<tt id="6hsgl"><pre id="6hsgl"><pre id="6hsgl"></pre></pre></tt>
          <nav id="6hsgl"><th id="6hsgl"></th></nav>
          国产免费网站看v片元遮挡,一亚洲一区二区中文字幕,波多野结衣一区二区免费视频,天天色综网,久久综合给合久久狠狠狠,男人的天堂av一二三区,午夜福利看片在线观看,亚洲中文字幕在线无码一区二区
          Global EditionASIA 中文雙語Fran?ais
          World
          Home / World / Kaleidoscope

          Breakthroughs bring quantum processing closer

          By Barry He | China Daily Global | Updated: 2023-04-06 09:36
          Share
          Share - WeChat

          Quantum computing could reshape how we solve complex problems and process sums of data previously thought impossible to handle.

          Quantum computers could potentially solve calculations in seconds that might take today's computers thousands of years.

          This is possible through exploiting the unique capabilities of quantum particles (or qubits) to be able to be in two places at once, and communicate mysteriously with each other even if they are millions of miles apart.

          Everything from producing more efficient engines to simulating chemical reactions for developing new medicine, more powerful computing could lead to a plethora of innovation breakthroughs across the scientific disciplines and technology.

          As promising as this sounds, building practical quantum computers has been tricky for engineers. Getting qubits to move between quantum chips fast and accurately has always been a major obstacle.

          In February, researchers from the University of Sussex in the United Kingdom announced a breakthrough, after managing to solve this problem by cleverly using electrical fields. Quantum information was transferred between chips at record speed with an accuracy of over 99 percent.

          By demonstrating that two quantum computing chips can be connected, the way has been opened to scalability, as it means chips can be linked together, like a jigsaw, to create powerful processors.

          Companies including Google and IBM have been attempting to engineer simple quantum computers for decades now, at a slow pace. Transferring information between chips has proven difficult, especially when trying to transfer data from one point to another fast and reliably without inducing errors.

          Simple quantum computations can be performed in laboratory settings, but in the real world such technology will need to operate in imperfect and unpredictable environments.

          Anything, from fluctuations in voltage to stray electromagnetic fields from other devices, could all throw the delicate balance of quantum particles out of balance.

          When dealing in the realm of the subatomic, delicacy is key, and so breakthroughs such as these could soon lead to further understandings in tapping into quantum processing technology.

          Many challenges remain before quantum computing promises to unlock more secrets of reality for scientists.

          Quantum computers need to be kept at an extremely cold temperature of absolute zero to minimize interference, which can cause issues when they enter mainstream research facilities. Keeping conditions stable enough for subatomic particles to work their magic is extremely challenging, and the technology is still very much in its early stages.

          Slow progress is being made, and however primitive their current state is, their future potential is a worthy incentive.

          When the first transistor for traditional modern computing was made in 1947, nobody could predict the impact it would have in the decades to come, with the use of smartphones and laptops just over half a century later.

          The belief that quantum computing will also lead to disruptive technologies in the near future still motivates scientists to keep pushing forward. How long it may take to reach this stage, however, is something nobody is certain about.

          Predicting future technologies is always difficult, and many technologies go through bursts of advancement and stagnation. Progress in battery energy storage, for example, has remained relatively stuck for many years now, which has, in turn, held back many other areas of innovation.

          Our understanding in genetics and gene editing, however, has undergone a renaissance in the last 10 years, with new stem cell treatments for cancer, such as the Car-T therapies now available that would have been impossible even 15 years ago. The hope is that quantum computing will follow the lead of the latter, and offer us new insights into how we can further innovation across scientific disciplines.

          Most Viewed in 24 Hours
          Top
          BACK TO THE TOP
          English
          Copyright 1994 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
          License for publishing multimedia online 0108263

          Registration Number: 130349
          FOLLOW US
          主站蜘蛛池模板: a国产一区二区免费入口| 久久国产精品老人性| 欧美日韩国产va在线观看免费| 久久综合开心激情五月天| 精品在免费线中文字幕久久| 精品人妻av中文字幕乱| 久播影院无码中文字幕| 午夜成人性爽爽免费视频| 麻豆亚洲自偷拍精品日韩另| 国产成人精品高清不卡在线| 成人午夜大片免费看爽爽爽| 免费人成在线观看品爱网| 欧美不卡无线在线一二三区观| 精品无码国产日韩制服丝袜| 久久精品成人免费看| 九九九久久国产精品| 亚洲真人无码永久在线| 国模粉嫩小泬视频在线观看| 尤物国精品午夜福利视频| 四虎永久精品在线视频| 亚洲国产成人综合熟女 | 亚洲精品欧美综合四区| 亚洲大尺度一区二区三区| 国产精品久久国产精麻豆99网站| 一本大道久久a久久综合| 国产麻豆精品手机在线观看| 2020久久国产综合精品swag| 少妇潮喷无码白浆水视频| 亚洲欧美成人久久综合中文网 | 老司机aⅴ在线精品导航| 精品91精品91精品国产片| 亚洲中文字幕国产精品| 国产精品久久无码不卡黑寡妇| 欧美日韩另类国产| 日韩av综合免费在线| 国产91小视频在线观看| 97视频精品全国在线观看| 亚洲成在人线AⅤ中文字幕| 天天拍夜夜添久久精品大| 精品人妻av区乱码| 国产美女遭强高潮网站|