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How do I replace the last character in a string with VB6? I've got the syntax

Replace$(expression, find, replacewith[, start[, count[, compare]]])

but I can't seem to find the right use of it. I've got something like

iLength = Len(sBuild)
sBuild = Replace(sBuild, "^", "ú", iLength, 1)

This isn't working but I can't seem to find any examples online.

Thanks!

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2 Answers 2

up vote 6 down vote accepted

Try

sBuild = Left$(sBuild, iLength - 1) & "ú"

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Brilliant. I was so stuck on replace I forgot about that method. Thanks! –  JimDel Jan 17 '12 at 18:34

Another method is to use the Mid() keyword:

Mid$(sBuild, Len(sBuild), 1) = "ú"

This also has the advantage of not doing string concatenation/memory reallocation.

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4  
Far preferable to the other answer. But use the $ variation of this. Even though it is the same (here) this helps avoid the bad habit of using Variant functions. –  Bob77 Jan 18 '12 at 1:58
1  
I've adjusted the keyword name and fixed the offset :p –  Deanna Jan 19 '12 at 15:16

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