53

Given the following integers and calculation

from __future__ import division

a = 23
b = 45
c = 16

round((a/b)*0.9*c)

This results in:

TypeError: 'int' object is not callable.

How can I round the output to an integer?

  • 3
    It works fine under Python 2.7 and 2.4. – Fabian Mar 19 '12 at 9:07
  • 2
    I think your problem is somewhere else than in the code shown. – Mizipzor Mar 19 '12 at 9:09
  • 2.7, was not aware that it is a problem having an int named round. – rob Mar 19 '12 at 9:13
143
1

Somewhere else in your code you have something that looks like this:

round = 42

Then when you write

round((a/b)*0.9*c)

that is interpreted as meaning a function call on the object bound to round, which is an int. And that fails.

The problem is whatever code binds an int to the name round. Find that and remove it.

| improve this answer | |
  • 35
    to make a long story short: do not name a var and a function equal. – Timo Mar 10 '15 at 13:41
  • 2
    Ah the old false = true problem. This one caught me too. python is a tricky (and slippery) mistress. – David Dombrowsky May 27 '17 at 14:05
5
0

Stop stomping on round somewhere else by binding an int to it.

| improve this answer | |
5
0

I got the same error

def xlim(i,k,s1,s2):
   x=i/(2*k)
   xl=x*(1-s2*x-s1*(1-x)) /(1-s2*x**2-2*s1*x(1-x))
   return xl 
... ... ... ... 

>>> xlim(1,100,0,0)
Traceback (most recent call last):
File "<stdin>", line 1, in <module>
File "<stdin>", line 3, in xlim
TypeError: 'int' object is not callable

after read this post I realize that I forgot a multiplication * so

def xlim(i,k,s1,s2):
x=i/(2*k)
xl=x*(1-s2*x-s1*(1-x)) /(1-s2*x**2-2*s1*x*(1-x))
return xl 

xlim(1.0,100.0,0.0,0.0)
0.005

tanks

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  • 1
    It was actually a different problem. See the accepted answer. – Ross Ridge Jul 17 '15 at 19:08
  • 1
    I know this was a long time ago but this answered actually solved my problem. Vote up from me – Pythogen Sep 3 '16 at 15:24
  • For me, this should have been the answer. It solved my problem. – akshit bhatia May 23 '19 at 15:42
3
0

In my case I changed:

return <variable>

with:

return str(<variable>)

try with the following and it must work:

str(round((a/b)*0.9*c))
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0
0

I was also facing this issue but in a little different scenario.

Scenario:

param = 1

def param():
    .....
def func():
    if param:
        var = {passing a dict here}
        param(var)

It looks simple and a stupid mistake here, but due to multiple lines of codes in the actual code, it took some time for me to figure out that the variable name I was using was same as my function name because of which I was getting this error.

Changed function name to something else and it worked.

So, basically, according to what I understood, this error means that you are trying to use an integer as a function or in more simple terms, the called function name is also used as an integer somewhere in the code. So, just try to find out all occurrences of the called function name and look if that is being used as an integer somewhere.

I struggled to find this, so, sharing it here so that someone else may save their time, in case if they get into this issue.

Hope this helps!

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0
0

As mentioned you might have a variable named round (of type int) in your code and removing that should get rid of the error. For Jupyter notebooks however, simply clearing a cell or deleting it might not take the variable out of scope. In such a case, you can restart your notebook to start afresh after deleting the variable.

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