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It's hard to explain what I'm trying to do with words so here's an example.

Let's say we have the following inputs:

In [76]: x
Out[76]: 
0    a
1    a
2    c
3    a
4    b

In [77]: z
Out[77]: ['a', 'b', 'c', 'd', 'e']

I want to get:

In [78]: ii
Out[78]: 
array([[1, 0, 0, 0, 0],
       [1, 0, 0, 0, 0],
       [0, 0, 1, 0, 0],
       [1, 0, 0, 0, 0],
       [0, 1, 0, 0, 0]])

ii is an array of boolean masks which can be applied to z to get back the original x.

My current solution is to write a function which converts z to a list and uses the index method to get the index of the element in z and then generate a row of zeroes except for the index where there is a one. This function gets applied to each row of x to get the desired result.

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And so, what's your question? Writing this function? Surely, something like np.choose(["abcde".index(i) for i in x], "abcde") doesn't work for you? –  Pierre GM Sep 12 '12 at 6:29
    
Well, I get array(['a', 'a', 'c', 'a', 'b'], dtype='|S1') as a result when I run your line. What I want is the masks (lists of 5 boolean elements) for ['a', 'a', 'c', 'a', 'b']. Does this make it clearer? –  Daniel Velkov Sep 12 '12 at 7:17
1  
Are you looking for a faster way or just somthing shorter to type like: np.array([[j == i for j in z] for i in x], dtype=int) –  Wouter Overmeire Sep 12 '12 at 7:57
    
@WouterOvermeire looking for both ideally –  Daniel Velkov Sep 12 '12 at 17:10
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3 Answers

up vote 1 down vote accepted

A first possibility:

>>> choices = np.diag([1]*5)
>>> choices[[z.index(i) for i in x]]

As noted elsewhere, you can change the list comprehension [z.index(i) for i in x] by np.searchsorted(z, x)

>>> choices[np.searchsorted(z, x)]

Note that as suggested in a comment by @seberg, you should use np.eye(len(x)) instead of np.diag([1]*len(x)). The np.eye function directly gives you a 2D array with 1 on the diagonal and 0 elsewhere.

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The first one is what I was looking for. –  Daniel Velkov Sep 12 '12 at 17:08
2  
Instead of np.diag([1]*5), rather use np.eye(5) I think. –  seberg Sep 12 '12 at 17:43
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This is numpy method for the case of z being sorted. You did not specifiy that... If pandas needs something differently, I don't know:

# Assuming z is sorted.
indices = np.searchsorted(z, x)

Now I really don't know why you want a boolean mask, these indices can be applied to z to give back x already and are more compact.

z[indices] == x # if z included all x.
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Unfortunately they are not sorted, my example is misleading. Also I need the masks because I multiply them by some probability matrix after that: kaggle.com/c/predict-closed-questions-on-stack-overflow/forums/… –  Daniel Velkov Sep 12 '12 at 17:08
    
If they are unique, sort them yourself first, if you care about speed. As to creation of the boolean array, I would suggest something like a = np.zeros((...,...), dtype=bool); a[np.ix_[np.arange(...), z]] = 1 maybe. But doesn't matter much. –  seberg Sep 12 '12 at 17:41
    
If I sort them then I'll have to sort the columns of all the other arrays and matrices that I have to match. Not sure if it's worth it. –  Daniel Velkov Sep 12 '12 at 20:29
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Surprised no one mentioned theouter method of numpy.equal:

In [51]: np.equal.outer(s, z)
Out[51]: 
array([[ True, False, False, False, False],
       [ True, False, False, False, False],
       [False, False,  True, False, False],
       [ True, False, False, False, False],
       [False,  True, False, False, False]], dtype=bool)

In [52]: np.equal.outer(s, z).astype(int)
Out[52]: 
array([[1, 0, 0, 0, 0],
       [1, 0, 0, 0, 0],
       [0, 0, 1, 0, 0],
       [1, 0, 0, 0, 0],
       [0, 1, 0, 0, 0]])
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