9

Consider following numpy array

x = np.array([1, 2, np.nan, np.nan, 3, 4, 5, np.nan])

I want to extract all non-NaN consecutive elements in x and the expected outputs is the list

y = [[1, 2],[3, 4, 5]]

Is their any method that is both elegant and faster than simple for loop ?

  • How is that converting into a nested list? – DirtyBit Apr 11 at 14:28
  • @DirtyBit did you read his question? He's wanting it into a list of lists. – Chris Apr 11 at 14:31
4

You can use np.split:

np.split(x, np.where(np.diff(np.isnan(x), prepend=True))[0])[1::2]
#[array([1., 2.]), array([3., 4., 5.])]
4

using itertools.groupby

from itertools import groupby

result = [list(map(int,g)) for k,g in groupby(x, np.isnan) if not k]
print (result)
#[[1, 2], [3, 4, 5]]
  • There is an amazing shortcut for lambda y:np.isnan(y), y'know ;-) – Paul Panzer Apr 12 at 0:41
  • what is the shortcut for that lambda function ? – JunjieChen Apr 12 at 1:06
  • 1
    @JunjieChen Just recap what this particular lambda is doing: "GIven an input y return np.isnan(y)." Notice something? That is precisely what np.isnan does on its own. result = [list(map(int,g)) for k,g in groupby(x, np.isnan) if not k] – Paul Panzer Apr 12 at 1:39
  • @PaulPanzer you are right! thanks. – Transhuman Apr 12 at 1:45

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