IBM Quantum Nighthawk R2(ibm.com) |
IBM Quantum Nighthawk R2(ibm.com) |
P.S. I was involved in semiconductor physics and quantum computing way before it became a buzz word.
With Phoenix IBM has a system with over 100 qubits close to 99.9 2Q Fidelity and though that does not sound like much it’s already enough to run operations that can’t be computed classically. The system is so well built that most of these qubits can perform well without crosstalk errors hindering execution, and with phoenix they solved mid circuit reset which didn’t work well before, blocking experiments for meaningful runtime error correction.
There’s an open scoreboard ibm runs open to all to submit problems demonstrating algorithmic breakthroughs https://quantum-advantage-tracker.github.io/
There are contexts in which that's an unacceptable level of risk.
The purpose is to make it safe to remain an IBM customer.
Here they mix both and don’t get the public. It has always been IBM problem to correctly target the product to the audience.
We see it here again
https://quantum.cloud.ibm.com/computers?system=ibm_phoenix
Does this mean they literally have a single one? (Or at least a single one they offer publicly)
IBM Bob
On:
IBM Quantum Nighthawk R2
?
The real benefit comes from real-world integration - if I'm exploring e.g. a logistics application, it can source real-world data and models very quickly, and suggest quantum appropriate-formulations. Nevertheless, a lot of hand-holding is required.
Also from IBM: "Bob"
https://towardsdatascience.com/where-are-we-with-shors-algor...
If you run it over and over again you will eventually get 3 or 5...
> Joe #11: Then you’ll be waiting a long time, because that’s a stupid metric. (Or rather: anyone willing to use that metric today, is probably someone you shouldn’t trust.) It’s almost exactly analogous to judging the Manhattan Project in 1942, 1943, 1944 by the metric “how big an explosion can you make, today?” I.e., it’s something that’s going to be basically flat for a long time and then undergo a step change, under the assumption that everything is progressing as it should—because you need a critical mass in the one case and to exceed the fault-tolerance threshold in the other.
Although I believe there's a difference with the Manhattan project. The original atom bomb was "useful" even at its small scale. Whereas there's likely to be a lot of time between a quantum computer that can factor 69 and a quantum computer that can factor RSA 2048.
Really what matters about this chip is that it is better suited for error correction. They have a square grid connectivity (previous IBM chips incurred fatal overheads from their heavy hex connectivity), they can actually reset their qubits now (previous IBM chips couldn't scale to long running computations because once leakage arose nothing could remove it except waiting a long time), and they have tunable couplers instead of fixed frequency ones (previous IBM chips were just doomed whenever some problem happened to land on their operating area in frequency space).
Most interesting quantum computations take millions or billions of gates. Factoring classically intractable numbers takes tens of billions of gates. No one is going to do that many quantum gates without error correction. Whenever a quantum computing company says anything other than "it made error correction better" or "it will make error correction better", you can ignore that. It's just some side quest. Maybe it's interesting in and of itself, but it's not what matters for progress.
What are the actual utility according to IBM? Did they say you can order one today on their website? Or even "call us to get the pricing info"? Are there case studies of what their customers use it for? Or only potential uses?
> Although I believe there's a difference with the Manhattan project. The original atom bomb was "useful" even at its small scale.
No it was not useful, otherwise it'd have been paraded and hyped up on the media. The trinity test was in July 1945. Hiroshima happened in August. They were practically used as soon as they were deemed ready. Hundreds of thousands people died.
Therefore it seems weird to use QC as a benchmark. Rather, if your communications being decrypted in the future is unacceptable, then the logical conclusion is that you must not transmit it in such a way that a third party can intercept it.
Admittedly, it is inconvenient or even impractical, so people do accept the risk anyway without admitting it. They are sweeping the issue under the carpet of supposedly QC-proof crypto - because new quantum algorithms can be discovered too.
They can harvest all they want, but if no one ever invents a usable, practical and scalable quantum processor all this will be moot.
Amping everyone up with fears over quantum breaking classical seems like a fantastic way to get another round of vulnerabilities injected into everyone's infrastructure.