Archive for the ‘Quantum Computing’ Category

‘Devs’: How the FX on Hulu show’s tech compares with reality – Los Angeles Times

Science is at the heart of all Alex Garlands work, but the writer-director is less interested in erudite theories than he is in what those theories reveal about humanity itself. After Garlands directorial debut, Ex Machina, came out in 2014, he started circling the idea of quantum mechanics, reading about the subject in science journals and watching online lectures by physicists like David Deutsch and David Wallace. That growing obsession has resulted, years later, in Devs, a self-contained, eight-episode series for FX on Hulu, which Garland pursued after making Annihilation in 2018.

What tends to happen with me is that I get interested in a particular subject and then at some point a story just overlays itself over that subject, says Garland, sitting on the set of Devs last year in London. The point of being interested in a subject often goes on for years, and the story arrives later. Quite often when the story arrives, it comes fully formed its like a whole narrative just drops down onto it. Thats exactly what happened with this one.

This idea stemmed from whether we live in a deterministic universe or a nondeterministic universe a deterministic universe meaning a universe where everything is a result of a prior cause. And the philosophical implication for that is that it removes free will. If thats true, thats quite a big deal. It makes you re-think behavior, which means you re-think relationships and actions, things that one has done right or wrong.

Garland wrote and directed all eight episodes, which follow a coder named Lily Chan (Sonoya Mizuno, who also appeared in Ex Machina) who works for a Silicon Valley tech company called Amaya. A series of events leads Lily deeper and deeper into the secretive lab housed on the Amaya campus, known as Devs short for development. To say too much about the plot would ruin the unfolding narrative, but its enough to know that Devs houses a powerful quantum computer that has the potential to change our understanding of the universe. Nick Offerman plays Amayas chief executive, a man with dubious intentions, and Alison Pill embodies his severe right-hand woman, Katie.

Although the show is set in the present day, the technology depicted therein reflects some supposition, pushing past whats currently possible.

Karl Glusman, left, and Nick Offerman on the secluded Silicon Valley campus at the center of Devs.

(Miya Mizuno/FX)

Its got something in common with Ex Machina in that its sort of 10 years into the future, Garland notes. It allows for a big breakthrough, specifically in terms of computing, which is a thing that is currently being worked on It could really happen in the same way Ex Machina could really happen. Which is to say it probably couldnt happen, but something like it could happen. So maybe not that exact thing, but something very substantially important could easily flow from quantum computers.

The director, along with Mizuno, visited Googles quantum computer lab in Goleta, Calif., ahead of shooting and did extensive research while writing. He found the YouTube series PBS Space Time With Dr. Matt ODowd helpful in breaking down the subject. Garland spoke with people in Silicon Valley, including coders in the quantum labs. Which means that the series is in some ways accurate to contemporary American tech companies. But in terms of quantum computers, of which there are an undetermined number in existence, Devs hovers in a fictional space.

The people who are doing what quantum computers are doing are not remotely interested in trying to do the things talked about in Devs, nor would they be able to, Garland says. This is a speculation, a bit like the way Ex Machina speculates on a level of artificial intelligence that were not even close to achieving. Its more that there are underlying principles [in effect].

Garland was also interested in the state of private tech companies, modeling Offermans character, Forest, after an aging NoCal hippie, beard and all. The director is skeptical of anyone who is put on a pedestal like Steve Jobs or Mark Zuckerberg, because tapping into the tech bubble doesnt necessarily make you a scientific genius. It might just mean you were in the right place with the right thing at the right time.

Devs creator Alex Garland

Theres a line in the show where Forest is described as a genius and then someone says, Hes not a genius, hes an entrepreneur, Garland says. I was interested in the idea that we ascribe genius-like qualities to the people who run tech companies. I was thinking, Im not sure thats true. Im inherently skeptical of anything that gets deified, but also because it seemed reasonably apparent to me that some of these people are not geniuses. They are entrepreneurs. I was riffing off that. I got quite hung up on an idea that Silicon Valley was much more capitalist than we tend to see it as.

For Offerman, who jumped at the chance to work with Garland, Forest represents the nebulous sort of character who is vastly more interesting than one who is simply a villain.

As the eight episodes unfold, your idea of Who are the protagonists and who are the antagonists? becomes really murky, Offerman says. Which is really interesting, because I think thats true of real life. Especially in this crazy political climate we want everything to be really polarized. Is it right or is it wrong? Are you an [expletive] or are you a Democrat? You eventually come to learn why [Forest] does what he does and its pretty understandable. While you may or may not agree with his methods, you can have some empathy.

Mizuno felt similarly about her character. Lily is surprising, she says. Shes an outsider. She doesnt do everything everyone else does. She doesnt participate in groupthink the way most people do.

Devs actor Alison Pill once aspired to study quantum computing.

(Miya Mizuno/FX)

Pill, who wanted to study quantum mechanics after high school thanks to reading Gary Zukavs The Dancing Wu Li Masters, found Devs compelling because it allowed for deeper thoughts than the average TV series. She read extensively ahead of production, including A Briefer History of Time and David Foster Wallaces Everything and More: A Compact History of Infinity, and has continued to consider the philosophical ramifications of quantum computing ever since.

Having been unpracticed in thinking about these things, it was such a gift to be given a project that asks these questions, she says. Because I think people like thinking about this stuff. We forget sometimes we have so much magic around us regularly The challenge Alex poses to his viewers is one thats not Youre going to be overwhelmed by the science. Its Youre going to be overwhelmed by existence.

Alex has a predilection for examining our amazing ability to create technology and further explore the vast reaches of physics, Offerman adds. And then, naturally, the trouble that gets us into. The great dichotomy of bipedal primates being handed a smartphone: On one hand, you can do amazing things with it. And on the other hand, you can send pictures of your genitals to your intern and get in a lot of trouble.

Ultimately, Devs asks a lot of questions, but it does so in the context of a story about a group of individuals who are personally affected by the science and technology. Garland keeps it personal, because he feels that these sorts of lofty issues are inherently personal, affecting each of us as technology advances and private tech companies grow. For him, science is an entry point for a discussion of what it means to be alive. The series cant offer any real answers, but it can allow viewers to consider what those might be.

[Science is] seen as something which is dry and boring and hard to understand and thinks it has all the answers and all of those things are the opposite of what is actually the case, he says. Most scientists will talk more about what they dont know than about what they do know. Science contains not just philosophy but also poetry.

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'Devs': How the FX on Hulu show's tech compares with reality - Los Angeles Times

Cambridge Quantum Computing teams up with CERN to advance quantum technologies – IT Brief Australia

Cambridge Quantum Computing (CQC) is looking to explore and advance the application of quantum technologies to particle physics as part of the QUATERNION project in the CERN openlab.

Quantum computers and their potential is being researched by CERN through the openlab. The team is collaborating with major hardware vendors and users of quantum computing, launching a number of projects in this realm.

According to CERN, the enhanced computational capabilities of quantum computers could help to improve the analysis and classification of their vast data sets, thus helping to push back the boundaries of particle physics.

More recently, the CERN openlab team have stated they will leverage the power of t|ket, CQC's proprietary quantum development platform for the QUATERNION project.

CQC's t|ket converts machine-independent quantum circuits into executable circuits, reducing the number of required operations whilst optimising physical qubit arrangements.

The architecture-agnostic nature of t|ket will help the members of the CERN openlab project team to work across multiple platforms to achieve optimal results even on today's noisy quantum hardware, CERN states.

The QUATERNION project will also investigate the application of CQC's four qubit quantum technology device named Ironbridge to CERN's Monte Carlo methods for data analysis.

Such methods are not only a vital component of particle physics research, but are also applicable to many other areas, such as financial and climate modelling, CERN states.

Monte Carlo methods use high-quality entropy sources to simulate and analyse complex data. Using CQC's IronBridge platform, the world's first commercially available device-independent and quantum-certifiable cryptographic device, the teams will investigate for the first time the effects of certified entropy on Monte Carlo simulations.

CQC founder and CEO Ilyas Khan says, We are excited to collaborate with CERN, the European Laboratory for Particle Physics, on this innovative quantum computing based research project.

CQC is focussed on using the world's best science to develop technologies for the coming quantum age. Joining CERN openlab is a special development for any organisation and we look forward to developing advances together.

CERN openlab head Alberto Di Meglio says, Our unique public-private partnership works to accelerate the development of cutting-edge computing technologies for our research community.

Quantum computing research is one of the most exciting areas of study today; we are pleased to welcome CQC and their world-class scientists into collaboration with us.

CQC is a quantum computing software company that builds tools for the commercialisation of quantum technologies that will have a global impact.

CQC combines expertise in quantum software, specifically a quantum development platform (t|ket), enterprise applications in the areas of quantum chemistry (EUMEN), quantum machine learning (QML), and quantum augmented cybersecurity (IronBridge).

The company states it has a deep commitment to the cultivation of scientific research.

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Cambridge Quantum Computing teams up with CERN to advance quantum technologies - IT Brief Australia

Quantum Computing Market: Qualitative Analysis of the Leading Players and Competitive Industry Scenario, 2025 – Express Journal

The report involves insightful data on the main sectors of the Global Quantum Computing Market. The report has segmented market, by its types and applications. Each segment has analyzed completely on the basis of its production, consumption as well as revenue. Further, it is classified on the basis of geographical areas which include: North America, Europe, Asia Pacific, Latin America, Middle East and Africa.

The market research report on the Quantum Computing Market estimates its global standing in the forecast period from 2020 to 2026. The study undertakes primary and secondary research techniques to provide an analysis of the market in the different regions by examining the trends in the industry, along with the factors expected to fuel the market growth in the forecast years. The study assesses and interprets the market based on different segments and inspects factors affecting the total revenue of the global sector.

The report also evaluates the size, share, and growth rate of the businesses by conducting detailed scrutiny of the contribution of leading market players to the global industry. The report investigates companies based on their standing in the geographical regions as segmented in the report, to study their performance and the factors aiding their progress.

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The study also provides a detailed statistical analysis of the critical aspects of the market like the drivers, restraints, opportunities, and challenges, to give the reader vital information that can influence the market in the forecast years.

Some of the leading market Players:

Segmentation by Type:

Segmentation by application:

Key highlights of the global Quantum Computing market for the forecast years 2020-2026:

Table of Content:

Chapter One: Quantum Computing Market Overview

Chapter Two: Manufacturers Profiles

Chapter Three: Market Competition, by Players (2020-2026)

Chapter Four: Market Size by Regions

Chapter Five: North America Revenue by Countries

Chapter Six: Europe Revenue by Countries

Chapter Seven: Asia-Pacific Revenue by Countries

Chapter Eight: South America Revenue by Countries

Chapter Nine: Middle East and Africa Revenue by Countries

Chapter Ten: Quantum Computing Market Segmentation by Type

Chapter Eleven: Global Quantum Computing Market Segmentation by Application

Chapter Twelve: Global Quantum Computing Market Size Forecast (2020-2026)

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Quantum Computing Market: Qualitative Analysis of the Leading Players and Competitive Industry Scenario, 2025 - Express Journal

Quantum Computing Market 2019 Analysis by Key Players, Share, Trend, Segmentation and Forecast to 2029 – News Times

The global Quantum Computing market study presents an all in all compilation of the historical, current and future outlook of the market as well as the factors responsible for such a growth. With SWOT analysis, the business study highlights the strengths, weaknesses, opportunities and threats of each Quantum Computing market player in a comprehensive way. Further, the Quantum Computing market report emphasizes the adoption pattern of the Quantum Computing across various industries.

The Quantum Computing market report examines the operating pattern of each player new product launches, partnerships, and acquisitions has been examined in detail.

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Market Segmentation

By Component

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The Quantum Computing market report offers a plethora of insights which include:

The Quantum Computing market report answers important questions which include:

The Quantum Computing market report considers the following years to predict the market growth:

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Quantum Computing Market Reportfollows a multi- disciplinary approach to extract information about various industries. Our analysts perform thorough primary and secondary research to gather data associated with the market. With modern industrial and digitalization tools, we provide avant-garde business ideas to our clients. We address clients living in across parts of the world with our 24/7 service availability.

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Quantum Computing Market 2019 Analysis by Key Players, Share, Trend, Segmentation and Forecast to 2029 - News Times

New Intel chip could accelerate the advent of quantum computing – RedShark News

The marathon to achieve the promise of quantum computers hasedged a few steps forward as Intel unveils a new chip capable, it believes, of accelerating the process.

Called Horse Ridgeand named after one of the coldest places in Oregon, the system-on-chip can control a total of 128 qubits (quantum bits) which is more than double the number of qubits Intel heralded in its Tangle Lake test chip in early 2018.

While companies like IBM and Microsoft have been leapfrogging each other with systems capable of handling ever greater qubits the breakthrough in this case appears to be an ability to lead to more efficient quantum computers by allowing one chip to handle more tasks. It is therefore a step toward moving quantum computing from the lab and into real commercial viability.

Applying quantum computing to practical problems hinges on the ability to scale, and control, thousands of qubits at the same time with high levels of fidelity. Intel suggests Horse Ridge greatly simplifies current complex electronics required to operate a quantum system.

To recap why this is important lets take it for read that Quantum computing has the potential to tackle problems conventional computers cant by leveraging a phenomena of quantum physics: that Qubits can exist in multiple states simultaneously. As a result, they are able to conduct a large number of calculations at the same time.

This can dramatically speed up complex problem-solving from years to a matter of minutes. But in order for these qubits to do their jobs, hundreds of connective wires have to be strung into and out of the cryogenic refrigerator where quantum computing occurs (at temperatures colder than deep space).

The extensive control cabling for each qubit drastically hinders the ability to control the hundreds or thousands of qubits that will be required to demonstrate quantum practicality in the lab not to mention the millions of qubits that will be required for a commercially viable quantum solution in the real world.

Researchers outlined the capability of Horse Ridge in a paper presented at the 2020 International Solid-State Circuits Conference in San Francisco and co-written by collaborators at Dutch institute QuTech.

The integrated SoC design is described as being implemented using Intels 22nm FFL (FinFET Low Power) CMOS technology and integrates four radio frequency channels into a single device. Each channel is able to control up to 32 qubits leveraging frequency multiplexing a technique that divides the total bandwidth available into a series of non-overlapping frequency bands, each of which is used to carry a separate signal.

With these four channels, Horse Ridge can potentially control up to 128 qubits with a single device, substantially reducing the number of cables and rack instrumentations previously required.

The paper goes on to argue that increases in qubit count trigger other issues that challenge the capacity and operation of the quantum system. One such potential impact is a decline in qubit fidelity and performance. In developing Horse Ridge, Intel optimised the multiplexing technology that enables the system to scale and reduce errors from crosstalk among qubits.

While developing control systems isnt, evidently, as hype-worthy as the increase in qubit count has been, it is a necessity, says Jim Clarke, director of quantum hardware, Intel Labs. Horse Ridge could take quantum practicality to the finish line much faster than is currently possible. By systematically working to scale to thousands of qubits required for quantum practicality, were continuing to make steady progress toward making commercially viable quantum computing a reality in our future.

Intels own research suggests it will most likely take at least thousands of qubits working reliably together before the first practical problems can be solved via quantum computing. Other estimates suggest it will require at least one million qubits.

Intel is exploring silicon spin qubits, which have the potential to operate at temperatures as high as 1 kelvin. This research paves the way for integrating silicon spin qubit devices and the cryogenic controls of Horse Ridge to create a solution that delivers the qubits and controls in one package.

Quantum computer applications are thought to include drug development high on the worlds list of priorities just now, logistics optimisation (that is, finding the most efficient way from any number of possible travel routes) and natural disaster prediction.

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New Intel chip could accelerate the advent of quantum computing - RedShark News