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've been working on HTTLCS and am having some difficulty finishing up the problem.

Solving a problem was not much of an issue, but I have trouble returning my result as a string rather than the tuple data type.

Here is my code:

def wordCount(paragraph):
    splited = paragraph.split()
    wordnum = len(splited)
    eWord = []
    for aWord in splited:
        if "e" in aWord:
            eWord.append(aWord)
    eWordnum = len(eWord)
    percent = round(eWordnum / wordnum * 100,2)
    return "Your text contains", wordnum, "words, of which" , eWordnum , "(" , percent , "%)" , "contains an 'e'." 



print(wordCount(p))

Python outputs ('Your text contains', 108, 'words, of which', 50, '(', 46.3, '%)', "contains an 'e'.") which is a tuple, not a string.

I know I can just put print at the end of the function and call the function without print() statement, but how do I solve this with a return statement?

share|improve this question
add comment

8 Answers 8

up vote 7 down vote accepted

It's because you're using commas in your return statement, which Python is interpreting as a tuple. Try using format() instead:

def wordCount(paragraph):
    splited = paragraph.split()
    wordnum = len(splited)
    eWord = []
    for aWord in splited:
        if "e" in aWord:
            eWord.append(aWord)
    eWordnum = len(eWord)
    percent = round(eWordnum / wordnum * 100,2)
    return "Your text contains {0} words, of which {1} ({2}%) contains an 'e'".format(wordnum, eWordnum, percent)

>>> wordCount("doodle bugs")

"Your text contains 2 words, of which 1 (0.0%) contains an 'e'"
share|improve this answer
2  
+1, best answer because instead of just giving the answer it explains the error –  Christopher Pfohl Jun 7 '12 at 15:14
add comment
return "Your text contains {0} words, of which {1} ({2}%) contains an 'e'.".format(wordnum,eWordnum,percent) 
share|improve this answer
    
+1 I was just writing that! –  the wolf Jun 7 '12 at 15:13
add comment
return "Your text contains " + str(wordnum) + 
       " words, of which " + str(eWordnum) + 
       " (" + str(percent) +  "%)" + " contains an 'e'."

or

return "Your text contains %s words, of which %s (%s%%) contains an 'e'." 
        % (wordnum, eWordnum, percent)

In the first case, you do a string concatenation and you have to convert wordnum, eWordnum and other variables that are numeric ones, into str (by doing str(variableName)) to allow the concatenation (and for haven't runtime error)

In the second case, you do a string replacement that means that you give some kind of "placeholder" %s (that means string) and you replace them with tuple argument that follows the % symbol

If you return something separate by , you'll return a tuple (as you can see)

share|improve this answer
add comment
return "Your text contains %s words, of which %s (%s%%) contains an 'e'." % (wordnum, eWordnum, percent)
share|improve this answer
add comment

A for loop might work, though you would have to format the strings to add spaces to them.

for item in tuplename: print item,

Make sure to keep the comma after item, because that prints it on the same line.

share|improve this answer
add comment
def wordCount(paragraph):
    splited = paragraph.split()
    wordnum = len(splited)
    eWord = []
    for aWord in splited:
        if "e" in aWord:
            eWord.append(aWord)
    eWordnum = len(eWord)
    percent = round(eWordnum / wordnum * 100,2)
    dummy =  "Your text contains {0} words, of which {1} {2} contains an 'e'.".format(wordnum,eWordnum, percent) 
    return dummy


print(wordCount(p))
share|improve this answer
add comment

try this :

return "Your text contains %(wordnum)s words, of which %(ewordnum)s (%(percent)s %%), contains an 'e'."%locals()

using %(variable_name)s as string formatting is often easier to maintain.

share|improve this answer
add comment

how about this

return "Your text contains " + wordnum + " words, of which " + eWordnum + " (" + percent + "%) " + " contains an 'e'."

replace the commas with "+", this should work.

share|improve this answer
    
No, it would not work since you missing conversion between integer and string into concatenation process –  DonCallisto Jun 7 '12 at 15:15
    
you are right, I missed that. –  Infinite_Loop Jun 7 '12 at 15:17
add comment

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.