Friday, March 1, 2013

Brown unveils novel wireless brain sensor

Brown unveils novel wireless brain sensor [ Back to EurekAlert! ] Public release date: 28-Feb-2013
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Contact: David Orenstein
david_orenstein@brown.edu
401-863-1862
Brown University

PROVIDENCE, R.I. [Brown University] A team of neuroengineers based at Brown University has developed a fully implantable and rechargeable wireless brain sensor capable of relaying real-time broadband signals from up to 100 neurons in freely moving subjects. Several copies of the novel low-power device, described in the Journal of Neural Engineering, have been performing well in animal models for more than year, a first in the brain-computer interface field. Brain-computer interfaces coud help people with severe paralysis control devces with their thoughts.

Arto Nurmikko, professor of engineering at Brown University who oversaw the device's invention, is presenting it this week at the 2013 International Workshop on Clinical Brain-Machine Interface Systems in Houston.

"This has features that are somewhat akin to a cell phone, except the conversation that is being sent out is the brain talking wirelessly," Nurmikko said.

Neuroscientists can use such a device to observe, record, and analyze the signals emitted by scores of neurons in particular parts of the animal model's brain.

Meanwhile, wired systems using similar implantable sensing electrodes are being investigated in brain-computer interface research to assess the feasibility of people with severe paralysis moving assistive devices like robotic arms or computer cursors by thinking about moving their arms and hands.

This wireless system addresses a major need for the next step in providing a practical brain-computer interface," said neuroscientist John Donoghue, the Wriston Professor of Neuroscience at Brown University and director of the Brown Institute for Brain Science.

Tightly packed technology

In the device, a pill-sized chip of electrodes implanted on the cortex sends signals through uniquely designed electrical connections into the device's laser-welded, hermetically sealed titanium "can." The can measures 2.2 inches (56 mm) long, 1.65 inches (42 mm) wide, and 0.35 inches (9 mm) thick. That small volume houses an entire signal processing system: a lithium ion battery, ultralow-power integrated circuits designed at Brown for signal processing and conversion, wireless radio and infrared transmitters, and a copper coil for recharging a "brain radio." All the wireless and charging signals pass through an electromagnetically transparent sapphire window.

In all, the device looks like a miniature sardine can with a porthole.

But what the team has packed inside makes it a major advance among brain-machine interfaces, said lead author David Borton, a former Brown graduate student and postdoctoral research associate who is now at Ecole Polytechnique Federale Lausanne in Switzerland.

"What makes the achievement discussed in this paper unique is how it integrated many individual innovations into a complete system with potential for neuroscientific gain greater than the sum of its parts," Borton said. "Most importantly, we show the first fully implanted microsystem operated wirelessly for more than 12 months in large animal models a milestone for potential [human] clinical translation."

The device transmits data at 24 Mbps via 3.2 and 3.8 Ghz microwave frequencies to an external receiver. After a two-hour charge, delivered wirelessly through the scalp via induction, it can operate for more than six hours.

"The device uses less than 100 milliwatts of power, a key figure of merit," Nurmikko said.

Co-author Ming Yin, a Brown postdoctoral scholar and electrical engineer, said one of the major challenges that the team overcame in building the device was optimizing its performance given the requirements that the implant device be small, low-power and leak-proof, potentially for decades.

"We tried to make the best tradeoff between the critical specifications of the device, such as power consumption, noise performance, wireless bandwidth and operational range," Yin said. "Another major challenge we encountered was to integrate and assemble all the electronics of the device into a miniaturized package that provides long-term hermeticity (water-proofing) and biocompatibility as well as transparency to the wireless data, power, and on-off switch signals."

With early contributions by electrical engineer William Patterson at Brown, Yin helped to design the custom chips for converting neural signals into digital data. The conversion has to be done within the device, because brain signals are not produced in the ones and zeros of computer data.

Ample applications

The team worked closely with neurosurgeons to implant the device in three pigs and three rhesus macaque monkeys. The research in these six animals has been helping scientists better observe complex neural signals for as long as 16 months so far. In the new paper, the team shows some of the rich neural signals they have been able to record in the lab. Ultimately this could translate to significant advances that can also inform human neuroscience.

Current wired systems constrain the actions of research subjects, Nurmikko said. The value of wireless transmission is that it frees subjects to move however they intend, allowing them to produce a wider variety of more realistic behaviors. If neuroscientists want to observe the brain signals produced during some running or foraging behaviors, for instance, they can't use a cabled sensor to study how neural circuits would form those plans for action and execution or strategize in decision making.

In the experiments in the new paper, the device is connected to one array of 100 cortical electrodes, the microscale individual neural listening posts, but the new device design allows for multiple arrays to be connected, Nurmikko said. That would allow scientists to observe ensembles of neurons in multiple related areas of a brain network.

The new wireless device is not approved for use in humans and is not used in clinical trials of brain-computer interfaces. It was designed, however, with that translational motivation.

"This was conceived very much in concert with the larger BrainGate* team, including neurosurgeons and neurologists giving us advice as to what were appropriate strategies for eventual clinical applications," said Nurmikko, who is also affiliated with the Brown Institute for Brain Science.

Borton is now spearheading the development of a collaboration between EPFL and Brown to use a version of the device to study the role of the motor cortex in an animal model of Parkinson's disease.

Meanwhile the Brown team is continuing work on advancing the device for even larger amounts of neural data transmission, reducing its size even further, and improving other aspects of the device's safety and reliability so that it can someday be considered for clinical application in people with movement disabilities.

###

In addition to Nurmikko, Borton and Yin, the paper was also co-authored by Juan Aceros, an expert in mechanical engineering.

The National Institutes of Health/National Institute of Biomedical Imaging and Bioengineering and National Institute of Neurological Disorders and Stroke (Grant 1R01EB007401-01), with partial support from the National Science Foundation (Grants: 0937848) and the Defense Advanced Research Projects Agency (Contract: N66001-10-C-2010), funded the research.

*Caution: Investigational device. Limited by federal law to investigational use.


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Brown unveils novel wireless brain sensor [ Back to EurekAlert! ] Public release date: 28-Feb-2013
[ | E-mail | Share Share ]

Contact: David Orenstein
david_orenstein@brown.edu
401-863-1862
Brown University

PROVIDENCE, R.I. [Brown University] A team of neuroengineers based at Brown University has developed a fully implantable and rechargeable wireless brain sensor capable of relaying real-time broadband signals from up to 100 neurons in freely moving subjects. Several copies of the novel low-power device, described in the Journal of Neural Engineering, have been performing well in animal models for more than year, a first in the brain-computer interface field. Brain-computer interfaces coud help people with severe paralysis control devces with their thoughts.

Arto Nurmikko, professor of engineering at Brown University who oversaw the device's invention, is presenting it this week at the 2013 International Workshop on Clinical Brain-Machine Interface Systems in Houston.

"This has features that are somewhat akin to a cell phone, except the conversation that is being sent out is the brain talking wirelessly," Nurmikko said.

Neuroscientists can use such a device to observe, record, and analyze the signals emitted by scores of neurons in particular parts of the animal model's brain.

Meanwhile, wired systems using similar implantable sensing electrodes are being investigated in brain-computer interface research to assess the feasibility of people with severe paralysis moving assistive devices like robotic arms or computer cursors by thinking about moving their arms and hands.

This wireless system addresses a major need for the next step in providing a practical brain-computer interface," said neuroscientist John Donoghue, the Wriston Professor of Neuroscience at Brown University and director of the Brown Institute for Brain Science.

Tightly packed technology

In the device, a pill-sized chip of electrodes implanted on the cortex sends signals through uniquely designed electrical connections into the device's laser-welded, hermetically sealed titanium "can." The can measures 2.2 inches (56 mm) long, 1.65 inches (42 mm) wide, and 0.35 inches (9 mm) thick. That small volume houses an entire signal processing system: a lithium ion battery, ultralow-power integrated circuits designed at Brown for signal processing and conversion, wireless radio and infrared transmitters, and a copper coil for recharging a "brain radio." All the wireless and charging signals pass through an electromagnetically transparent sapphire window.

In all, the device looks like a miniature sardine can with a porthole.

But what the team has packed inside makes it a major advance among brain-machine interfaces, said lead author David Borton, a former Brown graduate student and postdoctoral research associate who is now at Ecole Polytechnique Federale Lausanne in Switzerland.

"What makes the achievement discussed in this paper unique is how it integrated many individual innovations into a complete system with potential for neuroscientific gain greater than the sum of its parts," Borton said. "Most importantly, we show the first fully implanted microsystem operated wirelessly for more than 12 months in large animal models a milestone for potential [human] clinical translation."

The device transmits data at 24 Mbps via 3.2 and 3.8 Ghz microwave frequencies to an external receiver. After a two-hour charge, delivered wirelessly through the scalp via induction, it can operate for more than six hours.

"The device uses less than 100 milliwatts of power, a key figure of merit," Nurmikko said.

Co-author Ming Yin, a Brown postdoctoral scholar and electrical engineer, said one of the major challenges that the team overcame in building the device was optimizing its performance given the requirements that the implant device be small, low-power and leak-proof, potentially for decades.

"We tried to make the best tradeoff between the critical specifications of the device, such as power consumption, noise performance, wireless bandwidth and operational range," Yin said. "Another major challenge we encountered was to integrate and assemble all the electronics of the device into a miniaturized package that provides long-term hermeticity (water-proofing) and biocompatibility as well as transparency to the wireless data, power, and on-off switch signals."

With early contributions by electrical engineer William Patterson at Brown, Yin helped to design the custom chips for converting neural signals into digital data. The conversion has to be done within the device, because brain signals are not produced in the ones and zeros of computer data.

Ample applications

The team worked closely with neurosurgeons to implant the device in three pigs and three rhesus macaque monkeys. The research in these six animals has been helping scientists better observe complex neural signals for as long as 16 months so far. In the new paper, the team shows some of the rich neural signals they have been able to record in the lab. Ultimately this could translate to significant advances that can also inform human neuroscience.

Current wired systems constrain the actions of research subjects, Nurmikko said. The value of wireless transmission is that it frees subjects to move however they intend, allowing them to produce a wider variety of more realistic behaviors. If neuroscientists want to observe the brain signals produced during some running or foraging behaviors, for instance, they can't use a cabled sensor to study how neural circuits would form those plans for action and execution or strategize in decision making.

In the experiments in the new paper, the device is connected to one array of 100 cortical electrodes, the microscale individual neural listening posts, but the new device design allows for multiple arrays to be connected, Nurmikko said. That would allow scientists to observe ensembles of neurons in multiple related areas of a brain network.

The new wireless device is not approved for use in humans and is not used in clinical trials of brain-computer interfaces. It was designed, however, with that translational motivation.

"This was conceived very much in concert with the larger BrainGate* team, including neurosurgeons and neurologists giving us advice as to what were appropriate strategies for eventual clinical applications," said Nurmikko, who is also affiliated with the Brown Institute for Brain Science.

Borton is now spearheading the development of a collaboration between EPFL and Brown to use a version of the device to study the role of the motor cortex in an animal model of Parkinson's disease.

Meanwhile the Brown team is continuing work on advancing the device for even larger amounts of neural data transmission, reducing its size even further, and improving other aspects of the device's safety and reliability so that it can someday be considered for clinical application in people with movement disabilities.

###

In addition to Nurmikko, Borton and Yin, the paper was also co-authored by Juan Aceros, an expert in mechanical engineering.

The National Institutes of Health/National Institute of Biomedical Imaging and Bioengineering and National Institute of Neurological Disorders and Stroke (Grant 1R01EB007401-01), with partial support from the National Science Foundation (Grants: 0937848) and the Defense Advanced Research Projects Agency (Contract: N66001-10-C-2010), funded the research.

*Caution: Investigational device. Limited by federal law to investigational use.


[ Back to EurekAlert! ] [ | E-mail | Share Share ]

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AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert! system.


Source: http://www.eurekalert.org/pub_releases/2013-02/bu-bun022813.php

angelina jolie oscars

Because they're worth it: game characters get AMD to do their hair

AMD brings better hair days to game characters with TressFX

Blocky, pixelated locks can really ruin a day of tomb-robbing, right? To put the feather back in those bangs, AMD's just announced TressFX, software that'll be seen in the 2013 release of Tomb Raider due on March 5th. The rendering tech offloads computation-heavy hair simulation to the graphics processor using Microsoft's DirectCompute language, and was developed by AMD in partnership with Raider developer Crystal Dynamics -- though it'll work with any graphics card that supports DirectX 11, including those from arch-foe NVIDIA. The result is a coiffure that can move realistically in response to motion and external forces, detect collisions between strands, accurately reflect light and even allow for matting from moisture or rain. Lara may have preferred that AMD omit the latter, but anything's better than the helmet-head look, no?

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Via: Bit-Tech

Source: AMD

Source: http://feeds.engadget.com/~r/weblogsinc/engadget/~3/3IGwZq_4AVg/

lakers trade

Behold the Ugliest Shoe of All Time

The Air Jordan XX8. Pimped by the mighty Spike Lee. Inspired by James Bond. Bolstered with carbon fiber plates: a purple eyescar sheathed in some kind of snakeskin-meets-moonscape-meets-pixelcamo footcondom. This has gotta be the ugliest shoe ever made. Amirite? More »


Source: http://feeds.gawker.com/~r/gizmodo/full/~3/3PdITvOxTV0/behold-the-ugliest-shoe-of-all-time

lindzi cox

Having Problems coping - Talk About Marriage

Old Today, 12:05 AM ? #1 (permalink)

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Join Date: Feb 2013

Posts: 1


Hello all. I am new to this forum and am hoping I can get some advice on my issue that I am having. I have been married for less than a year and don't know what to do anymore. Let me start from the beginning:

I met my now husband back in 2009. Everything seemed great and things couldn't have been going better. The summer of 2010 I discovered that my husband had once taken anti depressants but was not doing so anymore. I didn't think much of it at that point. The only thing I knew my husband struggled with from the beginning was anxiety which he was taking a medicine for. Later on in the relationship I found out that his mom's side of the family had some more major mental health issues going on (ie BiPolar, Major depression, etc). My husband told me he never had the same feelings that they were experiencing and at that point I let it go because for one, it wasn't any of my business what types of issues his family was going through, and he seemed normal. Once we got married in 2012 things began to slowly change. He became more distant and snapped at me easier. He decided to go back to school and left a full time job for a part time job and always stated that he was "bored". I always showed concern asking if there was anything I could do to make it better or tired to get him to open up to why he felt the way he did with being bored and distant but I would always get shut out. He didn't care that it bothered me and he became very disrespectful to me with his language and telling me to "f off", etc. He also was drinking every night, sometimes almost a 12 pack a night which really upset me because i don't like to be around that. In October I basically told him that we needed to do something about how things were going and that we needed to go and talk to someone or he needed to as he was the one that was having the anger issues and not me. I even offered to go and talk to someone as well about how I should cope with this. He eventually told me he felt like he "had a problem" and needed to go back on anti depressants. I talked to him about it and suggested that he should have a doctor decide if he needed to go down that path. He then blamed his issues on his side of the family saying that he got his problems from there. I went to the doctors (psych) with him, where he basically just told the doctor that he needed to go back on anti depressants and told him how he was feeling. Doctor also told him maybe he needed to go on Abilify for light Bi-Polar but he had to promise he was going to stop the drinking. Well, that was almost 6 months ago and he still drinks and is now taking meds for anxiety, depression and bi-polar disorder and still acts the same as how he was before going in. I don't know what to do and I feel stuck. I don't want to give up on my marriage but I don't see how I am going to be happy with my life 5 years from now if nothing changes. How he acts and treats me makes him sexually unattractive which has now started arguments about not showing enough physical attention to one another. I am now questioning if I even want to have children anymore because I don't want my children to grow up around this and have some of the same mental issues as him (I have no mental history on my side of the family). I know this is bad to say because I don't know what goes through his head but I feel he uses some of the medicine as an excuse or an escape. For example, I had a low point last spring with a job and because I wasn't as happy as I usually was he told me I just needed to go on anti-depressants and that would make everything better.....which is not right. Everyone has not so great times in their lives but that doesn't automatically mean one has to go on drugs to supposedly make things better. I just need some advice. I don't know what to do anymore I would go and talk to someone about this but my new insurance will not cover it and I can't afford it. I appreciate you taking the time to read this.

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Source: http://talkaboutmarriage.com/anxiety-depression-relationships/68557-having-problems-coping-husband-anxiety-depression-bpd.html

grammy nominations

Ship noise makes crabs get crabby

Wednesday, February 27, 2013

A study published today in Biology Letters found that ship noise affects crab metabolism, with largest crabs faring worst, and found little evidence that crabs acclimatise to noise over time.

The team from the Universities of Bristol and Exeter found that crabs exposed to recordings of ship noise showed an increase in metabolic rate, indicating elevated stress. In the real world this could have implications for growth and, if the metabolic cost of noise causes crabs to spend more time foraging to compensate, could also increase the risk of predation.

Researcher Matt Wale from Bristol's School of Biological Sciences describes the study: "We used controlled experiments to consider how shore crabs of different sizes respond to both single and repeated exposure to playback of ship noise. Ship noise is the most common source of noise in the aquatic environment."

Explains Dr Andy Radford, Reader in Behavioural Ecology at Bristol: "We found that the metabolic rate of crabs exposed to ship noise was higher than those experiencing ambient harbour noise, and that larger individuals were affected most strongly. This is the first indication that there might be different responses to noise depending on the size of an individual."

If commercially important crabs and lobsters are affected by noise, these findings have implications for fisheries in busy shipping areas where large individuals may be losing out. Conversely, if reducing noise reduces metabolic costs, then quietening aquaculture facilities may lead to higher yields.

Dr Steve Simpson from the University of Exeter warned: "Since larger crabs are affected more strongly by noise this could have implications for fisheries in noisy areas. Also, many crustacean species, particularly prawns, are grown in aquaculture, so if acoustic disturbance has a metabolic cost then operational noise in farms may impact on growth, and quieter farms may be more profitable."

###

University of Bristol: http://www.bristol.ac.uk

Thanks to University of Bristol for this article.

This press release was posted to serve as a topic for discussion. Please comment below. We try our best to only post press releases that are associated with peer reviewed scientific literature. Critical discussions of the research are appreciated. If you need help finding a link to the original article, please contact us on twitter or via e-mail.

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Source: http://www.labspaces.net/127041/Ship_noise_makes_crabs_get_crabby

Innocence of Muslims

Crews rehearse Launch Abort System stacking with Orion

Feb. 28, 2013 ? Crane operators, technicians and engineers practiced lifting and stacking techniques this week as they moved a 6-ton replica escape rocket called the LAS, for Launch Abort System, from a trailer to the top of a mockup Orion capsule.

Though stacking the real thing for a Space Launch System mission is still a few years off, engineers said performing the task now, using the same procedures and demands that will accompany the actual assembly, helps them anticipate difficulties ahead of time.

The practice also keeps the crane operators proficient in handling spacecraft components that must be moved gingerly and placed precisely. The exercise took place inside the Vehicle Assembly Building, or VAB, at NASA's Kennedy Space Center in Florida using the same equipment and operators that stacked space shuttles for launch.

"The breakover, taking the LAS from horizontal to vertical, is not as easy as it sometimes seems, but the VAB guys are exceptional, they are really good at what they do so they really didn't have a problem," said Douglas Lenhardt, who is overseeing the Orion mock-up and operations planning for the Ground Systems Development and Operations program, or GSDO.

During missions, the LAS will be ready to ignite its solid-fueled engines and lift the Orion and its crew away from disaster in the unlikely event that the booster fails during the first part of launch. Its design is similar to that used during Apollo launches, though the LAS is larger than the escape rocket used before. A test flight in 2010 saw the LAS produce 500,000 pounds of thrust, about the same as the Titan II rockets that launched Gemini spacecraft into orbit.

As powerful as it is for an escape rocket, the LAS's power is a fraction of the overall thrust the Space Launch System is designed to produce to lift Orion into orbit and then propel it to deep space.

The LAS stacking topped off a mockup Orion and service module that has been standing at the north end of the transfer aisle in the VAB for several months. It will remain there so engineers and designers can continue to refine their plans for the spacecraft as it evolves from a concept that exists only on a computer screen to a spacecraft carrying humans into deep space.

"The number one thing people say about real hardware is, the computer-aided design (CAD) model doesn't do it justice," Lenhardt said. "Things seem to almost always work on a CAD mode. Real-life, things don't always work perfectly and that's why it really does help having a physical model."

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Source: http://feeds.sciencedaily.com/~r/sciencedaily/space_time/nasa/~3/Mqo2ksuN8Tc/130228123240.htm

ghost rider spirit of vengeance

Facebook Gifts Sales And Revenue Start Off Slow

Facebook Gifts SalesCorrection: The original version of this article was predicated on incorrect data. We'll be publishing a correction and explanation soon.

Source: http://feedproxy.google.com/~r/Techcrunch/~3/-dOvQrY0bLA/

Costa Rica Earthquake