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Say I have a variable named choice it is equal to 2. How would I access the name of the variable? Something equivalent to

In [53]: namestr(choice)
Out[53]: 'choice'

for use in making a dictionary. There's a good way to do this and I'm just missing it.

EDIT:

The reason to do this is thus. I am running some data analysis stuff where I call the program with multiple parameters that I would like to tweak, or not tweak, at runtime. I read in the parameters I used in the last run from a .config file formated as

filename
no_sig_resonance.dat

mass_peak
700

choice
1,2,3

When prompted for values, the previously used is displayed and an empty string input will use the previously used value.

My question comes about because when it comes to writing the dictionary that these values have been scanned into. If a parameter is needed I run get_param which accesses the file and finds the parameter.

I think I will avoid the problem all together by reading the .config file once and producing a dictionary from that. I avoided that originally for... reasons I no longer remember. Perfect situation to update my code!

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marked as duplicate by Georg Schölly, dF., Bombe, S.Lott, nosklo Feb 27 '09 at 14:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Why do you want such a thing? –  J.F. Sebastian Feb 26 '09 at 22:29
1  
    
The link provides some pictures that in 2 minutes will teach you what are names in Python. –  J.F. Sebastian Feb 26 '09 at 22:34
2  
Duplicate: stackoverflow.com/questions/544919/… The good way is to put the object into the dictionary in the first place, instead of creating the variable :) –  dF. Feb 26 '09 at 22:51
    
@dF: This question is different. It is not about enums. –  J.F. Sebastian Feb 26 '09 at 22:57

8 Answers 8

up vote 40 down vote accepted

If you insist, here is some horrible inspect-based solution.

import inspect, re

def varname(p):
  for line in inspect.getframeinfo(inspect.currentframe().f_back)[3]:
    m = re.search(r'\bvarname\s*\(\s*([A-Za-z_][A-Za-z0-9_]*)\s*\)', line)
    if m:
      return m.group(1)

if __name__ == '__main__':
  spam = 42
  print varname(spam)

I hope it will inspire you to reevaluate the problem you have and look for another approach.

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quite clever. I was looking for something like this and gave up. +1 –  Triptych Feb 27 '09 at 0:15
1  
There is related use case for inspect.currentframe().f_back.f_locals –  J.F. Sebastian Nov 27 '12 at 0:10
3  
Sometimes a night of debugging makes us do things we're not proud of. –  Jake Feb 6 '14 at 20:40
    
This is awful; I love it. –  Sean Allred Nov 20 '14 at 14:10

To answer your original question:

def namestr(obj, namespace):
    return [name for name in namespace if namespace[name] is obj]

Example:

>>> a = 'some var'
>>> namestr(a, globals())
['a']

As @rbright already pointed out whatever you do there are probably better ways to do it.

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This fails if there is more than one variable name referring to the same value. –  Greg Hewgill Feb 26 '09 at 23:33
    
@Greg Hewgill: You might have noticed that namestr returns list. It is a hint that there could be more than one name. –  J.F. Sebastian Feb 26 '09 at 23:37
1  
I'd say most integers don't share their representations. –  J.F. Sebastian Feb 27 '09 at 0:13
2  
I like the flow of your answer code, but I may be working with integers that may be repeated several times in the code... sigh –  physicsmichael Feb 27 '09 at 0:15
1  
@Piotr Dobrogost: "share their representions" refers to CPython optimization that caches small integers therefore one of the sets is not countable it is finite. –  J.F. Sebastian Jan 26 '12 at 18:23

You can't, as there are no variables in Python but only names.

For example:

> a = [1,2,3]
> b = a
> a is b
True

Which of those two is now the correct variable? There's no difference between a and b.

There's been a similar question before.

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1  
The difference between a and b is the name. –  Triptych Feb 26 '09 at 22:34
    
gs is right. a and b refer to the same object, so a function receiving this object has no way to know which name was used to refer to the object in the function call. –  dF. Feb 26 '09 at 22:42
2  
He's kinda right, in that there is no way for you to write a function in Python to differentiate. Still, there's no reason there couldn't be a built-in function that accomplishes this. –  Triptych Feb 26 '09 at 22:49
    
dis.dis() returns some names (not always). –  J.F. Sebastian Feb 26 '09 at 23:34
1  
"There are no variables in Python" Silly misinformation. You mean, "variables in Python work differently than in C." –  Ned Batchelder Dec 8 '12 at 23:27

If you are trying to do this, it means you are doing something wrong. Consider using a dict instead.

def show_val(vals, name):
    print "Name:", name, "val:", vals[name]

vals = {'a': 1, 'b': 2}
show_val(vals, 'b')

Output:

Name: b val: 2
share|improve this answer
    
+1: The original question is not sensible. It's a simple dictionary. Or -- perhaps -- use a different language. –  S.Lott Feb 27 '09 at 3:01
    
Lets say I have choice = 'He chose 3!'. Can I add this to a dict without typing out "choice" when specifying the key? –  physicsmichael Feb 27 '09 at 17:57
1  
key = "choice"; print vals[key] –  recursive Feb 27 '09 at 19:59

Rather than ask for details to a specific solution, I recommend describing the problem you face; I think you'll get better answers. I say this since there's almost certainly a better way to do whatever it is you're trying to do. Accessing variable names in this way is not commonly needed to solve problems in any language.

That said, all of your variable names are already in dictionaries which are accessible through the built-in functions locals and globals. Use the correct one for the scope you are inspecting.

One of the few common idioms for inspecting these dictionaries is for easy string interpolation:

>>> first = 'John'
>>> last = 'Doe'
>>> print '%(first)s %(last)s' % globals()
John Doe

This sort of thing tends to be a bit more readable than the alternatives even though it requires inspecting variables by name.

share|improve this answer
    
I want to try to and print 'first' and 'last', the values that I call the references, not what they are equal to. –  physicsmichael Feb 26 '09 at 22:52
    
I know, I was just letting you know one reason people commonly look at those dictionaries at all. Usually you shouldn't need to. Unless you want to give us more detail, just dig around in them for what you're looking for. E.g., globals().keys() –  Ryan Bright Feb 26 '09 at 23:04

Will something like this work for you?

>>> def namestr(**kwargs):
...     for k,v in kwargs.items():
...       print "%s = %s" % (k, repr(v))
...
>>> namestr(a=1, b=2)
a = 1
b = 2

And in your example:

>>> choice = {'key': 24; 'data': None}
>>> namestr(choice=choice)
choice = {'data': None, 'key': 24}
>>> printvars(**globals())
__builtins__ = <module '__builtin__' (built-in)>
__name__ = '__main__'
__doc__ = None
namestr = <function namestr at 0xb7d8ec34>
choice = {'data': None, 'key': 24}
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For the revised question of how to read in configuration parameters, I'd strongly recommend saving yourself some time and effort and use ConfigParser or (my preferred tool) ConfigObj.

They can do everything you need, they're easy to use, and someone else has already worried about how to get them to work properly!

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With eager evaluation, variables essentially turn into their values any time you look at them (to paraphrase). That said, Python does have built-in namespaces. For example, locals() will return a dictionary mapping a function's variables' names to their values, and globals() does the same for a module. Thus:

for name, value in globals().items():
    if value is unknown_variable:
        ... do something with name

Note that you don't need to import anything to be able to access locals() and globals().

Also, if there are multiple aliases for a value, iterating through a namespace only finds the first one.

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This fails if there is more than one variable name with the same value. –  Greg Hewgill Feb 26 '09 at 23:19
    
Not much you can do about that, although I'll add a warning. ;) –  Nikhil Chelliah Feb 26 '09 at 23:36

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