Mostrando entradas con la etiqueta Elon Musk. Mostrar todas las entradas
Mostrando entradas con la etiqueta Elon Musk. Mostrar todas las entradas

jueves, 26 de mayo de 2016

Inside OpenAI, Elon Musk's Wild Plan to Set Artificial Intelligence Free

 MICHAL CZERWONKA/REDUX
THE FRIDAY AFTERNOON news dump, a grand tradition observed by politicians and capitalists alike, is usually supposed to hide bad news. So it was a little weird that Elon Musk, founder of electric car maker Tesla, and Sam Altman, president of famed tech incubator Y Combinator, unveiled their new artificial intelligence company at the tail end of a weeklong AI conference in Montreal this past December.

But there was a reason they revealed OpenAI at that late hour. It wasn’t that no one was looking. It was that everyone was looking. When some of Silicon Valley’s most powerful companies caught wind of the project, they began offering tremendous amounts of money to OpenAI’s freshly assembled cadre of artificial intelligence researchers, intent on keeping these big thinkers for themselves. The last-minute offers—some made at the conference itself—were large enough to force Musk and Altman to delay the announcement of the new startup. “The amount of money was borderline crazy,” says Wojciech Zaremba, a researcher who was joining OpenAI after internships at both Google and Facebook and was among those who received big offers at the eleventh hour.
How many dollars is “borderline crazy”? 
Two years ago, as the market for the latest machine learning technology really started to heat up, Microsoft Research vice president Peter Lee said that the cost of a top AI researcher had eclipsed the cost of a top quarterback prospect in the National Football League—and he meant under regular circumstances, not when two of the most famous entrepreneurs in Silicon Valley were trying to poach your top talent. Zaremba says that as OpenAI was coming together, he was offered two or three times his market value.

OpenAI didn’t match those offers. But it offered something else: the chance to explore research aimed solely at the future instead of products and quarterly earnings, and to eventually share most—if not all—of this research with anyone who wants it. That’s right: Musk, Altman, and company aim to give away what may become the 21st century’s most transformative technology—and give it away for free.

Ilya Sutskever.
CHRISTIE HEMM KLOK/WIRED
Zaremba says those borderline crazy offers actually turned him off—despite his enormous respect for companies like Google and Facebook. He felt like the money was at least as much of an effort to prevent the creation of OpenAI as a play to win his services, and it pushed him even further towards the startup’s magnanimous mission. “I realized,” Zaremba says, “that OpenAI was the best place to be.

That’s the irony at the heart of this story: even as the world’s biggest tech companies try to hold onto their researchers with the same fierceness that NFL teams try to hold onto their star quarterbacks, the researchers themselves just want to share. In the rarefied world of AI research, the brightest minds aren’t driven by—or at least not only by—the next product cycle or profit margin. They want to make AI better, and making AI better doesn’t happen when you keep your latest findings to yourself.

OpenAI is a billion-dollar effort to push AI as far as it will go.

This morning, OpenAI will release its first batch of AI software, a toolkit for building artificially intelligent systems by way of a technology called reinforcement learning—one of the key technologies that, among other things, drove the creation of AlphaGo, the Google AI that shocked the world by mastering the ancient game of Go. With this toolkit, you can build systems that simulate a new breed of robot, play Atari games, and, yes, master the game of Go.

But game-playing is just the beginning. OpenAI is a billion-dollar effort to push AI as far as it will go. In both how the company came together and what it plans to do, you can see the next great wave of innovation forming. We’re a long way from knowing whether OpenAI itself becomes the main agent for that change. But the forces that drove the creation of this rather unusual startup show that the new breed of AI will not only remake technology, but remake the way we build technology.

AI Everywhere
Silicon Valley is not exactly averse to hyperbole. It’s always wise to meet bold-sounding claims with skepticism. But in the field of AI, the change is real. Inside places like Google and Facebook, a technology called deep learning is already helping Internet services identify faces in photos, recognize commands spoken into smartphones, and respond to Internet search queries. And this same technology can drive so many other tasks of the future. It can help machines understand natural language—the natural way that we humans talk and write. It can create a new breed of robot, giving automatons the power to not only perform tasks but learn them on the fly. And some believe it can eventually give machines something close to common sense—the ability to truly think like a human.

But along with such promise comes deep anxiety. Musk and Altman worry that if people can build AI that can do great things, then they can build AI that can do awful things, too. They’re not alone in their fear of robot overlords, but perhaps counterintuitively, Musk and Altman also think that the best way to battle malicious AI is not to restrict access to artificial intelligence but expand it. That’s part of what has attracted a team of young, hyper-intelligent idealists to their new project.

OpenAI began one evening last summer in a private room at Silicon Valley’s Rosewood Hotel—an upscale, urban, ranch-style hotel that sits, literally, at the center of the venture capital world along Sand Hill Road in Menlo Park, California. Elon Musk was having dinner with Ilya Sutskever, who was then working on the Google Brain, the company’s sweeping effort to build deep neural networks—artificially intelligent systems that can learn to perform tasks by analyzing massive amounts of digital data, including everything from recognizing photos to writing email messages to, well, carrying on a conversation. Sutskever was one of the top thinkers on the project. But even bigger ideas were in play.

Sam Altman, whose Y Combinator helped bootstrap companies like Airbnb, Dropbox, and Coinbase, had brokered the meeting, bringing together several AI researchers and a young but experienced company builder named Greg Brockman, previously the chief technology officer at high-profile Silicon Valley digital payments startup called Stripe, another Y Combinator company. It was an eclectic group. But they all shared a goal: to create a new kind of AI lab, one that would operate outside the control not only of Google, but of anyone else. “The best thing that I could imagine doing,” Brockman says, “was moving humanity closer to building real AI in a safe way.

Musk is one of the loudest voices warning that we humans could one day lose control of systems powerful enough to learn on their own.

Musk was there because he’s an old friend of Altman’s—and because AI is crucial to the future of his various businesses and, well, the future as a whole. Tesla needs AI for its inevitable self-driving cars. SpaceX, Musk’s other company, will need it to put people in space and keep them alive once they’re there. But Musk is also one of the loudest voices warning that we humans could one day lose control of systems powerful enough to learn on their own.

The trouble was: so many of the people most qualified to solve all those problems were already working for Google (and Facebook and Microsoft and Baidu and Twitter). And no one at the dinner was quite sure that these thinkers could be lured to a new startup, even if Musk and Altman were behind it. But one key player was at least open to the idea of jumping ship. “I felt there were risks involved,” Sutskever says. “But I also felt it would be a very interesting thing to try.

Breaking the Cycle
Emboldened by the conversation with Musk, Altman, and others at the Rosewood, Brockman soon resolved to build the lab they all envisioned. Taking on the project full-time, he approached Yoshua Bengio, a computer scientist at the University of Montreal and one of founding fathers of the deep learning movement. The field’s other two pioneers—Geoff Hinton and Yann LeCun—are now at Google and Facebook, respectively, but Bengio is committed to life in the world of academia, largely outside the aims of industry. He drew up a list of the best researchers in the field, and over the next several weeks, Brockman reached out to as many on the list as he could, along with several others.

Greg Brockman,
one of OpenAI’s founding fathers and
its chief technology officer.
CHRISTIE HEMM KLOK/WIRED
Many of these researchers liked the idea, but they were also wary of making the leap. In an effort to break the cycle, Brockman picked the ten researchers he wanted the most and invited them to spend a Saturday getting wined, dined, and cajoled at a winery in Napa Valley. For Brockman, even the drive into Napa served as a catalyst for the project. “An underrated way to bring people together are these times where there is no way to speed up getting to where you’re going,” he says. “You have to get there, and you have to talk.” And once they reached the wine country, that vibe remained. “It was one of those days where you could tell the chemistry was there,” Brockman says. Or as Sutskever puts it: “the wine was secondary to the talk.”

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By the end of the day, Brockman asked all ten researchers to join the lab, and he gave them three weeks to think about it. By the deadline, nine of them were in. And they stayed in, despite those big offers from the giants of Silicon Valley. “They did make it very compelling for me to stay, so it wasn’t an easy decision,” Sutskever says of Google, his former employer. “But in the end, I decided to go with OpenAI, partly of because of the very strong group of people and, to a very large extent, because of its mission.”

The deep learning movement began with academics. It’s only recently that companies like Google and Facebook and Microsoft have pushed into the field, as advances in raw computing power have made deep neural networks a reality, not just a theoretical possibility. People like Hinton and LeCun left academia for Google and Facebook because of the enormous resources inside these companies. But they remain intent on collaborating with other thinkers. Indeed, as LeCun explains, deep learning research requires this free flow of ideas. “When you do research in secret,” he says, “you fall behind.”

As a result, big companies now share a lot of their AI research. That’s a real change, especially for Google, which has long kept the tech at the heart of its online empiresecret. Recently, Google open sourced the software engine that drives its neural networks. But it still retains the inside track in the race to the future. Brockman, Altman, and Musk aim to push the notion of openness further still, saying they don’t want one or two large corporations controlling the future of artificial intelligence.
The Limits of Openness

All of which sounds great. But for all of OpenAI’s idealism, the researchers may find themselves facing some of the same compromises they had to make at their old jobs. Openness has its limits. And the long-term vision for AI isn’t the only interest in play. OpenAI is not a charity. Musk’s companies that could benefit greatly the startup’s work, and so could many of the companies backed by Altman’s Y Combinator. “There are certainly some competing objectives,” LeCun says. “It’s a non-profit, but then there is a very close link with Y Combinator. And people are paid as if they are working in the industry.”

According to Brockman, the lab doesn’t pay the same astronomical salaries that AI researchers are now getting at places like Google and Facebook. But he says the lab does want to “pay them well,” and it’s offering to compensate researchers with stock options, first in Y Combinator and perhaps later in SpaceX (which, unlike Tesla, is still a private company).

Brockman insists that OpenAI won't give special treatment to its sister companies.
Nonetheless, Brockman insists that OpenAI won’t give special treatment to its sister companies. OpenAI is a research outfit, he says, not a consulting firm. But when pressed, he acknowledges that OpenAI’s idealistic vision has its limits. The company may not open source everything it produces, though it will aim to share most of its research eventually, either through research papers or Internet services. “Doing all your research in the open is not necessarily the best way to go. You want to nurture an idea, see where it goes, and then publish it,” Brockman says. “We will produce lot of open source code. But we will also have a lot of stuff that we are not quite ready to release.

Both Sutskever and Brockman also add that OpenAI could go so far as to patent some of its work. “We won’t patent anything in the near term,” Brockman says. “But we’re open to changing tactics in the long term, if we find it’s the best thing for the world.” For instance, he says, OpenAI could engage in pre-emptive patenting, a tactic that seeks to prevent others from securing patents.

But to some, patents suggest a profit motive—or at least a weaker commitment to open source than OpenAI’s founders have espoused. “That’s what the patent system is about,” says Oren Etzioni, head of the Allen Institute for Artificial Intelligence. “This makes me wonder where they’re really going.

The Super-Intelligence Problem
When Musk and Altman unveiled OpenAI, they also painted the project as a way to neutralize the threat of a malicious artificial super-intelligence. Of course, that super-intelligence could arise out of the tech OpenAI creates, but they insist that any threat would be mitigated because the technology would be usable by everyone. “We think its far more likely that many, many AIs will work to stop the occasional bad actors,” Altman says.

But not everyone in the field buys this. Nick Bostrom, the Oxford philosopher who, like Musk, has warned against the dangers of AI, points out that if you share research without restriction, bad actors could grab it before anyone has ensured that it’s safe. “If you have a button that could do bad things to the world,” Bostrom says, “you don’t want to give it to everyone.” If, on the other hand, OpenAI decides to hold back research to keep it from the bad guys, Bostrom wonders how it’s different from a Google or a Facebook.

If you share research without restriction, bad actors could grab it before anyone has ensured that it's safe.

He does say that the not-for-profit status of OpenAI could change things—though not necessarily. The real power of the project, he says, is that it can indeed provide a check for the likes of Google and Facebook. “It can reduce the probability that super-intelligence would be monopolized,” he says. “It can remove one possible reason why some entity or group would have radically better AI than everyone else.

But as the philosopher explains in a new paper, the primary effect of an outfit like OpenAI—an outfit intent on freely sharing its work—is that it accelerates the progress of artificial intelligence, at least in the short term. And it may speed progress in the long term as well, provided that it, for altruistic reasons, “opts for a higher level of openness than would be commercially optimal.

It might still be plausible that a philanthropically motivated R&D funder would speed progress more by pursuing open science,” he says.

Like Xerox PARC
In early January, Brockman’s nine AI researchers met up at his apartment in San Francisco’s Mission District. The project was so new that they didn’t even have white boards. (Can you imagine?) They bought a few that day and got down to work.

Brockman says OpenAI will begin by exploring reinforcement learning, a way for machines to learn tasks by repeating them over and over again and tracking which methods produce the best results. But the other primary goal is what’s called unsupervised learning—creating machines that can truly learn on their own, without a human hand to guide them. Today, deep learning is driven by carefully labeled data. If you want to teach a neural network to recognize cat photos, you must feed it a certain number of examples—and these examples must be labeled as cat photos. The learning is supervised by human labelers. But like many others researchers, OpenAI aims to create neural nets that can learn without carefully labeled data.

If you have really good unsupervised learning, machines would be able to learn from all this knowledge on the Internet—just like humans learn by looking around—or reading books,” Brockman says.

He envisions OpenAI as the modern incarnation of Xerox PARC, the tech research lab that thrived in the 1970s. Just as PARC’s largely open and unfettered research gave rise to everything from the graphical user interface to the laser printer to object-oriented programing, Brockman and crew seek to delve even deeper into what we once considered science fiction. PARC was owned by, yes, Xerox, but it fed so many other companies, most notably Apple, because people like Steve Jobs were privy to its research. At OpenAI, Brockman wants to make everyone privy to its research.

This month, hoping to push this dynamic as far as it will go, Brockman and company snagged several other notable researchers, including Ian Goodfellow, another former senior researcher on the Google Brain team. “The thing that was really special about PARC is that they got a bunch of smart people together and let them go where they want,” Brockman says. “You want a shared vision, without central control.”

Giving up control is the essence of the open source ideal. If enough people apply themselves to a collective goal, the end result will trounce anything you concoct in secret. But if AI becomes as powerful as promised, the equation changes. We’ll have to ensure that new AIs adhere to the same egalitarian ideals that led to their creation in the first place. Musk, Altman, and Brockman are placing their faith in the wisdom of the crowd. But if they’re right, one day that crowd won’t be entirely human.

ORIGINAL: Wired
CADE METZ BUSINESS 
04.27.16 

viernes, 11 de diciembre de 2015

Elon Musk And Sam Altman Launch OpenAI, A Nonprofit That Will Use AI To 'Benefit Humanity'



.
Led by an all-star team of Silicon Valley's best and brightest, OpenAI already has $1 billion in funding.
.
Silicon Valley is in the midst of an .artificial intelligence war, as giants like Facebook and Google attempt to outdo each other by deploying machine learning and AI to automate services. But a brand-new organization called .OpenAI—helmed by Elon Musk and a posse of prominent techies—aims to use AI to "benefit humanity," without worrying about profit.
Musk, the CEO of SpaceX and Tesla, .took to Twitter to announce OpenAI on Friday afternoon.

The organization, the formation of which has been in discussions for quite a while, came together in earnest over the last couple of months, co-chair and Y Combinator CEO Sam Altman told Fast Company. It is launching with $1 billion in funding from the likes of Altman, Musk, LinkedIn founder Reid Hoffman, and Palantir chairman Peter Thiel. In an .introductory blog post, the OpenAI team said "we expect to only spend a tiny fraction of this in the next few years."

Noting that it's not yet clear on what it will accomplish, OpenAI explains that its nonprofit status should afford it more flexibility. "Since our research is free from financial obligations, we can better focus on a positive human impact," the blog post reads. "We believe AI should be an extension of individual human wills and, in the spirit of liberty, as broadly and evenly distributed as is possible safely." We're just trying to create new knowledge and give it to the world.

The organization features an all-star group of leaders: Musk and Altman are co-chairs, while Google research scientist Ilya Sutskever is research director and Greg Brockman is CTO, a role he formerly held at payments company Stripe.

For nearly everyone involved in OpenAI, the project will be full-time work, Altman explained. For his part, it will be a "major commitment," while Musk is expected to "come in every week, every other week, something like that."

Altman explained that everything OpenAI works on—including any intellectual property it creates—will be made public. The one exception, he said, is if it could pose a risk. "Generally speaking," Altman told Fast Company, "we'll make all our patents available to the world."

Companies like Facebook and Google are working fast to use AI. Just yesterday, .Facebook announced it is open-sourcing new computing hardware, known as "Big Sur," that doubles the power and efficiency of computers currently available for AI research. Facebook has also recently talked about using AI to help its blind users, as well as to make broad tasks easier on the giant social networking service. Google, .according to Recode, has also put significant efforts into AI research and development, but has been somewhat less willing to give away the fruits of its labor.

Altman said he imagines that OpenAI will work with both of those companies, as well as any others interested in AI. "One of the nice things about our structure is that because there is no fiduciary duty," he said, "we can collaborate with anyone."

For now, there are no specific collaborations in the works, Altman added, though he expects that to change quickly now that OpenAI has been announced.

Ultimately, while many companies are working on artificial intelligence as part of for-profit projects, Altman said he thinks OpenAI's mission—and funding—shouldn't threaten anyone. "I would be very concerned if they didn't like our mission," he said. "We're just trying to create new knowledge and give it to the world."

ORIGINAL: .FastCompany
By .Daniel Terdiman.

OpenAI's research director is Ilya Sutskever, one of the world experts in machine learning. Our CTO is Greg Brockman, formerly the CTO of Stripe. The group's other founding members are world-class research engineers and scientists: Trevor Blackwell, Vicki Cheung, Andrej Karpathy, Durk Kingma, John Schulman, Pamela Vagata, and Wojciech Zaremba. Pieter Abbeel, Yoshua Bengio, Alan Kay, Sergey Levine, and Vishal Sikka are advisors to the group. OpenAI's co-chairs are Sam Altman and Elon Musk.

Sam, Greg, Elon, Reid Hoffman, Jessica Livingston, Peter Thiel, Amazon Web Services (AWS), Infosys, and YC Research are donating to support OpenAI. In total, these funders have committed $1 billion, although we expect to only spend a tiny fraction of this in the next few years.

You can follow us on Twitter at @open_ai or email us at info@openai.com.

domingo, 3 de mayo de 2015

Watch Elon Musk announce Tesla Energy in the best tech keynote I've ever seen



I've watched a lot of handsomely paid CEOs get on stages for keynote presentations over the past decade, and none were as good as the one I saw Elon Musk give Thursday night in California as he introduced Tesla's new battery system. I'm sure many people will disagree — I mean, how can you compete with Steve Jobs introducing the iPhone in 2007 — but ultimately Jobs was selling a better smartphone. Musk is selling a better future.

I'm not saying Musk is going to succeed, or that you should go buy Tesla's battery. There are lots of ways to save the world and cut down on fossil fuels, and Tesla's plan isn't the first. I'm just happy to see a presentation that was genuinely exciting and inspiring — a sales pitch for a tech product that's honest, and not treated like the second-coming of Jesus. It's really obvious why so many tech reporters become jaded. Too many tech visionaries pretend like every footprint they leave is going to radically change everything and make the world a better place to live in. We get it. You made a slightly thinner phone from last year's model. You made an app that sends the word "Yo" to someone. Enjoy it while it lasts.

DUDE'S SELLING A BATTERY AND HE STILL MANAGED TO BE INSPIRING
Here's what I loved about Musk's presentation. 

  • First of all, it was short, clocking in at about 20 minutes. Musk didn't waste anybody's time. He used that time to present a problem of critical importance (eliminating humanity's use of fossil fuels), explained how it can be addressed, and offered a plausible solution in the form of a new product — one that's priced within reach of a lot of people and available to order. Amazingly, all of those things are actually pretty rare to see in one show. Tesla's presentation was inspiring, and Musk wasn't selling some fancy sci-fi trinket that has the benefit of Star Trek nostalgia. Dude was selling a battery.
  • But aside from all the technical details I enjoyed, what I liked most was Musk's humble tenor. His ambitions often seem scattershot and sometimes ridiculous, and he probably spends too much time worrying about killer AI, but tonight he seemed confident and focused. Most importantly, he spoke to the audience with a frank tone that didn't feel manipulative or canned. There were no overdone theatrics here, just an honest conversation about how a new product might solve a major problem. The humility and ambition don't just seem to be a show; Tesla has already opened some of its patents to competitors, and announced tonight that it would even open its Gigafactory plans to others.
Take notes, suits of Silicon Valley. This is how you do it right.

ORIGINAL: The Verge
on May 1, 2015 01:51 am



ORIGINAL: TeslaEnergy.com

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Multiple batteries may be installed together.

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martes, 3 de marzo de 2015

What will happen when the internet of things becomes artificially intelligent?

From Stephen Hawking to Spike Jonze, the existential threat posed by the onset of the ‘conscious web’ is fuelling much debate – but should we be afraid?


Who’s afraid of artificial intelligence? Quite a few notable figures, it turns out. Photograph: Alamy

When Stephen Hawking, Bill Gates and Elon Musk all agree on something, it’s worth paying attention.

All three have warned of the potential dangers that artificial intelligence or AI can bring. The world’s foremost physicist, Hawking said that the full development of artificial intelligence (AI) could spell the end of the human race. Musk, the tech entrepreneur who brought us PayPal, Tesla and SpaceX described artificial intelligence as our biggest existential threatand said that playing around with AI was like “summoning the demon”. Gates, who knows a thing or two about tech, puts himself in the concerned camp when it comes to machines becoming too intelligent for us humans to control.

What are these wise souls afraid of? AI is broadly described as the ability of computer systems to ape or mimic human intelligent behavior. This could be anything from recognizing speech, to visual perception, making decisions and translating languages. Examples run from Deep Blue who beat chess champion Garry Kasparov to supercomputer Watson who outguessed the world’s best Jeopardy player. Fictionally, we have Her, Spike Jonze’s movie that depicts the protagonist, played by Joaquin Phoenix, falling in love with his operating system, seductively voiced by Scarlet Johansson. And coming soon, Chappie stars a stolen police robot who is reprogrammed to make conscious choices and to feel emotions.

An important component of AI, and a key element in the fears it engenders, is the ability of machines to take action on their own without human intervention. This could take the form of a computer reprogramming itself in the face of an obstacle or restriction. In other words, to think for itself and to take action accordingly.

Needless to say, there are those in the tech world who have a more sanguine view of AI and what it could bring. Kevin Kelly, the founding editor of Wired magazine, does not see the future inhabited by HAL’s – the homicidal computer on board the spaceship in 2001: A Space Odyssey. Kelly sees a more prosaic world that looks more like Amazon Web Services: a cheap, smart, utility which is also exceedingly boring simply because it will run in the background of our lives. He says AI will enliven inert objects in the way that electricity did over 100 years ago. “Everything that we formerly electrified, we will now cognitize.” And he sees the business plans of the next 10,000 startups as easy to predict: “Take X and add AI.

While he acknowledges the concerns about artificial intelligence, Kelly writes: “As AI develops, we might have to engineer ways to prevent consciousness in them – our most premium AI services will be advertised as consciousness-free.” (my emphasis).

Running parallel to the extraordinary advances in the field of AI is the even bigger development of what is loosely called, the internet of things (IoT). This can be broadly described as the emergence of countless objects, animals and even people with uniquely identifiable, embedded devices that are wirelessly connected to the internet. These ‘nodes’ can send or receive information without the need for human intervention. There are estimates that there will be 50 billion connected devices by 2020. Current examples of these smart devices include Nest thermostats, wifi-enabled washing machines and the increasingly connected cars with their built-in sensors that can avoid accidents and even park for you.

The US Federal Trade Commission is sufficiently concerned about the security and privacy implications of the Internet of Things, and has conducted a public workshop and released a report urging companies to adopt best practices and “bake in” procedures to minimise data collection and to ensure consumer trust in the new networked environment.

Tim O’Reilly
, coiner of the phrase “Web 2.0” sees the internet of things as the most important online development yet. He thinks the name is misleading – that IoT is “really about human augmentation”. O’Reilly believes that we should “expect our devices to anticipate us in all sorts of ways”. He uses the “intelligent personal assistant”, Google Now, to make his point.

So what happens when these millions of embedded devices connect to artificially intelligent machines? What does AI + IoT = ? Will it mean the end of civilisation as we know it? Will our self-programming computers send out hostile orders to the chips we’ve added to our everyday objects? Or is this just another disruptive moment, similar to the harnessing of steam or the splitting of the atom? An important step in our own evolution as a species, but nothing to be too concerned about?

The answer may lie in some new thinking about consciousness. As a concept, as well as an experience, consciousness has proved remarkably hard to pin down. We all know that we have it (or at least we think we do), but scientists are unable to prove that we have it or, indeed, exactly what it is and how it arises.

Dictionaries describe consciousness as the state of being awake and aware of our own existence. It is an “internal knowledge” characterized by sensation, emotions and thought.

Just over 20 years ago, an obscure Australian philosopher named David Chalmers created controversy in philosophical circles by raising what became known as the Hard Problem of Consciousness. He asked how the grey matter inside our heads gave rise to the mysterious experience of being. What makes us different to, say, a very efficient robot, one with, perhaps, artificial intelligence? And are we humans the only ones with consciousness?

  • Some scientists propose that consciousness is an illusion, a trick of the brain
  • Still others believe we will never solve the consciousness riddle
  • But a few neuroscientists think we may finally figure it out, provided we accept the remarkable idea that soon computers or the internet might one day become conscious.
In an extensive Guardian article, the author Oliver Burkeman wrote how Chalmers and others put forth a notion that all things in the universe might be (or potentially be) conscious, “providing the information it contains is sufficiently interconnected and organized.” So could an iPhone or a thermostat be conscious? And, if so, could we in the midst of a ‘Conscious Web’?

Back in the mid-1990s, the author Jennifer Cobb Kreisberg wrote an influential piece for Wired, A Globe, Clothing Itself with a Brain. In it she described the work of a little known Jesuit priest and paleontologist, Teilhard de Chardin, who 50 years earlier described a global sphere of thought, the “living unity of a single tissue” containing our collective thoughts, experiences and consciousness.

Teilhard called it the “nooshphere” (noo is Greek for mind). He saw it as the evolutionary step beyond our geosphere (physical world) and biosphere (biological world). The informational wiring of a being, whether it is made up of neurons or electronics, gives birth to consciousness. As the diversification of nervous connections increase, de Chardin argued, evolution is led towards greater consciousness. Or as John Perry Barlow, Grateful Dead lyricist, cyber advocate and Teilhard de Chardin fan said: “With cyberspace, we are, in effect, hard-wiring the collective consciousness.

So, perhaps we shouldn’t be so alarmed. Maybe we are on the cusp of a breakthrough not just in the field of artificial intelligence and the emerging internet of things, but also in our understanding of consciousness itself. If we can resolve the privacy, security and trust issues that both AI and the IoT present, we might make an evolutionary leap of historic proportions. And it’s just possible Teilhard’s remarkable vision of an interconnected “thinking layer” is what the web has been all along.

• Stephen Balkam is CEO of the Family Online Safety Institute in the US

ORIGINAL: The Guardian

Stephen Balkam

Friday 20 February 2015

jueves, 19 de febrero de 2015

Research Priorities for Robust and Beneficial Artificial Intelligence: an Open Letter

Artificial intelligence (AI) research has explored a variety of problems and approaches since its inception, but for the last 20 years or so has been focused on the problems surrounding the construction of intelligent agents - systems that perceive and act in some environment. In this context, "intelligence" is related to statistical and economic notions of rationality - colloquially, the ability to make good decisions, plans, or inferences. The adoption of probabilistic and decision-theoretic representations and statistical learning methods has led to a large degree of integration and cross-fertilization among  
  • AI, 
  • machine learning, 
  • statistics, 
  • control theory, 
  • neuroscience, and 
  • other fields
The establishment of shared theoretical frameworks, combined with the availability of data and processing power, has yielded remarkable successes in various component tasks such as 
  • speech recognition, 
  • image classification, 
  • autonomous vehicles, 
  • machine translation, 
  • legged locomotion, and 
  • question-answering systems.
As capabilities in these areas and others cross the threshold from laboratory research to economically valuable technologies, a virtuous cycle takes hold whereby even small improvements in performance are worth large sums of money, prompting greater investments in research. There is now a broad consensus that AI research is progressing steadily, and that its impact on society is likely to increase. The potential benefits are huge, since everything that civilization has to offer is a product of human intelligence; we cannot predict what we might achieve when this intelligence is magnified by the tools AI may provide, but the eradication of disease and poverty are not unfathomable. Because of the great potential of AI, it is important to research how to reap its benefits while avoiding potential pitfalls.


The progress in AI research makes it timely to focus research not only on making AI more capable, but also on maximizing the societal benefit of AI. Such considerations motivated the AAAI 2008-09 Presidential Panel on Long-Term AI Futures and other projects on AI impacts, and constitute a significant expansion of the field of AI itself, which up to now has focused largely on techniques that are neutral with respect to purpose.
Attendees at Asilomar, Pacific Grove, February 21–22, 2009 (left to right): Michael Wellman, Eric Horvitz, David Parkes, Milind Tambe, David Waltz, Thomas Dietterich, Edwina Rissland (front), Sebastian Thrun, David McAllester, Magaret Boden, Sheila McIlraith, Tom Dean, Greg Cooper, Bart Selman, Manuela Veloso, Craig Boutilier, Diana Spears (front), Tom Mitchell, Andrew Ng.
We recommend expanded research aimed at ensuring that increasingly capable AI systems are robust and beneficial: our AI systems must do what we want them to do. The attached research priorities document gives many examples of such research directions that can help maximize the societal benefit of AI. This research is by necessity interdisciplinary, because it involves both society and AI. It ranges from
  • economics, 
  • law and 
  • philosophy to 
  • computer security, 
  • formal methods and, of course, 
  • various branches of AI itself.

In summary, we believe that research on how to make AI systems robust and beneficial is both important and timely, and that there are concrete research directions that can be pursued today.

List of signatories

ORIGINAL: Future Of Life Institute

lunes, 4 de agosto de 2014

Elon Musk: Artificial Intelligence Is 'Potentially More Dangerous Than Nukes'

hal 2001 a space odyssey
Google Images

Back in June, Tesla CEO Elon Musk told CNBC that he'd invested in a company called Vicarious that is developing products and services based on artificial intelligence. But that wasn't why Musk got interested. His impetus for backing the firm was instead "to keep an eye on" unforeseen terrifying scenarios where the products began to threaten humanity.

He doesn't appear to have been exaggerating.

In a Tweet last night, Musk said this:

Bostrom is Nick Bostrom, the founder of Oxford’s Future of Humanity Institute. That group recently partnered with a new group at Cambridge, the Centre for the Study of Existential Risk, to study how things like nanotechnology, robotics, artificial intelligence and other innovations could someday wipe us all out, according to PCPro:

At [a] conference, Bostrom was asked if we should be scared by new technology. "Yes," he said, "but scared about the right things. There are huge existential threats, these are threats to the very survival of life on Earth, from machine intelligence – not the way it is today, but if we achieve this sort of super-intelligence in the future," Bostrom said.
"Superintelligence" is set to be published in English next month. In a blurb, Bostrom's colleague Martin Rees of Cambridge says of the work, "Those disposed to dismiss an 'AI takeover' as science fiction may think again after reading this original and well-argued book."
In our recent profile of Vicarious, the firm backed by Musk, we talked to Bruno Olshausen, a Berkeley professor and one of the firm's advisors. He said we are still way too far behind in our understanding of how the brain works to be able to create something that could turn heel.
"Absent a major paradigm shift - something unforeseeable at present - I would not say we are at the point where we should truly be worried about AI going out of control," he told us.
So at a minimum, it sounds like the robot takeover is not imminent.
But it seems like it's something all of us should "keep an eye on."

ORIGINAL: Business Insider
Rob Wile
Aug. 3, 2014

miércoles, 18 de septiembre de 2013

How GM plans to out-innovate Tesla: by inventing a better battery

ORIGINAL: Quartz 
If GM cracks the chemistry, Tesla may find itself running to keep up. Reuters/Petar Kujundzic
General Motors is in a race for the electric-car future with showy Tesla. Yesterday the world’s second-largest carmaker announced that it plans to build an electric car to rival the 200-mile (320 km) range of Tesla’s Model S and sell it for $30,000, less than half Tesla’s price. But what’s interesting is that Tesla’s Elon Musk, the pioneer of both space and earthly travel, is relying on old technology while the incumbent, GM, is pushing the boundaries of battery science.

For all its innovation, the Model S uses ordinary commodity batteries produced by Panasonic. On the outside, they resemble the regular cylindrical batteries that you buy in the store, only a little larger. The chemical composition is nickel-cobalt-aluminum, which costs less than many rival chemistries but is ordinarily rejected by carmakers because it easily catches fire. Musk’s team has overcome the safety issue by building a control system that manages the batteries.

GM has gone the other way. It does not dismiss Musk’s success with off-the-shelf batteries. But it is attempting to optimize a lithium-ion battery composition that promises to beat everything else currently out there. Containing nickel, cobalt and manganese (NMC), it was invented at the US-backed Argonne National Laboratory. Scientists think that NMC is potentially more powerful and cheaper than any other lithium-ion chemistry, but it has flaws of physics that no one has yet managed to fix. GM hopes that either NMC or another composition will let it build a long-range car cheaply.

GM already sells two electric cars, the Chevy Volt and the Chevy Spark EV, for around $35,000 and $27,500, and in the US that’s before government tax credits that apply a $7,500 discount to electric cars. But despite costing $71,000 before the tax incentive, Tesla’s Model S has sold more models than the Volt this year. The Model S is unabashedly marketed as a sporty luxury car, but it is also the only all-electric car with a 200-mile range; others clock in at 100 miles or less.

Both manufacturers are planning to attack each others’ markets. GM, conceding that it may have something to learn from Musk, is trotting out an electrified Cadillac and may release $100,000 vehicles that challenge Tesla directly. Musk, for his part, says he plans in the next few years to release a 200-mile Tesla that would cost around $35,000. GM’s Doug Parks wishes Tesla the best of luck. But he is sticking to the bench. “The game is afoot,” Parks told reporters at GM’s expanded new battery lab on Sept. 17. “This is a long race.