https://en.wikipedia.org/w/index.php?title=PC-based_IBM_main...
If you haven't already.
Now you’re thinking like a Big Blue sales rep.
(or QEMU, for partition level emulation).
There was a time when IBM dominated console CPUs for a massively successful generation (PS3, Xbox 360, Nintendo Wii).
IBM mainframes are almost designed by their users. The previous generation skipped a lot of speed boost on the CPU side because their users didn’t want the machine to blow over their power delivery limits.
Now, with their architecture behind it, I’m sure these ARM Linux partitions will have the fastest ARM cores ever made. My experience with Linux on s390x is that it feels like a normal server that’s just ludicrously fast - almost as if it came from the future.
Their hardware advances are real, Power chips are still excellent and IBM's mainframes are pretty unique, but the niche for both of those seems less relevant over time and some of this stuff looks to me like hype-work to keep the name relevant while the leadership place ever more emphasis on enterprise services and consultancy.
Maybe I'm wrong, but they aren't a company that get mentioned in the same breath as Microsoft, Google, Nvidia or Apple, not any more.
IBM stopped building servers based on x86 because the margins were too thin for their tastes, but they never stopped building on top of POWER and Z.
So they are just selling to the existing pool of users for which the price just has to come in under the cost/risk of rewriting all their ancient stuff.
For starters, IBM did also do the CPU for the GameCube, and that was likely a part of the Wii using an upgraded PPC arch for that.
On the flipside, there is the theory (I think even Copetti brings it up in their XBox 360 Architecture breakdown [0]) that IBM using the Cell PPE for the 360's tri-cores left a sour taste in Toshiba, but more-so Sony's mouths.
I think the big 'X factor' though, was that, for as much pain as it caused AMD in the short term, (it's so easy to forget their 'malaise' era, i.e. Early Bulldozer and the GloFo split pains to their margins[1]), AMD made all the 'right' choices to let the console vendors have their cake and eat it too.
Namely, AMD was more than happy to do a custom core if there was a volume contract (similar to what IBM was willing to for the 360/GC/Wii) but also now had a capable, in-house GPU. (And thankfully had Bobcat as a stepping point towards Jaguar[2])
There's part of me that asks, if AMD had an ARM core, if we would have all Consoles powered by AMD chips now. Nintendo likely bought into Tegra because it was an ARM core, and for better or worse their mobile stuff by the time of making that choice had 15+ years of proven ARM success (GBA, DS, 3DS) behind it.
(See also, Intel in the 2010s scrambling with half-assed promises of integrating custom functionality or FPGAs with x86 cores.)
[0] - https://www.copetti.org/writings/consoles/xbox-360/
[1] - From what I recollect, the GloFo split and how the contracts were drawn up as far as their production, had a huge impact on their ability to produce due to yields and thermals, as well as the contracts for how GloFo got paid; it was at least part of them diversifying with TSMC as soon as they reasonably could.
[2] - As a Rant, I am pretty sure, if Jaguar had Desktop/Mobile versions that included a Dual channel DDR controller, they would have cleaned up on the low cost laptop market. I had one with, I think it was an A5000 or A5200, and for how tiny the battery was it could last wayyyy longer than any of the intel laptops I had for the time, but churned if you were doing memory heavy stuff.
IBM has never stopped innovating. It’s just that most people can’t afford their machines.
PS3 used the Cell processor but it’s debatable how much that was an asset vs handicap. Total PlayStation sales dropped for that generation vs both PS2 and PS4. The manufacturing costs didn’t fall nearly as fast as expected and it was a poor fit in terms of cross platform development etc.
PS4 moved to AMD.
They also don’t mix instructions sets within the same process - the diagram I saw had ARM Linux as a guest under z/VM or KVM. For generations now no OS (not VM, not z/OS) hasn’t seen the bare metal machine, only ran under the PR/SM hypervisor, which is what does the logical partitions now.
In order to properly run OSs for the 360 and 370 generations, s390x also has instructions for setting up CPU flags to more precisely emulate older machines. From an s390x binary you can, IIRC, do a jump to an address telling it that, from the jump forward the ISA is the one of a 360 until it encounters a return, which restores 390 mode.
I suspect that almost zero companies adopted mainframes after 1980 or so, so it's ALL legacy market. However, IBM always invests a lot of money in hardware to keep the mainframe perceptually leading edge and "sexy", so they can hold-on to those customers. So you gotta give them credit for that.
(IBM and Microsoft were always 'in the same breath' for years, Microsoft totally out-smarted them, and IBM gave up on that.)
Transmeta was a classic failure--right idea, wrong place & time.
It's more than a theory. It's pretty much spelled out explicitly in The Race For A New Game Machine how salty not just Sony and Toshiba were in the broad sense, but also the Sony and Toshiba engineers that the IBM team worked with felt pretty betrayed.
No. It was a PowerPC based one called, IIRC, Xenon.
That being said I think it's a natural consequence of the difference between a mainframe and commodity servers. A mainframe is going to be running pretty disparate workloads simultaneously, so it makes sense to steal from your neighbor if they aren't using their cache. Whereas it's more likely that a commodity server is just running the same server on each core, and if you have a different workload, you pick a different shape of server to run it on. There are pros and cons to both.
I do wonder about the spectre consequences of borrowing cache lines from other cores though.
Intel and AMD were more or less 'Jitting' since the PPro and K5, and that's ignoring NexGen's Nx586 (which was shipping in hardware about a year before the PPro).
All of them are way before Transmeta shipped a CPU. Where Transmeta tried to innovate was by using VLIW rather than a RISC-like core, along with their other special tech (Which they later licensed to lots of companies, including Intel,) to provide reasonable mobile performance with a low power draw. Oh, there's also the bit where Transmeta CMS is much more software based (likely, partially to push enough to software and avoid an x86 CPU license lawsuit) but even modern Intel chips AFAIK are still doing more translation on the CPU layer.
Xeon vs Xenon
I had always assumed with chip names that similar it was an Intel product. How on earth didn’t they get sued?
Hell Nvidia was so desperate they did the whole Shield thing...
Intel by the way did the same for SGX, they called it xucode.
Revolutionary design will bring Arm-native applications to IBM's flagship mainframes and servers, broadening software choice for enterprise computing
Aug 24, 2026

ARMONK, N.Y., Aug. 24, 2026 – At the annual Hot Chips conference, IBM (NYSE: IBM) today is announcing the first dual-architecture mainframe processor, which is being designed to enable enterprises to run operating systems and applications on both the IBM and Arm® compute platforms in future IBM Z and LinuxONE systems. This marks the first processor milestone to emerge from the IBM and Arm collaboration established in April 2026, and represents a significant advance in enterprise computing. The new processor is being developed to allow organizations to run Arm-native Linux environments simultaneously with z/OS and Linux on IBM Z, while benefiting from IBM’s established security, reliability, and scale.
With more than 22 million developers worldwide, the Arm software ecosystem supports a broad and growing range of applications from cloud to edge, including the cloud-native and AI software increasingly shaping modern infrastructure. This new processor will bring that ecosystem to the IBM platforms known globally for transaction processing and data-intensive operations. Arm workloads will benefit from IBM’s enterprise-grade capabilities, including enhanced reliability, hardware-level fault detection and recovery, advanced encryption, secure key management, and AI acceleration.
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Built on a 2 nanometer technology node, the processor’s design will contain 11 high-performance cores operating at more than 5.7 GHz, AI inference accelerators for in-transaction fraud detection, a dedicated on-chip data processing unit for I/O acceleration, and a large cache architecture for demanding enterprise workloads. The chip is architected to not contain separate Arm and IBM cores: each processor core can natively execute Arm and IBM Z, or Arm and LinuxONE, instructions concurrently while prioritizing the platform's established performance, security, encryption, and availability characteristics. IBM Z and LinuxONE platforms are capable of scaling to hundreds of cores and tens of terabytes of memory.
“As organizations modernize their application portfolios and integrate AI into core business operations, they need infrastructure that expands their options,” said Christian Jacobi, Chief Technology Officer and IBM Fellow, IBM Systems Development. “This processor represents a significant architectural advancement for IBM Z and LinuxONE. By bringing Arm natively to our platform, we're combining access to one of the industry's fastest-growing software ecosystems with the qualities that have made IBM systems the foundation for how businesses run today.”
“As AI scales, more of the computing landscape is converging on Arm,” said Mohamed Awad, Executive Vice President, Cloud AI, Arm. “IBM Z and LinuxONE power some of the world’s most demanding workloads in highly regulated industries. Bringing Arm compute and its software ecosystem to these platforms will extend that momentum into mission-critical enterprise infrastructure to give organizations greater choice in how they deploy AI.”
This milestone represents a major step forward in IBM and Arm’s shared vision of expanding application choice and access to the latest in software innovation for enterprise computing without compromising the capabilities these environments demand.
Statements regarding IBM's future direction and intent are subject to change or withdrawal without notice, and represent goals and objectives only.
Additional Sources
About IBM
IBM is a leading provider of global hybrid cloud and AI, and consulting expertise. We help clients in more than 175 countries capitalize on insights from their data, streamline business processes, reduce costs and gain the competitive edge in their industries. Thousands of governments and corporate entities in critical infrastructure areas such as financial services, telecommunications and healthcare rely on IBM's hybrid cloud platform and Red Hat OpenShift to affect their digital transformations quickly, efficiently and securely. IBM's breakthrough innovations in AI, quantum computing, industry-specific cloud solutions and consulting deliver open and flexible options to our clients. All of this is backed by IBM's long-standing commitment to trust, transparency, responsibility, inclusivity and service. Visit www.ibm.com for more information.
Media contact:
Bethany Hill McCarthy
bethany@ibm.com
IBM
https://chipsandcheese.com/p/telum-ii-at-hot-chips-2024-main...
The combined might of IBM and Microsoft's legal teams, even (possibly even moreso?) then, was better than Intel's to be sure.