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Relatively new to python. Right now I'm having the following problem, I've set a dictionary so that when I give a certain input it executes the defined function, but even when I set the input not to execute the function it still does. Here's essentially what the code looks like.

options = []

def function0(str): print(str,"0")

str = "blahblahblah"

operations = {0:function0(str)}

for i in range(len(options)): operations[options[i]]

This code is still printing out the function0 output. I've also concluded it is executing the function right after I set the dictionary "operations". Why is that, and how can I get it not to?

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2 Answers 2

The code is executed because you call the function: function0(str) evaluates to the return value of function0 with str as argument.

If you just want to put the function object in a dict for further use, do

operations = {0: function0}

A couple of side notes:

  1. Don't use str as a variable name. str is a built-in type, and you shouldn't shadow this name with your variables.
  2. Looping with an int to use it as an index is unpythonic. Also note that you are not calling the functions in your code. Your loop should look like:

    for op_index in operations:
         operations[op_index](mystr)
    

    or:

    for op in operations.values():
        op(mystr)
    
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I don't have str as a variable, name, I was just using that as a filler to try and explain my code, but thank you very much. That's quite helpful. –  hachteja Jan 15 '13 at 18:44

This will happen when you type the code in the console, since each line is evaluated immediately.

What you probably intended to do is this:

operations = {0:function0}
for i in options:
    operations[i](str)

Note that you don't need to have an explicit counter when running through a sequence. So you don't need the range(len(options)) part.

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Interesting, thank you very much. –  hachteja Jan 15 '13 at 18:45

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