请解释下“select .... ,sum......from..... group by .....select pjid(列名) ,sum(kcamount(列名)) from
请解释下“select .... ,sum......from..... group by .....
select pjid(列名) ,sum(kcamount(列名)) from pj_kc(表名) group by pjid(列名)
[解决办法]
按pjid分组求kcamount的合计数。
[解决办法]
求每一个pjid 对应的kcamount的和
[解决办法]
[解决办法]
用SUM呀
