May 11, 2012
ROCHESTER, NY, May 11 -- The University of Rochester will be one of the first academic institutions in the nation to receive the next generation of IBM’s high performance supercomputers. The new system – called the Blue Gene/Q – is one of most powerful and efficient computer systems in the world and will be part of a new center at the University of Rochester dedicated to health research.
“This is an important step toward the creation of a resource that will make Rochester an international center for biomedical research and a magnet for research funding, scientific minds, industry and academic collaboration, and private sector job growth,” said Joel Seligman, president of the University of Rochester. “We are proud to partner with IBM to showcase this exciting new technology and are deeply grateful to Governor Cuomo, Lt. Governor Duffy, our local delegation, and the legislative leadership in Albany for their support for this initiative.”
“The collaboration between state government, academia, and the private sector in Rochester shows the remarkable progress that can be accomplished through the innovative partnerships we are developing,” said Lieutenant Governor Robert J. Duffy. “This partnership will create much-needed jobs and generate hundreds of millions of dollars in economic activity for the region. I commend Governor Cuomo for having the vision to establish the Regional Council initiative, and University of Rochester President Joel Seligman and IBM for providing a model for private-public partnerships in the 21st Century.”
In 2008, the University of Rochester created the Health Sciences Center for Computational Innovation (HSCCI) in partnership with IBM. The same year, IBM gifted a previous generation of its Blue Gene supercomputer system – the Blue Gene/P – to the University. Since that time, more than 500 scientists at the University of Rochester have used high performance computing in the course of their research and the Center has helped attract $84 million in new funding, including a contract worth up to $50 million from the National Institutes of Health to create the Respiratory Pathogens Research Centerand a $12 million grant to create a Center for Biodefense Immune Modeling.
It is anticipated that, over time, the partnership with IBM will continue to grow and ultimately produce the most advanced computer network dedicated to health research in the nation. Last year, HSCCI was identified as a priority project by the Finger Lakes Regional Economic Development Council and received $5 million from New York State towards the $100 million project.
“The big healthcare challenges of the 21st century – unlocking the potential of the human genome, creating a more efficient and cost effective health care system, and preventing and treating disease on a global scale – will require the combination of cutting edge science and high performance computing,” said Ralph Kuncl, Ph.D., M.D., provost of the University of Rochester. “Over the last four years, our nascent partnership with IBM has already demonstrated the necessity and transformative potential of this initiative.”
Access to computer systems that have the ability to analyze vast quantities of data – a challenge commonly referred to as “big data” – is widely viewed as one of the keys to advancing medical knowledge and innovation. Decades of breakthroughs in the fields of genomics, proteomics, and molecular biology, new technologies such as advanced health imaging systems and real-time sensors, and the accumulation of highly detailed demographic information simultaneously represent an opportunity and a barrier to research. This wealth of information holds the potential to give scientists heretofore unprecedented insight into human health. However, in many instances efforts to interpret this data have been frustrated by the absence of computing resources or software tools powerful enough to fully analyze the mountains of data generated by these new technologies and disciplines.
Supercomputing holds the potential to open new doors of inquiry by allowing scientists to sift through and analyze huge volumes of data and create complex models and simulations that would previously not have been possible. IBM’s Blue Gene/Q represents the pinnacle of high performance computing and is 14 times more powerful than its predecessor. A single Blue Gene/Q has a peak performance of 209 teraflops – meaning it can make 209 trillion calculations per second. At the same time, it is expected to be the world’s most energy-efficient computer.
The potential applications of the Blue Gene’s unique computational capabilities are vast. Examples of specific health research underway at the University of Rochester that employ high performance computing include efforts to develop complex models of the human immune system to help scientists predict virus mutation, anticipate pandemic outbreaks, and design more effective vaccines. University of Rochester scientists are using this capability to develop and evaluate experimental therapies for HIV, new influenza vaccines, and the next generation of antibiotics. In another project, IBM and University scientists are collaborating to create a computer-generated simulation of the heart in an effort to better understand which drugs may cause lethal disruptions of the heart’s electrical activity.
“High performance computing holds the potential to revolutionize the way we study, monitor, and treat diseases,” said David Topham, Ph.D., a University of Rochester Medical Center microbiologist and director of the HSCCI. “In many respects, our ability to generate data has exceeded our ability to interpret and, ultimately, manipulate that information and apply it to real world problems. This partnership with IBM will enable scientists to develop a fuller and more complex understanding of human health from the molecular level all the way to entire populations.”
“The confluence of new technologies, fields of knowledge, and demographic trends will reshape the delivery of health care on a national level,” said Bradford C. Berk, M.D., Ph.D., CEO of the University of Rochester Medical Center. “For institutions and regions that invest in and stay on the cutting edge of biomedical innovation, this transformation represents an opportunity for significant economic growth.”
The Center for Governmental Research estimates that the HSCCI will create as many as 880 jobs at the University and in the community and generate $205 million in new research funding over the next ten years. These jobs will be created through a combination of new faculty and staff hired to operate the Center, growth in research funding, and by expanding existing and forming new industry and academic partnerships with companies that require access to the HSCCI’s unique computational abilities.
It is anticipated that the Blue Gene/Q will be delivered to the University of Rochester in late June, making it one of the first academic institution in the nation to receive IBM’s next generation supercomputer. The supercomputer will be housed at the University’s state-of-the-art data center, which is in the process of undergoing $1.6 million in upgrades to prepare it for the new system.
“For today's leading research universities, an advanced computing capability has become a key differentiator for accelerating faculty research,” said David Lewis, vice president for Information Technology at the University of Rochester. “This first phase of our three-way partnership with IBM and New York State, focused on accelerating health sciences research, has the potential to create breakthroughs that will enhance the health of generations to come.”
-----
Source: University of Rochester
The Xeon Phi coprocessor might be the new kid on the high performance block, but out of all first-rate kickers of the Intel tires, the Texas Advanced Computing Center (TACC) got the first real jab with its new top ten Stampede system.We talk with the center's Karl Schultz about the challenges of programming for Phi--but more specifically, the optimization...
Read more...
Although Horst Simon was named Deputy Director of Lawrence Berkeley National Laboratory, he maintains his strong ties to the scientific computing community as an editor of the TOP500 list and as an invited speaker at conferences.
Read more...
Supercomputing veteran, Bo Ewald, has been neck-deep in bleeding edge system development since his twelve-year stint at Cray Research back in the mid-1980s, which was followed by his tenure at large organizations like SGI and startups, including Scale Eight Corporation and Linux Networx. He has put his weight behind quantum company....
Read more...
May 16, 2013 |
When it comes to cloud, long distances mean unacceptably high latencies. Researchers from the University of Bonn in Germany examined those latency issues of doing CFD modeling in the cloud by utilizing a common CFD and its utilization in HPC instance types including both CPU and GPU cores of Amazon EC2.
Read more...
May 15, 2013 |
Supercomputers at the Department of Energy’s National Energy Research Scientific Computing Center (NERSC) have worked on important computational problems such as collapse of the atomic state, the optimization of chemical catalysts, and now modeling popping bubbles.
Read more...
May 10, 2013 |
Program provides cash awards up to $10,000 for the best open-source end-user applications deployed on 100G network.
Read more...
May 09, 2013 |
The Japanese government has revealed its plans to best its previous K Computer efforts with what they hope will be the first exascale system...
Read more...
May 08, 2013 |
For engineers looking to leverage high-performance computing, the accessibility of a cloud-based approach is a powerful draw, but there are costs that may not be readily apparent.
Read more...
05/10/2013 | Cleversafe, Cray, DDN, NetApp, & Panasas | From Wall Street to Hollywood, drug discovery to homeland security, companies and organizations of all sizes and stripes are coming face to face with the challenges – and opportunities – afforded by Big Data. Before anyone can utilize these extraordinary data repositories, however, they must first harness and manage their data stores, and do so utilizing technologies that underscore affordability, security, and scalability.
04/15/2013 | Bull | “50% of HPC users say their largest jobs scale to 120 cores or less.” How about yours? Are your codes ready to take advantage of today’s and tomorrow’s ultra-parallel HPC systems? Download this White Paper by Analysts Intersect360 Research to see what Bull and Intel’s Center for Excellence in Parallel Programming can do for your codes.
In this demonstration of SGI DMF ZeroWatt disk solution, Dr. Eng Lim Goh, SGI CTO, discusses a function of SGI DMF software to reduce costs and power consumption in an exascale (Big Data) storage datacenter.
The Cray CS300-AC cluster supercomputer offers energy efficient, air-cooled design based on modular, industry-standard platforms featuring the latest processor and network technologies and a wide range of datacenter cooling requirements.