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HealthDay News

A new glove embedded with sensors can enable AI systems to identify the shape and weight of different objects, writes HealthDay reporter Dennis Thompson. Using the glove, “researchers have been able to clearly unravel or quantify how the different regions of the hand come together to perform a grasping task,” explains MIT alumnus Subramanian Sundaram.

New Scientist

New Scientist reporter Chelsea Whyte writes that MIT researchers have developed a smart glove that enables neural networks to identify objects by touch alone. “There’s been a lot of hope that we’ll be able to understand the human grasp someday and this will unlock our potential to create this dexterity in robots,” explains MIT alumnus Subramanian Sundaram.

PBS NOVA

MIT researchers have developed a low-cost electronic glove equipped with sensors that can use tactical information to identify objects, reports Katherine Wu for NOVA Next. Wu writes that the glove is “easy and economical to manufacture, carrying a wallet-friendly price tag of only $10 per glove, and could someday inform the design of prosthetics, surgical tools, and more.”

Wired

Wired reporter Aarian Marshall spotlights how Prof. Sarah Williams has been developing digital tools to help map bus routes in areas that lack transportation maps. “The maps show that there is an order,” Williams explains. “There is, in fact, a system, and the system could be used to help plan new transportation initiatives.”

Forbes

A study by MIT researchers examines the historical impact of technology on the labor market in an attempt to better understand the potential effect of AI systems, reports Adi Gaskell for Forbes. “The authors propose a number of solutions for improving data on the skills required in the workforce today, and from that the potential for AI to automate or augment those skills,” Gaskell explains.

Fast Company

Fast Company reporter Michael Grothaus writes that CSAIL researchers have developed a deep learning model that could predict whether a woman might develop breast cancer. The system “could accurately predict about 31% of all cancer patients in a high-risk category,” Grothaus explains, which is “significantly better than traditional ways of predicting breast cancer risks.”

WCVB

WCVB-TV’s Jennifer Eagan reports that researchers from MIT and MGH have developed a deep learning model that can predict a patient’s risk of developing breast cancer in the future from a mammogram image. Prof. Regina Barzilay explains that the model “can look at lots of pixels and variations of the pixels and capture very subtle patterns.”

HealthDay News

HealthDay News reporter Amy Norton writes that MIT researchers have developed an AI system that can help predict a woman’s risk of developing breast cancer and provide more personalized care. “If you know a woman is at high risk, maybe she can be screened more frequently, or be screened using MRI,” explains graduate student Adam Yala.

Financial Times

In an article about how the social messaging app WhatsApp could have a large influence on the upcoming election in India, the Financial Times spotlights postdoctoral associate Kiran Garimella’s work examining how misinformation spreads in India through platforms such as WhatsApp.

Financial Times

Financial Times reporter Hugo Cox highlights how MIT researchers have developed robots that can be used to detect disease in specific regions by sampling sewage. “A local robot takes days to identify an outbreak of flu; the surge in attendance at local hospitals and surgeries typically takes weeks to register,” Cox explains. “And because the information is local, the response can be too.”

NPR

Prof. Regina Barzilay speaks with NPR reporter Richard Harris about her work developing AI systems aimed at improving identification of breast cancer in mammograms, inspired by her experience with the disease. “At every point of my treatment, there would be some point of uncertainty, and I would say, 'Gosh, I wish we had the technology to solve it,’” says Barzilay.

Forbes

Forbes contributor Charles Towers-Clark writes that CSAIL researchers have developed a new machine learning system that could be used to help develop better estimates about internet data. “In tests, the system was over 57% more accurate in estimating internet traffic and more than 71% for trending social media topics,” Towers-Clark explains.

Fast Company

Fast Company reporter Katharine Schwab spotlights Duality, an MIT startup that is using homomorphic encryption to analyze encrypted data without decrypting it. Schwab explains that “the company’s technology could provide an actual solution to the data privacy problem by allowing companies to keep their data fully encrypted and still find patterns in it.”

The Washington Post

Ben Strauss of the Washington Post reports that during this year’s Sloan Sports Analytics Conference there was growing interest in applying more statistical analysis into curling strategies. There are panels here this weekend about chess and poker,” says Nate Silver, creator of the website FiveThirtyEight. “So, it’s broadening the definition of analytics and sports — and also the overall geekiness of the conference.”

Associated Press

Associated Press reporter Jimmy Golen writes about this year’s Sloan Sports Analytics Conference, highlighting the growing use of analytics in sports. “Over two days, college math majors rubbed elbows with team and tech executives looking for fresh ideas and talented minds to implement them,” writes Golen.