0

My code is throwing a SyntaxError: invalid syntax error at the last else statement (second to last line in code below). Can anyone see what is causing this? I'm running Python 2.7 on CentOS.

def mintosec(time):
    foo = time.split(':')
    if re.match('o|O',foo[0]) == True: #check to see if any zeros are incorrectly labled as 'o's and replace if so
            div = list(foo[0])
            if div[0] == 'o' or 'O':
                    new = 0
            else:
                    new = div[0]
            if div[1] == 'o' or 'O':
                    new1 = 0
            else:
                    new1 = div[1]
            bar = int(str(new)+str(new1))*60
    else:
            bar = int(foo[0]) * 60
  • 2
    You are making a classical mistake in your if conditions, see How do I test one variable against multiple values? – Martijn Pieters Mar 17 '15 at 18:07
  • 1
    Are you sure you are running the code in your post? There is no syntax error here. There are other problems, just not syntax errors. You would get a syntax error if you unbalanced the parentheses on the preceding line (put one too many ( on there, or miss out on a )), but that's not the case with the code you posted here. – Martijn Pieters Mar 17 '15 at 18:08
  • The interpreter sees div[0] == 'o' as one condition, and 'O' as another condition. Either the first one will be true, or it will be false and the interpreter will try the second one, which will always be true. A non-empty string evaluates to True and an empty string evaluates to False. – TigerhawkT3 Mar 17 '15 at 18:10
2

You cannot do:

if div[0] == 'o' or 'O':
    new = 0

You must declare it like:

if div[1] == 'o' or div[1] == 'O':
    new1 = 0

A better way to do this check would be:

 if div[1].lower() == 'o'
| improve this answer | |
  • Ah yes you are correct about the syntax error. I may have misinterpreted the problem. Though as you stated in your comment there is no syntax error. – marsh Mar 17 '15 at 18:09
  • 1
    If this is the problem then the post is a duplicate. In this case I'd use div[1].lower() == 'o', by the way. – Martijn Pieters Mar 17 '15 at 18:10
  • As would I, I am never sure though if I should be suggesting coding guidelines or simply helping them with their error. Is there a stack overflow section on this? – marsh Mar 17 '15 at 18:11
  • 1
    This change actually corrected the syntax error. It must have been causing a syntax error further down like having a missing quote messes thing up later in your code. Thank you! – G Warner Mar 17 '15 at 18:11
  • OK I see, thanks. While we're at it, can you see what is wrong with my regular expression? I'm trying to launch the if statement if foo[0] contains either 'o' or 'O' but it keeps passing straight to the else statement. Is re.match() not the appropriate function? Is my expression, 'o|O' incorrect? – G Warner Mar 17 '15 at 18:47
1

another way to test vs more than 1 item is:

if div[1] in {'o', 'O'}:
    # stuff.

as described in How do I test one variable against multiple values?

| improve this answer | |
  • Or use div[1].lower() == 'o' to signal more clearly that the test is case insensitive. – Martijn Pieters Mar 17 '15 at 18:34

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.