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While building a new class object in python, I want to be able to create a default value based on the instance name of the class without passing in an extra argument. How can I accomplish this? Here's the basic pseudo-code I'm trying for:

class SomeObject():
    defined_name = u""

    def __init__(self, def_name=None):
        if def_name == None:
            def_name = u"%s" % (<INSTANCE NAME>)
        self.defined_name = def_name

ThisObject = SomeObject()
print ThisObject.defined_name   # Should print "ThisObject"
share|improve this question
    
why do you need this? – SilentGhost Nov 6 '09 at 21:13
    
Managing channel information in an irc script for my internal network. – Akoi Meexx Nov 6 '09 at 21:18
1  
That's bizarre. What language allows that kind of reference to the compile-time variable at run-time? – S.Lott Nov 6 '09 at 21:36
up vote 14 down vote accepted

Instances don't have names. By the time the global name ThisObject gets bound to the instance created by evaluating the SomeObject constructor, the constructor has finished running.

If you want an object to have a name, just pass the name along in the constructor.

def __init__(self, name):
    self.name = name
share|improve this answer
    
Liked this answer best, since I'm already aware that there aren't true variables in Python(there really should still be a way to grab the name bound to an instance, but that's another argument for another day I guess). It's logical that it wouldn't have the name bound to the instance, so I guess for the time being I'll just require 'def_name' instead of 'def_name=None' – Akoi Meexx Nov 6 '09 at 21:31
4  
There is no such thing as a "variable" by your definition. In what language can some object be bound to only one name? – Jonathan Feinberg Nov 6 '09 at 21:33
1  
@AkoiMeexx Seriously, what language has "true" variables by your definition? – Marcin Jun 19 '13 at 20:12

Well, there is almost a way to do it:

#!/usr/bin/env python
import traceback
class SomeObject():
    def __init__(self, def_name=None):
        if def_name == None:
            (filename,line_number,function_name,text)=traceback.extract_stack()[-2]
            def_name = text[:text.find('=')].strip()
        self.defined_name = def_name

ThisObject = SomeObject()
print ThisObject.defined_name 
# ThisObject

The traceback module allows you to peek at the code used to call SomeObject(). With a little string wrangling, text[:text.find('=')].strip() you can guess what the def_name should be.

However, this hack is brittle. For example, this doesn't work so well:

ThisObject,ThatObject = SomeObject(),SomeObject()
print ThisObject.defined_name
# ThisObject,ThatObject
print ThatObject.defined_name 
# ThisObject,ThatObject

So if you were to use this hack, you have to bear in mind that you must call SomeObject() using simple python statement:

ThisObject = SomeObject()

By the way, as a further example of using traceback, if you define

def pv(var):
    # stack is a list of 4-tuples: (filename, line number, function name, text)
    # see http://docs.python.org/library/traceback.html#module-traceback
    #
    (filename,line_number,function_name,text)=traceback.extract_stack()[-2]
    # ('x_traceback.py', 18, 'f', 'print_var(y)')
    print('%s: %s'%(text[text.find('(')+1:-1],var))

then you can call

x=3.14
pv(x)
# x: 3.14

to print both the variable name and its value.

share|improve this answer
2  
Woah, this is so roundabout, it almost cries out "You are not supposed to do this!" :) – shylent Nov 6 '09 at 21:58
6  
First it's called a hack, then roundabout,... pretty soon it'll be called an idiom :) – unutbu Nov 6 '09 at 22:12

This cannot work, just imagine this: a = b = TheMagicObjet(). Names have no effect on Values, they just point to them.

share|improve this answer
    
Right, but the fact of the matter is that I don't want the values themselves, but the name pointing to them as a string. – Akoi Meexx Nov 6 '09 at 21:35
2  
The fact of the matter is that in THC4k's example, TheMagicObjet() has 2 names pointing to it, 'a' and 'b' - which one do you want? – Paul McGuire Nov 6 '09 at 22:04
1  
What are the names of the objects in this list: L = [TheMagicObjet() for x in xrange(10)] ? – u0b34a0f6ae Nov 7 '09 at 0:58

One horrible, horrible way to accomplish this is to reverse the responsibilities:

class SomeObject():
    def __init__(self, def_name):
        self.defined_name = def_name
        globals()[def_name] = self

SomeObject("ThisObject")
print ThisObject.defined_name

If you wanted to support something other than global scope, you'd have to do something even more awful.

share|improve this answer

In Python, all data is stored in objects. Additionally, a name can be bound with an object, after which that name can be used to look up that object.

It makes no difference to the object what names, if any, it might be bound to. It might be bound to dozens of different names, or none. Also, Python does not have any "back links" that point from an object to a name.

Consider this example:

foo = 1
bar = foo
baz = foo

Now, suppose you have the integer object with value 1, and you want to work backwards and find its name. What would you print? Three different names have that object bound to them, and all are equally valid.

print(bar is foo) # prints True
print(baz is foo) # prints True

In Python, a name is a way to access an object, so there is no way to work with names directly. You could search through various name spaces until you find a name that is bound with the object of interest, but I don't recommend this.

How do I get the string representation of a variable in python?

There is a famous presentation called "Code Like a Pythonista" that summarizes this situation as "Other languages have 'variables'" and "Python has 'names'"

http://python.net/~goodger/projects/pycon/2007/idiomatic/handout.html#other-languages-have-variables

share|improve this answer
    
I'm sorry, but in what sense does python not have variables? – Marcin Jun 19 '13 at 20:13
    
@Marcin, did you find my explanation difficult to understand? I will rewrite it a bit and perhaps you will understand it better afterward. – steveha Jun 20 '13 at 5:20
    
(1) You do not explain the statement that python lacks variables. (2) This is incorrect. All languages that use boxed types have variables like python (except that their variables may be typed). This is simply an attempt to claim a distinction for python which does not exist. – Marcin Jun 20 '13 at 11:37
    
@Marcin, if you genuinely want to understand my original statement, please read the Ben Goodger presentation (the slide called "Other languages have 'variables'" and the following slide called "Python has 'names'"). Then consider the expression a = b; in a C-like language, this means a value is copied, but in Python it means a name is re-bound. That is the distinction I was trying to explain. I apologize that you found my explanation difficult to understand. – steveha Jun 20 '13 at 20:13
    
I've read the presentation. I understand it. It's still incorrect. In python, the pointer to the object is copied to the variable. This is also why python is call-by-value. Once again, this is not unique to python. – Marcin Jun 20 '13 at 20:17

You can create a method inside your class that check all variables in the current frame and use hash() to look for the self variable.

The solution proposed here will return all the variables pointing to the instance object.

In the class below, isinstance() is used to avoid problems when applying hash(), since some objects like a numpy.array or a list, for example, are unhashable.

import inspect
class A(object):
    def get_my_name(self):
        ans = []
        frame = inspect.currentframe().f_back
        tmp = dict(frame.f_globals.items() + frame.f_locals.items())
        for k, var in tmp.items():
            if isinstance(var, self.__class__):
                if hash(self) == hash(var):
                    ans.append(k)
        return ans

The following test has been done:

def test():
    a = A()
    b = a
    c = b
    print c.get_my_name()

The result is:

test()
#['a', 'c', 'b']
share|improve this answer

I think that names matters if they are the pointers to any object.. no matters if:

foo = 1
bar = foo

I know that foo points to 1 and bar points to the same value 1 into the same memory space. but supose that I want to create a class with a function that adds a object to it.

Class Bag(object):
   def __init__(self):
       some code here...
   def addItem(self,item):
       self.__dict__[somewaytogetItemName] = item

So, when I instantiate the class bag like below:

newObj1 = Bag()
newObj2 = Bag()
newObj1.addItem(newObj2)I can do this to get an attribute of newObj1:
newObj1.newObj2
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