1.首先說說manyToOne的問題
比如一個用戶所在的組織機構,可能是多個,最多是四個,然后userEntity有下的代碼:
關聯查詢:
第一種方式:代碼如下
StringBuilder sql = new StringBuilder();
sql.append("select a.zdbh as zdbh, a.username as username, a.xm as xm,a.yhzt as yhzt, ")
.append(" a. jg1.zzjgid as jgid1, a. jg2.zzjgid as jgid2, a. jg3.zzjgid as jgid3, a. jg4.zzjgid as jgid4, ")
.append(" a. jg1.jgmc as jgmc1, a. jg2.jgmc as jgmc2, a. jg3.jgmc as jgmc3, a. jg4.jgmc as jgmc4 ")
.append(" from IppcXtglYhxxEntity as a ")
上面查詢的問題是,會丟失某些用戶,因為機構4個字段,部分會是空,通過show sql,可以看到,轉換的SQL是等值連接查詢:
select
ippcxtglyh0_.zdbh as col_0_0_,
ippcxtglyh0_.username as col_1_0_,
ippcxtglyh0_.xm as col_2_0_,
ippcxtglyh0_.yhzt as col_4_0_,
ippcxtglyh0_.jgid1 as col_5_0_,
ippcxtglyh0_.jgid2 as col_6_0_,
ippcxtglyh0_.jgid3 as col_7_0_,
ippcxtglyh0_.jgid4 as col_8_0_,
ippcxtglzz2_.jgmc as col_9_0_,
ippcxtglzz3_.jgmc as col_10_0_,
ippcxtglzz4_.jgmc as col_11_0_,
ippcxtglzz5_.jgmc as col_12_0_
from
ippc_xtgl_yhxx ippcxtglyh0_,
ippc_xtgl_zzjg ippcxtglzz2_,
ippc_xtgl_zzjg ippcxtglzz3_,
ippc_xtgl_zzjg ippcxtglzz4_,
ippc_xtgl_zzjg ippcxtglzz5_
where
ippcxtglyh0_.jgid1=ippcxtglzz2_.zdbh
and ippcxtglyh0_.jgid2=ippcxtglzz3_.zdbh
and ippcxtglyh0_.jgid3=ippcxtglzz4_.zdbh
and ippcxtglyh0_.jgid4=ippcxtglzz5_.zdbh
and ippcxtglyh0_.bhzxid=20
修改后,方案二:通過left join,不會丟失數據
上述SQL:轉換后的原生態的Sql如下:
select
ippcxtglyh0_.zdbh as col_0_0_,
ippcxtglyh0_.username as col_1_0_,
ippcxtglyh0_.xm as col_2_0_,
ippcgybhzx5_.mc as col_3_0_,
ippcxtglyh0_.yhzt as col_4_0_,
ippcxtglzz1_.zdbh as col_5_0_,
ippcxtglzz2_.zdbh as col_6_0_,
ippcxtglzz3_.zdbh as col_7_0_,
ippcxtglzz4_.zdbh as col_8_0_,
ippcxtglzz1_.jgmc as col_9_0_,
ippcxtglzz2_.jgmc as col_10_0_,
ippcxtglzz3_.jgmc as col_11_0_,
ippcxtglzz4_.jgmc as col_12_0_
from
ippc_xtgl_yhxx ippcxtglyh0_
left outer join
ippc_xtgl_zzjg ippcxtglzz1_
on ippcxtglyh0_.jgid1=ippcxtglzz1_.zdbh
left outer join
ippc_xtgl_zzjg ippcxtglzz2_
on ippcxtglyh0_.jgid2=ippcxtglzz2_.zdbh
left outer join
ippc_xtgl_zzjg ippcxtglzz3_
on ippcxtglyh0_.jgid3=ippcxtglzz3_.zdbh
left outer join
ippc_xtgl_zzjg ippcxtglzz4_
on ippcxtglyh0_.jgid4=ippcxtglzz4_.zdbh cross
join
ippc_gy_bhzx ippcgybhzx5_
where
ippcxtglyh0_.bhzxid=ippcgybhzx5_.zdbh
and ippcxtglyh0_.bhzxid=20
方案二是修改后的SQL,本來寫的SQL中加入了fetch,即left join fetch a.jg1 as jg1
遇到的問題是:
query specified join fetching, but the owner of the fetched association was not present in the select list
代碼
原因分析:如果使用了fetch,擁有者一定要出現在select中,也就是上面的IppcXtglYhxxEntity as a, a必須出現在select語句中
例如將上面改為select a... 這樣就會執行正常,
因為使用了fetch,Hibernate就會將需要fetch的對象(jd1、jg2、jg3、jg4)立即加載在父對象(IppcXtglYhxxEntity )中
,而我的select擁有者(IppcXtglYhxxEntity )並沒有present(出席在結果集中),那么就會出現以上錯誤.
解決辦法:將fetch去掉即可 或者 修改select,改成select a,....
我采用的是去掉fetch的方法。
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