Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to put all elements of rbs into a new array if the elements in var(another numpy array) is >=0 and <=.1 . However when I try the following code I get this error:

ValueError: The truth value of an array with more than one element is ambiguous. 
Use a.any() or a.all()`

rbs = [ish[4] for ish in realbooks]
for book in realbooks:
    var -= float(str(book[0]).replace(":", ""))
    bidsred = rbs[(var <= .1) and (var >=0)]

any ideas on what I'm doing wrong?

share|improve this question
    
Which line causes the error? Also please format your code so it actually runs. –  Brendan Long Sep 28 '12 at 21:18
    
It would help if you printed out the value of var. At a guess, the problem is in the string/float/text replaced variable you're decrementing... What does the original data look like that would require that series of operations? –  abought Sep 28 '12 at 21:20

2 Answers 2

up vote 14 down vote accepted

As I told you in a comment to a previous answer, you need to use either:

c[a & b]

or

c[np.logical_and(a, b)] 

The reason is that the and keyword is used by Python to test between two booleans. How can an array be a boolean? If 75% of its items are True, is it True or False? Therefore, numpy refuses to compare the two.

So, you either have to use the logical function to compare two boolean arrays on an element-by-element basis (np.logical_and) or the binary operator &.

Moreover, for indexing purposes, you really need a boolean array with the same size as the array you're indexing. And it has to be an array, you cannot use a list of True/False instead: The reason is that using a boolean array tells NumPy which element to return. If you use a list of True/False, NumPy will interpret that as a list of 1/0 as integers, that is, indices, meaning that you' either get the second or first element of your array. Not what you want.

Now, as you can guess, if you want to use two boolean arrays a or b for indexing, choosing the items for which either a or b is True, you'd use

c[np.logical_or(a,b)]

or

c[a | b]
share|improve this answer
    
In my Numpy 1.6.1, & raises the same exception as and -- which version are you using? –  larsmans Sep 28 '12 at 21:34
    
Dang, 1.5.1... I'm obviously way late. Gonna correct that. –  Pierre GM Sep 28 '12 at 21:37
    
MY BAD -- I tried x > -2 & x < 2, and operator precedence bit me. Your previous answer was entirely correct. +1! –  larsmans Sep 28 '12 at 21:41
    
OK, good, so I can get rid of the comment then? –  Pierre GM Sep 28 '12 at 21:44

You usually get this error message when trying to use Python boolean operators (not, and, or) on comparison expressions involving Numpy arrays, e.g.

>>> x = np.arange(-5, 5)
>>> (x > -2) and (x < 2)
Traceback (most recent call last):
  File "<ipython-input-6-475a0a26e11c>", line 1, in <module>
    (x > -2) and (x < 2)
ValueError: The truth value of an array with more than one element is ambiguous. Use a.any() or a.all()

That's because such comparisons, as opposed to other comparisons in Python, create arrays of booleans rather than single booleans (but maybe you already knew that):

>>> x > -2
array([False, False, False, False,  True,  True,  True,  True,  True,  True], dtype=bool)
>>> x < 2
array([ True,  True,  True,  True,  True,  True,  True, False, False, False], dtype=bool)

Part of the solution to your problem probably to replace and by np.logical_and, which broadcasts the AND operation over two arrays of np.bool.

>>> np.logical_and(x > -2, x < 2)
array([False, False, False, False,  True,  True,  True, False, False, False], dtype=bool)
>>> x[np.logical_and(x > -2, x < 2)]
array([-1,  0,  1])

However, such arrays of booleans cannot be used to index into ordinary Python lists, so you need to convert that to an array:

rbs = np.array([ish[4] for ish in realbooks])
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.