问题:将namedtuple转换成字典

我在python中有一个命名的tuple类

class Town(collections.namedtuple('Town', [
    'name', 
    'population',
    'coordinates',
    'population', 
    'capital', 
    'state_bird'])):
    # ...

我想将Town实例转换成字典。我不希望它与城镇中字段的名称或数量严格相关。

有没有一种方法可以编写它,以便我可以添加更多字段,或者传入完全不同的命名元组并获得字典。

我无法更改其他人代码中的原始类定义。因此,我需要以一个Town实例为例,并将其转换为字典。

I have a named tuple class in python

class Town(collections.namedtuple('Town', [
    'name', 
    'population',
    'coordinates',
    'population', 
    'capital', 
    'state_bird'])):
    # ...

I’d like to convert Town instances into dictionaries. I don’t want it to be rigidly tied to the names or number of the fields in a Town.

Is there a way to write it such that I could add more fields, or pass an entirely different named tuple in and get a dictionary.

I can not alter the original class definition as its in someone else’s code. So I need to take an instance of a Town and convert it to a dictionary.


回答 0

TL; DR:_asdict为此提供了一种方法。

这是用法的演示:

>>> fields = ['name', 'population', 'coordinates', 'capital', 'state_bird']
>>> Town = collections.namedtuple('Town', fields)
>>> funkytown = Town('funky', 300, 'somewhere', 'lipps', 'chicken')
>>> funkytown._asdict()
OrderedDict([('name', 'funky'),
             ('population', 300),
             ('coordinates', 'somewhere'),
             ('capital', 'lipps'),
             ('state_bird', 'chicken')])

这是一个已记录的namedtuples 方法,即,与python中的常规约定不同,该方法名上的前划线并不妨碍使用。随着加入namedtuples其他方法,_make_replace_source_fields,它有下划线只尝试和防止可能的字段名的冲突。


注意: 对于一些2.7.5 <python版本<3.5.0的代码,您可能会看到以下版本:

>>> vars(funkytown)
OrderedDict([('name', 'funky'),
             ('population', 300),
             ('coordinates', 'somewhere'),
             ('capital', 'lipps'),
             ('state_bird', 'chicken')])

有一段时间,文档提到_asdict过时了(请参阅此处),并建议使用内置方法vars。那个建议现在已经过时了。为了修复与子类相关的错误__dict__此commit再次删除了namedtuples上存在的属性。

TL;DR: there’s a method _asdict provided for this.

Here is a demonstration of the usage:

>>> fields = ['name', 'population', 'coordinates', 'capital', 'state_bird']
>>> Town = collections.namedtuple('Town', fields)
>>> funkytown = Town('funky', 300, 'somewhere', 'lipps', 'chicken')
>>> funkytown._asdict()
OrderedDict([('name', 'funky'),
             ('population', 300),
             ('coordinates', 'somewhere'),
             ('capital', 'lipps'),
             ('state_bird', 'chicken')])

This is a documented method of namedtuples, i.e. unlike the usual convention in python the leading underscore on the method name isn’t there to discourage use. Along with the other methods added to namedtuples, _make, _replace, _source, _fields, it has the underscore only to try and prevent conflicts with possible field names.


Note: For some 2.7.5 < python version < 3.5.0 code out in the wild, you might see this version:

>>> vars(funkytown)
OrderedDict([('name', 'funky'),
             ('population', 300),
             ('coordinates', 'somewhere'),
             ('capital', 'lipps'),
             ('state_bird', 'chicken')])

For a while the documentation had mentioned that _asdict was obsolete (see here), and suggested to use the built-in method vars. That advice is now outdated; in order to fix a bug related to subclassing, the __dict__ property which was present on namedtuples has again been removed by this commit.


回答 1

namedtuple实例上有一个内置方法_asdict

正如评论中所讨论的,在某些版本上vars()也可以这样做,但是它显然高度依赖于构建细节,而_asdict应该是可靠的。在某些版本_asdict中,已将其标记为已弃用,但注释表明从3.4版开始,情况已不再如此。

There’s a built in method on namedtuple instances for this, _asdict.

As discussed in the comments, on some versions vars() will also do it, but it’s apparently highly dependent on build details, whereas _asdict should be reliable. In some versions _asdict was marked as deprecated, but comments indicate that this is no longer the case as of 3.4.


回答 2

在Ubuntu 14.04 LTS版本的python2.7和python3.4上,该__dict__属性按预期工作。该_asdict 方法也有效,但我倾向于使用标准定义的统一属性api而不是本地化的非统一api。

$ python2.7

# Works on:
# Python 2.7.6 (default, Jun 22 2015, 17:58:13)  [GCC 4.8.2] on linux2
# Python 3.4.3 (default, Oct 14 2015, 20:28:29)  [GCC 4.8.4] on linux

import collections

Color = collections.namedtuple('Color', ['r', 'g', 'b'])
red = Color(r=256, g=0, b=0)

# Access the namedtuple as a dict
print(red.__dict__['r'])  # 256

# Drop the namedtuple only keeping the dict
red = red.__dict__
print(red['r'])  #256

视为字典是获取表示词义的字典的语义方式(至少据我所知)。


汇总主要python版本和平台及其对它们的支持会很高兴__dict__,目前如上所述,我只有一个平台版本和两个python版本。

| Platform                      | PyVer     | __dict__ | _asdict |
| --------------------------    | --------- | -------- | ------- |
| Ubuntu 14.04 LTS              | Python2.7 | yes      | yes     |
| Ubuntu 14.04 LTS              | Python3.4 | yes      | yes     |
| CentOS Linux release 7.4.1708 | Python2.7 | no       | yes     |
| CentOS Linux release 7.4.1708 | Python3.4 | no       | yes     |
| CentOS Linux release 7.4.1708 | Python3.6 | no       | yes     |

On Ubuntu 14.04 LTS versions of python2.7 and python3.4 the __dict__ property worked as expected. The _asdict method also worked, but I’m inclined to use the standards-defined, uniform, property api instead of the localized non-uniform api.

$ python2.7

# Works on:
# Python 2.7.6 (default, Jun 22 2015, 17:58:13)  [GCC 4.8.2] on linux2
# Python 3.4.3 (default, Oct 14 2015, 20:28:29)  [GCC 4.8.4] on linux

import collections

Color = collections.namedtuple('Color', ['r', 'g', 'b'])
red = Color(r=256, g=0, b=0)

# Access the namedtuple as a dict
print(red.__dict__['r'])  # 256

# Drop the namedtuple only keeping the dict
red = red.__dict__
print(red['r'])  #256

Seeing as dict is the semantic way to get a dictionary representing soemthing, (at least to the best of my knowledge).


It would be nice to accumulate a table of major python versions and platforms and their support for __dict__, currently I only have one platform version and two python versions as posted above.

| Platform                      | PyVer     | __dict__ | _asdict |
| --------------------------    | --------- | -------- | ------- |
| Ubuntu 14.04 LTS              | Python2.7 | yes      | yes     |
| Ubuntu 14.04 LTS              | Python3.4 | yes      | yes     |
| CentOS Linux release 7.4.1708 | Python2.7 | no       | yes     |
| CentOS Linux release 7.4.1708 | Python3.4 | no       | yes     |
| CentOS Linux release 7.4.1708 | Python3.6 | no       | yes     |

回答 3

案例1:一维元组

TUPLE_ROLES = (
    (912,"Role 21"),
    (913,"Role 22"),
    (925,"Role 23"),
    (918,"Role 24"),
)


TUPLE_ROLES[912]  #==> Error because it is out of bounce. 
TUPLE_ROLES[  2]  #==> will show Role 23.
DICT1_ROLE = {k:v for k, v in TUPLE_ROLES }
DICT1_ROLE[925] # will display "Role 23" 

情况2:二维元组
示例:DICT_ROLES [961]#将显示“后端编程器”

NAMEDTUPLE_ROLES = (
    ('Company', ( 
            ( 111, 'Owner/CEO/President'), 
            ( 113, 'Manager'),
            ( 115, 'Receptionist'),
            ( 117, 'Marketer'),
            ( 119, 'Sales Person'),
            ( 121, 'Accountant'),
            ( 123, 'Director'),
            ( 125, 'Vice President'),
            ( 127, 'HR Specialist'),
            ( 141, 'System Operator'),
    )),
    ('Restaurant', ( 
            ( 211, 'Chef'), 
            ( 212, 'Waiter/Waitress'), 
    )),
    ('Oil Collector', ( 
            ( 211, 'Truck Driver'), 
            ( 213, 'Tank Installer'), 
            ( 217, 'Welder'),
            ( 218, 'In-house Handler'),
            ( 219, 'Dispatcher'),
    )),
    ('Information Technology', ( 
            ( 912, 'Server Administrator'),
            ( 914, 'Graphic Designer'),
            ( 916, 'Project Manager'),
            ( 918, 'Consultant'),
            ( 921, 'Business Logic Analyzer'),
            ( 923, 'Data Model Designer'),
            ( 951, 'Programmer'),
            ( 953, 'WEB Front-End Programmer'),
            ( 955, 'Android Programmer'),
            ( 957, 'iOS Programmer'),
            ( 961, 'Back-End Programmer'),
            ( 962, 'Fullstack Programmer'),
            ( 971, 'System Architect'),
    )),
)

#Thus, we need dictionary/set

T4 = {}
def main():
    for k, v in NAMEDTUPLE_ROLES:
        for k1, v1 in v:
            T4.update ( {k1:v1}  )
    print (T4[961]) # will display 'Back-End Programmer'
    # print (T4) # will display all list of dictionary

main()

Case #1: one dimension tuple

TUPLE_ROLES = (
    (912,"Role 21"),
    (913,"Role 22"),
    (925,"Role 23"),
    (918,"Role 24"),
)


TUPLE_ROLES[912]  #==> Error because it is out of bounce. 
TUPLE_ROLES[  2]  #==> will show Role 23.
DICT1_ROLE = {k:v for k, v in TUPLE_ROLES }
DICT1_ROLE[925] # will display "Role 23" 

Case #2: Two dimension tuple
Example: DICT_ROLES[961] # will show ‘Back-End Programmer’

NAMEDTUPLE_ROLES = (
    ('Company', ( 
            ( 111, 'Owner/CEO/President'), 
            ( 113, 'Manager'),
            ( 115, 'Receptionist'),
            ( 117, 'Marketer'),
            ( 119, 'Sales Person'),
            ( 121, 'Accountant'),
            ( 123, 'Director'),
            ( 125, 'Vice President'),
            ( 127, 'HR Specialist'),
            ( 141, 'System Operator'),
    )),
    ('Restaurant', ( 
            ( 211, 'Chef'), 
            ( 212, 'Waiter/Waitress'), 
    )),
    ('Oil Collector', ( 
            ( 211, 'Truck Driver'), 
            ( 213, 'Tank Installer'), 
            ( 217, 'Welder'),
            ( 218, 'In-house Handler'),
            ( 219, 'Dispatcher'),
    )),
    ('Information Technology', ( 
            ( 912, 'Server Administrator'),
            ( 914, 'Graphic Designer'),
            ( 916, 'Project Manager'),
            ( 918, 'Consultant'),
            ( 921, 'Business Logic Analyzer'),
            ( 923, 'Data Model Designer'),
            ( 951, 'Programmer'),
            ( 953, 'WEB Front-End Programmer'),
            ( 955, 'Android Programmer'),
            ( 957, 'iOS Programmer'),
            ( 961, 'Back-End Programmer'),
            ( 962, 'Fullstack Programmer'),
            ( 971, 'System Architect'),
    )),
)

#Thus, we need dictionary/set

T4 = {}
def main():
    for k, v in NAMEDTUPLE_ROLES:
        for k1, v1 in v:
            T4.update ( {k1:v1}  )
    print (T4[961]) # will display 'Back-End Programmer'
    # print (T4) # will display all list of dictionary

main()

回答 4

如果没有_asdict(),则可以使用以下方式:

def to_dict(model):
    new_dict = {}
    keys = model._fields
    index = 0
    for key in keys:
        new_dict[key] = model[index]
        index += 1

    return new_dict

if no _asdict(), you can use this way:

def to_dict(model):
    new_dict = {}
    keys = model._fields
    index = 0
    for key in keys:
        new_dict[key] = model[index]
        index += 1

    return new_dict

回答 5

Python 3.将任何字段分配给字典作为字典的必需索引,我使用了“名称”。

import collections

Town = collections.namedtuple("Town", "name population coordinates capital state_bird")

town_list = []

town_list.append(Town('Town 1', '10', '10.10', 'Capital 1', 'Turkey'))
town_list.append(Town('Town 2', '11', '11.11', 'Capital 2', 'Duck'))

town_dictionary = {t.name: t for t in town_list}

Python 3. Allocate any field to the dictionary as the required index for the dictionary, I used ‘name’.

import collections

Town = collections.namedtuple("Town", "name population coordinates capital state_bird")

town_list = []

town_list.append(Town('Town 1', '10', '10.10', 'Capital 1', 'Turkey'))
town_list.append(Town('Town 2', '11', '11.11', 'Capital 2', 'Duck'))

town_dictionary = {t.name: t for t in town_list}

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