当我在时间戳上运行选择时,我会得到类似:2015-01-02T23:22:36.000Z, 1/7/2015 11:03:31 AM
为了正确格式化,我必须这样做:
SELECT to_char(entered, 'MM/DD/YYYY HH12:MI:SS AM')
FROM analytics WHERE business_id = 371746;
甚至更糟:
var statement = "SELECT service_id, analytic_id, queues.business_id, name, queues.queue_id,";
statement += " to_char(serviced, 'MM/DD/YYYY HH12:MI:SS AM') as serviced,";
statement += " to_char(called, 'MM/DD/YYYY HH12:MI:SS AM') as called,";
statement += " to_char(entered, 'MM/DD/YYYY HH12:MI:SS AM') as entered ";
statement += " FROM queues INNER JOIN analytics";
statement += " ON queues.queue_id = analytics.queue_id";
statement += " AND queues.business_id = " + business_id + "";
statement += " AND line_id = " + line_id + " ORDER BY queues.queue_id";
这是一种痛苦,因为我经常只做SELECT *并且没有指定字段。
有没有办法告诉Postgres始终从SELECT返回这种格式'MM/DD/YYYY HH12:MI:SS AM',而不必每次都指定to_char?
答案 0 :(得分:3)
您可以创建执行所有to_char次转化的服务器端视图定义:
CREATE VIEW view_name AS SELECT
to_char(serviced, 'MM/DD/YYYY HH12:MI:SS AM') as serviced,
....
....
然后从Javascript直接查询视图而不是具体表(或者从视图或表中手术选择列,具体取决于您定义视图的方式)。
答案 1 :(得分:1)
这个差不多了。
var statement = "
SET datestyle to SQL,MDY ;
SET lc_time to 'en_us.utf8' ;
SELECT ...
除了en_us似乎是24小时制。