dim函數的第三個參數�����,也就是截取字符的長度�����,我在設置這個的時候���,出了些問題:response.write mid(up_address,a(i),a(i+1)-1) “br />”像我上面這樣寫的時候��,它就會報錯�,提示無效的過程調用或參數,
response.write mid(up_address,a(i),a(i+1)+1) “br />”但是當我把其中的a(i+1)-1改為a(i+1)+1時�,就能執行了,a(i+1)對應的值是11,可為什么只能減不能加呢?全部代碼如下:
VB code:
復制代碼 代碼如下:
dim a(),up_address
up_address = "aaa djaldk adflj adafadfasdfa afd ad"
redim a(len(up_address))
a(0) = instr(up_address," ")
response.write a(0) "br />"
if a(0)>0 then
for i=0 to len(up_address)-1
a(i+1) = instr(a(i)+1,up_address," ")
response.write mid(up_address,a(i),a(i+1)-1) "br />"
if a(i+1)=0 then
exit for
end if
response.write a(i+1) "br />"
next
end if如上代碼,我是想把字符串按空格分解出來,但是mid的第三個參數那出了點問題,我本來是想這樣截取的:
VB code:
復制代碼 代碼如下:
mid(up_address,a(i),a(i+1)-a(i)-1)
‘a(i)是空格的位置
‘a(i+1)是下一個空格的位置
‘a(i+1)-a(i)-1是兩個空格直間的字符長度
現在的問題是�����,經測試�����,mid的第三個參數那,無法使用減法����,也就是說�,我可以寫a(i+1)+���,但不能寫a(i+1)-�����,想了好久�����,我一直不明白問題出在哪?應該怎么來解決呢����?
出現這個問題是因為上面的MID函數的第三個參數出現了負數,下面是在網上找的測試的VBS代碼�,原理一樣�����,如下的代碼:
VBScript code:
復制代碼 代碼如下:
dim a(),up_address
up_address = "aaa djaldk adflj adafadfasdfa afd ad"
MsgBox len(up_address) '36
redim a(len(up_address)) 'a(36)
a(0) = instr(up_address," ")
MsgBox a(0) 'a(0)=4
MsgBox a(0) "br />"
if a(0)>0 then
for i=0 to len(up_address)-1
a(i+1) = instr(a(i)+1,up_address," ")
MsgBox a(i) " " (a(i+1)-1)‘這里的結果為34��,-1,所以導致出錯
MsgBox mid(up_address,a(i),a(i+1)-1) "br />"
if a(i+1)=0 then
exit for
end if
MsgBox a(i+1) "br />"
next
end if
