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Instead of a simple debug/log print as this:

print "error ", error_number

I would like to use a log function that I can expand when required looking something like this:

def log(condition, *message):
    if(<do something here...>):
        print(*message)
        <perhaps do something more...>

and call it like this:

log(condition, "error ", error_number)

But I get the following syntax error:

print *message
      ^ SyntaxError: invalid syntax

Is it a limitation of the print function or is there some way to make it work? If not, is there an equivalent to print that I could use?

I'm using Python 2.7 by the way...

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I added the way to modify your script, without using __future__ module; see my answer. –  Joël Nov 9 '11 at 9:25

4 Answers 4

up vote 6 down vote accepted

print is not a function in Python 2.x. In the first snippet you are printing a tuple and the last one has invalid syntax. If you want to use the print function, you need to enable it via from __future__ import print_function.

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If you don't want to use __future__, you can define the logging function like this:

def log(condition, *message):
    if(<do something here...>):
        print ' '.join(str(a) for a in message)
        <perhaps do something more...>
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You should use print message directly, that's enough (it will print the tuple of extra arguments).


Little addition to previous answers: in Python 2.x, print is not a function but a statement, but print(arg1, arg2) is valid... as using print statement on the tuple (arg1, arg2).

This is a bit different from print arg1, arg2 as one can see:

>>> print 'aaa', 'bbb'
aaa bbb
>>> print('aaa', 'bbb')
('aaa', 'bbb')

Now, in addition to themel's answer:

case 1: not using * to expand the argument tuple

>>> def p(*args):
...     a(args)  # <== args is a tuple
>>> def a(*args):
...     print args  # <== args is a tuple (but nothing else can be used)
>>> p('bb')
(('bb',),)

Result is a tuple of a tuple.

Case 2: expanding the arguments in p:

>>> def p(*args):
...      a(*args)  # <== now arguments are expanding
...
>>> p('bb')
('bb',)

Result is a tuple of arguments given to p.

So *args is correct use, but this is not allowed in a statement.

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Good info that the main issue here is that print is a statement (a funky one), and that statements do not support unpacked arguments (even when they are funky variable argument accepting statements) –  hobb Nov 9 '11 at 9:47
    
using print message directly prints the tuple as "('error ', 22)" instead of "error 22". Tried that before posting, but its not what I wanted. –  hobb Nov 9 '11 at 9:54
    
Then, question: was your code print("error ", error_number) doing what you expect? I would say no, as print ('error ', 3) prints ('error ', 3) and not error 3 directly. So that's correct, you needed the new version of print. –  Joël Nov 9 '11 at 10:00
    
My bad, I originally had a lot of print "error", 3-like lines in my code (printing what I expected). When I tried to get the log method to work I tried a lot of different syntaxes and the one with parenthesis happened to end up in the question. Q updated. –  hobb Nov 9 '11 at 11:52

You just use *args to declare the argument tuple, not to access it. See the example in the docs:

def write_multiple_items(file, separator, *args):
    file.write(separator.join(args))

The fact that you get a SyntaxError should tip you off that this has nothing to do with print, anyway.

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@themel No, this is wrong, see my answer: if you do not expand, you get a tuple; if you expand, you get several arguments. This is allowed anywhere. Anyway, your example is correct, as in this case, you need to use the tuple. –  Joël Nov 9 '11 at 8:38

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