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I have a method that takes 2 string arguments. One that contains a normal string and one that contains a string with one or more wildcard characters. I've tried the following code:

Private Function DoesMatchWildcardString(ByVal fullString As String, ByVal wildcardString As String) As Boolean
    Dim stringParts() As String
    Dim matches As Boolean = True

    stringParts = wildcardString.Split("*")

    For Each str As String In stringParts
        If fullString.Contains(str) = False Then
            matches = False
        End If
    Next

    Return matches

End Function

The I realized that it won't work properly. If I have ABCD as a normal and A*CD as my wildcard string the match will work even if my normal string was CDAB, which is not what I want.

Any ideas??

Thanks a lot.

share|improve this question
    
What are possible wildcard characters? Are you talking about just *, or more full regex-like *, +, ?, ., etc. ? –  kaveman May 16 '12 at 20:10
    
Right now I'm only working with * –  PaulG May 16 '12 at 20:10
    
Why don't you test each part of the string one at a time? So split the wildcard string A*CD into two. Test A against the first character of the normal string. Then test CD against the third and fourth characters of the normal string. –  markp3rry May 16 '12 at 20:12
    
In your example, it seems that * stands for a single character e.g. A*CD - is that true? –  kaveman May 16 '12 at 20:14
    
@kaveman - No the * can stand for any number of characters. –  PaulG May 16 '12 at 20:22

3 Answers 3

up vote 5 down vote accepted

Your approach is interesting but very inefficient even once corrected. An efficient implementation of the wildcard matching algorithm uses an extension of the shift-or algorithm (according to Wikipedia also called “bitap” by some sources, but I’ve never read that myself).

The only change to the conventional shift-or algorithm is in the preprocessing: For each * that you encounter in the pattern, enable all characters in the alphabet at this position.

If you want to correct your own algorithm, then replace the Contains call by IndexOf, and supply the position where it should start searching – namely, after the previous match. This will work for most cases, but it will perform a non-greedy search which might fail in some circumstances. An exhaustive search will necessarily backtrack. As I said, that’s inefficient, and the shift-or algorithm doesn’t suffer from this shortcoming.

But all of this is unnecessary since VB already provides the necessary operator: Like

If fullString Like wildcardString Then
    ' Yep, matches.
End If

A note on style:

Always initialise variables when you declare them, do not separate declaration and initialisation needlessly.

That is, write

Dim stringParts As String() = wildcardString.Split("*")
' or, with Option Infer On:
Dim stringParts = wildcardString.Split("*")

Furthermore, it makes no sense to compare a Boolean with a literal (If X = False …). Just write

If fullString.Contains(str) Then
share|improve this answer
    
I like the style tips. I would add that if all you are doing in a Boolean test is determining which value to set a different Boolean variable, combine them into one e.g. matches = fullString.Contains(str) –  kaveman May 16 '12 at 20:23
1  
Like operator??? Was it really that simple?? Thanks a lot!! –  PaulG May 16 '12 at 20:27

"*" does not represent a single char but any range of chars. When you want to compare two strings I have found that the if maskedtextbox1.text like maskedtextbox2.text or maskedtextbox2.text = maskedtextbox1.text works pretty well.

share|improve this answer

Try this, does this help?

Private Function DoesMatchWildcardString(ByVal fullString As String, ByVal wildcardString As String) As Boolean
    Dim count As Integer = 1
    Dim wildchr As String
    Dim fschr As String
    Dim resultstring As String = String.Empty

    Do Until count - 1 = Len(wildcardString)
        wildchr = Mid$(wildcardString, count, 1)
        fschr = Mid$(fullString, count, 1)
        If wildchr = "*" Then ' this one matches any char
            resultstring = resultstring & fschr
        Else
            If wildchr = fschr Then
                resultstring = resultstring & fschr
            End If
        End If
        count = count + 1
    Loop
    Return resultstring = fullString
End Function
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