8 
CREATE OR REPLACE FUNCTION dummytest_insert_trigger()
  RETURNS trigger AS
$BODY$
DECLARE
v_partition_name    VARCHAR(32);
        BEGIN
        IF NEW.datetime IS NOT NULL THEN
                v_partition_name := 'dummyTest';            
                EXECUTE format('INSERT INTO %I VALUES ($1,$2)',v_partition_name)using NEW.id,NEW.datetime;              
                END IF;                    
           RETURN NULL;
        END;
        $BODY$
  LANGUAGE plpgsql VOLATILE
  COST 100;
ALTER FUNCTION dummytest_insert_trigger()
  OWNER TO postgres;

我正在尝试使用 insert 插入 dummyTest values(1,'2013-01-01 00:00:00+05:30');

但它显示错误为

ERROR: function format(unknown) does not exist
SQL state: 42883
Hint: No function matches the given name and argument types. You might need to add explicit type casts.
Context: PL/pgSQL function "dummytest_insert_trigger" line 8 at EXECUTE statement

我无法得到错误。

4

2 回答 2

18

您的函数在 Postgres 9.0 或更高版本中可能如下所示:

CREATE OR REPLACE FUNCTION dummytest_insert_trigger()
  RETURNS trigger AS
$func$
DECLARE
   v_partition_name text := quote_ident('dummyTest');  -- assign at declaration
BEGIN
   IF NEW.datetime IS NOT NULL THEN
      EXECUTE 
      'INSERT INTO ' || v_partition_name || ' VALUES ($1,$2)'
      USING NEW.id, NEW.datetime;              
   END IF;                    

   RETURN NULL;  -- You sure about this?
END
$func$  LANGUAGE plpgsql;

关于RETURN NULL

我建议不要使用混合大小写标识符。使用format( .. %I ..)or quote_ident(),您将获得一个名为 的表"dummyTest",您必须在其存在的其余部分使用双引号。有关的:

改用小写:

quote_ident('dummytest')

EXECUTE只要您有一个静态表名,就没有必要使用动态 SQL 。但这可能只是简化的例子?

于 2012-12-28T08:27:33.980 回答
3

您需要显式转换为text

EXECUTE format('INSERT INTO %I VALUES ($1,$2)'::text ,v_partition_name) using NEW.id,NEW.datetime;
于 2012-12-28T07:01:16.707 回答