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I've got a list (used as a stack) of numpy arrays. Now I want to check if an array is already in the list. Had it been tuples for instance, I would simply have written something equivalent to (1,1) in [(1,1),(2,2)]. However, this does not work for numpy arrays; np.array([1,1]) in [np.array([1,1]), np.array([2,2])] is an error (ValueError: The truth value of an array with more than one element is ambiguous. Use a.any() or a.all()). The error message does not help here AFAIK, as it is referring to comparing arrays directly.

I have a hard time beliving it wouldn't be possible, but I suppose there's something I'm missing.

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3 Answers 3

up vote 4 down vote accepted

To test if an array equal to a is contained in the list my_list, use

any((a == x).all() for x in my_list)
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I used this, though I had to make it a list comprehension (np.any([(a == x).all() for x in my_list])) for it to work. My thinking is that it is otherwise a generator? If my_list is empty, the original returns True. –  carlpett Mar 31 '11 at 11:49
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any() in my answer is the Python built-in any(), and not numpy.any(). These are different functions! Don't use from numpy import * -- it will overwrite several Python built-ins. –  Sven Marnach Mar 31 '11 at 11:54
    
Oh. I haven't imported everything, but I did not know there was a python builtin called any, so I assumed you meant numpy.any. Sorry about the misunderstanding. –  carlpett Mar 31 '11 at 11:57
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If you are looking for the exact same instance of an array in the stack regardless of whether the data is the same, then you need to this:

id(a) in map(id, my_list)
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Sven's answer is the right choice if you want to compare the actual content of the arrays. If you only want to check if the same instance is contained in the list you can use

any(a is x for x in mylist)

One benefit is that this will work for all kinds of objects.

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