38

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?

1

8 Answers 8

66

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.

7
  • 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, 2013 at 20:09
  • in the function mkdir_p there's no handle to sftp Feb 12, 2013 at 9:16
  • I found another problem. When uploading the file, it starts from the home directory. For example, if I want to put a file in /var/www/temp/, it upload it to /home/user/var/www/temp/ . With this correction it works for me: if remote_directory == '/' or remote_directory == '': if remote_directory == '/': sftp_client.chdir('/') . Moreover, I found that using os.path.split is more pythonic, maybe :) remote_dirname, basename = os.path.split(remote_directory) mkdir_p(sftp_client, remote_dirname) Feb 12, 2013 at 9:30
  • 1
    good point. updated accordingly (not 100% sure about the more Pythonic statement though ;P)
    – isedev
    Feb 13, 2013 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, 2013 at 18:19
12

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_)
3
  • 1
    +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" . Jan 14, 2016 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, 2016 at 4:52
  • 1
    You shouldn't use except: to check for errors. See: stackoverflow.com/a/18982771/1113207 May 14, 2020 at 8:08
8

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)
5

you can use pysftp package:

import pysftp as sftp

#used to pypass key login
cnopts = sftp.CnOpts()
cnopts.hostkeys = None

srv = sftp.Connection(host="10.2.2.2",username="ritesh",password="ritesh",cnopts=cnopts)
srv.makedirs("a3/a2/a1", mode=777)  # will happily make all non-existing directories

you can check this link for more details: https://pysftp.readthedocs.io/en/release_0.2.9/cookbook.html#pysftp-connection-mkdir

2

My version:

def is_sftp_dir_exists(sftp, path):
    try:
        sftp.stat(path)
        return True
    except Exception:
        return False


def create_sftp_dir(sftp, path):
    try:
        sftp.mkdir(path)
    except IOError as exc:
        if not is_sftp_dir_exists(sftp, path):
            raise exc


def create_sftp_dir_recursive(sftp, path):
    parts = deque(Path(path).parts)

    to_create = Path()
    while parts:
        to_create /= parts.popleft()
        create_sftp_dir(sftp, str(to_create))

We try mkdir without trying listdir/stat first due to EAFP principle (it's also more performant to make one network request than several).

5
  • 1
    But this way, create_sftp_dir will seemingly succeed, if the directory does not exist and cannot be created. May 14, 2020 at 8:50
  • @MartinPrikryl you're correct, thanks. I fixed the code, it still tries to create a dir without pre-check and does the check only in case dir wasn't created to determine the reason. May 14, 2020 at 11:31
  • OK, but now, if your are calling this with /foo/bar and both exist, your code will do four requests, comparing to one, if you first tested /foo/bar existence. May 14, 2020 at 11:35
  • Btw, are you sure the Path class will handle posix-style SFTP paths correctly, when used on Windows? May 14, 2020 at 11:35
  • "will do four requests, comparing to one" - to be precise - 4 to 2 (one to check + one to create). That's true only for the case when we try to create a dirs that already exist. For cases when many dirs don't exist, we will get more benefit more dirs don't exist. Number of requests also depends on how you check things: left-to-right or right-to-left, which is EAFP-indifferent. Good point about SFTP paths on Windows, thanks, I'll think about it further! May 14, 2020 at 12:04
1

Paramiko contains a mkdir function:

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

1
  • 1
    I know. But does this handle the case of a non existing path? Feb 11, 2013 at 19:56
1

Assuming sftp operations are expensive, I would go with:

def sftp_mkdir_p(sftp, remote_directory):
    dirs_exist = remote_directory.split('/')
    dirs_make = []
    # find level where dir doesn't exist
    while len(dirs_exist) > 0:
        try:
            sftp.listdir('/'.join(dirs_exist))
            break
        except IOError:
            value = dirs_exist.pop()
            if value == '':
                continue
            dirs_make.append(value)
        else:
            return False
    # ...and create dirs starting from that level
    for mdir in dirs_make[::-1]:
        dirs_exist.append(mdir)
        sftp.mkdir('/'.join(dirs_exist))```
0

If you want to do it without an exception flow, reserving exceptions only for exception flow. You could do the following:

def ensure_sftp_directories_exist(sftp: SFTPClient, remote_dir: str) -> None:
    cleaned_remote_dir = remote_dir.strip('/') # Remove leading and trailing slashes
    sub_directories = cleaned_remote_dir.split("/") # Get all directories
    current_directory = "/" # Root is start
    for directory in sub_directories:
        # Skip empty directory names for accidental double '/'
        if not directory:
            continue
        
        if directory not in sftp.listdir(current_directory):
            sftp.mkdir(f"{current_directory}/{directory}")
        
        current_directory = f"{current_directory}/{directory}"

Notes:

  1. Be aware that if you use this code in concurrency you can have race conditions when create the directory.
  2. This code might be slow if you have a lot of directories that need to be listed.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.