Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have excel sheet with data which I want to get Levenshtein Distance between them. I already tried to export as text, read in from script (php), run Levenshtein, save it to excel again.

But I am looking for something to directly run levenshein in excel, and I don't have time to implement it.

Do you know any levenshtein macro for excel?

share|improve this question
2  
It would be kind (and good for your reputation) to accept answers that resolve your problem –  smirkingman Dec 2 '10 at 12:04
    
@smirkingman: Thanks, just forgot to accept it :) –  Yousf Dec 19 '10 at 13:27

4 Answers 4

up vote 28 down vote accepted

Translated from Wikipedia :

Option Explicit
Public Function Levenshtein(s1 As String, s2 As String)

Dim i As Integer
Dim j As Integer
Dim l1 As Integer
Dim l2 As Integer
Dim d() As Integer
Dim min1 As Integer
Dim min2 As Integer

l1 = Len(s1)
l2 = Len(s2)
ReDim d(l1, l2)
For i = 0 To l1
    d(i, 0) = i
Next
For j = 0 To l2
    d(0, j) = j
Next
For i = 1 To l1
    For j = 1 To l2
        If Mid(s1, i, 1) = Mid(s2, j, 1) Then
            d(i, j) = d(i - 1, j - 1)
        Else
            min1 = d(i - 1, j) + 1
            min2 = d(i, j - 1) + 1
            If min2 < min1 Then
                min1 = min2
            End If
            min2 = d(i - 1, j - 1) + 1
            If min2 < min1 Then
                min1 = min2
            End If
            d(i, j) = min1
        End If
    Next
Next
Levenshtein = d(l1, l2)
End Function

?Levenshtein("saturday","sunday")

3

share|improve this answer
    
This code works drag and drop for Access VBA too. :) –  HelloW Jan 24 at 14:26

Thanks to smirkingman for the nice code post. Here is an optimized version.

1) Use Asc(Mid$(s1, i, 1) instead. Numerical comparision is generally faster than text.

2) Use Mid$ istead of Mid since the later is the variant ver. and adding $ is string ver.

3) Use application function for min. (personal preference only)

4) Use Long instead of Integers since it's what excel natively uses.

Function Levenshtein(ByVal string1 As String, ByVal string2 As String) As Long

Dim i As Long, j As Long
Dim string1_length As Long
Dim string2_length As Long
Dim distance() As Long

string1_length = Len(string1)
string2_length = Len(string2)
ReDim distance(string1_length, string2_length)

For i = 0 To string1_length
    distance(i, 0) = i
Next

For j = 0 To string2_length
    distance(0, j) = j
Next

For i = 1 To string1_length
    For j = 1 To string2_length
        If Asc(Mid$(string1, i, 1)) = Asc(Mid$(string2, j, 1)) Then
            distance(i, j) = distance(i - 1, j - 1)
        Else
            distance(i, j) = Application.WorksheetFunction.Min _
            (distance(i - 1, j) + 1, _
             distance(i, j - 1) + 1, _
             distance(i - 1, j - 1) + 1)
        End If
    Next
Next

Levenshtein = distance(string1_length, string2_length)

End Function

UPDATE:

For those who want it: I think it's safe to say that most people use Levenshtein distance to calculate fuzzy match percentages. Here's a way to do that, and I have added an optimization that you can specify the min. match % to return (default is 70%+. You enter percentags like "50" or "80", or "0" to run the formula regardless).

The speed boost comes from the fact that the function will check if it's even possible that it's within the percentage you give it by checking the length of the 2 strings. Please note there are some areas where this function can be optimized, but I have kept it at this for the sake of readability. I concatenated the distance in result for proof of functionality, but you can fiddle with it :)

Function FuzzyMatch(ByVal string1 As String, _
                    ByVal string2 As String, _
                    Optional min_percentage As Long = 70) As String

Dim i As Long, j As Long
Dim string1_length As Long
Dim string2_length As Long
Dim distance() As Long, result As Long

string1_length = Len(string1)
string2_length = Len(string2)

' Check if not too long
If string1_length >= string2_length * (min_percentage / 100) Then
    ' Check if not too short
    If string1_length <= string2_length * ((200 - min_percentage) / 100) Then

        ReDim distance(string1_length, string2_length)
        For i = 0 To string1_length: distance(i, 0) = i: Next
        For j = 0 To string2_length: distance(0, j) = j: Next

        For i = 1 To string1_length
            For j = 1 To string2_length
                If Asc(Mid$(string1, i, 1)) = Asc(Mid$(string2, j, 1)) Then
                    distance(i, j) = distance(i - 1, j - 1)
                Else
                    distance(i, j) = Application.WorksheetFunction.Min _
                    (distance(i - 1, j) + 1, _
                     distance(i, j - 1) + 1, _
                     distance(i - 1, j - 1) + 1)
                End If
            Next
        Next
        result = distance(string1_length, string2_length) 'The distance
    End If
End If

If result <> 0 Then
    FuzzyMatch = (CLng((100 - ((result / string1_length) * 100)))) & _
                 "% (" & result & ")" 'Convert to percentage
Else
    FuzzyMatch = "Not a match"
End If

End Function
share|improve this answer
1  
+1 for great optimization, but you may also want to declare the function's return type (I assume String?). –  JimmyPena Nov 9 '11 at 13:28
    
Good catch - should definitely declare the return type. I'll have to try but I recall having some issues when I tried to declare it (seemed to want a variant). –  Issun Nov 9 '11 at 14:01
    
Actually, "distance" is a Long type so the return type should be Long? –  JimmyPena Nov 9 '11 at 14:42
    
Fixed. Thanks, JP :) –  Issun Nov 9 '11 at 14:57
5  
My version takes ~0.032 milliseconds per call. Your 'optimised' version takes ~7.937, which is about 250 times slower. Removing (the useless) Application.Screenupdating brings your time down to 0.422, only 14 times slower. Replacing your (useless) call to Worksheetfunction.min with my MIN code brings your time down to 0.032; back to where we started (ASC actually is marginally slower). –  smirkingman Nov 16 '11 at 11:36

I think it got even faster... Didn't do much other than improve previous code for speed and results as %

' Levenshtein3 tweaked for UTLIMATE speed and CORRECT results
' Solution based on Longs
' Intermediate arrays holding Asc()make difference
' even Fixed length Arrays have impact on speed (small indeed)
' Levenshtein version 3 will return correct percentage
'
Function Levenshtein3(ByVal string1 As String, ByVal string2 As String) As Long

Dim i As Long, j As Long, string1_length As Long, string2_length As Long
Dim distance(0 To 60, 0 To 50) As Long, smStr1(1 To 60) As Long, smStr2(1 To 50) As Long
Dim min1 As Long, min2 As Long, min3 As Long, minmin As Long, MaxL As Long

string1_length = Len(string1):  string2_length = Len(string2)

distance(0, 0) = 0
For i = 1 To string1_length:    distance(i, 0) = i: smStr1(i) = Asc(LCase(Mid$(string1, i, 1))): Next
For j = 1 To string2_length:    distance(0, j) = j: smStr2(j) = Asc(LCase(Mid$(string2, j, 1))): Next
For i = 1 To string1_length
    For j = 1 To string2_length
        If smStr1(i) = smStr2(j) Then
            distance(i, j) = distance(i - 1, j - 1)
        Else
            min1 = distance(i - 1, j) + 1
            min2 = distance(i, j - 1) + 1
            min3 = distance(i - 1, j - 1) + 1
            If min2 < min1 Then
                If min2 < min3 Then minmin = min2 Else minmin = min3
            Else
                If min1 < min3 Then minmin = min1 Else minmin = min3
            End If
            distance(i, j) = minmin
        End If
    Next
Next

' Levenshtein3 will properly return a percent match (100%=exact) based on similarities and Lengths etc...
MaxL = string1_length: If string2_length > MaxL Then MaxL = string2_length
Levenshtein3 = 100 - CLng((distance(string1_length, string2_length) * 100) / MaxL)

End Function
share|improve this answer

Use a byte array for 17x speed gain

  Option Explicit

  Public Declare Function GetTickCount Lib "kernel32" () As Long

  Sub test()
  Dim s1 As String, s2 As String, lTime As Long, i As Long
  s1 = Space(100)
  s2 = String(100, "a")
  lTime = GetTickCount
  For i = 1 To 100
     LevenshteinStrings s1, s2  ' the original fn from Wikibooks and Stackoverflow
  Next
  Debug.Print GetTickCount - lTime; " ms" '  3900  ms for all diff

  lTime = GetTickCount
  For i = 1 To 100
     Levenshtein s1, s2
  Next
  Debug.Print GetTickCount - lTime; " ms" ' 234  ms

  End Sub

  'Option Base 0 assumed

  'POB: fn with byte array is 17 times faster
  Function Levenshtein(ByVal string1 As String, ByVal string2 As String) As Long

  Dim i As Long, j As Long, bs1() As Byte, bs2() As Byte
  Dim string1_length As Long
  Dim string2_length As Long
  Dim distance() As Long
  Dim min1 As Long, min2 As Long, min3 As Long

  string1_length = Len(string1)
  string2_length = Len(string2)
  ReDim distance(string1_length, string2_length)
  bs1 = string1
  bs2 = string2

  For i = 0 To string1_length
      distance(i, 0) = i
  Next

  For j = 0 To string2_length
      distance(0, j) = j
  Next

  For i = 1 To string1_length
      For j = 1 To string2_length
          'slow way: If Mid$(string1, i, 1) = Mid$(string2, j, 1) Then
          If bs1((i - 1) * 2) = bs2((j - 1) * 2) Then   ' *2 because Unicode every 2nd byte is 0
              distance(i, j) = distance(i - 1, j - 1)
          Else
              'distance(i, j) = Application.WorksheetFunction.Min _
              (distance(i - 1, j) + 1, _
               distance(i, j - 1) + 1, _
               distance(i - 1, j - 1) + 1)
              ' spell it out, 50 times faster than worksheetfunction.min
              min1 = distance(i - 1, j) + 1
              min2 = distance(i, j - 1) + 1
              min3 = distance(i - 1, j - 1) + 1
              If min1 <= min2 And min1 <= min3 Then
                  distance(i, j) = min1
              ElseIf min2 <= min1 And min2 <= min3 Then
                  distance(i, j) = min2
              Else
                  distance(i, j) = min3
              End If

          End If
      Next
  Next

  Levenshtein = distance(string1_length, string2_length)

  End Function
share|improve this answer
    
This change from String to Byte works with Unicode strings?? –  Raul Luna Jul 15 '13 at 7:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.