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posted by hubie on Wednesday August 05, @08:47AM   Printer-friendly

Government agency will use Google Cloud H4D VMs to replace HPE Cray machines:

Uncle Sam will no longer be hosting his own supercomputers to predict the weather. The U.S. National Oceanic and Atmospheric Administration has picked Google Cloud to provide the infrastructure for its weather forecasting operations.

In an announcement, NOAA boasted that it will be the first national weather prediction center to run on the commercial cloud, though the UK's Met Office is also in the process of moving its own weather prediction system to Microsoft Azure in a hybrid setup. Weather operations are typically run on in-house or government-funded supercomputer systems, which helps drive the HPC (high performance computing) market.

[...] The plan is to move NOAA's Weather and Climate Operational Supercomputing System, run by the National Weather Service (NWS) division, over to the cloud by December 2027, along with the software that generates NWS weather data for analysis.

The agency is hoping that the cloud will make model forecasting more nimble, resulting in earlier predictions and better warnings for all the extreme weather events that seem to keep occurring these days. It was the in-house systems that were holding things back, evidently. 

"Cloud-based high-performance computing will accelerate the transition of research into operations by eliminating traditional bottlenecks of on-premise systems," said NOAA Administrator Neil Jacobs in a statement

Jacobs noted that the cloud's flexibility for providing large amounts of compute is advantageous: the agency can ramp up cycles during tropical storm season, then wind them down during calmer periods.

[...] For the job, Google plans to use Google Cloud H4D VMs, built on AMD Epyc processors. Google labels these instances as "virtual machines" because they run under a hypervisor that integrates Google's networking and orchestration tools. As a result, they can be synchronized to run large jobs the same way supercomputers do.  

According to Google, customers can access H4Ds for as low as 3 cents per core-hour without long-term commitments. For supercomputing jobs, they can also use Cluster Toolkit to deploy clusters and Cluster Director to maintain them. Google Cloud's Batch can handle the queuing, scheduling, and resource provisioning.


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  • (Score: 5, Insightful) by shrewdsheep on Wednesday August 05, @11:30AM (2 children)

    by shrewdsheep (5215) on Wednesday August 05, @11:30AM (#1450472) Journal

    All of that cloud capacity is getting gobbled up by AI mania. It's only going to get more scarce and more expensive until the bubble bursts. We know that there isn't enough cooling water and electricity to power it all. There's also not enough land (real estate) on which to build it.

    AI and server workflows are still distinct and so is the current capacity. I believe that current weather models are still non-AI.

    The more pressing questions are: What guarantees can the weather service still give? Do they have sufficient documentation and strong enough contracts to guarantee the same level of reliability as they could using own servers? Do they have migration plans to other cloud services in place and can they guarantee transition times/cost? Can they guarantee a migration back to own servers and keep relevant data exfiltrated at all time? Do they have a smaller server still online inhouse, in case of emergency?

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  • (Score: 5, Touché) by JoeMerchant on Wednesday August 05, @11:58AM

    by JoeMerchant (3937) on Wednesday August 05, @11:58AM (#1450479) Journal

    How much satellite coverage did the current administration succeed in shutting down last year?

    --
    🌻🌻🌻🌻✌️ [google.com]
  • (Score: 5, Touché) by Whoever on Wednesday August 05, @03:57PM

    by Whoever (4524) on Wednesday August 05, @03:57PM (#1450513) Journal

    AI and server workflows are still distinct and so is the current capacity.

    Both need RAM.