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in a file called test.py I have the following code

#!/usr/bin/python3

with open('test.txt','w') as File:
    print(1,file=File)

When I do

$ python3 test.py

It runs fine. But when I do

$ chmod +x test.py
$ ./test.py

I get a SyntaxError:

  File "./test.py", line 4
    print(1,file=File)
                ^
SyntaxError: invalid syntax

Any one has any idea why? Thank you

I'm running Python 3.3.1 in Ubuntu 13.04

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  • What does which python3 tell you is the path? – Martijn Pieters Apr 30 '13 at 16:34
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    The syntax error is thrown by Python 2.x; /usr/bin/python3 is not what you think it is. – Martijn Pieters Apr 30 '13 at 16:35
  • which python is /usr/bin/python3 which is python 3.3.1 (if I run /usr/bin/python3 I get the Python 3.3.1 interpreter. More so, If I do /usr/bin/python3 test.py it all works nice) – Patricio Clark Apr 30 '13 at 16:40
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    @PatricioClark Very strange. What happens if you change the script to do: import sys; print(sys.executable)? Edit: might also be worth adding print(sys.version). – Aya Apr 30 '13 at 16:45
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    @Aya Thank you! I was using a zsh suffix alias that run python on *.py files. After removing that suffix alias everything is working perfectly. Big thank you to all of you. – Patricio Clark Apr 30 '13 at 17:12
2

It looks like you're using a Python 2 interpreter for some reason. Maybe trying using env to search for the correct python3:

#!/usr/bin/env python3

with open('test.txt','w') as File:
    print(1,file=File)

env should find the same python3 that your shell does.

It's worth mentioning that this is a good idea even if you're not having problems, since it makes your scripts more portable by letting them run on any platform where python3 is available, no matter where it is.

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