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I have a function that processes file contents, but right now I have the filename hardcoded in the function like this as a keyword argument:

def myFirstFunc(filename = open('myNotes.txt', 'r')): 
    pass
#and I call it like this:

myFirstFunc()

I would like to treat the argument as a filename, and process the contents.

  1. how do i modify the statement above-I tried this: filename= sys.argv[1]# or is it 0?
  2. how do I call it?

Please help with basic Python (Just learning)

Thanks

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2  
Don't use default parameters like that. It will open the file 'myNotes.txt' even if the function is never called. Default parameters should almost always be immutable values. –  Steve Howard Jun 23 '11 at 23:51
2  
"I have the filename hardcoded in the function..." No, you don't; you have the file object itself specified as a default parameter. This is a really bad idea. You want to pass the actual name 'myNotes.txt' to the function, not the open() result. Let the body of the function do the open() work. –  Karl Knechtel Jun 24 '11 at 2:29
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3 Answers 3

something like this:

#!/usr/bin/python3

import sys


def myFirstFunction():
    return open(sys.argv[1], 'r')

openFile = myFirstFunction()

for line in openFile:
    print (line.strip()) #remove '\n'? if not remove .strip()
    #do other stuff

openFile.close() #don't forget to close open file

then I would call it like the following:

./readFile.py temp.txt

which would output the contents of temp.txt

sys.argv[0] outputs the name of script. In this case ./readFile.py

Updating My Answer
because it seems others want a try approach

How do I check if a file exists using Python? is a good question on this subject of how to check if a file exists. There appears to be a disagreement on which method to use, but using the accepted version it would be as followed:

 #!/usr/bin/python3

import sys


def myFirstFunction():
    try:
        inputFile = open(sys.argv[1], 'r')
        return inputFile
    except Exception as e:
        print('Oh No! => %s' %e)
        sys.exit(2) #Unix programs generally use 2 for 
                    #command line syntax errors
                    # and 1 for all other kind of errors.


openFile = myFirstFunction()

for line in openFile:
    print (line.strip())
    #do other stuff
openFile.close()

which would output the following:

$ ./readFile.py badFile
Oh No! => [Errno 2] No such file or directory: 'badFile'

you could probably do this with an if statement, but I like this comment on EAFP VS LBYL

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1  
A note to add to this - One should be careful when retrieving input from the command line. What if the argument is not a valid path to a file? What if there is no argument present? Doesn't matter immediately for this quick example, but it's good to remember for testing and future work. –  Doug Swain Jun 23 '11 at 21:46
    
I have to agree with Doug. I would do this a bit differently in production but this may suffice for the question. Anything more may distract from the immediate question. But if this is a simple text manipulation for personal needs this should be all you need. –  matchew Jun 23 '11 at 21:47
    
Agreed also. That was more just to point it out for later on. Didn't seem like another answer just for that addition was needed :) –  Doug Swain Jun 23 '11 at 21:50
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For Python 3 you can use the context manager.

# argv[0] is always the name of the program itself.
try:
    filename = sys.argv[1]
except IndexError:
    print "You must supply a file name."
    sys.exit(2)

def do_something_with_file(filename):    
    with open(filename, "r") as fileobject:
        for line in fileobject:
            do_something_with(line)

do_something_with_file(filename)
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This is more than you asked for, but here's a common idiom I use for using command line arguments:

def do_something_with_file(filename):    
    with open(filename, "r") as fileobject:
        for line in fileobject:
            pass    # Replace with something useful with line.

def main(args):
    'Execute command line options.'
    try:
        src_name = args[0]
    except IndexError:
        raise SystemExit('A filename is required.')

    do_something_with_file(src_name)


# The following three lines of boilerplate are identical in all my command-line scripts.
if __name__ == '__main__':
    import sys
    main(sys.argv[1:])  # Execute 'main' with all the command line arguments (excluding sys.argv[0], the program name).
share|improve this answer
    
Your tuple unpacking is not quite equivalent to the code in your comment, because it will raise an exception if more than one argument is supplied (this is a good side effect, but it will make the given error message slightly incorrect). –  Steve Howard Jun 24 '11 at 0:02
    
@Steve Howard, good point. I'll leave that code off until there's more command line parsing. –  Jon-Eric Jun 24 '11 at 3:23
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