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Idunno said:I see, due to your position certainty going up, because with a nicely aimed collimated beam your position information is good enough and the wave packet small enough, you can't go through both slits at once.
Exactly.
Idunno said:I see, due to your position certainty going up, because with a nicely aimed collimated beam your position information is good enough and the wave packet small enough, you can't go through both slits at once.
Idunno said:But, if you get your beam of particles nice and confined and aimed really well and lined up with some very well cut slits, you can increase the percent getting through, right? But you never get 100%. Would it be 100% with a perfect beam and perfect slits?
I was referring to the question byIdunno said:I think the OP wanted to know "why does collapse happen?"
Mr Wolf said:What about when you make the double slit experiment shooting one photon or one electron at the time? Why do the photon or the electron pass through the slits and form an interference pattern, instead of being absorbed by the screen in which the slits are created?
Great question and that's exactly my point.Mr Wolf said:What about when you make the double slit experiment shooting one photon or one electron at the time? Why do the photon or the electron pass through the slits and form an interference pattern, instead of being absorbed by the screen in which the slits are created?
One can even set up quite ridiculous cases. A cat is penned up in a steel chamber, along with the following device (which must be secured against direct interference by the cat): in a Geiger counter, there is a tiny bit of radioactive substance, so small, that perhaps in the course of the hour one of the atoms decays, but also, with equal probability, perhaps none; if it happens, the counter tube discharges and through a relay releases a hammer that shatters a small flask of hydrocyanic acid. If one has left this entire system to itself for an hour, one would say that the cat still lives if meanwhile no atom has decayed. The first atomic decay would have poisoned it. The psi-function of the entire system would express this by having in it the living and dead cat (pardon the expression) mixed or smeared out in equal parts.
It is typical of these cases that an indeterminacy originally restricted to the atomic domain becomes transformed into macroscopic indeterminacy, which can then be resolved by direct observation. That prevents us from so naively accepting as valid a "blurred model" for representing reality. In itself, it would not embody anything unclear or contradictory. There is a difference between a shaky or out-of-focus photograph and a snapshot of clouds and fog banks.
You are the only contemporary physicist, besides Laue, who sees that one cannot get around the assumption of reality, if only one is honest. Most of them simply do not see what sort of risky game they are playing with reality—reality as something independent of what is experimentally established. Their interpretation is, however, refuted most elegantly by your system of radioactive atom + amplifier + charge of gun powder + cat in a box, in which the psi-function of the system contains both the cat alive and blown to bits. Nobody really doubts that the presence or absence of the cat is something independent of the act of observation.
platosuniverse said:This is because there would need to be some hidden variable that tells the cat what state and what universe it should be in before decay occurs or it doesn't occur.
platosuniverse said:Why doesn't the screen/plate or detector plate cause collapse or the appearance of collapse to occur?
platosuniverse said:People say Schrödinger's cat can't be in superposition because it's a classical object but the cat wouldn't need to be. It's in a mixed state until a measurement occurs.
platosuniverse said:I think all classical objects have to be in a mixed state until a measurement occurs.
platosuniverse said:Maybe I'm missing something though and the cat can decohere to a dead cat in a universe before decay/no decay has occurred.
The plate, which now is black, is measuring, all the time, and the psi-function is executing some super-luminal contortions because of that, when the psi-function meets the plate.platosuniverse said:This is why I asked about the plate in the double slit experiment. Why doesn't the screen/plate or detector plate cause collapse or the appearance of collapse to occur? People say Schrödinger's cat can't be in superposition because it's a classical object but the cat wouldn't need to be. It's in a mixed state until a measurement occurs.
PeterDonis said:Not in the MWI. In the MWI, both outcomes occur, each one appropriately correlated with all other observables.
platosuniverse said:this correlation can't occur until a measurement has occurred
platosuniverse said:Unless there's some magical hidden variable that knows when an atom will decay/not decay before decay even happens, then the cat has to be in a mixed state of live/dead cat.
platosuniverse said:This is because the state of the cat is also entangled with it's environment.
PeterDonis said:In Schrödinger's original formulation, this is only the case after the box is opened. Until the box is opened, the cat, like the poison vial and the radioactive substance inside the box, is treated as an isolated quantum system, not entangled with anything else. If you are saying that's impossible, you are saying, as I said before, that QM is necessarily incomplete: it can only describe "quantum" systems, not "macroscopic" or "classical" systems. As I said, this is one interpretation of QM, but not the only one, and you can't state it as fact, only as one interpretation.
Schrödinger's famous thought experiment poses the question, "when does a quantum system stop existing as a superposition of states and become one or the other?" (More technically, when does the actual quantum state stop being a linear combination of states, each of which resembles different classical states, and instead begin to have a unique classical description?) If the cat survives, it remembers only being alive. But explanations of the EPR experiments that are consistent with standard microscopic quantum mechanics require that macroscopic objects, such as cats and notebooks, do not always have unique classical descriptions. The thought experiment illustrates this apparent paradox. Our intuition says that no observer can be in a mixture of states—yet the cat, it seems from the thought experiment, can be such a mixture. Is the cat required to be an observer, or does its existence in a single well-defined classical state require another external observer? Each alternative seemed absurd to Einstein, who was impressed by the ability of the thought experiment to highlight these issues. In a letter to Schrödinger dated 1950, he wrote:
The whole point of Schrödinger was to illustrate that QM is not about a cat, but about a description/a model of the cat. That description live in a probability space made of zillionth of dimension made of complex scalars. There is never a real-cat being in a mixture of state, even less so in WMI (and that's why this interpretation is liked by some people)platosuniverse said:The cat isn't in a well defined state until a measurement occur. The cat has to be in a mixture of live cat/dead cat.
platosuniverse said:The cat isn't in a well defined state until a measurement occur.
platosuniverse said:The cat has to be in a mixture of live cat/dead cat.
platosuniverse said:The marbles all mixed up are not in a well defined state.
platosuniverse said:The state of the cat is entangled with the outcome of decay/ no decay.
platosuniverse said:Einstein was wrong as far as we know because how can the cat be in a well defined state when it doesn't know which universe it will be in if MWI is correct?
Then you would know rather precisely the momentum of the particles.Idunno said:...if you get your beam of particles nice and confined and aimed really well...
PeterDonis said:No, it isn't. It's in a superposition. That's what "isn't in a well defined state" means. A mixture means "it's in a well defined state, we just don't know which one". That is not the same as being in a superposition.
Schrödinger's famous thought experiment poses the question, "when does a quantum system stop existing as a superposition of states and become one or the other?" (More technically, when does the actual quantum state stop being a linear combination of states, each of which resembles different classical states, and instead begin to have a unique classical description?) If the cat survives, it remembers only being alive. But explanations of the EPR experiments that are consistent with standard microscopic quantum mechanics require that macroscopic objects, such as cats and notebooks, do not always have unique classical descriptions. The thought experiment illustrates this apparent paradox. Our intuition says that no observer can be in a mixture of states—yet the cat, it seems from the thought experiment, can be such a mixture. Is the cat required to be an observer, or does its existence in a single well-defined classical state require another external observer? Each alternative seemed absurd to Einstein, who was impressed by the ability of the thought experiment to highlight these issues. In a letter to Schrödinger dated 1950, he wrote:
Boing3000 said:The whole point of Schrödinger was to illustrate that QM is not about a cat, but about a description/a model of the cat. That description live in a probability space made of zillionth of dimension made of complex scalars. There is never a real-cat being in a mixture of state, even less so in WMI (and that's why this interpretation is liked by some people)