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.

Just ran into the following Pythonic behavior that I cannot get my head around:

names = ["Paul", "Mary", "Susan"]
names.sort()

def valuate(string):
    print ord('A')
    return sum(ord(s) for s in string)

i = 1
for name in names:
    print i, name, valuate(name)
    i += 1

which I would expect to output:

65
1 Mary 409
65
2 Paul 402
65
3 Susan 522

But instead outputs:

1 Mary 65
409
2 Paul 65
402
3 Susan 65
522

It seems the print statement already tries to output 3 elements, and when print ord('A') is called, takes this to be the third statement?

I did not find any references to this behavior and don't have a clue how I can Google this. By the way, I'm using Python 2.7.3 here. Anyhoo, I'm confused here.

share|improve this question

5 Answers 5

up vote 2 down vote accepted

The surprise you're encountering is that the print statement prints out each of the expressions it is given before evaluating the next one. That is, a statement like print A, B, C is equivalent to:

print A, # note, the trailing comma suppresses the newline
print B,
print C

As you'd expect from separate statements, A gets written out before B or C is evaluated.

That surprise is perhaps part of the reason that Python 3 has done away with the print statement in favor of a builtin print function which behaves more like you expect (all of its arguments are evaluated before the function runs).

In Python 2, you can get the Python 3 style print if you want using a future import:

from __future__ import print_function
share|improve this answer
    
Indeed, my conceptual model of the print function was that all arguments are evaluated before the print occurs. But now I understand the way it executes and also how it will behave in the future. –  Joost Dec 10 '12 at 7:02

It's not just the print statement, it's the function call.

print i, name, valuate(name)

Prints i, then name, then calls valuate which prints 65 (and a new line) then on return the print statement continues to print the return value (and another newline).

share|improve this answer

The sequence of events is as follows:

print i,
print name,
val = valuate(name) # prints ord('A')
print val

This is confirmed by looking at the bytecodes generated for print i, name, valuate(name):

 11          19 LOAD_FAST                0 (i)
             22 PRINT_ITEM          
             23 LOAD_FAST                1 (name)
             26 PRINT_ITEM          
             27 LOAD_GLOBAL              1 (valuate)
             30 LOAD_FAST                1 (name)
             33 CALL_FUNCTION            1
             36 PRINT_ITEM          
             37 PRINT_NEWLINE       

I don't know if this evaluation order is guaranteed (a quick search didn't reveal anything). I definitely wouldn't rely on it, and therefore wouldn't write code like this.

share|improve this answer

It's very simple. Your print statement evaluates the arguments lazily. It prints i first, then name, and then it calls valuate. Valuate prints 65. Then your print statement prints the result of valuate.

share|improve this answer

I think that a small ',' would make things a lot more simple to grasp.

names = ["Paul", "Mary", "Susan"]
names.sort()

def valuate(string):
    print ord('A'),
    return sum(ord(s) for s in string)

i = 1
for name in names:
    print i, name, valuate(name)
    i += 1

Now that outputs:

1 Mary 65 409
2 Paul 65 402
3 Susan 65 522

The comma after print makes it not to print a new line character at the end. So now you can see that valuate first prints the ord('A') and then returns the output for the outer print. (I also indented the i += 1 line)

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.