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I have just installed Python2.6 on a Red Hat linux server which was supplied with python2.4 preinstaleld. When I type python, python2.4 is launched, typing python2.6 launches python 2.6 correctly. What is the correct way to make 2.6 the default? Also how can this result be possible:

$ python -V && which python && pwd && ./python -V
Python 2.4.3
/usr/local/bin/python
/usr/local/bin
Python 2.6.6
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depends on your distribution. please update your question with that information. –  Mat Apr 18 '11 at 16:02
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2 Answers

up vote 5 down vote accepted

It's a symlink actually.

$ ls -al `which python`
lrwxrwxrwx 1 root root 9 2010-04-21 12:08 /usr/bin/python -> python2.6

So changing the default version from 2.4 to 2.6 would be just:

cd /usr/bin
sudo ln -sf `which python2.6` python
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This solves it, but I still don't get how the conflicting results from running python -V are possible. –  user713713 Apr 18 '11 at 16:41
    
./python runs it from the directory you're in, while python searches $PATH –  vartec Apr 18 '11 at 16:42
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He did run which to check what version was in PATH; however, which is an external command (try type which) and cannot see aliases. There was likely an alias, or python was hashed before a second copy was placed in /usr/local; hash -r flushes that. –  Yann Vernier Apr 18 '11 at 20:23
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The easiest and quickest way, is to prepend the path to the 2.6.6 version to your PATH variable for your shell. This would go into your .bashrc or .profile, etc.

Assuming this path is /opt/foo/bin it would be:

export PATH=/opt/foo/bin:$PATH

If you don't include the possible side effects of things in the new path, this is the quick win.

This really depends on if you need this to be system-wide.

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