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Say we have an incoming stream of data of size (1,N), it is a numpy array

read_data = [[foo, foo_1, foo_2]]

And we want to do something with that or simply append it to a larger array.

data=np.vstack((data,real_data)) (or whatever method you choose)

My trouble usually comes in the fact that I do not know the dimensions of the incoming data, so what I sometimes do, is:

  • I generate a buffer with the known dimensions and start populating it.
  • I generate a first trash read, either empty or with zeros and just append over it, and then erase it.

In matlab this is very easy, since it dynamically creates the array you need as soon as you give data (although is not recommended to do)

What is the best way to do it in python?

1
  • Do you want to append the individual values of foo to data, or the entire array of foo? If you want to just read in numpy arrays and add their values to data, maybe just increasing the size of data by one using something like newsize = data.shape +1, data.resize(newsize), data[newsize] = yourdata ?
    – seth
    Jul 14, 2013 at 19:12

1 Answer 1

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I think a good option is:

import numpy
first_array = numpy.array([1,2,3])
new_array = numpy.append(first_array, [4,5,6])
print new_array

And the output is: [1 2 3 4 5 6]

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  • 6
    this was my first thought also, but the only problem with this is that numpy.append creates a copy of the original array, and that becomes prohibitive with large arrays. resize changes the original array in place, though.
    – seth
    Jul 14, 2013 at 19:13
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    @seth I doubt that that's guaranteed. If resize acts as realloc, then it might have to copy the array depending on the "fragmentation" of memory(and in that case it's almost the same as calling append).
    – Bakuriu
    Jul 14, 2013 at 21:11
  • 3
    numpy can only deal with arrays regularly spaced in memory. In general, there is no way of doing what you want without creating a new array each time. You could of course create a new array for each bit of incoming data and combine them only at the end, or periodically. Jul 15, 2013 at 15:04

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