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LawrenceC comments on
Natural Latents: The Math
LawrenceC
9 Mar 2024 1:04 UTC
LW: 4 AF: 4
0
AF
Right, the step I missed on was that P(X|Y) = P(X|Z) for all y, z implies P(X|Z) = P(X). Thanks!
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Right, the step I missed on was that P(X|Y) = P(X|Z) for all y, z implies P(X|Z) = P(X). Thanks!