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I am trying to take the following R statement and convert it to Python using NumPy:

1 + apply(tmp,1,function(x) length(which(x[1:k] < x[k+1])))

Is there a Python equivalent to which()? Here, x is row in matrix tmp, and k corresponds to the number of columns in another matrix.

Previously, I tried the following Python code, and received a Value Error (operands could not be broadcast together with shapes):

for row in tmp:
        print np.where(tmp[tmp[:,range(k)] < tmp[:,k]])
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you are scripting tmp twice.. do you mean to use row instead inside the loop? –  Doboy Aug 31 '12 at 0:15
    
Where does your k come from? What shape is your tmp? –  Pierre GM Aug 31 '12 at 0:29

2 Answers 2

From http://effbot.org/zone/python-list.htm:

To get the index for all matching items, you can use a loop, and pass in a start index:

i = -1
try:
    while 1:
        i = L.index(value, i+1)
        print "match at", i
except ValueError:
    pass
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6  
This is simpler and more readable matchings_indices = [ i for i, x in enumerate(x) if x == value ] –  Doboy Aug 31 '12 at 0:16

The Python code below answers my question:

np.array([1 + np.sum(row[range(k)] < row[k]) for row in tmp])

Here tmp is a 2d array, and k is a variable which was set for column comparison.

Thanks to http://stackoverflow.com/users/601095/doboy for inspiring me with the answer!

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