"""This class extends pexpect.spawn to specialize setting up SSH connections. This adds methods for login, logout, and expecting the shell prompt. $Id: pxssh.py 513 2008-02-09 18:26:13Z noah $ """ from pexpect import * import pexpect import time __all__ = ['ExceptionPxssh', 'pxssh'] # Exception classes used by this module. class ExceptionPxssh(ExceptionPexpect): """Raised for pxssh exceptions. """ class pxssh (spawn): """This class extends pexpect.spawn to specialize setting up SSH connections. This adds methods for login, logout, and expecting the shell prompt. It does various tricky things to handle many situations in the SSH login process. For example, if the session is your first login, then pxssh automatically accepts the remote certificate; or if you have public key authentication setup then pxssh won't wait for the password prompt. pxssh uses the shell prompt to synchronize output from the remote host. In order to make this more robust it sets the shell prompt to something more unique than just $ or #. This should work on most Borne/Bash or Csh style shells. Example that runs a few commands on a remote server and prints the result:: import pxssh import getpass try: s = pxssh.pxssh() hostname = raw_input('hostname: ') username = raw_input('username: ') password = getpass.getpass('password: ') s.login (hostname, username, password) s.sendline ('uptime') # run a command s.prompt() # match the prompt print s.before # print everything before the prompt. s.sendline ('ls -l') s.prompt() print s.before s.sendline ('df') s.prompt() print s.before s.logout() except pxssh.ExceptionPxssh, e: print "pxssh failed on login." print str(e) Note that if you have ssh-agent running while doing development with pxssh then this can lead to a lot of confusion. Many X display managers (xdm, gdm, kdm, etc.) will automatically start a GUI agent. You may see a GUI dialog box popup asking for a password during development. You should turn off any key agents during testing. The 'force_password' attribute will turn off public key authentication. This will only work if the remote SSH server is configured to allow password logins. Example of using 'force_password' attribute:: s = pxssh.pxssh() s.force_password = True hostname = raw_input('hostname: ') username = raw_input('username: ') password = getpass.getpass('password: ') s.login (hostname, username, password) """ def __init__ (self, timeout=30, maxread=2000, searchwindowsize=None, logfile=None, cwd=None, env=None): spawn.__init__(self, None, timeout=timeout, maxread=maxread, searchwindowsize=searchwindowsize, logfile=logfile, cwd=cwd, env=env) self.name = '' #SUBTLE HACK ALERT! Note that the command to set the prompt uses a #slightly different string than the regular expression to match it. This #is because when you set the prompt the command will echo back, but we #don't want to match the echoed command. So if we make the set command #slightly different than the regex we eliminate the problem. To make the #set command different we add a backslash in front of $. The $ doesn't #need to be escaped, but it doesn't hurt and serves to make the set #prompt command different than the regex. # used to match the command-line prompt self.UNIQUE_PROMPT = "\[PEXPECT\][\$\#] " self.PROMPT = self.UNIQUE_PROMPT # used to set shell command-line prompt to UNIQUE_PROMPT. self.PROMPT_SET_SH = "PS1='[PEXPECT]\$ '" self.PROMPT_SET_CSH = "set prompt='[PEXPECT]\$ '" self.SSH_OPTS = "-o'RSAAuthentication=no' -o 'PubkeyAuthentication=no'" # Disabling X11 forwarding gets rid of the annoying SSH_ASKPASS from # displaying a GUI password dialog. I have not figured out how to # disable only SSH_ASKPASS without also disabling X11 forwarding. # Unsetting SSH_ASKPASS on the remote side doesn't disable it! Annoying! #self.SSH_OPTS = "-x -o'RSAAuthentication=no' -o 'PubkeyAuthentication=no'" self.force_password = False self.auto_prompt_reset = True def levenshtein_distance(self, a,b): """This calculates the Levenshtein distance between a and b. """ n, m = len(a), len(b) if n > m: a,b = b,a n,m = m,n current = range(n+1) for i in range(1,m+1): previous, current = current, [i]+[0]*n for j in range(1,n+1): add, delete = previous[j]+1, current[j-1]+1 change = previous[j-1] if a[j-1] != b[i-1]: change = change + 1 current[j] = min(add, delete, change) return current[n] def sync_original_prompt (self): """This attempts to find the prompt. Basically, press enter and record the response; press enter again and record the response; if the two responses are similar then assume we are at the original prompt. This is a slow function. It can take over 10 seconds. """ # All of these timing pace values are magic. # I came up with these based on what seemed reliable for # connecting to a heavily loaded machine I have. # If latency is worse than these values then this will fail. try: self.read_nonblocking(size=10000,timeout=1) # GAS: Clear out the cache before getting the prompt except TIMEOUT: pass time.sleep(0.1) self.sendline() time.sleep(0.5) x = self.read_nonblocking(size=1000,timeout=1) time.sleep(0.1) self.sendline() time.sleep(0.5) a = self.read_nonblocking(size=1000,timeout=1) time.sleep(0.1) self.sendline() time.sleep(0.5) b = self.read_nonblocking(size=1000,timeout=1) ld = self.levenshtein_distance(a,b) len_a = len(a) if len_a == 0: return False if float(ld)/len_a < 0.4: return True return False ### TODO: This is getting messy and I'm pretty sure this isn't perfect. ### TODO: I need to draw a flow chart for this. def login (self,server,username,password='',terminal_type='ansi',original_prompt=r"[#$]",login_timeout=10,port=None,auto_prompt_reset=True): """This logs the user into the given server. It uses the 'original_prompt' to try to find the prompt right after login. When it finds the prompt it immediately tries to reset the prompt to something more easily matched. The default 'original_prompt' is very optimistic and is easily fooled. It's more reliable to try to match the original prompt as exactly as possible to prevent false matches by server strings such as the "Message Of The Day". On many systems you can disable the MOTD on the remote server by creating a zero-length file called "~/.hushlogin" on the remote server. If a prompt cannot be found then this will not necessarily cause the login to fail. In the case of a timeout when looking for the prompt we assume that the original prompt was so weird that we could not match it, so we use a few tricks to guess when we have reached the prompt. Then we hope for the best and blindly try to reset the prompt to something more unique. If that fails then login() raises an ExceptionPxssh exception. In some situations it is not possible or desirable to reset the original prompt. In this case, set 'auto_prompt_reset' to False to inhibit setting the prompt to the UNIQUE_PROMPT. Remember that pxssh uses a unique prompt in the prompt() method. If the original prompt is not reset then this will disable the prompt() method unless you manually set the PROMPT attribute. """ ssh_options = '-q' if self.force_password: ssh_options = ssh_options + ' ' + self.SSH_OPTS if port is not None: ssh_options = ssh_options + ' -p %s'%(str(port)) cmd = "ssh %s -l %s %s" % (ssh_options, username, server) # This does not distinguish between a remote server 'password' prompt # and a local ssh 'passphrase' prompt (for unlocking a private key). spawn._spawn(self, cmd) i = self.expect(["(?i)are you sure you want to continue connecting", original_prompt, "(?i)(?:password)|(?:passphrase for key)", "(?i)permission denied", "(?i)terminal type", TIMEOUT, "(?i)connection closed by remote host"], timeout=login_timeout) # First phase if i==0: # New certificate -- always accept it. # This is what you get if SSH does not have the remote host's # public key stored in the 'known_hosts' cache. self.sendline("yes") i = self.expect(["(?i)are you sure you want to continue connecting", original_prompt, "(?i)(?:password)|(?:passphrase for key)", "(?i)permission denied", "(?i)terminal type", TIMEOUT]) if i==2: # password or passphrase self.sendline(password) i = self.expect(["(?i)are you sure you want to continue connecting", original_prompt, "(?i)(?:password)|(?:passphrase for key)", "(?i)permission denied", "(?i)terminal type", TIMEOUT]) if i==4: self.sendline(terminal_type) i = self.expect(["(?i)are you sure you want to continue connecting", original_prompt, "(?i)(?:password)|(?:passphrase for key)", "(?i)permission denied", "(?i)terminal type", TIMEOUT]) # Second phase if i==0: # This is weird. This should not happen twice in a row. self.close() raise ExceptionPxssh ('Weird error. Got "are you sure" prompt twice.') elif i==1: # can occur if you have a public key pair set to authenticate. ### TODO: May NOT be OK if expect() got tricked and matched a false prompt. pass elif i==2: # password prompt again # For incorrect passwords, some ssh servers will # ask for the password again, others return 'denied' right away. # If we get the password prompt again then this means # we didn't get the password right the first time. self.close() raise ExceptionPxssh ('password refused') elif i==3: # permission denied -- password was bad. self.close() raise ExceptionPxssh ('permission denied') elif i==4: # terminal type again? WTF? self.close() raise ExceptionPxssh ('Weird error. Got "terminal type" prompt twice.') elif i==5: # Timeout #This is tricky... I presume that we are at the command-line prompt. #It may be that the shell prompt was so weird that we couldn't match #it. Or it may be that we couldn't log in for some other reason. I #can't be sure, but it's safe to guess that we did login because if #I presume wrong and we are not logged in then this should be caught #later when I try to set the shell prompt. pass elif i==6: # Connection closed by remote host self.close() raise ExceptionPxssh ('connection closed') else: # Unexpected self.close() raise ExceptionPxssh ('unexpected login response') if not self.sync_original_prompt(): self.close() raise ExceptionPxssh ('could not synchronize with original prompt') # We appear to be in. # set shell prompt to something unique. if auto_prompt_reset: if not self.set_unique_prompt(): self.close() raise ExceptionPxssh ('could not set shell prompt\n'+self.before) return True def logout (self): """This sends exit to the remote shell. If there are stopped jobs then this automatically sends exit twice. """ self.sendline("exit") index = self.expect([EOF, "(?i)there are stopped jobs"]) if index==1: self.sendline("exit") self.expect(EOF) self.close() def prompt (self, timeout=20): """This matches the shell prompt. This is little more than a short-cut to the expect() method. This returns True if the shell prompt was matched. This returns False if there was a timeout. Note that if you called login() with auto_prompt_reset set to False then you should have manually set the PROMPT attribute to a regex pattern for matching the prompt. """ i = self.expect([self.PROMPT, TIMEOUT], timeout=timeout) if i==1: return False return True def set_unique_prompt (self): """This sets the remote prompt to something more unique than # or $. This makes it easier for the prompt() method to match the shell prompt unambiguously. This method is called automatically by the login() method, but you may want to call it manually if you somehow reset the shell prompt. For example, if you 'su' to a different user then you will need to manually reset the prompt. This sends shell commands to the remote host to set the prompt, so this assumes the remote host is ready to receive commands. Alternatively, you may use your own prompt pattern. Just set the PROMPT attribute to a regular expression that matches it. In this case you should call login() with auto_prompt_reset=False; then set the PROMPT attribute. After that the prompt() method will try to match your prompt pattern.""" self.sendline ("unset PROMPT_COMMAND") self.sendline (self.PROMPT_SET_SH) # sh-style i = self.expect ([TIMEOUT, self.PROMPT], timeout=10) if i == 0: # csh-style self.sendline (self.PROMPT_SET_CSH) i = self.expect ([TIMEOUT, self.PROMPT], timeout=10) if i == 0: return False return True # vi:ts=4:sw=4:expandtab:ft=python: