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For some reason, my code, that used to working, is now having trouble opening a simple .yaml file. I have tried moving around the file, giving open() the full path to the file and none of it seems to work. I saw that this question has been asked a couple times before but didnt see any answeres that solved the problem.

Any advice of how to call the file, where to move the file, or suggestions of other methods to use will be greatly appreciated!

def readYaml():
file1 = open('recentlyUpdated.yaml')
print 'opened recently updated'
companyData = yaml.load(file1)
file1.close()
print 'read recentyl updated'

file2 = open('sortedLists.yaml')
sortedLists = yaml.load(file2)
file2.close()

return companyData, sortedLists

the error is:

file1 = open('recentlyUpdated.yaml')
IOError: [Errno 2] No such file or directory: 'recentlyUpdated.yaml'

Naturally I checked that this is the correct name of the file.

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2 Answers 2

up vote 6 down vote accepted

Make sure the file exists. You can then either:

  • Call os.chdir(dir), dir being the folder where the file is located, then open the file with just its name like you were doing.
  • Specify an absolute path to the file in your open call.

Remember to use a raw string if your path uses backslashes, like so: dir = r'C:\Python32'

If you went with the chdir method, you can call os.listdir() to see the list of files in the current working directory.

Let me clarify how python finds files. An absolute path is a path that starts with your computers root directory, for example 'C:\Python\scripts..' if you're on windows. A relative path is a path that does not start with your computers root directory, and is instead relative to something called the working directory. You can view python's current working directory by calling os.getcwd().

If you try to do open('sortedLists.yaml'), python will see that you are passing it a relative path, so it will search for the file inside the current working directory. Calling os.chdir will change the current working directory.

Let's say file.txt is found in `C:\Folder'.

To open it, you can do:

os.chdir(r'C:\Folder')
open('file.txt') #relative path, looks inside the current working directory

or

open(r'C:\Folder\file.txt') #full path
share|improve this answer
    
When using os.chdir(dir), do I have to put the path to the directory or just the directory name? Also, once I do get the name of the file, do I put that in open() or do I write open(os.chdir(dir))? –  Santiago Aug 30 '12 at 17:13
    
@Santiago I clarified this in my answer. –  Lanaru Aug 30 '12 at 17:26
    
+ 1 for raw string r'' –  WKordos Nov 15 '13 at 23:16
    
how about jpeg or png types ? even PIL doesn't help .. –  Caglar Sekmen Jul 18 at 13:16
    
You can use the same technique to open any file type. However you will have to pass a 'b' as the second argument in the open function to specify that you're reading a file as binary data. –  Lanaru Jul 18 at 19:40

The file may be existing but may have a different path. Try writing the absolute path for the file.

Try os.listdir() function to check that atleast python sees the file.

Try it as:

file1 = open('Drive:\Dir\recentlyUpdated.yaml')

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it cant seem to recognize any file paths on my computer. Is there any way I can search for a file? @sshekar –  Santiago Aug 30 '12 at 17:24

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