9
def FileCheck(fn):       
       try:
           fn=open("TestFile.txt","U") 
       except IOError: 
           print "Error: File does not appear to exist."
       return 0 

I'm trying to make a function that checks to see if a file exists and if doesn't then it should print the error message and return 0 . Why isn't this working???

1
  • 1
    Specify what you mean by "not working."
    – kindall
    Dec 5, 2011 at 1:21

4 Answers 4

24

You'll need to indent the return 0 if you want to return from within the except block. Also, your argument isn't doing much of anything. Instead of assigning it the filehandle, I assume you want this function to be able to test any file? If not, you don't need any arguments.

def FileCheck(fn):
    try:
      open(fn, "r")
      return 1
    except IOError:
      print "Error: File does not appear to exist."
      return 0

result = FileCheck("testfile")
print result
5
  • 1
    To elaborate, the problem identified by OregonTrail is that your return 0 is indented to the same level as your if statement. This puts the return outside the if, so the function returns 0 regardless of whether it got an error or not.
    – kindall
    Dec 5, 2011 at 1:21
  • how do i call the function? do i need to set a file to a variable? if i did that it would just be opening the file . . .
    – O.rka
    Dec 5, 2011 at 1:29
  • I've added some lines to flesh out the example Dec 5, 2011 at 1:30
  • This worked well for me. I used f = open(fn, "r"). However, when I used a finally block to close a file that does not exist, I got the error message UnboundLocalError: local variable 'f' referenced before assignment. I could only close the file successfully with an else block and not a finally block - I used else: f.close().
    – edesz
    Aug 1, 2018 at 15:05
  • ah, good point, try .. else is the way to go here for resiliant execution Aug 1, 2018 at 19:04
5

I think os.path.isfile() is better if you just want to "check" if a file exists since you do not need to actually open the file. Anyway, after open it is a considered best practice to close the file and examples above did not include this.

2
  • I like this better. Is there a version for checking a directory too?
    – O.rka
    Mar 30, 2016 at 20:43
  • 1
    isfile is definitely better. For plain files, it should be harmless to open files, but it can have unexpected side-effects if, for example, it's a named pipe. Also, when you leave the scope, the file should close automatically.
    – mlv
    Mar 31, 2016 at 12:54
4

This is likely because you want to open the file in read mode. Replace the "U" with "r".

Of course, you can use os.path.isfile('filepath') too.

-1

If you just want to check if a file exists or not, the python os library has solutions for that such as os.path.isfile('TestFile.txt'). OregonTrails answer wouldn't work as you would still need to close the file in the end with a finally block but to do that you must store the file pointer in a variable outside the try and except block which defeats the whole purpose of your solution.

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