【发布时间】:2014-08-15 13:31:33
【问题描述】:
我正在使用 postgres 9.2,并且正在尝试构建一个以特定格式生成 json 的查询。我已经非常接近简单的json_agg 表达式,但现在我被卡住了。
我有一个简单的三表模式,定义是:
CREATE TABLE project (
id INTEGER PRIMARY KEY,
name varchar(128) NOT NULL,
UNIQUE (name)
);
CREATE TABLE test (
id INTEGER PRIMARY KEY,
name varchar(128) NOT NULL,
project_id integer,
FOREIGN KEY (project_id) REFERENCES project(id),
);
CREATE TABLE data (
id INTEGER PRIMARY KEY,
date_entered timestamp with time zone NOT NULL,
data json NOT NULL,
test_id integer,
FOREIGN KEY (test_id) REFERENCES test(id)
);
像这样插入一些数据后:
INSERT INTO project (id, name) VALUES (0, 'my_project');
INSERT INTO test (id, name, project_id) VALUES (0, 'test0', 0);
INSERT INTO data (date_entered, data, test_id) VALUES (TIMESTAMP WITH TIME ZONE '2014-04-15T09:34:41.454999 z', '["some", "data"]', 0);
INSERT INTO test (id, name, project_id) VALUES (1, 'test1', 0);
INSERT INTO data (date_entered, data, test_id) VALUES (TIMESTAMP WITH TIME ZONE '2014-04-15T09:34:41.454999 z', '["some", "data"]', 1);
我想构造一个返回的查询:
{
"test0": {
"first_data": "2014-04-15 09:35:10.394+00",
"data_points": 1
},
"test1": {
"first_data": "2014-04-15 09:35:10.394+00",
"data_points": 1
}
}
我最接近这个解决方案的是这个查询:
SELECT
json_agg(data) as data
FROM (
SELECT
test.name as test_name,
min(data.date_entered) as first_data,
count(data.id) as data_points
FROM test
INNER JOIN data on data.test_id = test.id
INNER JOIN project on test.project_id = project.id
WHERE project.name = 'my_project'
GROUP BY test.name
) as data;
返回这个:
[
{
"test_name":"test0",
"first_data":"2014-04-15 09:34:41.454999+00",
"data_points":1
},
{
"test_name":"test1",
"first_data":"2014-04-15 09:34:41.454999+00",
"data_points":1
}
]
我尝试了 row_to_json 和 array_to_json 的各种奇怪用途,但我似乎无法将 test_name 值转换为外部字典中的键。
这甚至可能吗?我在滥用 postgres 的 json 生成功能吗?
【问题讨论】:
-
@Fabricator - 该答案使用丑陋的字符串连接。难道没有别的办法了吗?如果这是 postgres 可以做到的最好的,我会在我的应用程序中这样做......
标签: sql json postgresql postgresql-9.2