比如現在有一人員表 (表名:peosons)
若想將姓名、身份證號、住址這三個字段完全相同的記錄查詢出來
復制代碼 代碼如下:select p1.*
from persons p1,persons p2
where p1.id<>p2.id
and p1.cardid = p2.cardid and p1.pname = p2.pname and p1.address = p2.address
可以實現上述效果.
幾個刪除重復記錄的SQL語句
1.用rowid方法
2.用group by方法
3.用distinct方法
1。用rowid方法
據據oracle帶的rowid屬性,進行判斷,是否存在重復,語句如下:
查數據:
復制代碼 代碼如下:select * from table1 a where rowid !=(select max(rowid)
from table1 b where a.name1=b.name1 and a.name2=b.name2......)
刪數據:
復制代碼 代碼如下:delete from table1 a where rowid !=(select max(rowid)
from table1 b where a.name1=b.name1 and a.name2=b.name2......)
2.group by方法
查數據:
復制代碼 代碼如下:select count(num), max(name) from student --列出重復的記錄數,並列出他的name屬性
group by num
having count(num) >1 --按num分組後找出表中num列重復,即出現次數大於一次
刪數據:
復制代碼 代碼如下:delete from student
group by num
having count(num) >1
這樣的話就把所有重復的都刪除了。
3.用distinct方法 -對於小的表比較有用
復制代碼 代碼如下:create table table_new as select distinct * from table1 minux
truncate table table1;
insert into table1 select * from table_new;
查詢及刪除重復記錄的方法大全
1、查找表中多余的重復記錄,重復記錄是根據單個字段(peopleId)來判斷
復制代碼 代碼如下:select * from people
where peopleId in (select peopleId from people group by peopleId having count(peopleId) > 1)
2、刪除表中多余的重復記錄,重復記錄是根據單個字段(peopleId)來判斷,只留有rowid最小的記錄
復制代碼 代碼如下:delete from people
where peopleId in (select peopleId from people group by peopleId
having count(peopleId) > 1)
and rowid not in (select min(rowid) from people group by peopleId having count(peopleId )>1)
3、查找表中多余的重復記錄(多個字段)
復制代碼 代碼如下:select * from vitae a
where (a.peopleId,a.seq) in (select peopleId,seq from vitae group by peopleId,seq having count(*) > 1)
4、刪除表中多余的重復記錄(多個字段),只留有rowid最小的記錄
復制代碼 代碼如下:delete from vitae a
where (a.peopleId,a.seq) in (select peopleId,seq from vitae group by peopleId,seq having count(*) > 1)
and rowid not in (select min(rowid) from vitae group by peopleId,seq having count(*)>1)
5、查找表中多余的重復記錄(多個字段),不包含rowid最小的記錄
復制代碼 代碼如下:select * from vitae a
where (a.peopleId,a.seq) in (select peopleId,seq from vitae group by peopleId,seq having count(*) > 1)
and rowid not in (select min(rowid) from vitae group by peopleId,seq having count(*)>1)
(二)
比方說在A表中存在一個字段“name”,而且不同記錄之間的“name”值有可能會相同,現在就是需要查詢出在該表中的各記錄之間,“name”值存在重復的項;
復制代碼 代碼如下:Select Name,Count(*) From A Group By Name Having Count(*) > 1
如果還查性別也相同大則如下:
復制代碼 代碼如下:Select Name,sex,Count(*) From A Group By Name,sex Having Count(*) > 1
(三)
方法一
復制代碼 代碼如下:declare @max integer,@id integer
declare cur_rows cursor local for select 主字段,count(*) from 表名 group by 主字段 having count(*) >; 1
open cur_rows
fetch cur_rows into @id,@max
while @@fetch_status=0
begin
select @max = @max -1
set rowcount @max
delete from 表名 where 主字段 = @id
fetch cur_rows into @id,@max
end
close cur_rows
set rowcount 0
方法二
"重復記錄"有兩個意義上的重復記錄,一是完全重復的記錄,也即所有字段均重復的記錄,二是部分關鍵字段重復的記錄,
比如Name字段重復,而其他字段不一定重復或都重復可以忽略。
1、對於第一種重復,比較容易解決,使用
復制代碼 代碼如下:select distinct * from tableName
就可以得到無重復記錄的結果集。
如果該表需要刪除重復的記錄(重復記錄保留1條),可以按以下方法刪除
復制代碼 代碼如下:select distinct * into #Tmp from tableName
drop table tableName
select * into tableName from #Tmp
drop table #Tmp
發生這種重復的原因是表設計不周產生的,增加唯一索引列即可解決。
2、這類重復問題通常要求保留重復記錄中的第一條記錄,操作方法如下
假設有重復的字段為Name,Address,要求得到這兩個字段唯一的結果集
復制代碼 代碼如下:select identity(int,1,1) as autoID, * into #Tmp from tableName
select min(autoID) as autoID into #Tmp2 from #Tmp group by Name,autoID
select * from #Tmp where autoID in(select autoID from #tmp2)
最後一個select即得到了Name,Address不重復的結果集(但多了一個autoID字段,實際寫時可以寫在select子句中省去此列)
(四)
查詢重復
復制代碼 代碼如下:select * from tablename where id in (
select id from tablename
group by id
having count(id) > 1
)