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I co-authored that book (written in the late 1990s). I don't know when quantum computing will happen - I only follow developments very, very loosely now - but
by michael_nielsen 3y ago
I co-authored that book (written in the late 1990s). I don't know when quantum computing will happen - I only follow developments very, very loosely now - but think you're being much too pessimistic. It is a very (very!) challenging problem, and it's still early days, but there's also been steady and impressive progress for many years.
- stephc_int13 3y agoHow do people know that real-world QC is even possible? I understand enough of nuclear physics and quantum physics to see that fusion is mostly a technical/engineering problem while QC is widely speculative.
- rubidium 3y agoQC is just as solid of theoretical footing at fusion. It is mostly a technical/engineering/materials problem with plenty of room for clever physics to make it easier.
- eigenket 3y agoThe biggest reason I think its possible is that there are a lot of different ways you could build a quantum computer. Different groups are exploring building physical qubit systems out of transmons in superconductors, topological systems, linear optics, trapped ions, quantum dots, NMR driven spins, cavity QED and probably many other setups I don't know about. It would be weird (and scientifically quite interesting) if all of these approaches fail for some reason.
- stephc_int13 3y agoI am willing to bet that a practical/useful Quantum Computer won't happen, ever. Entanglement as a physical phenomenon is simply too fragile, and as the foundation of this whole stuff it is likely not well understood enough. Theory is just literature if it does not match reality. Our theories are only models, they are good enough up to some extent, and then they are wrong.
- eigenket 3y agoYou may well be correct in that bet. I lean that way myself more than most of my colleagues. On the other hand your reasoning is quite wrong, entanglement is both very well understood and fairly robust. Scale and gate fidelity are significant problems in building quantum computers, entanglement isn't really (by this I mean that building good entangling gates is hard, but the entanglement once you've made it is ok). The theory (which is just quantum mechanics) matches the reality better than any other known physical theory ever has. It is certainly not "just literature". Of course it is wrong in some sense, since it doesn't appear to cover gravity, but it is also right in some pretty meaningful sense.