Monday, May 20, 2013

Article: Imaginary Prizes Take Aim at Real Problems

By J. PEDER ZANE
Published: November 8, 2012 New York Times


IMAGINE putting up a prize of $20 million to inspire others to solve a particular problem. What would your challenge be?

Some of the world’s leading companies, including Google, Qualcomm and Nokia, have sponsored big-money contests challenging competitors around the world to design a host of wonders, including robots that can explore the moon, superefficient electric vehiclesand more accurate methods for sequencing the human genome. The online movie streaming company Netflix awarded $1 million to a winning team of outsiders that helped it develop better ways to predict which films its customers would like.

Carol Padden, 2010 Fellow

CHALLENGE Use crowdsourcing to help the hearing-impaired
The paradox of America’s economy is that while it is hard for many people to find one paying job, almost everybody has several they do free. We are bank tellers when we use the A.T.M., airline employees when we check ourselves in for flights and cashiers when we scan our items at the supermarket.

And we work on the cutting edge of technology, helping Google and Apple refine their voice recognition software each time we ask our phones to name the capital of Burkina Faso (it’s Ouagadougou) and follow up by asking, “How the heck do you pronounce that?”

Carol Padden, who is deaf and teaches communication at the University of California, San Diego, said she wanted to enlist volunteers to crowdsource a labor-intensive service: captioning video for the deaf and hard of hearing. Her $20 million prize would reward the person or team who devised an effective method to tap the power of the Internet to caption videos. She said this could involve “breaking down a video segment into very short one-minute clips which are sent out in the universe to be captioned by anyone. The short clips would be recombined to produce a captioned version of the original segment.”

Like many efforts initially aimed at helping those with disabilities, Ms. Padden noted that the project would almost certainly have broader benefits. Parents pushing strollers, she noted, are grateful for the curb cuts created for people in wheelchairs, just as patrons watching “Monday Night Football” in noisy bars count on closed captions to see what the announcers are saying.


Friday, May 10, 2013

Article: Road Traffic Noise and Diabetes: Long-Term Exposure May Increase Disease Risk


Cars driving through traffic
Noise from honking cars and police sirens can disrupt sleep, but it also may increase the chance of developing diabetes, according to a large study from Denmark.

The researchers compared noise levels from road traffic to the incidence of diabetes in 57,000 people. As the noise levels increased so did the risk for developing the disease. The risk increased by 8 - 11 percent for every 10-decibel (dB) increase in road noise. A decibel is a measure of loudness and intensity of sound.

The results suggest that living near heavily traveled roads may increase the risk of developing diabetes. To make sure they were measuring effects from noise, the researchers adjusted for several other variables associated with diabetes, including body mass index, education, lifestyle characteristics and nitrogen oxides, which are formed from vehicle exhaust and are known to increase the risk of the disease.

The results have important implications for urban planning. As major cities attempt to increase urban density, more people may live closer to heavier traffic and noisier roads. Further, people with low incomes typically live closer to major roads and highways, putting them at greater risk.

More here.

Friday, April 5, 2013

UPDATE FROM 2011 CAPITA FOUNDATION AUDITORY RESEARCH GRANT RECIPIENT

Dr. Carol Lee De Filippo
Professor at National Technical
Institute for the Deaf, Rochester, NY

Improving Speech Perception in Prelingually Deaf Adult Listeners: Exploring a Novel Training Concept


Audiologists at the National Technical Institute for the Deaf (NTID) located at Rochester Institute of Technology (RIT), have designed a novel audiovisual speech training strategy for adults born deaf (prelingually deaf adults) who obtained cochlear implants (CI) beyond the critical period for auditory stimulation. The rehabilitative program examines the hypothesis that fading dominant visual speech cues will trigger neuroplasticity by fostering useful sensory integration of the visual and acoustic components of spoken language. Initial findings have implications for the efficacy of the strategy for use with prelingually deaf adults who have not benefitted from traditional auditory training. 

Current CIs can produce dramatic speech perception benefits by restoring hearing and reorganizing audiovisual pathways developed in adults who have lost all or most of their hearing later in life and capitalizing on developmental plasticity in early implanted children. In contrast, prelingually deaf adult CI recipients typically have limited speech recognition skills and continue to be visually dominant, both behaviorally and neurologically.

 “Life-long dependence on lipreading prior to implant may be one reason for the continued use of visual cortex for processing of speech, even post-implant. Thus, typical auditory training (listening only) is often frustrating, resulting in slow progress and highly varied outcomes, although exceptional cases of open-set speech recognition suggest that learning-dependent plasticity is possible”, says Dr. Carol DeFilippo, NTID/RIT professor, PI for the study.

For the study, Dr. De Filippo and colleague Dr. Catherine Clark recruited prelingually deaf adults who perceived inadequate benefit from their CIs and were interested in a new rehabilitative strategy. One older adult and 7 young adults participated. Subjects completed 4-9 blocks of training (3240 -7920 trials) over 3 weeks.  On each trial, they viewed a head-only audiovisual clip of one of 6 talkers speaking a vowel-consonant-vowel syllable (b, d, or g; with ah, ee, or oo) in one of 5 conditions, including the original (no added effects) and 4 edited clips that progressively obscured lipreading cues. Training used a three-alternative forced-choice task (“B”, “D”, or “G”) with feedback. As expected, performance decreased in degraded conditions, indicating that the training materials were effective in requiring attention to auditory cues.  As training increased, all subjects obtained better scores by the last block in the most degraded condition (auditory-only) for at least 2 of the 3 consonants. As a group, they also demonstrated a greater listening advantage on one or all of the consonants, ranging up to a 31% improvement in the clear audiovisual condition by the end of the study. These levels of gain are typically unheard of for prelingually deaf adult listeners, particularly in a short period of time (3 weeks). The ultimate goal of this work is to develop a unique clinical intervention that can evoke beneficial change in prelingually-deaf adult CI users.

Thursday, April 4, 2013

Robert Capita on USA Network




Be sure to check out all the sailing excitement and drama with Capita Foundation's President at the helm in "Americas Cup Sailor," the episode that aired this spring on USA Network's new TV series "THE MOMENT." 

http://www.youtube.com/watch?v=7LlMFqlweQg

Enjoy.

Robert E. Capita, President/CEO
Capita Foundation

Monday, March 18, 2013

TED Talk: The way we think about charity is dead wrong



Activist and fundraiser Dan Pallotta calls out the double standard that drives our broken relationship to charities. Too many nonprofits, he says, are rewarded for how little they spend -- not for what they get done. Instead of equating frugality with morality, he asks us to start rewarding charities for their big goals and big accomplishments (even if that comes with big expenses). In this bold talk, he says: Let's change the way we think about changing the world.

Everything the donating public has been taught about giving is dysfunctional, says AIDS Ride founder Dan Pallotta. He aims to transform the way society thinks about charity and giving and change. 

Monday, March 4, 2013

Article: In the news: extracting energy from the biologic battery in the inner-ear

A group of researchers consisting of Patrick Mercier (principal investigator of the Energy-Efficient Microsystems Group), Andrew Lysaght, Saurav Bandyopadhyay, Anantha Chandrakasan, and Konstantina Stankovic have discovered how to extract power from the biologic battery that occurs naturally within the inner-ear of mammals.  The results, featured in the journal Nature Biotechnology this week, show for the first time that it is not only possible to extract energy from the ear, but that it is also possible to use this energy to power useful electronic devices – in this case a miniaturized radio transmitter and sensor.

One of the main engineering challanges of building such a bioelectronics and energy harvesting system is that the extractable power from the inner-ear is extremely small – on the order of a few nanowatts.  By employing innovative near-zero-leakage power electronics, the researchers were able to boost the voltage of the biologic battery from approximately 80 mV to 1 V, which was then used to operated a 2.4 GHz radio transmitter.  The resulting chip design, implemented in a 180nm CMOS technology, employed an extremely duty-cycled energy-buffering architecture, where the radio transmitted a single packet approximately once per minute.


More detailed information regarding chip implementation results, clinical experiments, and future directions can be found in the paper here.

Anatomy and physiology of the inner ear.
(a) Schematic of a mammalian ear including the external, middle and inner ear, which contains the cochlea and vestibular end organs. The endoelectronics chip is illustrated in one possible location, although the experiments were done with the chip located outside of the middle ear cavity. (b) Cross-section of a typical cochlear half-turn, showing the endolymphatic space (yellow) bordered by tight junctions (red), the stria vascularis (green) and hair cells (blue), which are contacted by primary auditory neurons (orange).

Article: Medical devices powered by the ear itself

By Larry Hardesty, MIT News Office

For the first time, researchers power an implantable electronic device using an electrical potential — a natural battery — deep in the inner ear. 

Deep in the inner ear of mammals is a natural battery — a chamber filled with ions that produces an electrical potential to drive neural signals. In today’s issue of the journal Nature Biotechnology, a team of researchers from MIT, the Massachusetts Eye and Ear Infirmary (MEEI) and the Harvard-MIT Division of Health Sciences and Technology (HST) demonstrate for the first time that this battery could power implantable electronic devices without impairing hearing.

The devices could monitor biological activity in the ears of people with hearing or balance impairments, or responses to therapies. Eventually, they might even deliver therapies themselves.

In experiments, Konstantina Stankovic, an otologic surgeon at MEEI, and HST graduate student Andrew Lysaght implanted electrodes in the biological batteries in guinea pigs’ ears. Attached to the electrodes were low-power electronic devices developed by MIT’s Microsystems Technology Laboratories (MTL). After the implantation, the guinea pigs responded normally to hearing tests, and the devices were able to wirelessly transmit data about the chemical conditions of the ear to an external receiver.

“In the past, people have thought that the space where the high potential is located is inaccessible for implantable devices, because potentially it’s very dangerous if you encroach on it,” Stankovic says. “We have known for 60 years that this battery exists and that it’s really important for normal hearing, but nobody has attempted to use this battery to power useful electronics.”

The ear converts a mechanical force — the vibration of the eardrum — into an electrochemical signal that can be processed by the brain; the biological battery is the source of that signal’s current. Located in the part of the ear called the cochlea, the battery chamber is divided by a membrane, some of whose cells are specialized to pump ions. An imbalance of potassium and sodium ions on opposite sides of the membrane, together with the particular arrangement of the pumps, creates an electrical voltage.

Although the voltage is the highest in the body (outside of individual cells, at least), it’s still very low. Moreover, in order not to disrupt hearing, a device powered by the biological battery can harvest only a small fraction of its power. Low-power chips, however, are precisely the area of expertise of Anantha Chandrakasan’s group at MTL.

The MTL researchers — Chandrakasan, who heads MIT’s Department of Electrical Engineering and Computer Science; his former graduate student Patrick Mercier, who’s now an assistant professor at the University of California at San Diego; and Saurav Bandyopadhyay, a graduate student in Chandrakasan’s group — equipped their chip with an ultralow-power radio transmitter: After all, an implantable medical monitor wouldn’t be much use if there were no way to retrieve its measurements.

But while the radio is much more efficient than those found in cellphones, it still couldn’t run directly on the biological battery. So the MTL chip also includes power-conversion circuitry — like that in the boxy converters at the ends of many electronic devices’ power cables — that gradually builds up charge in a capacitor. The voltage of the biological battery fluctuates, but it would take the control circuit somewhere between 40 seconds and four minutes to amass enough charge to power the radio. The frequency of the signal was thus itself an indication of the electrochemical properties of the inner ear.

To reduce its power consumption, the control circuit had to be drastically simplified, but like the radio, it still required a higher voltage than the biological battery could provide. Once the control circuit was up and running, it could drive itself; the problem was getting it up and running.

The MTL researchers solve that problem with a one-time burst of radio waves. “In the very beginning, we need to kick-start it,” Chandrakasan says. “Once we do that, we can be self-sustaining. The control runs off the output.”

Stankovic, who still maintains an affiliation with HST, and Lysaght implanted electrodes attached to the MTL chip on both sides of the membrane in the biological battery of each guinea pig’s ear. In the experiments, the chip itself remained outside the guinea pig’s body, but it’s small enough to nestle in the cavity of the middle ear.

Cliff Megerian, chairman of otolaryngology at Case Western Reserve University and University Hospitals Case Medical Center, says that he sees three possible applications of the researchers’ work: in cochlear implants, diagnostics and implantable hearing aids. “The fact that you can generate the power for a low voltage from the cochlea itself raises the possibility of using that as a power source to drive a cochlear implant,” Megerian says. “Imagine if we were able to measure that voltage in various disease states. There would potentially be a diagnostic algorithm for aberrations in that electrical output.” More here.