Archive for the ‘Quantum Computing’ Category

Global Quantum Computing Market 2020 Industry Insights, Drivers, Top Trends, Global Analysis And Forecast to 2027 – The Courier

A SWOT Analysis ofQuantum Computing, Professional Survey Report Including Top Most Global Players Analysis with CAGR and Stock Market Up and Down.

The global Quantum Computing market research report portrays a deep analysis of the global Quantum Computing market. The market value is calculated by analyzing the revenue (USD Million) and size (k.MT) of the global Quantum Computing market. The report covers the recent technological trends and key industry improvements of the Quantum Computing market. It also demonstrates the analysis of the restraints, new opportunities, and drivers of the global Quantum Computing market. The research report profiles the key players in the Quantum Computing market operating across the globe. The dominating players in the Quantum Computing market are Google, IBM, DWave, Intel, Microsoft, 1QBIT, Anyon Systems, Cambridge Quantum Computing, ID Quantique, IonQ, QbitLogic, QC Ware, Quantum Circuits, Qubitekk, QxBranch, Rigetti Computing.

The report covers a review of recent developments and volume of all market segments. It uses SWOT analysis to estimate the current Quantum Computing market trends. The report includes Porters five forces model to review the competitive landscape of the global Quantum Computing market.

The global Quantum Computing market research report covers the main product types and segments along with the analysis of the future Quantum Computing market trends. It also offers an important data on the existing and potential demands for the global Quantum Computing market. The report presents a demand for individual segment in each region. It demonstrates various segments Hardware, Software, Services and sub-segments Simulation, Optimization, Sampling of the global Quantum Computing market.

Read Detailed Index of full Research Study at:: https://www.syndicatemarketresearch.com/market-analysis/quantum-computing-market.html

The additional geographical segments are also mentioned in the empirical report.

North America:U.S., Canada, Rest of North AmericaEurope:UK, Germany, France, Italy, Spain, Rest of EuropeAsia Pacific:China, Japan, India, Southeast Asia, North Korea, South Korea, Rest of Asia PacificLatin America:Brazil, Argentina, Rest of Latin AmericaMiddle East and Africa:GCC Countries, South Africa, Rest of Middle East & Africa

The Quantum Computing market report is an output of the deep analysis of the global Quantum Computing market. It also covers discussion with numerous key Quantum Computing industry participants making the report rich source of information. The report emphasizes outstanding players in the global Quantum Computing market along with their shares in the market. It also estimates the growth of the key market players during the projected time.

The global Quantum Computing market is classified on the basis of regions such as North America, Latin America, Middle East & Africa, Asia Pacific, and Europe. Most of the data in the global Quantum Computing market research report are represented in the form of pictures, tables, and graphs along with precisely proposed statistics.

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Chapter 1, Definition, Specifications and Classification of Quantum Computing, Applications of Quantum Computing, Market Segment by Regions;Chapter 2, Manufacturing Cost Structure, Raw Material and Suppliers, Manufacturing Process, Industry Chain Structure;Chapter 3, Technical Data and Manufacturing Plants Analysis of Quantum Computing, Capacity and Commercial Production Date, Manufacturing Plants Distribution, R&D Status and Technology Source, Raw Materials Sources Analysis;Chapter 4, Overall Market Analysis, Capacity Analysis (Company Segment), Sales Analysis (Company Segment), Sales Price Analysis (Company Segment);Chapter 5 and 6, Regional Market Analysis that includes United States, China, Europe, Japan, Korea & Taiwan, Quantum Computing Segment Market Analysis (by Type);Chapter 7 and 8, The Quantum Computing Segment Market Analysis (by Application) Major Manufacturers Analysis of Quantum Computing ;Chapter 9, Market Trend Analysis, Regional Market Trend, Market Trend by Product Type Hardware, Software, Services, Market Trend by Application Simulation, Optimization, Sampling;Chapter 10, Regional Marketing Type Analysis, International Trade Type Analysis, Supply Chain Analysis;Chapter 11, The Consumers Analysis of Global Quantum Computing ;Chapter 12, Quantum Computing Research Findings and Conclusion, Appendix, methodology and data source;Chapter 13, 14 and 15, Quantum Computing sales channel, distributors, traders, dealers, Research Findings and Conclusion, appendix and data source.

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Global Quantum Computing Market 2020 Industry Insights, Drivers, Top Trends, Global Analysis And Forecast to 2027 - The Courier

Instacart Acquires Over 250 Patents From IBM – PRNewswire

ARMONK, N.Y. and SAN FRANCISCO, Feb. 9, 2021 /PRNewswire/ -- IBM (NYSE: IBM) and Instacart, the leading online grocery platform in North America, announced today that Instacart has acquired over 250 patents from IBM. In addition, IBM and Instacart entered into a mutual patent cross license. The agreement allows Instacart to continue to strengthen its own patent portfolio, and the license gives Instacart freedom of action to use IBM patents in the future growth of its business. Financial terms were not disclosed.

"IBM has had a long standing commitment to innovation and the sharing of our patented inventions within the industry, especially high-growth technology companies like Instacart that are establishing innovative solutions for critically needed food delivery during these challenging times. We look forward to a long term innovation partnership with Instacart," said William LaFontaine, General Manager of Intellectual Property for IBM.

"We're pleased to have an innovation partnership with IBM. This acquisition of patents from IBM and licensing agreement provides us with stronger intellectual property protection and gives us even more freedom to innovate for all the customers, shoppers and retailers who rely on our platform," said Edison Lin, Intellectual Property Counsel at Instacart.

About IBMIBM is the world's leading hybrid cloud platform and Artificial Intelligence company.The company invests more than $6 billion annually in research and development, and relies on its patents to protect that investment.Since 1920, IBM has received more than 150,000 U.S. patents and played a crucial role in innovations ranging from magnetic storage to laser eye surgery. IBMrecentlyannounced it has topped the U.S. Patent List for the 28th consecutive year, receiving 9,130 patents in 2020. Of note, last year IBM led the industry in the number of AI, cloud, quantum computing, and security related patents granted to IBM scientists and researchers.IBM's culture of scientific research encourages IBMers to develop new technologies within and beyond their regular field of work. We actively maintain a patent portfolio that has commercial relevance to IBM and to other companies seeking to obtain significant advantage from owning IBM intellectual property.Learn more atwww.ibm.com.Contact: Doug Shelton (914)255-8115 or [emailprotected]

About InstacartInstacart is the leading online grocery platform in North America. Instacart shoppers offer same-day delivery and pickup services to bring fresh groceries and everyday essentials to busy people and families across the U.S. and Canada. Instacart has partnered with nearly 600 beloved national, regional and local retailers, including unique brand names, to deliver from more than 45,000 stores across more than 5,500 cities in North America. Instacart's delivery service is available to 85% of U.S. households and 70% of Canadian households. The company's cutting-edge enterprise technology also powers the ecommerce platforms of some of the world's biggest retail players, supporting their white-label websites, applications and delivery solutions. Instacart offers an Instacart Express membership that includes reduced service fees and unlimited free delivery on orders over $35. For more information, visit http://www.instacart.com. For anyone interested in becoming an Instacart shopper, visit https://shoppers.instacart.com/. Contact: [emailprotected]

SOURCE IBM

http://www.ibm.com/

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Instacart Acquires Over 250 Patents From IBM - PRNewswire

Quantum Computing 101 -What it is, how is it different and why it matters – The Jerusalem Post

In our everyday classical computers, 0s and 1s are associated with switches and electronic circuits turning on and off as part of the computer using a binary number system to calculate possibilities and perform operations. For example, when a computer mouse moves, a sensor tells the computer that an electrical signal has been converted into a binary value or number. Further, this number represents a location that is then represented on the computer screen all of which is embodied by the byte that is the building block of current computers. The sensor message to the computer is also saved to memory. Some calculations have too many possibilities for even a traditional computer to calculate like simulating the weather or calculating scrambled combinations of prime numbers.Quantum is the state of things being unknown at the subatomic level until they can be observed and moves from the byte to the qubit. In a quantum computer, it is said that the values assigned to 0 and 1 can occur at the same time. The reason this impossibility is possible is because of quantums subatomic level where protons and electrons are acting in a wild way beyond the rules of nature as we tend to think of them. Picture The Avengers superhero Antman shrinking into the quantum zone where time did not even move in a linear fashion.In computer terms, once the values of 0 and 1 can happen at the same time, it allows the quantum computer to consider trillions of possibilities or more in the same instant, dwarfing the number of calculations that our traditional computers, stuck in binary counting, can do.This process is called superposition. Superposition ends once a specialized particle, or qubit, slows/is observable, thereby emerging from its quantum state. We stick the qubit in an artificial space vacuum so that it does not get observed or interfered with and remains dynamic. Pictures of quantum computers often show tubes the size of a household refrigerator. But most of the tubing is not the central computer processor as much as the process used to maintain the qubits at the absolute zero quantum state.Since around 1977, RSA has been among the most widely used systems for secure data transmission underlying the Internet, serving as the backbone of the NYSE, most large institutions and most individual online users. What is stopping an average person from hacking anyones elses website is that RSA is easy to build, and being based on two pseudo-random prime numbers, hard to burst for traditional computers limited binary system calculation capacity.

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Quantum Computing 101 -What it is, how is it different and why it matters - The Jerusalem Post

University of Glasgow Partners with Oxford Instruments NanoScience on Quantum Computing – insideHPC

Jan. 21, 2021 Today, the University of Glasgow, active in quantum technology development and home of the Quantum Circuits Group, announced its using Oxford Instruments next generation Cryofree refrigerator, Proteox, as part of its research to accelerate the commercialisation of quantum computing in the UK.

Were excited to be using Proteox, the latest in cryogen-free refrigeration technology, and to have the system up and running in our lab, comments Professor Martin Weides, Head of the Quantum Circuits Group. Oxford Instruments is a long-term strategic partner and todays announcement highlights the importance of our close collaboration to the future of quantum computing development. Proteox is designed with quantum scale-up in mind, and through the use of its Secondary Insert technology, were able to easily characterise and develop integrated chips and components for quantum computing applications.

The University of Glasgow, its subsidiary and commercialisation partner, Kelvin Nanotechnology, and Oxford Instruments NanoScience are part of a larger consortium supported by funding from Innovate UK, the UKs innovation agency, granted in April 2020. The consortium partners will boost quantum technology development by the design, manufacture, and test of superconducting quantum devices.

Todays announcement demonstrates the major contribution Oxford Instruments is making towards pioneering quantum technology work in the UK, states Stuart Woods, Managing Director of Oxford Instruments NanoScience. With our 60 years of experience of in-house component production and global service support, we are accelerating the commercialisation of quantum to discover whats next supporting our customers across the world.

Proteox is a next-generation Cryofree system that provides a step change in modularity and adaptability for ultra-low temperature experiments in condensed-matter physics and quantum computing industrialisation. The Proteox platform has been developed to provide a single, interchangeable modular solution that can support multiple users and a variety of set-ups or experiments. It also includes remote management software which is integral to the system design, enabling, for example, the system to be managed from anywhere in the world.

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University of Glasgow Partners with Oxford Instruments NanoScience on Quantum Computing - insideHPC

SBU’s Qiang Li Collaborated on Discovery That Can Advance Quantum Computing | | SBU News – Stony Brook News

Qiang Li,SUNY Empire Innovation Professor in the Department of Physics and Astronomy and Stony Brook University, is co-author of a paper withJigang Wang,a senior scientist at the U.S. Department of Energys Ames Laboratory and a professor of physics and astronomy at Iowa State University, that is published in Nature Materials about the discovery of a new light-induced switch that twists the crystal lattice of a Weyl semimetal, switching on a giant electron current that appears to be nearly dissipationless. The discovery and control of such properties brings these materials another step closer to use in applications such as quantum computing.

Li, who also holds a joint appointment at Brookhaven National Laboratory as leader of the Advanced Energy Materials Group, collaborated on the project with scientists at the U.S. Department of Energys Ames Laboratory, Brookhaven Laboratory and the University of Alabama at Birmingham. Pedro Lozano, Lis PhD student, is also involved in the research.

Weyl and Dirac semimetals can host exotic, nearly dissipationless, electron conduction properties that take advantage of the unique state in the crystal lattice and electronic structure of the material that protects the electrons from doing so. These anomalous electron transport channels, protected by symmetry and topology, dont normally occur in conventional metals such as copper. After decades of being described only in the context of theoretical physics, there is growing interest in fabricating, exploring, refining and controlling their topologically protected electronic properties for device applications. For example, wide-scale adoption of quantum computing requires building devices in which fragile quantum states are protected from impurities and noisy environments. One approach to achieve this is through the development of topological quantum computation, in which qubits (quantum bits) are based on symmetry-protected dissipationless electric currents that are immune to noise.

What weve lacked until now is a low energy and fast switch to induce and control symmetry of these materials, said Li. Our discovery of a light symmetry switch opens a fascinating opportunity to carry dissipationless electron current, a topologically protected state that doesnt weaken or slow down when it bumps into imperfections and impurities in the material.

Light-induced lattice twisting, or a phononic switch, can control the crystal inversion symmetry and photogenerate giant electric current with very small resistance, said Wang. This new control principle does not require static electric or magnetic fields and has much faster speeds and lower energy cost.

In this experiment, the team altered the symmetry of the electronic structure of the material using laser pulses to twist the lattice arrangement of the crystal. This light switch enables Weyl points in the material, causing electrons to behave as massless particles that can carry the protected, low dissipation current that is sought after.

Qiang Lis research was supported by the U.S. Department of Energy, Office of Basic Energy Science.

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SBU's Qiang Li Collaborated on Discovery That Can Advance Quantum Computing | | SBU News - Stony Brook News