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If s contains 20000 and j is Len(s) the following

Dim b(1 To 8)
b() = ChrW("&H" & Mid$(s, 1, j - 4)) & ChrW("&H" & Mid$(s, j - 3))

does not work. It returns 2 characters while U+20000 is a single.

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1  
It produced two characters because you told it to produce two characters: ChrW$("&H2") & ChrW$("&H0000"). A beter question might be 'does VBA support utf-32' –  chris neilsen Jan 7 '12 at 21:34

1 Answer 1

Better code is based on here example: http://www.vbforums.com/archive/index.php/t-526476.html

Public Function ChrU(UCode As String) As String

Dim CharCode As Long
CharCode = Val("&H00" & Right(UCode, Len(UCode) - 2))

If CharCode < 0 Then
    CharCode = CharCode + 65536
End If

Dim lngChar As Long
If CharCode >= 0 Then
    If CharCode < &HD800& Then
        ChrU = ChrW$(CharCode)
        Exit Function
    ElseIf CharCode < &HDC00& Then
        ' UTF-16 surrogates are invalid in UTF-32
    ElseIf CharCode < &HFFFF& Then
        ChrU = ChrW$(CharCode)
        Exit Function
    ElseIf CharCode < &H10FFFF Then
        lngChar = CharCode - &H10000
        ChrU = ChrW$(&HD800& Or (lngChar \ 1024)) & ChrW$(&HDC00& Or (lngChar And &H3FF&))
        Exit Function
    End If
End If
Err.Raise 5
End Function
share|improve this answer
    
You should have posted this as an edit to your question, not as a answer. –  brettdj Jan 8 '12 at 9:31
    
Hard to tell whether this is really an edit or an answer... –  BoltClock Jan 8 '12 at 11:45
    
This is an answer, the code works for for long hexstrings, I have tested it and use it. If I found some bugs then will post them here. –  Dims Jan 8 '12 at 12:17
1  
You may want to phrase it better as an answer. Right now it seems more like an addition to your question than an answer to it. –  BoltClock Jan 8 '12 at 15:23

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