPL), in Switzerland.



Experimental mapping of the brain turned out to be a dead end, given that it takes 20,000 experiments to map just one neural circuit, and that our brain also consists of 100 billion neurons and 100 trillion synapses. Consequently, the HBP came up with a better solution by building the first human brain model.

These are neuromorphic computing systems which use the same basic principles of computation and cognitive architectures as the brain.

The plan is to determine fundamental principles of how neurons are connected and to employ those principles towards constructing statistical simulations. A simulation model will then predict how the certain parts of the brain, for which we have none or little experimental information, are wired and then compare the results with real biological data. In other words, the idea is to find some underlying principle that governs the brain’s morphology and reverse-engineer the human brain with the help of supercomputers.



Nevertheless, the grand plan of creating a perfect brain model does not stop here. Henry Markram, neuroscientist and co-director of this ambitious project, envisions this feat even a step further. Markram wants to unite the brain simulation with a medical informatics platform. This means that all the available clinical data on mental diseases from public hospitals and pharmaceutical companies would be integrated into the simulation model.

This way, experts could systematically study healthy subjects and patients with various conditions and draw some empirical correlations between mental diseases and biological causes. “The final stage would be to use this new biologically grounded classification system to develop new diagnostic tools and suggest strategies for drug development and treatment” explains Markram.

A project director also thinks of connecting the brain simulation with a robot, where the robot would be able to see and hear its environment. Researchers could then introduce distortions to the simulation to mimic. For example, researchers could use an autistic brain and examine an autist’s experience of the world. This would definitely represent a huge breakthrough in Medical informatics and also in Informatics in general.



Understanding the brain is vital, not just for diagnosing and treating brain diseases, but also for the development of new brain-like technologies such as neurorobotics and neuromorphic computing. These brain-like technologies can bring us new tools and methods to study the plasticity of the brain and to develop embodied neural systems in artificial software and hardware devices, machines, robots, etc. In order to achieve this, we also have to explore new computing architectures that mimic biological neural structures with the purpose of achieving the computational capabilities of such systems with similar volume and energy efficiency.

These are all the challenges that scientists working on Human Brain Project still have to overcome. In the meantime, the whole world remains in restless expectation of their new discoveries that will reveal how the most complex organ in our body works.



Source: Blazka Orel, Msc, BioSistemika LLC
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