网上Oracle查看分段查询的例子,用的最多的是LAG和LEAD统计函数,Lag和Lead函数可以在一次查询中取出同一字段的前N行的数据和后N行的值。这种操作可以使用对相同表的表连接来实现,不过使用LAG和LEAD有更高的效率。例如:create table TEST ( GRADE NUMBER not null, STUID VARCHAR2(4) );insert into test (GRADE, STUID)values (1, "1001"); insert into test (GRADE, STUID)values (2, "1002"); insert into test (GRADE, STUID)values (3, "1003"); insert into test (GRADE, STUID)values (4, "1005"); insert into test (GRADE, STUID)values (5, "1006"); insert into test (GRADE, STUID)values (6, "1008"); insert into test (GRADE, STUID)values (7, "1010"); insert into test (GRADE, STUID)values (8, "1011"); insert into test (GRADE, STUID)values (9, "1012"); insert into test (GRADE, STUID)values (10, "1015"); insert into test (GRADE, STUID)values (11, "1017"); insert into test (GRADE, STUID)values (12, "1018"); insert into test (GRADE, STUID)values (13, "1020"); insert into test (GRADE, STUID)values (14, "1021"); insert into test (GRADE, STUID)values (21, "1022"); commit;select (case when k - kk > 0 then kk || "~" || k else k || "" end) jg from (select k k, k2 k2, lag(k2, 1, (select min(stuid) from test)) over(order by k) as kk --1001起始值,对k列排序,取K2列中下一位是那个数字 from (select * from (select id1, id2, id2 - id1, (case when id2 - id1 = 1 then 1 else id1 end) k, --如果不连续显示开始ID (case when id2 - id1 = 1 then id1 else id2 end) k2 --如果不连续显示结束ID from (select to_number(stuid) id1, lead(to_number(stuid), 1, (select min(stuid) from test)) over(order by stuid) as id2 --1001起始值,获取id1下个id from test)) where k > 1 --只取不连续数字 ) ) g更多Oracle相关信息见Oracle 专题页面 http://www.linuxidc.com/topicnews.aspx?tid=12本文永久更新链接地址
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