tam*_*a d 4 python django graphql graphene-django
我正在用 Python、GraphQL (graphene-django) 和 Django 构建一个简单的 CRUD 接口。Ingredient包含与另一个对象 ( Category) 的外键关系的对象 ( )的 CREATE 突变将不起作用。我想为 GraphQL 提供 CategoryObject 的 id 而不是整个类别实例。然后在后端它应该绘制与 Category 对象的关系。
在 Django 模型中,成分对象包含外键类别对象的一个实例(参见下面的代码)。这里是否需要整个类别对象来绘制关系并使用Ingredient.objects.select_related('category').all()?
create 突变期望IngredientInput包括外键关系的所有属性和整数字段。因此,graphQL 突变本身目前可以按照我的意愿工作。
我的问题与这个问题相似,但这些答案对我没有帮助。
模型.py:
class Category(models.Model):
name = models.CharField(max_length=50, unique=True)
notes = models.TextField()
class Meta:
verbose_name = u"Category"
verbose_name_plural = u"Categories"
ordering = ("id",)
def __str__(self):
return self.name
class Ingredient(models.Model):
name = models.CharField(max_length=100)
notes = models.TextField()
category = models.ForeignKey(Category, on_delete=models.CASCADE)
class Meta:
verbose_name = u"Ingredient"
verbose_name_plural = u"Ingredients"
ordering = ("id",)
def __str__(self):
return self.name
架构.py:
class CategoryType(DjangoObjectType):
class Meta:
model = Category
class CategoryInput(graphene.InputObjectType):
name = graphene.String(required=True)
notes = graphene.String()
class IngredientType(DjangoObjectType):
class Meta:
model = Ingredient
class IngredientInput(graphene.InputObjectType):
name = graphene.String(required=True)
notes = graphene.String()
category = graphene.Int()
class CreateIngredient(graphene.Mutation):
class Arguments:
ingredientData = IngredientInput(required=True)
ingredient = graphene.Field(IngredientType)
@staticmethod
def mutate(root, info, ingredientData):
_ingredient = Ingredient.objects.create(**ingredientData)
return CreateIngredient(ingredient=_ingredient)
class Mutation(graphene.ObjectType):
create_category = CreateCategory.Field()
create_ingredient = CreateIngredient.Field()
graphql_query:
mutation createIngredient($ingredientData: IngredientInput!) {
createIngredient(ingredientData: $ingredientData) {
ingredient {
id
name
notes
category{name}
}
graphql-变量:
{
"ingredientData": {
"name": "milk",
"notes": "from cow",
"category": 8 # here I ant to insert the id of an existing category object
}
}
执行查询后的错误消息:
{
"errors": [
{
"message": "Cannot assign \"8\": \"Ingredient.category\" must be a \"Category\" instance.",
"locations": [
{
"line": 38,
"column": 3
}
],
"path": [
"createIngredient"
]
}
],
"data": {
"createIngredient": null
}
}
我今天遇到了同样的问题。
该Cannot assign \"8\": \"Ingredient.category\" must be a \"Category\" instance.错误是当您尝试直接使用外键整数而不是对象创建对象时发生的 Django 错误。如果您想直接使用外键 id,则必须使用_id后缀。
例如,而不是使用:
_ingredient = Ingredient.objects.create(name="milk", notes="from_cow", category=8)
你必须使用
category_obj = Category.objects.get(id=8)
_ingredient = Ingredient.objects.create(name="milk", notes="from_cow", category=category_obj)
或者
_ingredient = Ingredient.objects.create(name="milk", notes="from_cow", category_id=8)
在使用 GraphQL 的情况下,您必须将InputObjectType字段设置为 <name>_id。在你的情况下:
class IngredientInput(graphene.InputObjectType):
name = graphene.String(required=True)
notes = graphene.String()
category_id = graphene.Int()
但是,这将使您在架构中的字段显示为categoryId. 如果您想保留category名称,则必须更改为:
category_id = graphene.Int(name="category")
干杯!
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