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As part of a large python program I have the following code:

for arg in sys.argv:
    if "name=" in arg:
            name = arg[5:]
            print(name)
    elif "uname=" in arg:
            uname = arg[6:]
            print(uname)
    elif "password=" in arg:
            password = arg[9:]
            print(password)
    elif "bday=" in arg:
            bday = arg[5:]
            print(bday)
    else:
            pass

The program expects something like:

python prog.py "name=Kevin" "uname=kevin" "password=something" "bday=01/01/01"

When I try to use "uname" later, the program fails, claiming "uname is not defined" I added the "print()" lines to try and debug and the "print(uname)" always shows "=kevin" regardless of the index number I put there (here "6:"). The other statements seem to work fine. Is this a bug in python? I am very confused.

Thanks in advance.

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7  
"Is this a bug in python?" The odds of that are nearly zero. –  S.Lott Aug 23 '10 at 15:50
4  
Is using one of getopt, optparse or argparse modules not an option? –  cji Aug 23 '10 at 15:52
1  
Python comes with batteries: docs.python.org/library/optparse.html#module-optparse (for Python2.6 or earlier), or docs.python.org/library/argparse.html#module-argparse (for Python2.7 or better or if you install it yourself). –  unutbu Aug 23 '10 at 15:55
    
don't do this yourself; use a Python command-line args parser. They're built in. –  katrielalex Aug 23 '10 at 15:56

2 Answers 2

up vote 11 down vote accepted

The elif "uname=" is never run because the string "name=" is in "uname=". Essentially, you are overwriting your name variable.

>>> "name=" in "uname="
True

You could reorder your ifs so that so that the uname occurs before the name one.

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Thank you Mark! I didn't see that. Wow. That explains a lot. –  Sky Aug 23 '10 at 15:53
5  
@user428582, a quick fix would be to do if arg.startswith('whatever'):, though using a more robust way of parsing args (e.g. optparse) would be better still... –  Joe Kington Aug 23 '10 at 15:54
3  
Just printing the contents of a variable is not very helpful for debugging when you are doing it for multiple variables. Had you done print "uname", uname you would have seen that the "=kevin" was in the wrong variable. –  unholysampler Aug 23 '10 at 15:58

Let's look closely at this.

if "name=" in arg:
        name = arg[5:]
        print(name)
elif "uname=" in arg:
        uname = arg[6:]
        print(uname)

When I apply this to "name=Kevin", which rule works? Just the first one, right?

When I apply this to "uname=kevin", which rule works? First one? Second one? Both? Interestingly, the first one works. I see name=kevin inside uname=kevin. Not what you wanted, was it?

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