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We want to run FCI with the KCI independence test and have a couple of binary variables (vegetarianism, gender) and a couple of scaled discreet variables (like smoking, where 0 is not smoking, 1 smoking rarely, 4 smoking frequently) and a couple of normal numerical variables.
We found several old discussions on mixed data, the general advice was to check out Tetrad and that causal-learn does not really support mixed data yet. Have there been any updates on that? What would you suggest now to use on the data we described?
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