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Showing posts with label quantum computer. Show all posts
Showing posts with label quantum computer. Show all posts

Wednesday, December 20, 2017

Quantum Simulators Leap Ahead

In the daunting quest to build full-blown, universal #quantumcomputers, capable of tackling problems beyond the reach of today’s classical machines, the creation of so-called quantum simulators has offered a tempting interim target. These simulators are designed not to be arbitrarily programmable, but instead to model specific quantum systems that conventional computing algorithms can’t easily replicate. A sufficiently large simulation would demonstrate quantum computing’s potential power—and, perhaps, offer a platform for moving toward general-purpose quantum machines. At the end of November 2017, two U.S. research groups announced a big step forward in such quantum simulation. Leveraging different systems of trapped atoms or ions, the two groups were able to confine and manipulate more than 50 individual interacting quantum bits, or qubits, and to use them to simulate physics all but intractable with a classical computer (Nature, doi: 10.1038/nature24622, 10.1038/nature24654). A third research team based in the United States, Singapore and Greece performed a separate quantum simulation, using nine qubits, on a very different, superconducting-circuit platform involving a quantum chip from Google (Science, doi: 10.1126/science.aao1401). None of the systems is a fully formed quantum computer—yet. But some of them could be configured to solve a specific class of difficult optimization problems that crop up in a variety of areas, as well as other problems in quantum physics. And, with additional engineering to scale up the number of qubits and the lasers, control systems and circuits that manage them, the simulators could evolve closer and closer to full-scale quantum computers.

https://www.osa-opn.org/home/newsroom/2017/december/quantum_simulators_leap_ahead/

Wednesday, July 26, 2017

IonQ Raises $20M Series B Round Led By NEA, GV To Advance Quantum Computing For Commercial Applications

COLLEGE PARK, Md., July 26, 2017 /PRNewswire/ -- #IonQ, an early-stage company developing #quantumcomputing for commercial applications, today announced completion of a $20 million series B round led by New Enterprise Associates (NEA) and GV (formerly #GoogleVentures), with participation from new strategic investors. Building on the pioneering work of world-renowned experts at the University of Maryland and Duke University, IonQ plans to bring general-purpose quantum computers to market by late 2018. "Efforts to harness quantum mechanics to accelerate computation have gained tremendous momentum in recent years, fueled by significant scientific progress and growing interest—and investment—by some of the world's largest governments, organizations and technology companies," said David Moehring, PhD, CEO of IonQ. "While there is much yet to be discovered about specific applications, there is a massive market clamoring for practical #quantumcomputers. Building on the groundbreaking work of Chris Monroe and Jungsang Kim, IonQ's mission is to make reliable, scalable quantum computing a reality." IonQ's team comprises some of the world's foremost experts in the field of quantum computing. Co-founders Chris Monroe of University of Maryland and Jungsang Kim of Duke University are longtime collaborators, well-known for their pioneering work in ion-trap experiments. Ion trapping is the hallmark of IonQ's approach and a key differentiator from other efforts underway. Moehring, who joined as CEO in 2016, was most recently at U.S. Intelligence Advanced Research Projects Activity (IARPA), charged with oversight of government-sponsored quantum computing initiatives. "There is simply no team in the world with more expertise in trapped ion technology, or with greater understanding of the broader quantum computing landscape," said Ron Bernal, Venture Partner at NEA and a member of IonQ's board of directors. "We are incredibly excited to partner with Dave, Chris and Jungsang as they advance the field of quantum computing and develop a platform for its commercial applications." IonQ's trapped ions represent one of multiple approaches being explored to power a quantum computer. Most large technology companies initiating quantum computing research attempt to leverage their core semiconductor technology by developing superconducting qubits. IonQ believes trapped ion technology, which uses lasers to cool and isolate individual ions, will prevail because trapped ions are identical, more stable, can be better controlled, and are therefore likely to scale with better performance and greater predictability. "Quantum computers are the next giant leap in the ability to process information, and IonQ's promising approach builds on nearly two decades of research by highly regarded physicists and engineers in the field," said Blake Byers, General Partner at GV and a member of IonQ's board of directors. "Quantum computers have the potential to solve data-intensive problems in areas like healthcare, machine learning, and cryptography, and we're excited to partner with IonQ as it accelerates development." IonQ has raised approximately $22 million in total, with an earlier $2 million invested by NEA in 2016. The company has demonstrated significant momentum over the last year, adding several new board members and strategic advisors, expanding its product development team, and attracting growing interest from both the scientific and startup communities. In addition to Bernal and Byers, new board members include Jeong Kim, former president of Bell Labs, and Andrew Schoen, Principal at NEA. John Preskill, the Director of the Institute for Quantum Information at Caltech, and Jagdeep Singh, founder and CEO of QuantumScape, Lightera Networks, and Infinera, are serving as advisors to the company. About IonQ IonQ is developing world-leading general-purpose quantum information processors. Our unique trapped ion approach combines unmatched physical performance, perfect qubit replication, optical networkability, and highly-optimized algorithms to create a quantum computer that is as scalable as it is powerful, and that will support a broad array of applications across a variety of industries. IonQ is headquartered in College Park, MD and backed by New Enterprise Associates (NEA) and GV (formerly Google Ventures). Co-founders Christopher Monroe and Jungsang Kim are leading experts in the field of trapped-ion quantum computing. Professors Monroe and Kim also maintain large academic research groups at the University of Maryland and Duke University, respectively, with a combined government funding of roughly $10M per year. This pioneering work is the cornerstone of IonQ's uniquely scalable technology. About Quantum Computing Quantum computing represents a radical departure from classical computing and has the potential to overcome these limitations by embracing uniquely quantum phenomena, such as superposition and entanglement, that emerge at atomic scale. Quantum computers' ability to perform incredibly complex calculations and data processing exponentially faster than classical computers opens up a world of possible commercial and scientific applications. The potential is staggering, and though we are still in the early days of quantum computing, we anticipate that the technology will transform industries and facilitate breakthroughs in areas as disparate as machine learning, molecular interaction simulation, cryptography, financial analysis, logistics optimization, and big data search.

http://markets.businessinsider.com/news/stocks/IonQ-Raises-20M-Series-B-Round-Led-By-NEA-GV-To-Advance-Quantum-Computing-For-Commercial-Applications-1002206209

Sunday, July 23, 2017

Scientists Build a 51-Qubit Quantum Simulator and It’s the Largest One Yet

A DIFFERENT QUBIT A #quantumsimulator isn’t a full-blown #quantumcomputer, let’s get that out first. The main difference is that the former is built to solve only one equation model while the latter is able to perform — theoretically — any equation put to it. This quantum simulator could model, for example, the minute behavior of molecules and drugs, and researchers working Harvard University recently announced that they’ve made the largest one yet, operating with 51 qubits.  Click to View Full Infographic Lead researcher Mikhail Lukin, co-founder of the Russian Quantum Center (RQC), spoke of this achievement in Moscow at the 2017 International Conference on Quantum Technologies. Lukin’s team, composed of both American and Russian scientists, built this quantum simulator using a different type of quantum bit or qubit. Instead of using photons like many quantum computer researchers do, the Harvard team’s qubits are each made from a single rubidium atom. Trapped in place using lasers, information is programmed into these qubits by modulating the laser beam. A MODEL FOR QUANTUM COMPUTERS Qubits are at the heart of quantum computing. While conventional computers rely on bits of 0s and 1s to process information, quantum computers use qubits, each of which are capable of being a 0 or 1 at the same time. This allows quantum computers to handle information faster. The difficulty is in keeping the qubits stable. Currently, #Google is working on what could be the largest #quantumcomputer, which would run on a 49-#qubit chip. #Lukin ’s quantum simulator beats that with 51 qubits. While the simulator is designed to handle one problem at a time, the method used could translate into a full-blown quantum computer.

https://futurism.com/this-51-qubit-simulator-could-be-the-key-to-a-full-blown-quantum-computer/

Thursday, June 22, 2017

Google on track for quantum computer breakthrough by end of 2017

#Google is leading the pack when it comes to quantum computing. The company is testing a 20- #qubitprocessor – its most powerful quantum chip yet – and is on target to have a working 49-qubit chip by the end of this year. Qubits, or quantum bits, can be a mixture of 0 and 1 at the same time, making them potentially more powerful than classical bits. And if everything goes to plan, the 49-qubit chip will make Google the first to build a quantum computer capable of solving certain problems that are beyond the abilities of ordinary computers. Google set itself this ambitious goal, known as quantum supremacy, in a paper published last July. Alan Ho, an engineer in Google’s quantum AI lab, revealed the company’s progress at a quantum computing conference in Munich, Germany. His team is currently working with a 20-qubit system that has a “two-qubit fidelity” of 99.5 per cent – a measure of how error-prone the processor is, with a higher rating equating to fewer errors. For quantum supremacy, Google will need to build a 49-qubit system with a two-qubit fidelity of at least 99.7 per cent. Ho is confident his team will deliver this system by the end of this year. Until now, the company’s best public effort was a 9-qubit computer built in 2015. Moving fast “Things really have moved much quicker than I would have expected,” says Simon Devitt at the RIKEN Center for Emergent Matter Science in Japan. Now that Google and other companies involved in quantum computing have mastered much of the fundamental science behind creating high-quality superconducting qubits, the big challenge facing these firms is scaling these systems and reducing their error rates. It is important not to get carried away with numbers of qubits, says Michele Reilly, CEO at Turing Inc, a quantum start-up. It’s impossible to really harness the power of these machines in a useful way without error correction, she says – a technique that mitigates the fickle nature of quantum mechanics. Ho says it will be 2027 before we have error-corrected quantum computers, so useful devices are still some way off. But if Google can be the first to demonstrate quantum supremacy, showing that qubits really can beat regular computers, it will be a major scientific breakthrough.

https://www.newscientist.com/article/2138373-google-on-track-for-quantum-computer-breakthrough-by-end-of-2017/

Sunday, May 28, 2017

IBM to Sell Use of Its New 17-Qubit Quantum Computer over the Cloud

#IBM has created a 17- #qubit #quantumcomputer and is making plans to timeshare the machine with other companies via cloud computing. While this is an important step, it isn't quite enough to make quantum computers truly competitive compared to #supercomputers. What will it take to bring quantum computing into the commercial realm—and how long until we get there? Classical computing has been around for many years and has completely transformed the human race. Near instant communication between any two individuals used to be a dream. The idea of large calculations being done faster than you can blink was unimaginable. The concept of free information and education was too much for any University to handle. But it comes as no surprise that, now that these concepts are a reality, we've become dependent on them. This dependence places pressure on the industry to produce more powerful devices with every passing year. This was not an issue in the past since silicon devices were easy to scale down. But, with transistor gates as small as one-atom thick, shrinking may no longer be possible. Silicon, the building block of modern semiconductors, is already being phased out by Intel and future devices using feature sizes of 7nm and smaller will instead be made from materials such as Indium-Gallium-Arsenide (InGaAs).
https://www.allaboutcircuits.com/news/ibm-to-sell-use-of-its-new-17-qubit-quantum-computer-over-the-cloud/

Wednesday, May 17, 2017

IBM Just Made a 17 Qubit Quantum Processor, Its Most Powerful One Yet

The race is on for quantum supremacy—the point at which #quantumcomputing will outperform even the best conventional computer. #Google, #IBM and other companies want to break that barrier and tackle problems that no current supercomputer can handle. IBM took a step in this direction Wednesday when they announced the creation of a 17-qubit quantum computing processor. Computing time on this system will be sold to undisclosed companies through cloud access to tackle business problems, IBM Research Vice President of Science and Solutions Dario Gil told Motherboard. "We are focused on the computational power of a quantum system to explore practical applications, and that depends on far more than simply the number of qubits," he said, noting the system will be used to explore applications in chemistry, finance and logistics.

https://motherboard.vice.com/en_us/article/ibm-17-qubit-quantum-processor-computer-google

Quantum Computers Sound Great, But Who’s Going to Program Them?

While everyone’s in a rush to get to the end of the #quantumcomputer race, has anyone really given a moment thought as to who will actually program these machines? The idea of achieving quantum supremacy came after #Google unveiled its new quantum chip design and is all about creating a device that can perform calculation impossible for a conventional computer to carry out.

Quantum computers should have no trouble in outperforming conventional computers as they work on the basis of qubits. Unlike bits that run conventional computers and either a 0 or a 1, qubits can be both at the same time. This is a phenomenon known as superposition. But in order to demonstrate that thousands of qubits would be needed, and right now, that’s just not possible. So instead of Google is planning to compare the computer’s ability to simulate the behavior of a random arrangement of quantum circuits and estimate it will take around 50 qubits to outdo the most powerful of computers.

#IBM is getting ready to release the world’s first commercial universe quantum computing service later this year that will give users the chance to connect to one of its quantum computers via the cloud for a fee. But, there are still many hurdles to overcome before this technology becomes mainstream. One of these problems is that programming a quantum computer is much harder than programming a conventional computer. So, who’s going to program them?

http://trendintech.com/2017/05/16/quantum-computers-sound-great-but-whos-going-to-program-them/

Tuesday, February 21, 2017

Quantum Computers Finally Go Head-to-Head

In the red corner, weighing in with just five qubits, a quantum computer from the University of Maryland in College Park. In the blue corner, also with five qubits, its rival from #IBM. Welcome to the first fair #quantumcomputer fight. Researchers have described a series of experiments that, for the first time, saw two quantum computing devices, built using different underlying technologies, run the same algorithms to establish which would win. The qubits—the quantum equivalent of binary bits—in IBM’s chip are made from superconducting metals, while the University of Maryland’s uses electromagnetic fields to trap ytterbium ions.

The experiment was made possible because the two chips, while using different underlying physics, both run algorithms in the same way. And because IBM has opened its chip up, allowing it to be programmed online by researchers, the University of Maryland team was able to give it the same challenge as its own device.

Ultimately, the IBM device was faster—but it was also less reliable. That’s because the University of Maryland device uses qubits that are all interconnected, which means they can all share information with each other. IBM’s, meanwhile, must swap information via a central hub, and that process can cause delicate quantum states to be destroyed.

https://www.technologyreview.com/s/603699/quantum-computers-finally-go-head-to-head/

Tuesday, January 24, 2017

D-Wave's $15 million quantum computer runs a staggering 2,000 qubits

For #DWave, the path to #quantumcomputers being widely accepted is similar to the history of today’s computers. The first chips came more than 30 years ago, and #Microsoft ’s Basic expanded the software infrastructure around PCs. Quantum computers are a new type of computer that can be significantly faster than today’s PCs. They are still decades away from replacing PCs and going mainstream, but more advanced hardware and use models are still emerging.

http://www.pcworld.com/article/3161034/computers/d-waves-quantum-computer-runs-a-staggering-2000-qubits.html

Monday, January 2, 2017

Start-up IonQ sees opportunity in still-developing area of quantum computers

The District’s technology community woke to a shock in November when Harry Weller, a rising star at esteemed Maryland venture firm New Enterprise Associates, died in his sleep at 46. Weller was fascinated by peculiarities in how fast-changing scientific advances can reshape the world, and he rose to prominence by shepherding successful businesses in murky fields such as #cybersecurity and #ecommerce. One of his last projects was a start-up called #IonQ, and it may have been one of the most un­or­tho­dox investments of his career. IonQ includes academics from the University of Maryland and Duke University who want to sell quantum computing capabilities to giant technology companies within a few years. #Quantumcomputing is a still-aspirational field of computer science that envisions impossibly fast computers built on the laws of particle physics. Mainstream scientists theorize that a #quantumcomputer could perform tasks unattainable to even the most advanced traditional computers, such as seamlessly breaking data encryption or rapidly analyzing the #humangenome.

https://www.washingtonpost.com/business/capitalbusiness/as-quantum-physicists-work-to-re-make-the-world-of-computing-investors-see-an-opportunity/2017/01/01/04b6776e-cdef-11e6-a87f-b917067331bb_story.html?utm_term=.ca17a95b1e80

Thursday, December 22, 2016

Intel Bets It Can Turn Everyday Silicon into Quantum Computing’s Wonder Material

Sometimes the solution to a problem is staring you in the face all along. Chip maker #Intel is betting that will be true in the race to build #quantumcomputers—machines that should offer immense processing power by exploiting the oddities of quantum mechanics.

Competitors #IBM, #Microsoft, and #Google are all developing quantum components that are different from the ones crunching data in today’s computers. But Intel is trying to adapt the workhorse of existing computers, the #silicontransistor, for the task. Intel has a team of quantum hardware engineers in Portland, Oregon, who collaborate with researchers in the Netherlands, at TU Delft’s QuTech quantum research institute, under a $50 million grant established last year. Earlier this month Intel’s group reported that they can now layer the ultra-pure silicon needed for a quantum computer onto the standard wafers used in chip factories. This strategy makes Intel an outlier among industry and academic groups working on qubits, as the basic components needed for quantum computers are known. Other companies can run code on prototype chips with several qubits made from superconducting circuits (see “Google’s Quantum Dream Machine”). No one has yet advanced silicon qubits that far. A quantum computer would need to have thousands or millions of qubits to be broadly useful, though. And Jim Clarke, who leads Intel’s project as director of quantum hardware, argues that silicon qubits are more likely to get to that point (although Intel is also doing some research on superconducting qubits). One thing in silicon’s favor, he says: the expertise and equipment used to make conventional chips with billions of identical transistors should allow work on perfecting and scaling up silicon qubits to progress quickly. Intel’s silicon qubits represent data in a quantum property called the “spin” of a single electron trapped inside a modified version of the transistors in its existing commercial chips. “The hope is that if we make the best transistors, then with a few material and design changes we can make the best qubits,” says Clarke. Another reason to work on silicon qubits is that they should be more reliable than the superconducting equivalents. Still, all qubits are error prone because they work on data using very weak quantum effects (see “Google Researchers Make Quantum Components More Reliable”). The new process that helps Intel experiment with silicon qubits on standard chip wafers, developed with the materials companies Urenco and Air Liquide, should help speed up its research, says Andrew Dzurak, who works on silicon qubits at the University of New South Wales in Australia. “To get to hundreds of thousands of qubits, we will need incredible engineering reliability, and that is the hallmark of the semiconductor industry,” he says. Companies developing superconducting qubits also make them using existing chip fabrication methods. But the resulting devices are larger than transistors, and there is no template for how to manufacture and package them up in large numbers, says Dzurak. Chad Rigetti, founder and CEO of Rigetti Computing, a startup working on superconducting qubits similar to those Google and IBM are developing, agrees that this presents a challenge. But he argues that his chosen technology’s head start will afford ample time and resources to tackle the problem. Google and Rigetti have both said that in just a few years they could build a quantum chip with tens or hundreds of qubits that dramatically outperforms conventional computers on certain problems, even doing useful work on problems in chemistry or machine learning.

https://www.technologyreview.com/s/603165/intel-bets-it-can-turn-everyday-silicon-into-quantum-computings-wonder-material/

Sunday, November 27, 2016

Microsoft's next big bet? Clue: it's just hired four top quantum computing scientists

#Microsoft has hired a handful of top scientists to accelerate its program to develop quantum computing, as it steps up competition in the field with #IBM and #Google. Microsoft has hired four top physicists to join a #quantumcomputing project being led by Todd Holmdahl, a Microsoft hardware veteran who's helped develop Microsoft's #Xbox and #Kinect gaming devices, and the soon-to-be-released augmented reality headset, $HoloLens. Holmdahl will be joined by quantum-computing leaders Leo Kouwenhoven from Delft University and Charles Marcus from the University of Copenhagen, as well as David Reilly, an experimental physicist from Sydney University, and Mattias Troyer, a professor of computational physics at ETH Zurich. Microsoft is betting on an approach to quantum computing known as topological design, centered on the topological qubit.

http://www.zdnet.com/article/microsofts-next-big-bet-clue-its-just-hired-four-top-quantum-computing-scientists/

Thursday, November 17, 2016

Microsoft Is Building a Quantum Computer That May Never Work

#Microsoft is working on a quantum computer that uses what are called “non-abelian anyons,” a quasiparticle that physicists aren’t even sure exist. #Quantumcomputers promise to perform calculations at unfathomably faster rates than today’s computers. Although other companies are using more realistic, proven materials in their work to create the machine, Microsoft is hopeful that its unique approach will pay dividends as the resultant machine should be less susceptible to external interference. The company has nearly 40 people working on the project, as quantum computing is seen as well worth investing in. “The upside is enormous and there is practically no downside,” Alex Bocharov, a computer scientist at Microsoft Research working on quantum computing, told Scientific American in an article published Sunday. “Microsoft is a very affluent company; it sits on something like $100 billion in cash. So what else would you invest in? Bill Gates is also investing in other things—to eradicate malaria and HIV that might require quantum computing at some point.”

https://www.inverse.com/article/22622-microsoft-quantum-computer-non-abelian-anyons

Sunday, October 23, 2016

Inside Microsoft’s quest for a topological quantum computer

The race is on build a ‘universal’ #quantumcomputer. Such a device could be programmed to speedily solve problems that classical computers cannot crack, potentially revolutionizing fields from pharmaceuticals to cryptography. Many of the world's major technology firms are taking on the challenge, but #Microsoft has opted for a more tortuous route than its rivals. #IBM, #Google and a number of academic labs have chosen relatively mature hardware, such as loops of superconducting wire, to make quantum bits ( #qubits ). These are the building blocks of a #quantumcomputer: they power its speedy calculations thanks to their ability to be in a mixture (or #superposition ) of ‘on’ and ‘off’ states at the same time. Microsoft, however, is hoping to encode its qubits in a kind of quasiparticle: a particle-like object that emerges from the interactions inside matter. Some physicists are not even sure that the particular quasiparticles Microsoft are working with — called non-abelian anyons — actually exist. But the firm hopes to exploit their topological properties, which make quantum states extremely robust to outside interference, to build what are called topological quantum computers. Early theoretical work on topological states of matter won three physicists the Nobel Prize in Physics on 4 October. The firm has been developing topological quantum computing for more than a decade and today has researchers writing software for future machines, and working with academic laboratories to craft devices. Alex Bocharov, a mathematician and computer scientist who is part of Microsoft Research’s Quantum Architectures and Computation group in Redmond, Washington, spoke to Nature about the company’s work.

http://www.nature.com/news/inside-microsoft-s-quest-for-a-topological-quantum-computer-1.20774

Sunday, October 16, 2016

Quantum Computers Will Destroy Bitcoin, Scientists Warn

Some computer scientists say #quantumcomputers are moving closer to reality and will cripple #bitcoin ’s encryption systems and doom bitcoin. Governments are investing aggressively in quantum computers, which are ultra powerful. Quantum computers, first theorized by physicist Richard Feynman in 1982, have promised a new era of computing. The theory has only recently translated into significant real-world advances, with #NASA, the CIA and #Google working on a quantum computer. Computer scientists now warn the machines will cripple existing encryption methods and destroy bitcoin’s technological foundations. The End Of Bitcoin? Andersen Cheng, co-founder of Post Quantum, a U.K. cybersecurity firm, told Newsweek that bitcoin will end the day the first quantum computer arrives. He said the quantum computer will undermine the cryptography surrounding bitcoin’s public and private keys.

https://www.cryptocoinsnews.com/quantum-computers-will-destroy-bitcoin-scientists-warn/

Diamonds aren't forever: Sandia, Harvard team create first quantum computer bridge

"People have already built small #quantumcomputers ," says Sandia researcher Ryan Camacho. "Maybe the first useful one won't be a single giant #quantumcomputer but a connected cluster of small ones." Distributing quantum information on a bridge, or network, could also enable novel forms of quantum sensing, since quantum correlations allow all the atoms in the network to behave as though they were one single atom. The joint work with Harvard University used a focused ion beam implanter at Sandia's Ion Beam Laboratory designed for blasting single ions into precise locations on a diamond substrate. Sandia researchers Ed Bielejec, Jose Pacheco and Daniel Perry used implantation to replace one carbon atom of the diamond with the larger silicon atom, which causes the two carbon atoms on either side of the silicon atom to feel crowded enough to flee. That leaves the silicon atom a kind of large landowner, buffered against stray electrical currents by the neighboring non-conducting vacancies. Though the silicon atoms are embedded in a solid, they behave as though floating in a gas, and therefore their electrons' response to quantum stimuli are not clouded by unwanted interactions with other matter. "What we've done is implant the silicon atoms exactly where we want them," said Camacho. "We can create thousands of implanted locations, which all yield working quantum devices, because we plant the atoms well below the surface of the substrate and anneal them in place. Before this, researchers had to search for emitter atoms among about 1,000 randomly occurring defects -- that is, non-carbon atoms -- in a diamond substrate of a few microns to find even one that emitted strongly enough to be useful at the single photon level." Once the silicon atoms are settled in the diamond substrate, laser-generated photons bump silicon electrons into their next higher atomic energy state; when the electrons return to the lower energy state, because all things seek the lowest possible energy level, they spit out quantized photons that carry information through their frequency, intensity and the polarization of their wave. "Harvard researchers performed that experiment, as well as the optical and quantum measurements," said Camacho. "We did the novel device fabrication and came up with a clever way to count exactly how many ions are implanted into the diamond substrate." Sandia researcher John Abraham and other Sandia researchers developed special detectors -- metal films atop the diamond substrate -- that showed the ion beam implants were successful by measuring the ionization signal produced by single ions. "Pretty cool, huh?" said Camacho.

http://www.nanotech-now.com/news.cgi?story_id=54027

Wednesday, September 28, 2016

D-Wave's 2,000-Qubit Quantum Annealing Computer Now 1,000x Faster Than Previous Generation

#D-Wave, a Canadian company developing the first commercial “ #quantumcomputer ,” announced its next-generation quantum annealing computer with 2,000 #qubits, which is twice as many as its previous generation had. History Of D-Wave D-Wave was created more than a decade ago, when it first developed a 16-qubit prototype. The company unveiled its 28-qubit version publicly for the first time in 2007. Since then, its increased its number of qubits at a steady pace, more than doubling every two years or so. In 2013, the company announced its 512-qubit computer and a collaboration between #Google and #NASA, who were going to test various algorithms on it and see how fast it could get compared to conventional computers. Last year, D-Wave announced a 1,000-qubit generation, and now the company is previewing its 2,000-qubit computer, which will likely go on sale next year.

http://www.tomshardware.com/news/d-wave-2000-qubit-1000x-faster,32768.html

Sunday, September 25, 2016

What's in that photo? Google open-sources caption tool in TensorFlow that can tell you

#Google has open-sourced a model for its machine-learning system, called #ShowandTell, which can view an image and generate accurate and original captions.

The model it's released is faster to train and better at captioning images than the versions that previously helped it secure a tied first place with #MicrosoftResearch in #Microsoft 's COCO 2015 image-captioning contest.

The image-captioning system is available for use with #TensorFlow, Google's open machine-learning framework, and boasts a 93.9 percent accuracy rate on the ImageNet classification task, inching up from previous iterations.

The code includes an improved vision model, allowing the image-captioning system to recognize different objects in images and hence generate better descriptions.

An improved image model meanwhile aids the captioning system's powers of description, so that it not only identifies a dog, grass and frisbee in an image, but describes the color of grass and more contextual detail.

The improvements, detailed in a new paper, apply recent advances in computer vision and machine translation to image-captioning challenges. Google researchers see potential for it as an accessibility tool for visually-impaired people when viewing images on the web.
http://www.zdnet.com/article/whats-in-that-photo-google-open-sources-caption-tool-in-tensorflow-that-can-tell-you/

Wednesday, August 31, 2016

Revealed: Google’s plan for quantum computer supremacy

SOMEWHERE in California, #Google is building a device that will usher in a new era for computing. It’s a #quantumcomputer , the largest ever made, designed to prove once and for all that machines exploiting exotic physics can outperform the world’s top supercomputers. And New Scientist has learned it could be ready sooner than anyone expected – perhaps even by the end of next year. The quantum computing revolution has been a long time coming. In the 1980s, theorists realised that a computer based on quantum mechanics had the potential to vastly outperform ordinary, or classical, computers at certain tasks. But building one was another matter. Only recently has a quantum computer that can beat a classical one gone from a lab curiosity to something that could actually happen. Google wants to create the first. The firm’s plans are secretive, and Google declined to comment for this article. But researchers contacted by New Scientist all believe it is on the cusp of a breakthrough, following presentations at conferences

“They are definitely the world leaders now, there is no doubt about it,” says Simon Devittat the RIKEN Center for Emergent Matter Science in Japan. “It’s Google’s to lose. If Google’s not the group that does it, then something has gone wrong.”

We have had a glimpse of Google’s intentions. Last month, its engineers quietly published a paper detailing their plans (arxiv.org/abs/1608.00263). Their goal, audaciously named quantum supremacy, is to build the first quantum computer capable of performing a task no classical computer can.

“It’s a blueprint for what they’re planning to do in the next couple of years,” says Scott Aaronson at the University of Texas at Austin, who has discussed the plans with the team.

So how will they do it? Quantum computers process data as quantum bits, or qubits. Unlike classical bits, these can store a mixture of both 0 and 1 at the same time, thanks to the principle of quantum superposition. It’s this potential that gives quantum computers the edge at certain problems, like factoring large numbers. But ordinary computers are also pretty good at such tasks. Showing quantum computers are better would require thousands of qubits, which is far beyond our current technical ability.

Instead, Google wants to claim the prize with just 50 qubits. That’s still an ambitious goal – publicly, they have only announced a 9-qubit computer – but one within reach.

To help it succeed, Google has brought the fight to quantum’s home turf. It is focusing on a problem that is fiendishly difficult for ordinary computers but that a quantum computer will do naturally: simulating the behaviour of a random arrangement of quantum circuits.

Any small variation in the input into those quantum circuits can produce a massively different output, so it’s difficult for the classical computer to cheat with approximations to simplify the problem. “They’re doing a quantum version of chaos,” says Devitt. “The output is essentially random, so you have to compute everything.”

To push classical computing to the limit, Google turned to Edison, one of the most advanced supercomputers in the world, housed at the US National Energy Research Scientific Computing Center. Google had it simulate the behaviour of quantum circuits on increasingly larger grids of qubits, up to a 6 × 7 grid of 42 qubits.

This computation is difficult because as the grid size increases, the amount of memory needed to store everything balloons rapidly. A 6 × 4 grid needed just 268 megabytes, less than found in your average smartphone. The 6 × 7 grid demanded 70 terabytes, roughly 10,000 times that of a high-end PC.

Google stopped there because going to the next size up is currently impossible: a 48-qubit grid would require 2.252 petabytes of memory, almost double that of the top supercomputer in the world. If Google can solve the problem with a 50-qubit quantum computer, it will have beaten every other computer in existence.

Eyes on the prize

By setting out this clear test, Google hopes to avoid the problems that have plagued previous claims of quantum computers outperforming ordinary ones – including some made by Google.

Last year, the firm announced it had solved certain problems 100 million times faster than a classical computer by using a D-Wave quantum computer, a commercially available device with a controversial history. Experts immediately dismissed the results, saying they weren’t a fair comparison.

Google purchased its D-Wave computer in 2013 to figure out whether it could be used toimprove search results and artificial intelligence. The following year, the firm hiredJohn Martinis at the University of California, Santa Barbara, to design its own superconducting qubits. “His qubits are way higher quality,” says Aaronson.

It’s Martinis and colleagues who are now attempting to achieve quantum supremacy with 50 qubits, and many believe they will get there soon. “I think this is achievable within two or three years,” says Matthias Troyer at the Swiss Federal Institute of Technology in Zurich. “They’ve showed concrete steps on how they will do it.”

Martinis and colleagues have discussed a number of timelines for reaching this milestone, says Devitt. The earliest is by the end of this year, but that is unlikely. “I’m going to be optimistic and say maybe at the end of next year,” he says. “If they get it done even within the next five years, that will be a tremendous leap forward.”

The first successful quantum supremacy experiment won’t give us computers capable of solving any problem imaginable – based on current theory, those will need to be much larger machines. But having a working, small computer could drive innovation, or augment existing computers, making it the start of a new era.

Aaronson compares it to the first self-sustaining nuclear reaction, achieved by the Manhattan project in Chicago in 1942. “It might be a thing that causes people to say, if we want a full-scalable quantum computer, let’s talk numbers: how many billions of dollars?” he says.

Solving the challenges of building a 50-qubit device will prepare Google to construct something bigger. “It’s absolutely progress to building a fully scalable machine,” says Ian Walmsley at the University of Oxford.

For quantum computers to be truly useful in the long run, we will also need robust quantum error correction, a technique to mitigate the fragility of quantum states. Martinis and others are already working on this, but it will take longer than achieving quantum supremacy.

Still, achieving supremacy won’t be dismissed.

“Once a system hits quantum supremacy and is showing clear scale-up behaviour, it will be a flare in the sky to the private sector,” says Devitt. “It’s ready to move out of the labs.”

“The field is moving much faster than expected,” says Troyer. “It’s time to move quantum computing from science to engineering and really build devices.”

https://www.newscientist.com/article/mg23130894-000-revealed-googles-plan-for-quantum-computer-supremacy/

Sunday, December 13, 2015

Google’s new quantum computer is '100 million times faster than your PC'

#Google and #Nasa have been working on a lightning-fast #quantumcomputer that is 3,600 times faster than a #supercomputer at solving complex problems

Has Google won the race to build the world’s first commercial quantum computer?

Google and Nasa announced they were collaborating on the #D-Wave X2 quantum computer, which they say is 100 million times faster than a conventional computer chip, in 2013. It can answer certain algorithms in seconds rather than years.

Google director of engineering, Hartmut Neven, said: “For a specific, carefully crafted proof-of-concept problem we achieve a 100-million-fold speed-up.”

The technology company’s artificial intelligence lab believe they may finally have proof that their opinion-dividing quantum computer actually works.

http://www.telegraph.co.uk/technology/news/12042781/Google-D-Wave-quantum-computer-is-100-million-times-faster-than-your-PC.html