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Answer Has Been Decided

The problem was not listing the entire file listing (i.e. DRIVE1\DRIVE2\...\fileName.txt).
Also, note that the backslashes must be turned into forwardslashes in order for
Python to read it (backslashes are outside of the unicode listing).
Thus, using: addy = 'C:/Users/Tanner/Desktop/Python/newfile.txt'
      returns the desired results.

It's been a while since I have played with Python, and for my most recent class, we are required to make a BFS search that does a Word Puzzle that the Alice in Wonderland author created. I am just stating this, as the algorithm is the homework, which I have completed. In other words, my question does not apply to the answer to my homework question.

With that out of the way, I am in need of help on how to open, edit, read, create some form of text files in Python. My real problem is to place a list of words that I have inside of a .txt file, into a Dictionary . but I would much rather do this myself. Thus, I am left with how to do the said to text files.

NOTE:

 I am running v3.3. 
 All documentation that I have found while searching how to solve this simple problem
      is in regards to 2.7 or older.

I have tried to use:

>>> import sys from argv
>>> script, filename = argv
    Traceback (most recent call last):
    File "<pyshell#15>", line 1, in <module>
       script, filename = argv
    ValueError: need more than 1 value to unpack

I have also tried to use:

>>> f = open(newfile.txt, 'r')

But again, I get this error:

 File "<pyshell#8>", line 1, in <module>
        f = open (filename, 'r')
 FileNotFoundError: [Errno 2] No such file or directory: 'newfile.txt'

However, I am positive that this file does exist. All of this being said, I am not sure if this is a directory problem, a problem understanding, or what... That is, anything would help!

share|improve this question
    
Use quotes for your filename. – Eric Fortin Feb 19 '14 at 1:56
    
and from sys import argv – mhlester Feb 19 '14 at 1:59
    
Aslo, @Eric Fortin, the same exact error as the last one in my OP comes up while trying to do it that way. – T.Woody Feb 19 '14 at 2:05
up vote 2 down vote accepted

First, if you want to retrieve a file name which is passed as the first argument to your script, use code like this:

import sys
if len(sys.argv) > 2:
    filename = sys.argv[1]
else:
    # set a default filename or print an error

Secondly, the error clearly indicates that the script can't find the file newfile.txt. So it is either not in the current directory, you don't have the permission to read it, etc...

share|improve this answer
    
check out the in-built python libraries argsparse (or getopt or optparse) if you want funky command line argument handling. – demented hedgehog Feb 19 '14 at 2:05
    
I think the OP needs to get the basics right beforehand... – isedev Feb 19 '14 at 2:06
    
yeah.. you're right. – demented hedgehog Feb 19 '14 at 2:08
    
I did the import code (@Mhlester, I realized I added an 's' at the end, sorry), and I return filename = 'newfile.txt'. But I am still having a problem opening it. Does this have to be saved in a certain place (i.e. my file needs moved / directory needs changed)? Right now, the file I am trying to read is in a folder, and the folder is on my desktop (windows 8.1 user). – T.Woody Feb 19 '14 at 2:11
    
try using the full path to the file, i.e. DRIVE:/DIR1/DIR2/FILENAME, or cd to the folder where the file resides before running the script. – isedev Feb 19 '14 at 2:18

To open a file for reading, use with command as follows

# This is python 3 code
with open('yourfile.txt', 'r') as f:
    for line in f:
        print(line)

with command used together with open command has already the raising exception process.

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