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I was wondering how do you mix list and dict together on Python? I know on PHP, I can do something like this:

$options = array(
    "option1", 
    "option2", 
    "option3" => array("meta1", "meta2", "meta3"), 
    "option4" 
);

The problem is python have different bracket for different list. () for tuple, [] for list, and {} for dict. There don't seems to be any way to mix them and I'm keep getting syntax errors.

I am using python 2.7 now. Please advice how to do it correctly.

Much thanks,

Rufas

Update 1:

I'll slightly elaborate what I'm trying to do. I am trying to write a simple python script to do some API requests here:

http://www.diffbot.com/products/automatic/article/

The relevant part is the fields query parameters. It is something like ...&fields=meta,querystring,images(url,caption)... . So the above array can be written as (in PHP)

$fields = array(
    'meta',
    'querystring',
    'images' => array('url', 'caption')
);

And the $fields will be passed to a method for processing. The result will be returned, like this:

$json = diffbot->get("article", $url, $fields);

The thing is - I have no problem in writing it in PHP, but when I try to write it in Python, the thing is not as easy as it seems...

share|improve this question
    
What have you tried so far? please post it even though its erratic... –  K DawG Jan 2 '14 at 17:13
    
Something like this? x = ['first', 'second', {'third':['blah']}] –  Edgar Aroutiounian Jan 2 '14 at 17:15
    
it is something like this: x = ['first', 'second', 'third':['blah','blah'], 'forth'] . Been trying to replace the brackets with {} here and there to make the code work, but it doesn't. –  Rufas Wan Jan 2 '14 at 17:30

3 Answers 3

You can do it this way:

options = {
    "option1": None, 
    "option2": None,
    "option3": ["meta1", "meta2", "meta3"], 
    "option4": None,
}

But options is a dictionary in this case. If you need the order in the dictionary you can use OrderedDict.

How can you use OrderedDict?

from collections import OrderedDict

options = OrderedDict([
    ("option1", None),
    ("option2", None),
    ("option3", ["meta1", "meta2", "meta3"]), 
    ("option4", None),
])

print options["option3"]
print options.items()[2][1]
print options.items()[3][1]

Output:

['meta1', 'meta2', 'meta3']
['meta1', 'meta2', 'meta3']
None

Here you can access options either using keys (like option3), or indexes (like 2 and 3).

Disclaimer. I must stress that this solution is not one-to-one mapping between PHP and Python. PHP is another language, with other data structures/other semantics etc. You can't do one to one mapping between data structures of Python and PHP. Please also consider the answer of Hyperboreus (I gave +1 to him). It show another way to mix lists and dictionaries in Python. Please also read our discussion below.

Update1.

How can you process such structures?

You must check which type a value in each case has. If it is a list (type(v) == type([])) you can join it; otherwise you can use it as it is.

Here I convert the structure to a URL-like string:

options = {
    "option1": None,
    "option2": None,
    "option3": ["meta1", "meta2", "meta3"], 
    "option4": "str1",
}

res = []
for (k,v) in options.items():
    if v is None:
        continue
    if type(v) == type([]):
        res.append("%s=%s" % (k,"+".join(v)))
    else:
        res.append("%s=%s" % (k,v))

print "&".join(res)

Output:

option4=str1&option3=meta1+meta2+meta3
share|improve this answer
    
The php $options[2] give 'option4'... –  Hyperboreus Jan 2 '14 at 17:16
    
@Hyperboreus: Please see my note about OrderedDict –  Igor Chubin Jan 2 '14 at 17:17
    
Alternatively one can use the empty list [] instead of None to denote no elements. Then all values have the same type and can be passed to the same functions. (sort of). –  Andreas Vinter-Hviid Jan 2 '14 at 17:21
    
@IgorChubin Still you are mixing up keys and values. Php arrays are ordered maps. According to the documentation, when an element of an array declaration omits the => it is taken as a value and its keys is the next unused integer. So I fail to see how your answer relates to the question. –  Hyperboreus Jan 2 '14 at 17:25
    
@IgorChubin Thanks for providing negative proof. options.items()[2][1] gives ['meta1', 'meta2', 'meta3']. In php $options[2][1] gives "p". –  Hyperboreus Jan 2 '14 at 17:30

This seems to do the same thing:

options = {0: 'option1',
    1: 'option2',
    2: 'option4'
    'option3': ['meta1', 'meta2', 'meta3'] }

More in general:

[] denote lists, i.e. ordered collections: [1, 2, 3] or [x ** 2 for x in [1, 2, 3]]

{} denote sets, i.e. unordered collections of unique (hashable) elements, and dictionaries, i.e. mappings between unique (hashable) keys and values: {1, 2, 3}, {'a': 1, 'b': 2}, {x: x ** 2 for x in [1, 2, 3]}

() denote (among other things) tuples, i.e. immutable ordered collections: (1, 2, 3)

() also denote generators: (x ** 2 for x in (1, 2, 3))

You can mix them any way you like (as long as elements of a set and keys of a dictionary are hashable):

>>> a = {(1,2): [2,2], 2: {1: 2}}
>>> a
{(1, 2): [2, 2], 2: {1: 2}}
>>> a[1,2]
[2, 2]
>>> a[1,2][0]
2
>>> a[2]
{1: 2}
>>> a[2][1]
2
share|improve this answer
    
in this case options[0]=='option1', options[1]=='option2', options[2]=='option4', but options[3]==KeyError: 3 –  Adam Smith Jan 2 '14 at 17:32
    
@adsmith Also in PHP $options does not contain key 3. Only that php handles unknown keys differently. –  Hyperboreus Jan 2 '14 at 17:32
    
+1 to you for the answer –  Igor Chubin Jan 2 '14 at 17:35
1  
@Hyperboreus but he's not programming in PHP so I don't see how that's relevant. OPs example seems to be how to put a list in a list, and this is clearly not how to do it. options = ['option1','option2',['meta1','meta2','meta3'],'option4'] is a much cleaner data structure. Don't do things how PHP does it just because that's how PHP does it -- make it better. –  Adam Smith Jan 2 '14 at 17:40
    
@adsmith: that is right! 100% –  Igor Chubin Jan 2 '14 at 17:48
up vote 0 down vote accepted

I'm pretty sure there are 3 answers for my question and while it received a -1 vote, it is the closest to what I want. It is very strange now that it is gone when I want to pick that one up as "accepted answer" :(

To recap, the removed answer suggest I should do this:

options = [
    "option1", 
    "option2", 
    {"option3":["meta1", "meta2", "meta3"]}, 
    "option4" 
]

And that fits nicely how I want to process each item on the list. I just loop through all values and check for its type. If it is a string, process it like normal. But when it is a dict/list, it will be handled differently.

Ultimately, I managed to make it work and I get what I want.

Special thanks to Igor Chubin and Hyperboreus for providing suggestions and ideas for me to test and discover the answer I've been looking for. Greatly appreciated.

Thank you!

Rufas

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