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If I have a Python script that requires at least a particular version of Python, what is the correct way to fail gracefully when an earlier version of Python is used to launch the script?

How do I get control early enough to issue an error message and exit?

For example, I have a program that uses the ternery operator (new in 2.5) and "with" blocks (new in 2.6). I wrote a simple little interpreter-version checker routine which is the first thing the script would call ... except it doesn't get that far. Instead, the script fails during python compilation, before my routines are even called. Thus the user of the script sees some very obscure synax error tracebacks - which pretty much require an expert to deduce that it is simply the case of running the wrong version of Python.

I know how to check the version of Python. The issue is that some syntax is illegal in older versions of Python. Consider this program:

import sys
if sys.version_info < (2, 4):
    raise "must use python 2.5 or greater"
else:
    # syntax error in 2.4, ok in 2.5
    x = 1 if True else 2
    print x

When run under 2.4, I want this result

$ ~/bin/python2.4 tern.py 
must use python 2.5 or greater

and not this result:

$ ~/bin/python2.4 tern.py 
  File "tern.py", line 5
    x = 1 if True else 2
           ^
SyntaxError: invalid syntax

(Channeling for a coworker.)

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3  
"check the version of python. The issue is that some syntax is illegal in older versions of python." I don't get how this is a problem. If you can check the version, you can avoid the syntax error. How does version checking not apply to syntax? Can you clarify your question? –  S.Lott Jan 15 '09 at 11:55
3  
@S.Lott No you are not wrong, it just that the difficulty is in including the code somewhere where it will also not be read (parsed) as well as not executed - this isn't immediately apparent as the answers show. –  Brendan Jun 30 '11 at 0:04
4  
S.Lott, you can't execute your test in the old version of python because it doesn't compile. Instead, you get a generic syntax error. Try the example code with a 2.4 interpreter and you'll see that you can't get to the version test. –  Mark Harrison Jun 30 '11 at 6:07
2  
@S.Lott, the first conditional in my program is checking the version number, so the question is not how to check the version number. Type in the example program, run it with python 2.4, then fix the program so you don't get SyntaxError. Post your answer and I'll follow up there if there's any more confusion. –  Mark Harrison Jul 5 '11 at 17:28
3  
I think we've reached an end of this discussion. I asked a question about something I didn't know how to do, and got an answer telling me how to do it. I'm not proposing anything, I just accepted orip's answer which is working great for me (actually the coworker for whom I'm channeling). Viva Le Stack Overflow! –  Mark Harrison Jul 5 '11 at 22:59

12 Answers 12

up vote 71 down vote accepted

You can test using eval:

try:
  eval("1 if True else 2")
except SyntaxError:
  # doesn't have ternary

Also, with is available in Python 2.5, just add from __future__ import with_statement .

EDIT: to get control early enough, you could split it do different .py files and check compatibility in the main file before importing (e.g. in __init__.py in a package):

# __init__.py

# Check compatibility
try:
  eval("1 if True else 2")
except SyntaxError:
  raise ImportError("requires ternary support")

# import from another module
from impl import *
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5  
this is a fantastic answer. the main issue from the question that needed addressing is that a program must be syntactically correct for that version of python to even begin executing, so using new syntax precludes a program from starting on older versions of the interpreter. eval works around that –  Autoplectic Jan 15 '09 at 8:59
6  
If the package is being installed by setuptools, byte-compiling the source files will fail then. Also, all the contortions to produce a run-time error message seem a little pointless -- why not just document the requirements and leave it at that? –  John Machin Sep 14 '09 at 23:50
2  
Note that if attempting to check an expression, rather than a simple statement, you need to use exec instead of eval. I had this come up while trying to write a function that would print to stderr in both py2k and py3k. –  Xiong Chiamiov Nov 19 '10 at 9:52
1  
I think a cleaner version of this solution would be to put your "checks" in a separate module and import that (wrap the import station in try/except). Note that you might need to check for other things than SyntaxError as well (eg. builtin functions or additions to the standard library) –  Steven Sep 13 '11 at 10:15

Have a wrapper around your program that does the following.

import sys

req_version = (2,5)
cur_version = sys.version_info

if cur_version >= req_version:
   import myApp
   myApp.run()
else:
   print "Your Python interpreter is too old. Please consider upgrading."

You can also consider using sys.version(), if you plan to encounter people who are using pre-2.0 Python interpreters, but then you have some regular expressions to do.

And there might be more elegant ways to do this.

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6  
FYI, "cur_version >= req_version" should work as the conditional. –  orip Aug 5 '09 at 14:55
4  
sys.version_info is not a function. –  nh2 Aug 6 '11 at 22:23
    
Putting code inside the successfull conditional like that is pretty bad practice as it is an unecessary indentation and addition of logic. Just do a: if sys.version_info[:2] < req_version: print "old"; sys.exit() - and otherwise continue as usual. –  timss Apr 10 '13 at 2:31

Probably the best way to do do this version comparison is to use the sys.hexversion. This is important because comparing version tuples will not give you the desired result in all python versions.

import sys
if sys.hexversion < 0x02060000:
    print "yep!"
else:
    print "oops!"
share|improve this answer
    
I think this is most elegant, but probably not the easiest to understand by other devs. –  nbolton Jun 28 '10 at 12:41
    
+1, this is brief and looks pretty foolproof to me. –  El Zorko May 9 '11 at 16:15
2  
Can you explain in what circumstances comparing version tuples will not give the desired result? –  SpoonMeiser Jan 19 '12 at 11:27
    
version tuples can contain alphanumeric values also. –  sorin Jan 19 '12 at 18:26
3  
-1: This doesn't work, as explained in the updated question. If you use any syntax from a newer version of Python then your file won't compile, and if it doesn't compile it can't run and check the version! –  Scott Griffiths Apr 8 '12 at 14:31

Try

import platform
platform.python_version()

Should give you a string like "2.3.1". If this is not exactly waht you want there is a rich set of data available through the "platform" build-in. What you want should be in there somewhere.

share|improve this answer
2  
-1: This doesn't work, as explained in the updated question. If you use any syntax from a newer version of Python then your file won't compile, and if it doesn't compile it can't run and check the version! –  Scott Griffiths Apr 8 '12 at 14:32

Sets became part of the core language in Python 2.4, in order to stay backwards compatible. I did this back then, which will work for you as well:

if sys.version_info < (2, 4):
    from sets import Set as set
share|improve this answer
2  
better to check for the feature instead of the version, no? try: set except NameError: from sets import Set as set –  orip Sep 6 '11 at 18:48
    
@orip: Why? If you know in which version a feature has been introduced, like sets here, just use above code. Nothing wrong with that. –  André Sep 7 '11 at 4:41

Although the question is: How do I get control early enough to issue an error message and exit?

The question that I answer is: How do I get control early enough to issue an error message before starting the app?

I can answer it a lot differently then the other posts. Seems answers so far are trying to solve your question from within Python.

I say, do version checking before launching Python. I see your path is Linux or unix. However I can only offer you a Windows script. I image adapting it to linux scripting syntax wouldn't be too hard.

Here is the DOS script with version 2.7:

@ECHO OFF
REM see http://ss64.com/nt/for_f.html
FOR /F "tokens=1,2" %%G IN ('"python.exe -V 2>&1"') DO ECHO %%H | find "2.7" > Nul
IF NOT ErrorLevel 1 GOTO Python27
ECHO must use python2.7 or greater
GOTO EOF
:Python27
python.exe tern.py
GOTO EOF
:EOF

This does not run any part of your application and therefore will not raise a Python Exception. It does not create any temp file or add any OS environment variables. And it doesn't end your app to an exception due to different version syntax rules. That's three less possible security points of access.

The "FOR /F" line is the key. FOR /F "tokens=1,2" %%G IN ('"python.exe -V 2>&1"') DO ECHO %%H | find "2.7" > Nul

For multiple python version check check out url: http://www.fpschultze.de/modules/smartfaq/faq.php?faqid=17

And my hack version:

[MS script; Python version check prelaunch of Python module] http://pastebin.com/aAuJ91FQ

share|improve this answer
    
For those down votes please don't be afraid to explain reasons why. –  DevPlayer Jun 23 '12 at 19:17

As noted above, syntax errors occur at compile time, not at run time. While Python is an "interpreted language", Python code is not actually directly interpreted; it's compiled to byte code, which is then interpreted. There is a compile step that happens when a module is imported (if there is no already-compiled version available in the form of a .pyc or .pyd file) and that's when you're getting your error, not (quite exactly) when your code is running.

You can put off the compile step and make it happen at run time for a single line of code, if you want to, by using eval, as noted above, but I personally prefer to avoid doing that, because it causes Python to perform potentially unnecessary run-time compilation, for one thing, and for another, it creates what to me feels like code clutter. (If you want, you can generate code that generates code that generates code - and have an absolutely fabulous time modifying and debugging that in 6 months from now.) So what I would recommend instead is something more like this:

import sys
if sys.hexversion < 0x02060000:
    from my_module_2_5 import thisFunc, thatFunc, theOtherFunc
else:
    from my_module import thisFunc, thatFunc, theOtherFunc

.. which I would do even if I only had one function that used newer syntax and it was very short. (In fact I would take every reasonable measure to minimize the number and size of such functions. I might even write a function like ifTrueAElseB(cond, a, b) with that single line of syntax in it.)

Another thing that might be worth pointing out (that I'm a little amazed no one has pointed out yet) is that while earlier versions of Python did not support code like

value = 'yes' if MyVarIsTrue else 'no'

..it did support code like

value = MyVarIsTrue and 'yes' or 'no'

That was the old way of writing ternary expressions. I don't have Python 3 installed yet, but as far as I know, that "old" way still works to this day, so you can decide for yourself whether or not it's worth it to conditionally use the new syntax, if you need to support the use of older versions of Python.

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2  
Seriously? Duplicate your code just so that you can change some minor structures? Yuck. Very yuck. And as for a and b or c instead of b if a else c, it's not equivalent; if b is falsy it will fail, producing a rather than b. –  Chris Morgan Sep 13 '11 at 2:50
1  
I'm not suggesting duplicating code, I'm suggesting creating wrapper functions for version-specific code, whose signatures don't change across versions, and putting those functions in version-specific modules. I'm talking about functions that are maybe 1 to 5 lines long. It's true that a and b or c is not the same as b if a else c in cases where b may evaluate to false. So I guess ifAThenBElseC(a,b,c) in common_ops_2_4.py, would have to be 2 or 3 lines long instead of 1. This method actually reduces your over all code by encapsulating common idioms into functions. –  Shavais Apr 12 '12 at 20:31

I think the best way is to test for functionality rather than versions. In some cases, this is trivial, not so in others.

eg:

try :
    # Do stuff
except : # Features weren't found.
    # Do stuff for older versions.

As long as you're specific in enough in using the try/except blocks, you can cover most of your bases.

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2  
You're right. That's what he asked how to do - sometimes testing for features in version Y doesn't even compile to bytecode in version X, so it can't be done directly. –  orip Jan 15 '09 at 8:55

I just found this question after a quick search whilst trying to solve the problem myself and I've come up with a hybrid based on a few of the suggestions above.

I like DevPlayer's idea of using a wrapper script, but the downside is that you end up maintaining multiple wrappers for different OSes, so I decided to write the wrapper in python, but use the same basic "grab the version by running the exe" logic and came up with this.

I think it should work for 2.5 and onwards. I've tested it on 2.66, 2.7.0 and 3.1.2 on Linux and 2.6.1 on OS X so far.

import sys, subprocess
args = [sys.executable,"--version"]

output, error = subprocess.Popen(args ,stdout = subprocess.PIPE, stderr = subprocess.PIPE).communicate()
print("The version is: '%s'"  %error.decode(sys.stdout.encoding).strip("qwertyuiopasdfghjklzxcvbnmQWERTYUIOPASDFGHJKLMNBVCXZ,.+ \n") )

Yes, I know the final decode/strip line is horrible, but I just wanted to quickly grab the version number. I'm going to refine that.

This works well enough for me for now, but if anyone can improve it (or tell me why it's a terrible idea) that'd be cool too.

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Here's a quick and simple way to ensure that a python script will exit cleanly if you don't meet version requirements in order to run the script

# Check python version
import sys

if sys.version_info < ( 3, 2):
    # python too old, kill the script
    sys.exit("This script requires Python 3.2 or newer!")

# This part will only run if the version check passes
print("Yay, this Python works!")

You can also use this method to load cross-compatible libs for your script as well. Do one thing for one python version, another for a different one, etc. The limit is your imagination.

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How about

import sys

def testPyVer(reqver):
  if float(sys.version[:3]) >= reqver:
    return 1
  else:
    return 0

#blah blah blah, more code

if testPyVer(3.0) = 1:
  #do stuff
else:
  #print python requirement, exit statement
share|improve this answer
3  
-1: This doesn't work, as explained in the updated question. If you use any syntax from a newer version of Python then your file won't compile, and if it doesn't compile it can't run and check the version! –  Scott Griffiths Apr 8 '12 at 14:35

The problem is quite simple. You checked if the version was less than 2.4, not less than or equal to. So if the Python version is 2.4, it's not less than 2.4. What you should have had was:

    if sys.version_info **<=** (2, 4):

, not

    if sys.version_info < (2, 4):
share|improve this answer
2  
read paragraph 3, and the update. you don't to the point of executing this code because your code won't compile on 2.4 if you are using the new language constructs. –  Mark Harrison Apr 9 '10 at 22:15
    
The less than was fine, just missing the eval. –  Craig Mar 1 at 19:47

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