20
def choose_option(self):
        if self.option_picker.currentRow() == 0:
            description = open(":/description_files/program_description.txt","r")
            self.information_shower.setText(description.read())
        elif self.option_picker.currentRow() == 1:
            requirements = open(":/description_files/requirements_for_client_data.txt", "r")
            self.information_shower.setText(requirements.read())
        elif self.option_picker.currentRow() == 2:
            menus = open(":/description_files/menus.txt", "r")
            self.information_shower.setText(menus.read())

I am using resource files and something is going wrong when i am using it as argument in open function, but when i am using it for loading of pictures and icons everything is fine.

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  • For someone else that gets a similar error, you may have invalid characters (for example : or ?) in the filename. – George Ogden Sep 10 at 9:26

14 Answers 14

30

That is not a valid file path. You must either use a full path

open(r"C:\description_files\program_description.txt","r")

Or a relative path

open("program_description.txt","r")
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  • What does the initial r in open(r"C:\file-path\file.txt", "r") signify? – Calydon Oct 17 '19 at 19:52
  • 6
    @Calydon The leading r denotes a python raw string. It treats \ as a literal character. No need to escape it. – Stacksatty Oct 27 '19 at 17:34
6

I received the same error when trying to print an absolutely enormous dictionary. When I attempted to print just the keys of the dictionary, all was well!

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4

I also ran into this fault when I used open(file_path). My reason for this fault was that my file_path had a special character like "?" or "<".

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4

Add 'r' in starting of path:

path = r"D:\Folder\file.txt"

That works for me.

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3

you should add one more "/" in the last "/" of path, that is: open('C:\Python34\book.csv') to open('C:\Python34\\book.csv'). For example:

import csv
with open('C:\Python34\\book.csv', newline='') as csvfile:
    spamreader = csv.reader(csvfile, delimiter='', quotechar='|')
    for row in spamreader:
        print(row)
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  • 1
    Welcome to Stack Overflow! Whilst this may theoretically answer the question, it would be preferable to include the essential parts of the answer here, and provide the link for reference. – Enamul Hassan Jan 5 '16 at 16:14
  • 6
    There's a set of problems with this answer: 1) open('C:\Python34\book.csv') to open('C:\Python34\book.csv') -> There is no difference between the two lines. Did you mean open('C:\Python34\book.csv') to open('C:\\Python34\\book.csv')? 2) Both the code in the example and in the first line is wrong, as you're not escaping backslashes (or, in the case of your example, all of them.) 'C:\Python34\\book.csv' should be 'C:\\Python34\\book.csv' or r'C:\Python34\book.csv' – GPhilo May 31 '17 at 9:41
  • 1
    If you click Edit you'll see that @hiep-tran did type double slashes, but SO rendered these as single slashes. I fixed the formatting with backticks around the example commands. – Charlie Joynt Mar 15 '18 at 10:59
3

In my case, I was using an invalid string prefix.

Wrong:

path = f"D:\Folder\file.txt"

Right:

path = r"D:\Folder\file.txt"
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2

Just replace with "/" for file path :

   open("description_files/program_description.txt","r")
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  • I am facing same issues like this. But , i replace with "/", it is work well. – P113305A009D8M May 24 '18 at 7:22
2

In Windows-Pycharm: If File Location|Path contains any string like \t then need to escape that with additional \ like \\t

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1

I had the same problem It happens because files can't contain special characters like ":", "?", ">" and etc. You should replace these files by using replace() function:

filename = filename.replace("special character to replace", "-")
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1

In my case the error was due to lack of permissions to the folder path. I entered and saved the credentials the issue was solved.

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0
for folder, subs, files in os.walk(unicode(docs_dir, 'utf-8')):
    for filename in files:
        if not filename.startswith('.'):
            file_path = os.path.join(folder, filename)
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0

In my case,the problem exists beacause I have not set permission for drive "C:\" and when I change my path to other drive like "F:\" my problem resolved.

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0
import pandas as pd
df = pd.read_excel ('C:/Users/yourlogin/new folder/file.xlsx')
print (df)
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  • 3
    It would be better if you could add more instructions to the answer, rather than just pasting the code. – Calos Mar 3 at 5:46
  • If you didn't get it, mostly it means use / instead of \. – Jabro Mar 6 at 11:56
0

I got this error because old server instance was running and using log file, hence new instance was not able to write to log file. Post deleting log file this issue got resolved.

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