492

How can I parse a YAML file in Python?

663

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

#!/usr/bin/env python

import yaml

with open("example.yaml", 'r') as stream:
    try:
        print(yaml.safe_load(stream))
    except yaml.YAMLError as exc:
        print(exc)

And that's it. A plain yaml.load() function also exists, but yaml.safe_load() should always be preferred unless you explicitly need the arbitrary object serialization/deserialization provided in order to avoid introducing the possibility for arbitrary code execution.

Note the PyYaml project supports versions up through the YAML 1.1 specification. If YAML 1.2 specification support is needed, see ruamel.yaml as noted in this answer.

  • 71
    I would add that unless you wish to serialize/deserialize arbitrary objects, it is better to use yaml.safe_load as it cannot execute arbitrary code from the YAML file. – ternaryOperator Mar 7 '14 at 8:58
  • 3
    Yaml yaml = new Yaml(); Object obj = yaml.load("a: 1\nb: 2\nc:\n - aaa\n - bbb"); – MayTheSchwartzBeWithYou Jul 15 '14 at 11:01
  • 2
    I like the article by moose: martin-thoma.com/configuration-files-in-python – SaurabhM Aug 19 '15 at 2:28
  • You may need to install the PyYAML package first pip install pyyaml, see this post for more options stackoverflow.com/questions/14261614/… – Romain Sep 26 '18 at 9:03
  • 4
    What's the point of capturing the exception in this example? It's going to print anyway, and it just makes the example more convoluted.. – naught101 Jan 22 at 23:05
77

Read & Write YAML files with Python 2+3 (and unicode)

# -*- coding: utf-8 -*-
import yaml
import io

# Define data
data = {'a list': [1, 42, 3.141, 1337, 'help', u'€'],
        'a string': 'bla',
        'another dict': {'foo': 'bar',
                         'key': 'value',
                         'the answer': 42}}

# Write YAML file
with io.open('data.yaml', 'w', encoding='utf8') as outfile:
    yaml.dump(data, outfile, default_flow_style=False, allow_unicode=True)

# Read YAML file
with open("data.yaml", 'r') as stream:
    data_loaded = yaml.safe_load(stream)

print(data == data_loaded)

Created YAML file

a list:
- 1
- 42
- 3.141
- 1337
- help
- €
a string: bla
another dict:
  foo: bar
  key: value
  the answer: 42

Common file endings

.yml and .yaml

Alternatives

For your application, the following might be important:

  • Support by other programming languages
  • Reading / writing performance
  • Compactness (file size)

See also: Comparison of data serialization formats

In case you are rather looking for a way to make configuration files, you might want to read my short article Configuration files in Python

  • My output of on Windows is €. Anybody know the reason? – Cloud Cho Aug 8 at 21:26
  • What encoding does the file have? Your you sure it is utf-8 encoded? – Martin Thoma Aug 8 at 21:27
  • 1
    Thanks for suggestion. My file has utf-8 encoding. I had to change your code line to io.open(doc_name, 'r', encoding='utf8') to read the special character. YAML version 0.1.7 – Cloud Cho Aug 8 at 21:53
  • Huh, interesting. I will try to reproduce that tomorrow and will adjust the question if I can. Thank you! – Martin Thoma Aug 9 at 6:18
  • 1
    You can use the built-in open(doc_name, ..., encodung='utf8') for read and write, without importing io. – dexteritas Aug 13 at 9:29
55

If you have YAML that conforms to the YAML 1.2 specification (released 2009) then you should use ruamel.yaml (disclaimer: I am the author of that package). It is essentially a superset of PyYAML, which supports most of YAML 1.1 (from 2005).

If you want to be able to preserve your comments when round-tripping, you certainly should use ruamel.yaml.

Upgrading @Jon's example is easy:

import ruamel.yaml as yaml

with open("example.yaml") as stream:
    try:
        print(yaml.safe_load(stream))
    except yaml.YAMLError as exc:
        print(exc)

Use safe_load() unless you really have full control over the input, need it (seldom the case) and know what you are doing.

If you are using pathlib Path for manipulating files, you are better of using the new API ruamel.yaml provides:

from ruamel.yaml import YAML
from pathlib import Path

path = Path('example.yaml')
yaml = YAML(typ='safe')
data = yaml.load(path)
24

Import yaml module and load the file into a dictionary called 'my_dict':

import yaml
my_dict = yaml.load(open('filename'))

That's all you need. Now the entire yaml file is in 'my_dict' dictionary.

  • 5
    I'd suggest not capitalizing the name of your variable, as it doesn't conform to PEP-8. – CRThaze Nov 21 '17 at 20:00
  • 5
    Does this close the file handle? – yangmillstheory Jan 18 '18 at 17:36
  • 3
    @Pal This comment is misleading. It will get closed when the python script exits. "once the job is done" could be interpreted to mean "when the yaml is loaded" which isn't accurate. – Shadow Jul 4 '18 at 2:02
  • 1
    If your file contains the line "- hello world" it is inappropriate to call the variable my_dict, as it is going to contain a list. If that file contains specific tags (starting with !!python) it can also be unsafe (as in complete harddisc wiped clean) to use yaml.load(). As that is clearly documented you should have repeated that warning here (in almost all cases yaml.safe_load() can be used). – Anthon Aug 23 '18 at 17:11
  • 2
    @Pal - I think you should do some more research on how Python garbage collection works. It will probably eventually get removed - but not necessarily on the very next line. Whether it happens at all is an implementation detail that does change between different python variants. – Shadow Oct 10 '18 at 22:49
9

Example:


defaults.yaml

url: https://www.google.com

environment.py

from ruamel import yaml

data = yaml.safe_load(open('defaults.yaml'))
data['url']
2

I use ruamel.yaml. Details & debate here.

from ruamel import yaml

with open(filename, 'r') as fp:
    read_data = yaml.load(fp)

Usage of ruamel.yaml is compatible (with some simple solvable problems) with old usages of PyYAML and as it is stated in link I provided, use

from ruamel import yaml

instead of

import yaml

and it will fix most of your problems.

EDIT: PyYAML is not dead as it turns out, it's just maintained in a different place.

  • @Oleksander: PyYaml has commits in the last 7 months, and the most recent closed issue was 12 days ago. Can you please define "long dead?" – abalter Mar 20 '18 at 0:18
  • @abalter I apologize, seems that I got the info from their official site or the post right here stackoverflow.com/a/36760452/5510526 – Oleksandr Zelentsov Mar 20 '18 at 16:48
  • @OleksandrZelentsov I can see the confusion. There was a loooong period when it was dead. github.com/yaml/pyyaml/graphs/contributors. However, their site IS up and shows releases posted AFTER the SO post referring to PyYaml's demise. So it is fair to say that at this point it is still alive, although it's direction relative to ruamel is clearly uncertain. ALSO, there was a lengthy discussion here with recent posts. I added a comment, and now mine is the only one. I guess I don't understand how closed issues work. github.com/yaml/pyyaml/issues/145 – abalter Mar 20 '18 at 17:52
  • @abalter FWIW, when that answer was posted, there had been a total of 9 commits in the past... just under 7 years. One of those was an automated "fix" of bad grammar. Two involved releasing a barely-changed new version. The rest were relatively tiny tweaks, mostly made five years before the answer. All but the automated fix were done by one person. I wouldn't judge that answer harshly for calling PyYAML "long dead". – Nic Hartley Jun 14 at 15:01
0
#!/usr/bin/env python

import sys
import yaml

def main(argv):

    with open(argv[0]) as stream:
        try:
            #print(yaml.load(stream))
            return 0
        except yaml.YAMLError as exc:
            print(exc)
            return 1

if __name__ == "__main__":
    sys.exit(main(sys.argv[1:]))

protected by codeforester Jun 15 at 9:04

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