Mysql中全角半角问题
1,手机号码全角转换成半角
先查询出来全角半角都存在的手机号码的数据
SELECT a.username ,COUNT(1) AS num
FROM(
SELECT REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9') AS username
FROM UC_USER uu WHERE uu.`USER_NAME` IS NOT NULL
)a GROUP BY a.username HAVING (COUNT(1)>1)
;
得到如下重复记录:
("MB.134xx76802x" ,
"MB.136xx88105x" ,
"MB.152xx80801x" ,
"MB.157xx49518x" ,
"MB.186xx88282x" ,
"MB.189xx94855x" ); )
然后删除掉已经存在半角的全角手机号码记录,不然转换后会有重复的手机号码。
DELETE FROM `UC_USER`
WHERE MOBILE LIKE '%1%'
AND REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9')
IN("MB.134xx76802x" ,
"MB.136xx88105x" ,
"MB.152xx80801x" ,
"MB.157xx49518x" ,
"MB.186xx88282x" ,
"MB.189xx94855x" );
之后再修改全角手机号码为半角手机号码
UPDATE UC_USER uu
SET uu.`MOBILE`=REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.`MOBILE`,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9'),
uu.`USER_NAME`=REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9')
WHERE uu.`MOBILE` IS NOT NULL;
2,如何把所以的全角转换成半角
上面只是人为用比较笨拙的10个replace将全角转换成了半角,有没有一种通用的思路或者方法来实现呢?于是google了很多资料,写下如下的存储函数。
DELIMITER /$/$
USE csdn /$/$
CREATE FUNCTION `csdn`.`func_convert`(p_str VARCHAR(200),flag INT)
RETURNS VARCHAR(200)
BEGIN
DECLARE pat VARCHAR(8);
DECLARE step INT ;
DECLARE i INT ;
DECLARE spc INT;
DECLARE str VARCHAR(200);
SET str=p_str;
IF flag=0 THEN /**全角换算半角*/
SET pat= N'%[!-~]%' ;
SET step= -65248 ;
SET str = REPLACE(str,N' ',N' ');
ELSE /**半角换算全角*/
SET pat= N'%[!-~]%' ;
SET step= 65248 ;
SET str= REPLACE(str,N' ',N' ') ;
END IF;
SET i=LOCATE(pat,str) ;
loop1:WHILE i>0 DO
/**开始将全角转换成半角*/
SET str= REPLACE(str, SUBSTRING(str,i,1), CHAR(UNICODE(SUBSTRING(str,i,1))+step));
SET i=INSTR(str,pat) ;
END WHILE loop1;
RETURN(str)
END /$/$
DELIMITER ;
3,google出来的sqlserver中的全角半角转换函数。
DELIMITER /$/$
CREATE
/*[DEFINER = { user | CURRENT_USER }]*/
FUNCTION `test`.`u_convert`(@str NVARCHAR(4000),@flag BIT )
RETURNS NVARCHAR
BEGIN
DECLARE @pat NVARCHAR(8);
DECLARE @step INTEGER;
DECLARE @i INTEGER;
DECLARE @spc INTEGER;
IF @flag=0
BEGIN
SELECT N'%[!-~]%' INTO @pat;
SELECT -65248 INTO @step;
SELECT REPLACE(@str,N' ',N' ') INTO @str;
END
ELSE
BEGIN
SELECT N'%[!-~]%' INTO @pat;
SELECT 65248 INTO @step;
SELECT REPLACE(@str,N' ',N' ') INTO @str;
END
SELECT patindex(@pat COLLATE LATIN1_GENERAL_BIN,@str) INTO @i;
WHILE @i>0 DO
SELECT REPLACE(@str, SUBSTRING(@str,@i,1), NCHAR(UNICODE(SUBSTRING(@str,@i,1))+@step)) INTO @str;
SELECT patindex(@pat COLLATE LATIN1_GENERAL_BIN,@str) INTO @i;
END WHILE
RETURN(@str)
END /$/$
DELIMITER ;
先查询出来全角半角都存在的手机号码的数据
SELECT a.username ,COUNT(1) AS num
FROM(
SELECT REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9') AS username
FROM UC_USER uu WHERE uu.`USER_NAME` IS NOT NULL
)a GROUP BY a.username HAVING (COUNT(1)>1)
;
得到如下重复记录:
("MB.134xx76802x" ,
"MB.136xx88105x" ,
"MB.152xx80801x" ,
"MB.157xx49518x" ,
"MB.186xx88282x" ,
"MB.189xx94855x" ); )
然后删除掉已经存在半角的全角手机号码记录,不然转换后会有重复的手机号码。
DELETE FROM `UC_USER`
WHERE MOBILE LIKE '%1%'
AND REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9')
IN("MB.134xx76802x" ,
"MB.136xx88105x" ,
"MB.152xx80801x" ,
"MB.157xx49518x" ,
"MB.186xx88282x" ,
"MB.189xx94855x" );
之后再修改全角手机号码为半角手机号码
UPDATE UC_USER uu
SET uu.`MOBILE`=REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.`MOBILE`,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9'),
uu.`USER_NAME`=REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(REPLACE(uu.user_name,'0','0'),'1','1'),'2','2'),'3','3'),'4','4') ,'5','5'),'6','6'),'7','7') ,'8','8'),'9','9')
WHERE uu.`MOBILE` IS NOT NULL;
2,如何把所以的全角转换成半角
上面只是人为用比较笨拙的10个replace将全角转换成了半角,有没有一种通用的思路或者方法来实现呢?于是google了很多资料,写下如下的存储函数。
DELIMITER /$/$
USE csdn /$/$
CREATE FUNCTION `csdn`.`func_convert`(p_str VARCHAR(200),flag INT)
RETURNS VARCHAR(200)
BEGIN
DECLARE pat VARCHAR(8);
DECLARE step INT ;
DECLARE i INT ;
DECLARE spc INT;
DECLARE str VARCHAR(200);
SET str=p_str;
IF flag=0 THEN /**全角换算半角*/
SET pat= N'%[!-~]%' ;
SET step= -65248 ;
SET str = REPLACE(str,N' ',N' ');
ELSE /**半角换算全角*/
SET pat= N'%[!-~]%' ;
SET step= 65248 ;
SET str= REPLACE(str,N' ',N' ') ;
END IF;
SET i=LOCATE(pat,str) ;
loop1:WHILE i>0 DO
/**开始将全角转换成半角*/
SET str= REPLACE(str, SUBSTRING(str,i,1), CHAR(UNICODE(SUBSTRING(str,i,1))+step));
SET i=INSTR(str,pat) ;
END WHILE loop1;
RETURN(str)
END /$/$
DELIMITER ;
3,google出来的sqlserver中的全角半角转换函数。
DELIMITER /$/$
CREATE
/*[DEFINER = { user | CURRENT_USER }]*/
FUNCTION `test`.`u_convert`(@str NVARCHAR(4000),@flag BIT )
RETURNS NVARCHAR
BEGIN
DECLARE @pat NVARCHAR(8);
DECLARE @step INTEGER;
DECLARE @i INTEGER;
DECLARE @spc INTEGER;
IF @flag=0
BEGIN
SELECT N'%[!-~]%' INTO @pat;
SELECT -65248 INTO @step;
SELECT REPLACE(@str,N' ',N' ') INTO @str;
END
ELSE
BEGIN
SELECT N'%[!-~]%' INTO @pat;
SELECT 65248 INTO @step;
SELECT REPLACE(@str,N' ',N' ') INTO @str;
END
SELECT patindex(@pat COLLATE LATIN1_GENERAL_BIN,@str) INTO @i;
WHILE @i>0 DO
SELECT REPLACE(@str, SUBSTRING(@str,@i,1), NCHAR(UNICODE(SUBSTRING(@str,@i,1))+@step)) INTO @str;
SELECT patindex(@pat COLLATE LATIN1_GENERAL_BIN,@str) INTO @i;
END WHILE
RETURN(@str)
END /$/$
DELIMITER ;