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Someone has recently demonstrated to me that we can print variables in Python like how Perl does.

Instead of:

print("%s, %s, %s" % (foo, bar, baz))

we could do:

print("%(foo)s, %(bar)s, %(baz)s" % locals())

Is there a less hacky looking way of printing variables in Python like we do in Perl? I think the 2nd solution actually looks really good and makes code a lot more readable, but the locals() hanging around there makes it look like such a convoluted way of doing it.

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This looks awfully close to stackoverflow.com/questions/3534714/… ... – David Z Aug 20 '10 at 20:50
    
No it doesn't... – Glenn Maynard Aug 20 '10 at 20:55
1  
stackoverflow.com/questions/1550479 (no endorsement of the answers, which I havn't read) – Glenn Maynard Aug 20 '10 at 20:59
1  
You've said, essentially, that you want Python to be more like Perl. Which aspect of Perl? There's more than one way to format a string. – Greg Hewgill Aug 20 '10 at 21:16
1  
Just the part where we can format a string by referencing variables directly in the quotes, rather than having to format it outside of the quotes. I just find that strings are a lot more readable when you don't have to read outside the quotes. No break in flow (can't think of a better way to describe it.. urgh) – Chien Aug 20 '10 at 21:32
up vote 9 down vote accepted

The only other way would be to use the Python 2.6+/3.x .format() method for string formatting:

# dict must be passed by reference to .format()
print("{foo}, {bar}, {baz}").format(**locals()) 

Or referencing specific variables by name:

# Python 2.6
print("{0}, {1}, {2}").format(foo, bar, baz) 

# Python 2.7/3.1+
print("{}, {}, {}").format(foo, bar, baz)    
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This doesn't exactly make it look cleaner. – Glenn Maynard Aug 20 '10 at 21:04
1  
Just added the specific ones for when referencing the variable directly. The 2.7/3.1+ version is definitely the cleanest of them all in my opinion. – jathanism Aug 20 '10 at 21:11
3  
Fine, right up until you start pulling the strings from a localization database. At that point, you have to go back to using explicit orderings because different languages prefer different orders of values. (Really.) – Donal Fellows Aug 20 '10 at 21:33
2  
you can use vars() instead of locals(). Also vars(obj) to use obj.__dict__ for the substitutions – John La Rooy Aug 21 '10 at 7:10

Using % locals() or .format(**locals()) is not always a good idea. As example, it could be a possible security risk if the string is pulled from a localization database or could contain user input, and it mixes program logic and translation, as you will have to take care of the strings used in the program.

A good workaround is to limit the strings available. As example, I have a program that keeps some informations about a file. All data entities have a dictionary like this one:

myfile.info = {'name': "My Verbose File Name", 
               'source': "My Verbose File Source" }

Then, when the files are processes, I can do something like this:

for current_file in files:
    print 'Processing "{name}" (from: {source}) ...'.format(**currentfile.info)
    # ...
share|improve this answer
    
+1 This is a good point. Don't know why someone would downvote it. – John La Rooy Aug 21 '10 at 6:55
    
Yep, see stackoverflow.com/questions/1550479/… for a thorough discussion on why Explicit is better than implicit. in exactly this context. – clacke Mar 12 '15 at 14:21

I prefer the .format() method myself, but you can always do:

age = 99
name = "bobby"
print name, "is", age, "years old"

Produces: bobby is 99 years old. Notice the implicit spaces.

Or, you can get real nasty:

def p(*args):
    print "".join(str(x) for x in args))

p(name, " is ", age, " years old")
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1  
Why would you do that? (The nasty part) – sharvey Aug 21 '10 at 4:09
    
@sharvey, the question is asking for unpythonic. – carl Aug 21 '10 at 7:49

The answer is, no, the syntax for strings in Python does not include variable substitution inthe style of Perl (or Ruby, for that matter). Using … % locals() is about as slick as you are going to get.

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