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I need to store a file directory in a variable because it will be used later. In my script below I want to print out the contents but I got a TypeError: 'file' object is not callable.

The script:

posfile = 'C:/Users/name/Desktop/textfile.txt'
csv_data=csv.reader(file(posfile))
count_test = 0
for row in csv_data:
    count_test = count_test + 1
    print count_test, row
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I don't get that error, and your code looks fine - there's nothing wrong with storing a filename in a variable, at any rate. What version of Python are you using? – David Z May 8 '12 at 18:49
    
Python 2.6 I seriously got that error – ThanaDaray May 8 '12 at 18:50
3  
I'd guess that somewhere above this code you did something like file = open(...) – Daenyth May 8 '12 at 18:54
    
I'd put money that @Daenyth is right, which makes the call to file() fail (regardless of what arguments you try to call it with). – Kirk Strauser May 8 '12 at 18:56
2  
@ThanaDaray if Daenyth is wrong, provide a code sample that demonstrates the problem when run in isolation -- right now, none of us can reproduce it. The "solution" you accepted, changing file() to open(), just works around the problem -- that problem being that you've clearly shadowed the file builtin elsewhere in your code. – Charles Duffy May 8 '12 at 19:01
up vote 2 down vote accepted

Try:

posfile = 'C:/Users/name/Desktop/textfile.txt'
csv_data=csv.reader(open(posfile, 'rb'))
count_test = 0
for row in csv_data:
    count_test = count_test + 1
    print count_test, row

You may also want to check that you haven't changed the value of file some other place in your code.

file(posfile) 

should work.

If you've done something like file = somefile. Earlier in the code you could have problems. because file is no longer a file object.

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