Talk:Naimark's problem

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I think that the statement is incorrect.

N. Weaver and C. Akemann showed that it is consistent with ${\displaystyle {\mathsf {ZFC}}}$ that there exists a counterexample to Naimark's Hypothesis. To show independence, they would have to prove that it is also consistent with ${\displaystyle {\mathsf {ZFC}}}$ that there exists no counterexample. As far as I know, this was not done.

Also, while it is true that separable C*-algebras are a special case, one should note that they are an extremely important special case. Some people think that non-separable C*-algebras are simply unimportant. (Of course, ${\displaystyle B({\mathcal {H}})}$ is non-separable, but one should think of it as a von Neumann algebra rather than as a C*-algebra.)

Leonard Huang's clarification response

The statement "There exists a counterexample to Naimark's Hypothesis that is generated by ${\displaystyle \aleph _{1}}$ elements" is indeed independent of ${\displaystyle {\mathsf {ZFC}}}$. However, the weaker statement "There exists a counterexample to Naimark's Hypothesis" is only known to be consistent with ${\displaystyle {\mathsf {ZFC}}}$, and this follows precisely from Weaver's and Akemann's result.

Weaver and Akemann proved that inside any model of ${\displaystyle {\mathsf {ZFC}}+(V=L)}$ (in which ${\displaystyle \diamondsuit }$ automatically holds), there exists a counterexample generated by ${\displaystyle \aleph _{1}}$ elements. They also established that, within ${\displaystyle {\mathsf {ZFC}}}$ alone, any counterexample must be generated by at least ${\displaystyle 2^{\aleph _{0}}}$ elements. Hence, if the Continuum Hypothesis fails (i.e. ${\displaystyle \aleph _{1}<2^{\aleph _{0}}}$), then a counterexample generated by ${\displaystyle \aleph _{1}}$ elements simply cannot exist. However, this does not rule out the existence of a counterexample that is generated by at least ${\displaystyle 2^{\aleph _{0}}}$ elements.

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