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Okay this one might be a little tougher. I'm using VB that looks like this:

string = Replace(string.ToLower, chr(63), "A")

But I also want chr(63) = "B" as well, like this:

string = Replace(string.ToLower, chr(63), "B")

My problem is that when chr(63) is at the end of a string I need it to be B, and when it's not the end I need it to be A. I suppose that I can use an if/then/else statement. Is there a way to do this?

Example:

XXXXXchr(63)XXXXX = A

but

XXXXXXXXXXchr(63) = B

Thanks!

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are you using VB or VB.NET? –  Mitch Wheat Jun 7 '09 at 12:52
    
I'm using Visual Studio 2008 but it was written in VB –  Robert Jun 8 '09 at 2:19

4 Answers 4

pseudo:
if (string[string.Length] == chr(63))
{
   string[string.Length] = B
}
string = Replace(string.ToLower, chr(63), "A")

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This is a good answer, but not quite what I need. Rather than length (which I don't know) I need it to be B ONLY if it's at the end of the string. Know what I mean? Example: chr(63) = ? So if the word ends in a ? I need it to be B and anything else I need to be A. Hope this makes sense! Thanks! –  Robert Jun 7 '09 at 10:40
    
You're not describing the problem well. The string object should know the length, so the above code should work, provided that string is 1-based, but it is pseudo-code so that is ok. Otherwise, if there is no way for your code to tell whether it has found the ? at the end or not, there's no way to do the code either. –  Lasse V. Karlsen Jun 7 '09 at 10:45
string = Replace(string.ToLower, chr(63), "A", 1, Len(string) - 1)
If Right(string, 1) = chr(63) then
   Mid$(string, Len(string), 1) = 'B'
End if

Update: in response to comment:

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You'll have to forgive my lack of knowledge of VB functions, I'm just learning. Does Len(string) also stand for length of the string? and how does the -1 and 1 come into play. I'm very new to this. Thanks! –  Robert Jun 7 '09 at 10:42
    
yes. Len(string) gives a string's length. Replace has these parameters: Replace$(expression, find, replacewith[, start[, count[, compare]]]) (square brackets denote optional parameters) –  Mitch Wheat Jun 7 '09 at 10:55
    
Okay so I tried using this method and I ran into a problem. I have 2 errors coming up, both for "Right". It has them underlined and I don't have enough knowledge of what it does to figure out why. Everything else seems to check out. Any clues why it's having this issue? –  Robert Jun 7 '09 at 11:28
    
updated answer to use Mid$() –  Mitch Wheat Jun 7 '09 at 11:34
    
Lol okay I understand what right/left mean now thanks to you guys and I get why. However, my VB doesn't seem to recognize Right and even though I changed the 2nd one to mid, the first one is still Right and doesn't allow it to work. Any other suggestions? –  Robert Jun 7 '09 at 11:42

I haven't used Visual Basic since version 6, but it should be something like this:

If Robert.EndsWith(chr(63)) Then
    Robert = Left(Robert, Robert.Length - 1) + "B"
End If

Then do the usual replacement with A.

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Could part of my problem be because I'm using Microsoft Visual Studio 2008? –  Robert Jun 7 '09 at 12:02

This ought to do it

    Dim s As String 
    Dim char63 As String = Convert.ToChar(63).ToString
    If s.EndsWith(char63) Then
        s = s.Substring(0, s.Length - 1) & "B"
    End If
    s = s.Replace(char63, "A")
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