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 would like to do the following:

print "CC =",CC

but as a function so that i only have to write the variable CC once. I can't work out how to do this in a function as it always evaluates CC as a floating point number (which it is).... Is there a way to accept the input to a function as both a string and floating point number?

I tried this:

def printme(a): 
    b='%s' % a
    print b
    return b

but of course it only prints the value of a, not its name.

share|improve this question
2  
Python is dynamically typed, so the short answer is "Yes, of course!". The long answer depends on what you have tried, could you share what you did and what went wrong and what you expected instead? –  Martijn Pieters Jul 2 '12 at 10:31
    
I have tried multiple things, here is one where i am trying to print the string and floating point number but it results in printing the floating point and no string: –  malby Jul 2 '12 at 10:37
    
def printme( a ): b='%s',a print b return b –  malby Jul 2 '12 at 10:39
3  
Why would you need this? Wouldn't it make more sense to use a dictionary? –  Tim Pietzcker Jul 2 '12 at 10:39
    
Read up on String formatting to see what you did wrong there; there is a % operator missing. –  Martijn Pieters Jul 2 '12 at 10:40

7 Answers 7

You could use the inspect module (see also this SO question):

def printme(x):
    import inspect
    f = inspect.currentframe()
    val = f.f_back.f_locals[x]
    print x, '=', val


CC = 234.234    
printme('CC') # <- write variable name only once
# prints: CC = 234.234
share|improve this answer

Perhaps a dictionary is a better approach to the problem. Assuming you have several name-value pairs that you want to use, you can put them in a dict:

params = {"CC": 1.2345, "ID": "Yo!", "foo": "bar"}

Then, for example, you could print all the names and values nicely formatted like this:

for key in params:
    print "{0} = {1}".format(key, params[key])

But since it is still unclear why you are trying to do this, it's hard to tell whether this is the right way.

share|improve this answer
1  
The reason why is so that i only have to write CC once and not twice. I will be doing this alot so the shorthand is useful, the application i use python for is scientific computing so when coding mathematical algorithms you do this all the time to debug, in matlab for example this is very simple as you just type the variable name and matlab returns its value. –  malby Jul 2 '12 at 11:24
2  
+1 This is not what OP wants, but this is what OP should do. I've seen a lot of questions similar to this one on SO and every of them ends up with the decision that using of a dict is the most convenient and most pythonic way to solve the problem. –  Vader Jul 2 '12 at 12:57
    
@Vader, I don't see how a this question is about string formatting. The problem of OP is how to obtain the variable name and value inside a function without providing both explicitly ("Is there a way to accept the input to a function as both a string and floating point number" and "... so that i only have to write the variable CC once"). –  catchmeifyoutry Jul 2 '12 at 13:57
2  
@catchmeifyoutry Sure this question is not about formatting it is about retrieving variable name. What I want to say is when you are trying to get variable name in Python then you are probably doing something wrong and the best way to solve your problem is to stop using hacks and start using dicts instead. –  Vader Jul 2 '12 at 14:44
    
@Vader ah ok then, we agree about the problem, just not about the solution (for this particular debugging use case) ;) Thanks for clarifying your point. –  catchmeifyoutry Jul 2 '12 at 15:18

I think this is your required solution:

def printme(x): 
    keys_list = [key for key, value in globals().iteritems() if value == x]
    print keys_list
    for key in keys_list:
        if id(globals()[key]) == id(x):
            result = "%s = %s" %(key, x)
            print result
            break

    return result

for example if you declare a variable:

>>> c=55.6

then result of printme(c) will be

>>> 'c = 55.6'

Note: This solution is based on globally unique id matching.

share|improve this answer
    
this only works if the variable is in globals, meaning it is useless for function locals... –  l4mpi Jul 2 '12 at 17:29
    
@l4mpi According to asked question a variable will be passed to a function. This means that, that variable will not be in the locals() of that function but in the globals(). So I checked globals() first. This could not be the exact solution but I think that It can give required solution by little modification i.e, check locals() first. –  zubair89 Jul 3 '12 at 5:03
    
this is wrong and demonstrates your poor understanding of variable scope. the variable will only be in globals if it is declared on the module level (or explicitly declared as global). if the variable is declared inside of another function, it will neither be in globals nor inside your print function's locals - try def f(x): printme(x) and then call f(1). see catchmeifyoutrys answer for an actual solution using the locals of the calling scope. –  l4mpi Jul 3 '12 at 8:26

Not exactly what you want, but easy to do:

def printme(**kwargs):
    for key, value in kwargs.items():
        print '%s=%s' % (key, value)
    return value

In [13]: printme(CC=1.23, DD=2.22)
CC=1.23
DD=2.22
Out[13]: 1.23
share|improve this answer

If I understand you correctly you want something like this?

def f(a):
    print('{0}: = {1}'.format(locals().keys()[0], a))

Update:

I am aware that the example doesn't make a lot of sense, as it's basically the same as:

def f(a):
    print('a: {0}'.format(a))

I merely wanted to point the OP to locals() as I didn't quite understand what he's trying to accomplish.

I guess this is more what he's looking for:

def f(**kwargs):
    for k in kwargs.keys():
        print('{0}: {1}'.format(k, kwargs[k]))


f(a=1, b=2)
share|improve this answer
1  
this won't work as the variable is not in the local scope of the function –  l4mpi Jul 2 '12 at 10:46
    
This is exactly the same as writing print 'a=%s' % a as the local name will always be 'a'. If this really is what the OP wants, then it cannot be done because of the way Python works. –  Jochen Ritzel Jul 2 '12 at 10:48
    
this won't work,the local name will always be a. –  Ashwini Chaudhary Jul 2 '12 at 10:49
    
Yes almost, this results in printing the following a: = 0.166666666667, what i want to do is print the variable name as well so if i was to input f(x) i would like to get x = 0.166666666667 and if i was to input f(b) i would like to get b = 0.533 or whatever b is –  malby Jul 2 '12 at 10:50
    
The second version requires the caller to use a keyword argument. It won't work with just a variable name. –  Tim Pietzcker Jul 2 '12 at 10:58

If I understand you correctly you want a shorthand for printing a variable name and its value in the current scope? This is in general impossible without using the interpreters trace function or sys._getframe, which should in general only be used if you know what you're doing. The reason for this is that the print function has no other way of getting the locals from the calling scope:

def a():
    x = 1
    magic_print("x") #will not work without accessing the current frame

What you CAN do without these is explicitly pass the locals to a function like this:

def printNameAndValue(varname, values):
    print("%s=%s" % (varname, values[varname]))

def a():
    x = 1
    printNameAndValue("x", locals())  #prints 'x=1'

EDIT:

See the answer by catchemifyoutry for a solution using the inspect module (which internally uses sys._getframe). For completeness a solution using the trace function directly - useful if you're using python 2.0 and inspect isn't available ;)

from sys import settrace

__v = {} #global dictionary that holds the variables

def __trace(frame, event, arg):
    """ a trace function saving the locals on every function call """
    global __v 
    if not event == "call":
        return __trace
    __v.update(frame.f_back.f_locals)

def enableTrace(f):
    """ a wrapper decorator setting and removing the trace """
    def _f(*a, **kwa):
        settrace(__trace)
        try:
            f(*a, **kwa)
        finally:
            settrace(None)
    return _f

def printv(vname):
    """ the function doing the printing """
    global __v 
    print "%s=%s" % (vname, __v[vname])

Save it in a module and use like this:

from modulenamehere import enableTrace, printv

@enableTrace
def somefunction():
    x = 1
    [...]
    printv("x")
share|improve this answer
    
mmm, thanks for the effort, i think you are correct in that there is no solution, It seems to me now that my original solution is the best one, the difficulty arises due to python suppressing all inputs as default, actually is the a way of disabling this? –  malby Jul 2 '12 at 11:37
    
No idea what you mean with 'suppressing all inputs', but see the answer by @catchmeifyoutry for a solution using inspect (which internally uses the trace function). –  l4mpi Jul 2 '12 at 17:27

used a global variable to achieve this,func.__globals__.keys() contains all the variables passed to func, so I filtered out the name startin with __ and stored them in a list. with every call to func() the func.__globals__.keys() gets updated with the new variable name,so compare the new varn with the older glo results in the new variable that was just added.

glo=[]
def func(x):  
  global glo 
  varn=[x for x in func.__globals__.keys() if not x.startswith('__') and x!=func.__name__]
  new=list(set(varn)^set(glo))
  print("{0}={1}".format(new[0],x))
  glo=varn[:]

output:

>>> a=10
>>> func(a)
a=10
>>> b=20
>>> func(20)
b=20
>>> foo='cat'
>>> func(foo)
foo=cat
>>> bar=1000
>>> func(bar)
bar=1000
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.