I want to upload a file on a remote server with Python. I'd like to check beforehand if the remote path is really existing, and if it isn't, to create it. In pseudocode:

if(remote_path not exist):
    create_path(remote_path)
upload_file(local_file, remote_path)

I was thinking about executing a command in Paramiko to create the path (e.g. mkdir -p remote_path). I came up with this:

# I didn't test this code

import paramiko, sys

ssh = paramiko.SSHClient()
ssh.connect(myhost, 22, myusername, mypassword)
ssh.exec_command('mkdir -p ' + remote_path)
ssh.close

transport = paramiko.Transport((myhost, 22))
transport.connect(username = myusername, password = mypassword)

sftp = paramiko.SFTPClient.from_transport(transport)
sftp.put(local_path, remote_path)
sftp.close()

transport.close()

But this solution doesn't sound good to me, because I close the connection and then reopen it again. Is there a better way to do it?

up vote 34 down vote accepted

SFTP supports the usual FTP commands (chdir, mkdir, etc...), so use those:

sftp = paramiko.SFTPClient.from_transport(transport)
try:
    sftp.chdir(remote_path)  # Test if remote_path exists
except IOError:
    sftp.mkdir(remote_path)  # Create remote_path
    sftp.chdir(remote_path)
sftp.put(local_path, '.')    # At this point, you are in remote_path in either case
sftp.close()

To fully emulate mkdir -p, you can work through remote_path recursively:

import os.path

def mkdir_p(sftp, remote_directory):
    """Change to this directory, recursively making new folders if needed.
    Returns True if any folders were created."""
    if remote_directory == '/':
        # absolute path so change directory to root
        sftp.chdir('/')
        return
    if remote_directory == '':
        # top-level relative directory must exist
        return
    try:
        sftp.chdir(remote_directory) # sub-directory exists
    except IOError:
        dirname, basename = os.path.split(remote_directory.rstrip('/'))
        mkdir_p(sftp, dirname) # make parent directories
        sftp.mkdir(basename) # sub-directory missing, so created it
        sftp.chdir(basename)
        return True

sftp = paramiko.SFTPClient.from_transport(transport)
mkdir_p(sftp, remote_path) 
sftp.put(local_path, '.')    # At this point, you are in remote_path
sftp.close()

Of course, if remote_path also contains a remote file name, then it needs to be split off, the directory being passed to mkdir_p and the filename used instead of '.' in sftp.put.

  • it doesn't handle non-existing parent directories (-p). Compare os.mkdir() vs. os.makedirs(). Split the path and make the recursive call to create parent directories if necessary – jfs Feb 11 '13 at 20:09
  • yes, agreed, will update accordingly. – isedev Feb 11 '13 at 20:59
  • in the function mkdir_p there's no handle to sftp – franzlorenzon Feb 12 '13 at 9:16
  • 1
    good point. updated accordingly (not 100% sure about the more Pythonic statement though ;P) – isedev Feb 13 '13 at 1:17
  • 2
    you should use posixpath instead of os.path for ftp paths. You could avoid visiting all path segments by moving the recursive call into the exception handler – jfs Feb 15 '13 at 18:19

Something simpler and slightly more readable too

def mkdir_p(sftp, remote, is_dir=False):
    """
    emulates mkdir_p if required. 
    sftp - is a valid sftp object
    remote - remote path to create. 
    """
    dirs_ = []
    if is_dir:
        dir_ = remote
    else:
        dir_, basename = os.path.split(remote)
    while len(dir_) > 1:
        dirs_.append(dir_)
        dir_, _  = os.path.split(dir_)

    if len(dir_) == 1 and not dir_.startswith("/"): 
        dirs_.append(dir_) # For a remote path like y/x.txt 

    while len(dirs_):
        dir_ = dirs_.pop()
        try:
            sftp.stat(dir_)
        except:
            print "making ... dir",  dir_
            sftp.mkdir(dir_)
  • +1 for providing a non-recursive alternative. Notice that the "remote" input parameter here is a remote file path. If you want this function to have a remote directory path as input instead, replace "dir_, basename = os.path.split(remote)" with "dir_ = remote" . – Alan Evangelista Jan 14 '16 at 10:06
  • @AlanEvangelista Thanks for the comment. Updated the code that passes a flag is_dir. Please review and edit if required. – gabhijit Jan 15 '16 at 4:52

Had to do this today. Here is how I did it.

def mkdir_p(sftp, remote_directory):
    dir_path = str()
    for dir_folder in remote_directory.split("/"):
        if dir_folder == "":
            continue
        dir_path += r"/{0}".format(dir_folder)
        try:
            sftp.listdir(dir_path)
        except IOError:
            sftp.mkdir(dir_path)

Paramiko contains a mkdir function:

http://paramiko-docs.readthedocs.org/en/latest/api/sftp.html#paramiko.sftp_si.SFTPServerInterface.mkdir

  • 1
    I know. But does this handle the case of a non existing path? – franzlorenzon Feb 11 '13 at 19:56
  • 1
    See the code in my answer... – isedev Feb 11 '13 at 19:59

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