我在进行SQL表查询的时候.
输入如下语句:
SELECT *
FROM SEND
WHERE SEND_TIME LIKE '%2007-6-8% '
结果显示:
"当前"SQL"窗格内容做语法分析时发生下列错误:
输入项无法被转换为有效日期时间值."
请各位路过的高手帮个忙!小弟在线等!
------解决方案--------------------
SELECT *
FROM SEND
WHERE convert(varchar(10),SEND_TIME,120) = '2007-06-08 '
------解决方案--------------------
SELECT *
FROM SEND
WHERE CONVERT(varchar(30),SEND_TIM,102) LIKE '%2007-6-8% '
不过没心要这样
SELECT *
FROM SEND
WHERE CONVERT(varchar(30),SEND_TIM,102) = '2007-06-8 '
------解决方案--------------------
SELECT *
FROM SEND
WHERE SEND_TIME LIKE '%2007-6-8% '
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改成:
SELECT *
FROM SEND
WHERE convert(varchar(10),SEND_TIME,101) LIKE '%2007-6-8% '
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在end if后加response.write times 或 msgbox(times)看看获得的是什么值
------解决方案--------------------
先帮顶一下,有事,用上面的方法,把sql显示出来,在查询分析器下执行,贴出来让大家分析吧
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把党中那段换成这样试试
应该可以了
sql= "select * from send where Convert(nvarchar,send_yxtime,23) = Convert(nvarchar,Convert(datetime, ' "×& " '),23) "
elseif request.Form( "action ")= "send_time " then
sql= "select * from send where Convert(nvarchar,send_time,23)= Convert(nvarchar,Convert(datetime, ' "×& " '),23) "