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by kawa
780 days ago
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> Sure, but there's absolutely nothing to suggest that it will be some kind of deterministic computation underneath The universe behaves very deterministically if we look at "clumps of matter". Why is it this way when this determinism isn't already part of the "base"? For me that's at least a "suggestion". Not a proof of course, but still a hint. > ... because of general relativity. General relativity doesn't fits together with QM, so either one is (or both are) "wrong" (in the sense that they only approximate reality to a certain degree). I'm even sceptical about special relativity: It's a good model and works well in most occasions, but it may still be wrong on a fundamental level. Most of the assumptions under which Einstein proposed SR (no QM, static universe) don't hold anymore. |
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Just because a system is randomized doesn't mean it's not predictable: when measured in certain ways, it will statistically tend to clump around certain states. Suppose that every second, I flip a magic random coin and walk either 2 feet forward or 1 foot backward. Then after a million seconds, you'll quite probably find me about half a million feet from where I started. Small-scale random processes can easily create something predictable on the large scale.
Still, I wouldn't characterize "clumps of matter" as being deterministic even in our everyday lives. There are many chaotic systems in this world, e.g., the weather, which can amplify randomness on the molecular level into a completely different state. Even the orbit of the Earth becomes unpredictable after several million years.
> I'm even sceptical about special relativity: It's a good model and works well in most occasions, but it may still be wrong on a fundamental level. Most of the assumptions under which Einstein proposed SR (no QM, static universe) don't hold anymore.
Special relativity is already 'wrong' in that it doesn't predict any of our observations of general relativity. But it unavoidably has plenty of truth in it, in that it is very succesful at predicting an identical speed of light for all observers, and the effects (e.g., time dilation) that that implies. Any superseding theory has to explain the same observations, at which point special relativity will continue to act as a useful model for the large-scale effects.