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I know there has got to be a cleaner more elegant way to do this. I have an array of number in the range [0,1] and want to check which ones are greater than a threshold. I remember there being some syntax to do this nicely. In python I would use something like a lambda function.

p = sigmoid(dot(theta,X));
for i =1:size(p)
   if(p(i)>=0.5)
      p(i)=1
   else
       p(i)=0
   end
end
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up vote 10 down vote accepted

mtrw is on the right track, but it gets even shorter:

p = (p >= 0.5);
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I feel dumb. +1. In regular Python, you'd probably do [int(k >= 0.5) for k in p]. – mtrw Oct 14 '11 at 6:22
1  
In fact, since the OP is overwriting p anyway, he might as well avoid the cost of the sigmoid call and just do p = dot(theta,X) >= 0.0; – Chris A. Oct 15 '11 at 16:28

You can simply say p = (p>=0.5). Boolean operators work on arrays, and return logical arrays (which consist of boolean values).

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You can operate on the whole array at once:

p(p >= 0.5) = 1;
p(p < 0.5) = 0;

For what it's worth, you can do the same thing in Numpy if p is a Numpy array:

>>> p[p >= 0.5] = 1
>>> p[p < 0.5] = 0
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Just for variety. You can also do:

p = floor(p + 0.5);

which also generalises to other thresholds in the range [0,1].

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