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I'm trying to upload a simple file from my local host (Windows) to a remote machine (UNIX) using Python 3.3

Here's the code:

import os
import Crypto
import paramiko
import pysftp

localpath = "C:\\py.txt"
remotepath = "/tmp/py.txt"

s = pysftp.Connection(host='10.1.1.1', username='user', password='pass')

s.put(localpath, remotepath)

The error which returns is:

Traceback (most recent call last):
  File "<pyshell#10>", line 1, in <module>
    s.put(localpath, remotepath)
  File "C:\Python33\lib\site-packages\pysftp.py", line 349, in put
    confirm=confirm)
  File "C:\Python33\lib\site-packages\paramiko-1.14.0-       py3.3.egg\paramiko\sftp_client.py", line 585, in put
    file_size = os.stat(localpath).st_size
FileNotFoundError: [WinError 2] The system cannot find the file specified: 'C://py.txt'

I've tried different prefix for localpath, like 'C:\py.txt' but I get the same results.

Thanks in advance

share|improve this question
    
C:\py.txt should work. Are you sure that you have a file py.txt in your C:\ directory? –  ρss Jun 3 '14 at 20:11
    
Yes I did double check that already –  kovadom Jun 4 '14 at 9:30

2 Answers 2

Python uses backslash to quote characters, like \n = newline and \t = tab; thus \\\\ = one slash.

Use an r prefix to make a raw string literal:

localpath = r"C:\\py.txt"
share|improve this answer
    
I've tried that, I still get the same error FileNotFoundError: [WinError 2] The system cannot find the file specified: 'C:\\\\py.txt' –  kovadom Jun 4 '14 at 9:26
    
oh sorry: try localpath = r"py.txt" -- no C: drive prefix. –  shavenwarthog Jun 4 '14 at 18:45

I've found the problem. The problem was with the file location, as it's name was 'py.txt' but my windows didn't show file extensions, so the actual file name was py.txt.txt

share|improve this answer
1  
That is why I asked you before that if you have a file named py.txt. :) In your case the file name is py.txt.txt Don't forget to accept your answer too . –  ρss Jun 4 '14 at 12:16

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