在 FactoryBoy 中，如何使用空的多对多成员字段设置我的工厂？

Question

我正在使用 Django 3 和 Python 3.8。 我有以下 model...

class Coop(models.Model):
    objects = CoopManager()
    name = models.CharField(max_length=250, null=False)
    types = models.ManyToManyField(CoopType, blank=False)
    addresses = models.ManyToManyField(Address)
    enabled = models.BooleanField(default=True, null=False)
    phone = models.ForeignKey(ContactMethod, on_delete=models.CASCADE, null=True, related_name='contact_phone')
    email = models.ForeignKey(ContactMethod, on_delete=models.CASCADE, null=True, related_name='contact_email')
    web_site = models.TextField()

我创建了以下工厂（使用工厂男孩）尝试在测试中创建 model...

class CoopFactory(factory.DjangoModelFactory):
    """
        Define Coop Factory
    """
    class Meta:
        model = Coop

    name = "test model"
    enabled = True
    phone = factory.SubFactory(PhoneContactMethodFactory)
    email = factory.SubFactory(EmailContactMethodFactory)
    web_site = "http://www.hello.com"

    @factory.post_generation
    def addresses(self, create, extracted, **kwargs):
        if not create:
            # Simple build, do nothing.
            return

        if extracted:
            # A list of types were passed in, use them
            for address in extracted:
                self.addresses.add(address)
        else:
            address = AddressFactory()
            self.addresses.add( address )

    @factory.post_generation
    def types(self, create, extracted, **kwargs):
        if not create:
            # Simple build, do nothing.
            return

        if extracted:
            # A list of types were passed in, use them
            for type in extracted:
                self.types.add(type)
        else:
            print("Creating type ...\n")
            type = CoopTypeFactory()
            self.types.add( type )

但我无法创建一个多对多字段（类型）为空的工厂。 我尝试了以下

@pytest.mark.django_db
def test_coop_create_with_no_types(self):
    """ Test customer model """    # create customer model instance
    coop = CoopFactory.create(types=[])
    print("size: ", coop.types.all().count())
    self.assertIsNotNone(coop)
    self.assertIsNotNone( coop.id )

但是types.all().count()的值始终等于 1。如何正确设置具有空多对多字段的工厂？

编辑：针对给出的答案，传递工厂使用的成员字段的正确方法是什么？ 我试过了

@pytest.mark.django_db
def test_coop_create_with_existing_type(self):
    """ Test customer model """    # create customer model instance
    coop_from_factory = CoopFactory()
    self.assertIsNotNone(coop_from_factory)

    coop_types = coop_from_factory.types
    coop = CoopFactory.create(types=[coop_types.all().first()], addresses=coop_from_factory.addresses.all())
    self.assertIsNotNone(coop)

但收到此错误，对于“for _ in range(extracted):”行...

Traceback (most recent call last):
  File "/Users/davea/Documents/workspace/chicommons/maps/web/tests/test_models.py", line 48, in test_coop_create_with_existing_type
    coop = CoopFactory.create(types=coop_types, addresses=coop_from_factory.addresses.all())
  File "/Library/Frameworks/Python.framework/Versions/3.8/lib/python3.8/site-packages/factory/base.py", line 564, in create
    return cls._generate(enums.CREATE_STRATEGY, kwargs)
  File "/Library/Frameworks/Python.framework/Versions/3.8/lib/python3.8/site-packages/factory/django.py", line 141, in _generate
    return super(DjangoModelFactory, cls)._generate(strategy, params)
  File "/Library/Frameworks/Python.framework/Versions/3.8/lib/python3.8/site-packages/factory/base.py", line 501, in _generate
    return step.build()
  File "/Library/Frameworks/Python.framework/Versions/3.8/lib/python3.8/site-packages/factory/builder.py", line 296, in build
    postgen_results[declaration_name] = declaration.declaration.call(
  File "/Library/Frameworks/Python.framework/Versions/3.8/lib/python3.8/site-packages/factory/declarations.py", line 622, in call
    return self.function(
  File "/Users/davea/Documents/workspace/chicommons/maps/web/tests/factories.py", line 128, in types
    for _ in range(extracted):
TypeError: 'ManyRelatedManager' object cannot be interpreted as an integer

Answer 1

修复方法是将if extracted更改为if extracted is not None 。

解释

在 Python 中，空列表是错误的¹但不是None 。

 coop = CoopFactory.create(types=[])

空列表[]作为参数extracted传递给后生成挂钩types 。

 @factory.post_generation def types(self, create, extracted, **kwargs): if not create: # Simple build, do nothing. return if extracted: # A list of types were passed in, use them for type in extracted: self.types.add(type) else: print("Creating type...\n") type = CoopTypeFactory() self.types.add( type )

因为if extracted的是真值测试¹ ，错误的空列表落到创建type的else块中。 因此， types.all().count()的值等于 1。

¹ https://docs.python.org/3/library/stdtypes.html#truth-value-testing

Answer 2

跳过

        else:
            print("Creating type ...\n")
            type = CoopTypeFactory()
            self.types.add( type )

它总是会默认创建 CoopType 。

文档中可能不清楚的一件事是始终调用@factory.post_generation挂钩。 这意味着将始终调用示例代码中所有 post_generation 挂钩中的 else 语句。

更多信息： 简单的多对多关系

如果我想直接创建默认值，我经常使用的模式是将 function 添加到工厂，在此示例中，将转换为：

@factory.post_generation
def create_types(self, create, extracted, **kwargs):
    if not create:
        # Simple build, do nothing.
        return

    if extracted:
        for _ in range(extracted):
            self.types.add(CoopTypeFactory())

允许使用CoopFactory(create_types=3) 。

这是我的完整示例：

@factory.post_generation
def types(self, create, extracted, **kwargs):
    if not create:
        # Simple build, do nothing.
        return

    if extracted:
        # A list of types were passed in, use them
        for type in extracted:
            self.types.add(type)
    # Removed this because it always creates 1 CoopType as default and
    # it may not be the desired behaviour for all tests.
    # else:
    #     print("Creating type ...\n")
    #     type = CoopTypeFactory()
    #     self.types.add( type )

# Adding this function to have a simple way of just adding default CoopTypes
@factory.post_generation
def create_types(self, create, extracted, **kwargs):
    if not create:
        # Simple build, do nothing.
        return

    if extracted: # This must be an integer
        for _ in range(extracted):
            self.types.add(CoopTypeFactory())

这给出了可选的用法：

CoopFactory(create_types=3)将调用 create_types 并将 int 3 放入提取的参数中并创建 3 个默认 CoopTypes。 （这使得使用简单）

CoopFactory(types=[CoopTypeFactory()])将调用类型并将 1 CoopType 的列表放入提取的参数中。 （如果这些对象需要某些特定值，这可以更好地控制 CoopTypes 的创建方式）