Mostrando postagens com marcador Supercomputers. Mostrar todas as postagens
Mostrando postagens com marcador Supercomputers. Mostrar todas as postagens

domingo, 13 de setembro de 2015

Supercomputer Yellowstone

 


Over a dozen miles of cable help run key components of Yellowstone supercomputer

Over a dozen miles of cable permit the supercomputer Yellowstone's tens of thousands of processors and other key components to interact with each other. Yellowstone is located at the NCAR (National Center for Atmospheric Research)-Wyoming Supercomputing Center.

The center, which was dedicated in October 2012, will offer researchers the opportunity to develop, access and share complex models and data at incredibly powerful speeds. Yellowstone has the ability to work at 1.5 petaflops--equal to 1.5 quadrillion (a million billion) mathematical operations per second. Its speed is comparable to 7 billion people (the world's population) each simultaneously conducting 200,000 calculations a second.

To learn more about Yellowstone, see the NSF press release National Science Foundation Dedicates Wyoming Supercomputing Center.

Credit: ©UCAR; photo by Carlye Calvin

http://www.nsf.gov/news/mmg/mmg_disp.jsp?med_id=74897

sábado, 8 de novembro de 2014

New research lights the way to super-fast computers

 


New research published today in the journal Nature Communications, has demonstrated how glass can be manipulated to create a material that will allow computers to transfer information using light. This development could significantly increase computer processing speeds and power in the future.

The research by the University of Surrey, in collaboration with the University of Cambridge and the University of Southampton, has found it is possible to change the electronic properties of amorphous chalcogenides, a glass material integral to data technologies such as CDs and DVDs. By using a technique called ion doping, the team of researchers have discovered a material that could use light to bring together different computing functions into one component, leading to all-optical systems.

Computers currently use electrons to transfer information and process applications. On the other hand, data sources such as the internet rely on optical systems; the transfer of information using light. Optical fibres are used to send information around the world at the speed of light, but these signals then have to be converted to electrical signals once they reach a computer, causing a significant slowdown in processing.

"The challenge is to find a single material that can effectively use and control light to carry information around a computer. Much like how the web uses light to deliver information, we want to use light to both deliver and process computer data," said project leader, Dr Richard Curry of the University of Surrey.

"This has eluded researchers for decades, but now we have now shown how a widely used glass can be manipulated to conduct negative electrons, as well as positive charges, creating what are known as 'pn-junction' devices. This should enable the material to act as a light source, a light guide and a light detector -- something that can carry and interpret optical information. In doing so, this could transform the computers of tomorrow, allowing them to effectively process information at much faster speeds."

The researchers expect that the results of this research will be integrated into computers within ten years. In the short term, the glass is already being developed and used in next-generation computer memory technology known as CRAM, which may ultimately be integrated with the advances reported.


Story Source:

The above story is based on materials provided by University of Surrey. Note: Materials may be edited for content and length.


Journal Reference:

  1. Mark A. Hughes, Yanina Fedorenko, Behrad Gholipour, Jin Yao, Tae-Hoon Lee, Russell M. Gwilliam, Kevin P. Homewood, Steven Hinder, Daniel W. Hewak, Stephen R. Elliott, Richard J. Curry. n-type chalcogenides by ion implantation. Nature Communications, 2014; 5: 5346 DOI: 10.1038/ncomms6346

 

quinta-feira, 29 de maio de 2014

Supercomputer Gordon


Gordon, a new kind of supercomputer that uses massive amounts of flash memory to retrive data

Located at the San Diego Supercomputer Center, Gordon is a completely new kind of supercomputer that uses massive amounts of flash memory to retrieve randomly organized data. This new and unique architecture is used by scientists whose research requires the mining, searching and/or creating of large databases for immediate or later use, including mapping genomes for applications in personalized medicine and examining computer automation of stock trading by investment firms on Wall Street.
To learn more about Gordon, see NSF press release 13-051,
NSF-funded superhero supercomputer helps battle autism. (Date of Image: 2012) [See related image Here.]

Credit: University of California, San Diego, publications/Erik Jepsen

See other images like this in NSF's Science360 for iPad app. To download the Science360 for iPad application for free, visit the Apple iTunes store.