India-born scientist"s Robo Brain is a very fast online learner

August 25, 2014

Robo BrainMumbai, Aug 25: In July, scientists from Cornell University led by Ashutosh Saxena said they have developed Robo Brain—a large computational system that learns from publicly available Internet resources. The system, according to a 25 August statement by Cornell, is downloading and processing about 1 billion images, 120,000 YouTube videos and 100 million how-to documents and appliance manuals.

Information from the system, which Saxena had described at the 2014 Robotics: Science and Systems Conference in Berkeley, is being translated and stored in a robot-friendly format that robots will be able to draw on when needed.

The India-born, Indian Institute of Technology-Kanpur graduate, has now launched a website for the project at robobrain.me, which will display things the brain has learnt, and visitors will be able to make additions and corrections. Like a human learner, Robo Brain will have teachers, thanks to crowdsourcing. “Our laptops and cellphones have access to all the information we want.

If a robot encounters a situation it hasn"t seen before it can query Robo Brain in the cloud,” Saxena, assistant professor, Microsoft Faculty Fellow, and Sloan Fellow, at Cornell University, said in a statement.

Saxena and his colleagues at Cornell, Stanford and Brown universities and the University of California, Berkeley, say Robo Brain will process images to pick out the objects in them, and by connecting images and video with text, it will learn to recognize objects and how they are used, along with human language and behaviour.

His team includes Ashesh Jain, a third-year PhD computer science student at Cornell. Robo Brain employs what computer scientists call structured deep learning, where information is stored in many levels of abstraction.

Deep learning is a set of algorithms, or instruction steps for calculations, in machine learning. For instance, an easy chair is a member of a class of chairs, and going up another level, chairs are furniture.

Robo Brain knows that chairs are something you can sit on, but that a human can also sit on a stool, a bench or the lawn, the statement said.

A robot"s computer brain stores what it has learnt in a form that mathematicians call a Markov model, which can be represented graphically as a set of points connected by lines—called nodes and edges.

The nodes could represent objects, actions or parts of an image, and each one is assigned a probability—how much you can vary it and still be correct.

In searching for knowledge, a robot"s brain makes its own chain and looks for one in the knowledge base that matches within those limits.

“The Robo Brain will look like a gigantic, branching graph with abilities for multi-dimensional queries,” said Aditya Jami, a visiting researcher art Cornell, who designed the large database for the brain. Jami is also co-founder and chief technology officer at Predict Effect, Zoodig Inc. The basic skills of perception, planning and language understanding are critical for robots to perform tasks in the human environments. Robots need to perceive with sensors, and plan accordingly.

If a person wants to talk to a robot, for instance, the robot has to listen, get the context and knowledge of the environment, and plan its motion to execute the task accordingly.

For example, an industrial robot needs to detect objects to be manipulated, plan its motions and communicate with the human operator. A self-driving robot needs to detect objects on the road, plan where to drive and also communicate with the passenger.

Scientists at the lab at Cornell do not manually programme the robots. Instead, they take a machine learning approach by using variety of data and learning methods to train our robots.

“Our robots learn from watching (3D) images on the Internet, from observing people via cameras, from observing users playing video games, and from humans giving feedback to the robot,” the Cornell website reads.

There have been similar attempts to make computers understand context and learn from the Internet.

For instance, since January 2010, scientists at the Carnegie Mellon University (CMU) have been working to build a never-ending machine learning system that acquires the ability to extract structured information from unstructured Web pages.

If successful, the scientists say it will result in a knowledge base (or relational database) of structured information that mirrors the content of the Web. They call this system the never-ending language learner, or NELL.

NELL first attempts to read, or extract facts from text found in hundreds of millions of web pages (plays instrument). Second, it attempts to improve its reading competence, so that it can extract more facts from the Web, more accurately, the following day. So far, NELL has accumulated over 50 million candidate beliefs by reading the Web, and it is considering these at different levels of confidence, according to information on the CMU website.

“NELL has high confidence in 2,348,535 of these beliefs—these are displayed on this website. It is not perfect, but NELL is learning,” the website reads.

We also have IBM, or International Business Machines" Watson that beat Jeopardy players in 2011, and now has joined hands with the United Services Automobile Association (USAA) to help members of the military prepare for civilian life.

In January 2014, IBM said it will spend $1 billion to launch the Watson Group, including a $100 million venture fund to support start-ups and businesses that are building Watson-powered apps using the “Watson Developers Cloud”.

More than 2,500 developers and start-ups have reached out to the IBM Watson Group since the Watson Developers Cloud was launched in November 2013, according to a 22 August blog in the Harvard Business Review.

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Agencies
February 17,2020

Google on Monday announced it is gradually winding down its free public Wi-Fi Station programme currently available at over 400 railway stations in India, and will work with the Indian Railways and Railtel Corporation to help them with existing sites so they can remain useful resources for people.

Google launched its Station initiative in India in 2015 to bring fast, free public Wi-Fi to over 400 of the busiest railway stations in the country by mid-2020.

"We crossed that number by June 2018 and implemented Station in thousands of other locations around the country in partnership with telecommunications companies, ISPs and local authorities," Caesar Sengupta, Vice President, Payments and Next Billion Users, Google, said in a statement.

"Over time, partners in other countries asked for Station too and we responded accordingly. We're grateful for these partnerships, especially with the Indian Railways and the Government of India, that helped us serve millions of users over the last few years," he added.

According to Google, the decision to shut Station has been taken keeping the affordable mobile data plans and mobile connectivity in mind that is improving globally including in India.

"India, specifically now has among the cheapest mobile data per GB in the world, with mobile data prices having reduced by 95 per cent in the last 5 years, as per TRAI in 2019," said Sengupta.

The Indian users consume close to 10GB of data, each month, on average, according to reports.

"Our commitment to supporting the next billion users remains stronger than ever, from continuing our efforts to make the internet work for more people and building more relevant and helpful apps and services," Sengupta noted.

Global networking giant Cisco last year teamed up with Google to roll out free, high-speed public Wi-Fi access globally, starting with India.

The first pilot under the partnership was rolled out at 35 locations in Bengaluru.

Sengupta said that in addition to the changed context, the challenge of varying technical requirements and infrastructure among our partners across countries has also made it difficult for Station to scale and be sustainable, especially for our partners.

"And when we evaluate where we can truly make an impact in the future, we see greater need and bigger opportunities in building products and features tailored to work better for the next billion user markets," he said.

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Agencies
June 19,2020

Denser places, assumed by many to be more conducive to the spread of the coronavirus that causes COVID-19, are not linked to higher infection rates, say researchers.

The study, led by Johns Hopkins University, published in the Journal of the American Planning Association, also found that dense areas were associated with lower COVID-19 death rates.

"These findings suggest that urban planners should continue to practice and advocate for compact places rather than sprawling ones, due to the myriad well-established benefits of the former, including health benefits," says study lead author Shima Hamidi from Johns Hopkins Bloomberg School of Public Health in the US.

For their analysis, the researchers examined SARS-CoV-2 infection rates and COVID-19 death rates in 913 metropolitan counties in the US.

When other factors such as race and education were taken into account, the authors found that county density was not significantly associated with county infection rate.

The findings also showed that denser counties, as compared to more sprawling ones, tended to have lower death rates--possibly because they enjoyed a higher level of development including better health care systems.

On the other hand, the research found that higher coronavirus infection and COVID-19 mortality rates in counties are more related to the larger context of metropolitan size in which counties are located.

Large metropolitan areas with a higher number of counties tightly linked together through economic, social, and commuting relationships are the most vulnerable to the pandemic outbreaks.

According to the researchers, recent polls suggest that many US citizens now consider an exodus from big cities likely, possibly due to the belief that more density equals more infection risk.

Some government officials have posited that urban density is linked to the transmissibility of the virus.

"The fact that density is unrelated to confirmed virus infection rates and inversely related to confirmed COVID-19 death rates is important, unexpected, and profound," said Hamidi.

"It counters a narrative that, absent data and analysis, would challenge the foundation of modern cities and could lead to a population shift from urban centres to suburban and exurban areas," Hamidi added.

The analysis found that after controlling for factors such as metropolitan size, education, race, and age, doubling the activity density was associated with an 11.3 per cent lower death rate.

The authors said that this is possibly due to faster and more widespread adoption of social distancing practices and better quality of health care in areas of denser population.

The researchers concluded that a higher county population, a higher proportion of people age 60 and up, a lower proportion of college-educated people, and a higher proportion of African Americans were all associated with a greater infection rate and mortality rate.

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Agencies
March 7,2020

New Delhi, Mar 7: The Union government has issued a Global Invite for Expression of Interest for disinvestment in Bharat Petroleum Corporation Limited (BPCL) from prospective bidders with a minimum net worth of $10 billion as of Saturday.

The EoI submissions can be made till May 2, whereas investor queries will be entertained till April 4.

Another condition pertains to a maximum of four members are permitted in a consortium, and the lead member must hold 40 per cent in proportion. Other members of the consortium must have a minimum $1 billion net worth.

The EOI allows changes in the consortium within 45 days, though the lead member cannot be changed.

The GoI proposes to disinvest its entire shareholding in BPCL comprising 1,14,91,83,592 equity shares held through the Ministry of Petroleum and Natural Gas, which constitutes 52.98 per cent of BPCL's equity share capital, along with the transfer of management control to the strategic buyer (except BPCL's equity shareholding of 61.65 per cent in Numaligarh Refinery Limited (NRL) and management control thereon).

The shareholding of BPCL in NRL will be transferred to a Central Public Sector Enterprise operating in the oil and gas sector under the Ministry and accordingly is not a part of the proposed transaction.

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