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How can I parse a YAML file in Python?

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closed as not constructive by Bill the Lizard Apr 16 '12 at 14:24

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3 Answers 3

up vote 114 down vote accepted

The easiest and pureist method without relying on C headers is PyYaml:

#!/usr/bin/env python

import yaml

stream = open("example.yaml", 'r')
print yaml.load(stream)

Err.. that's it... how many lines of code would that take me in Java... any ideas? : ) more info here:

http://pyyaml.org/wiki/PyYAMLDocumentation

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4  
+1 Recommendation, code sample, and documentation link. –  hughdbrown Nov 21 '09 at 3:50
9  
The use of file() is deprecated; in Python 3.x it has been removed. The use of open() works on all versions of Python. –  steveha Nov 21 '09 at 6:35
10  
in Java it is also a couple of lines: code.google.com/p/snakeyaml/wiki/readme#Documentation –  Andrey Nov 23 '09 at 14:26
9  
Use the with statement in general, that's the "pythonic" way now: with open('example.yaml') as f: yaml.load(f). –  Dave Halter Sep 24 '13 at 8:40
    
re: "...in java?" I love python's ease as much as the next guy, but of the class was written correctly, it would be almost as easy in Java. Here's a pretty good example: [jyaml.sourceforge.net/index.html] –  dardenfall Oct 9 '13 at 17:55

Check out http://pyyaml.org/

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Wikipedia links at least PyYAML and PySyck. The former is a pure Python library.

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