It really doesn't seem to make sense at all, in terms of consistency within the Matlab environment:
NaN + 1 + 3 = NaN
NaN * 1 / 3 = NaN
sum([NaN 1 3]) = NaN
nansum([NaN 1 3]) = 4
mean([NaN 1 3]) = NaN
nanmean([NaN 1 3]) = 2
std([NaN 1 3]) = NaN
nanstd([NaN 1 3]) = 1.4142
median([NaN 1 3]) = NaN
nanmedian([NaN 1 3]) = 2
min([NaN 1 3]) = 1
nanmin([NaN 1 3]) = 1
max([NaN 1 3]) = 1
nanmax([NaN 1 3]) = 1
Is there actually any other basic function in Matlab that ignores NaN by default?
Been using Matlab for 10 years and only discovered this now when we had a bug in a published script that was due to this. So sure, apparently it is in the documentation for min() and max() that those basic functions of Matlab decide to ignore the established handling of NaN within the Matlab environment. I had not read that and taken for granted that NaN would bet treated as it is everywhere else in Matlab. I realise I should have read the documentation, but I guess I just didn't expect such inconcistency.
I guess a workaround in my case is to use one of the functions that treats NaNs correctly to index where NaN should be returned (I was doing this on a 2 by 1 by 10^6 matrix), and then replace all those indices in the min() output with NaN. Or the 'includenan' flag
