我的模特:
class Sample(models.Model): users = models.ManyToManyField(User)
我想同时保存user1并保存user2在该模型中:
user1
user2
user1 = User.objects.get(pk=1) user2 = User.objects.get(pk=2) sample_object = Sample(users=user1, users=user2) sample_object.save()
我知道这是错误的,但是我敢肯定,你会明白我的意思。你会怎么做?
你不能从未保存的对象创建m2m关系。如果有pk,请尝试以下操作:
sample_object = Sample() sample_object.save() sample_object.users.add(1,2)
更新:阅读了saverio的答案后,我决定对这个问题进行更深入的研究。这是我的发现。
这是我最初的建议。它可以工作,但不是最佳选择。(注意:我使用Bar的是s和a Foo而不是Users和a Sample,但你明白了。)
Bar
s
a Foo
User
a Sample
bar1 = Bar.objects.get(pk=1) bar2 = Bar.objects.get(pk=2) foo = Foo() foo.save() foo.bars.add(bar1) foo.bars.add(bar2)
它总共产生7个查询:
SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 1 SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 2 INSERT INTO "app_foo" ("name") VALUES () SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (1)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 1) SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (2)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 2)
我相信我们可以做得更好。你可以将多个对象传递给该add()方法:
add()
bar1 = Bar.objects.get(pk=1) bar2 = Bar.objects.get(pk=2) foo = Foo() foo.save() foo.bars.add(bar1, bar2)
如我们所见,传递多个对象可以节省一个SELECT:
SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 1 SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 2 INSERT INTO "app_foo" ("name") VALUES () SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (1, 2)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 1) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 2)
我不知道你还可以分配对象列表:
bar1 = Bar.objects.get(pk=1) bar2 = Bar.objects.get(pk=2) foo = Foo() foo.save() foo.bars = [bar1, bar2]
不幸的是,这又增加了一个SELECT:
SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 1 SELECT "app_bar"."id", "app_bar"."name" FROM "app_bar" WHERE "app_bar"."id" = 2 INSERT INTO "app_foo" ("name") VALUES () SELECT "app_foo_bars"."id", "app_foo_bars"."foo_id", "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE "app_foo_bars"."foo_id" = 1 SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (1, 2)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 1) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 2)
让我们尝试分配一个pks 列表,如saverio建议的那样:
foo = Foo() foo.save() foo.bars = [1,2]
因为我们不获取两个Bars,所以保存了两个SELECT语句,总共有5个:
Bars
INSERT INTO "app_foo" ("name") VALUES () SELECT "app_foo_bars"."id", "app_foo_bars"."foo_id", "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE "app_foo_bars"."foo_id" = 1 SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (1, 2)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 1) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 2)
最终获胜者是:
foo = Foo() foo.save() foo.bars.add(1,2)
路过pks到add()让我们一共有4个查询:
pks
INSERT INTO "app_foo" ("name") VALUES () SELECT "app_foo_bars"."bar_id" FROM "app_foo_bars" WHERE ("app_foo_bars"."foo_id" = 1 AND "app_foo_bars"."bar_id" IN (1, 2)) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 1) INSERT INTO "app_foo_bars" ("foo_id", "bar_id") VALUES (1, 2)
