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What is the simplest way to count the number of occurrences of a specific character in a string?

i.e. I need to write a function countTheCharacters() so that

str="the little red hen"
count=countTheCharacters(str,"e") 'count should equal 4
count=countTheCharacters(str,"t") 'count should equal 3
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21 Answers 21

up vote 29 down vote accepted

The most straight forward is to simply loop through the characters in the string:

Public Function CountCharacter(ByVal value As String, ByVal ch As Char) As Integer
  Dim cnt As Integer = 0
  For Each c As Char In value
    If c = ch Then cnt += 1
  Next
  Return cnt
End Function

Usage:

count = CountCharacter(str, "e"C)

Another approach that is almost as effective and gives shorter code is to use LINQ extension methods:

Public Function CountCharacter(ByVal value As String, ByVal ch As Char) As Integer
  Return value.Count(Function(c As Char) c = ch)
End Function
share|improve this answer
    
I came here looking for the fastest approach, not necessarily the most elegant one. This is quick, but can be made about 10% quicker by using For i as Integer = 0 to value.Length - 1 instead of a For Each loop. –  NightOwl888 Aug 13 '14 at 19:34
    
'Count' is not a member of 'String'. –  Panzercrisis Oct 14 '14 at 14:57
    
@Panzercrisis: The Count method is an extension method to IEnumerable<T>, and String implements IEnumerable<char>. If you get a compiler error like that, you are missing the using System.Linq; reference at the top of the page. –  Guffa Oct 14 '14 at 17:14
    
This logic can be used for VBA as well: Public Function CountCharacter(ByVal value As String, ByVal ch As Char) As Integer Dim cnt As Integer For Each c In value If c = ch Then cnt = cnt + 1 End If Next CountCharacter = cnt End Function –  Reverend_Dude Dec 9 '14 at 16:28

This is the simple way

text="the little red hen"
count = text.Split("e").Length -1 ' Equals 4
count = text.Split("t").Length -1 ' Equals 3
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1  
This gives not always the correct number if the start letter or/and endletter is the one to count –  Remonn Jul 23 '13 at 12:11
    
@Remonn It always gives the correct number for me. The only way it doesn't count start/end letters is if you pass SplitStringOptions.RemoveEmptyEntries as the second parameter to Split() –  alldayremix Sep 6 '13 at 17:46
    
This is simple, but it creates a bunch of strings that are not even used for anything. –  Guffa Oct 14 '14 at 19:17

You can try this

Dim occurCount As Integer = Len(testStr) - Len(testStr.Replace(testCharStr, ""))
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1  
Divide your answer by Len(testCharStr) and Ceil it to work this for occurences of strings also. –  Nikhil Agrawal Feb 11 '13 at 10:17

Here's a simple version.

text.count(function(x) x = "a")

The above would give you the number of a's in the string. If you wanted to ignore case:

text.count(function(x) Ucase(x) = "A")

Or if you just wanted to count letters:

text.count(function(x) Char.IsLetter(x) = True)

Give it a shot!

share|improve this answer

Or (in VB.Net)

    Function InstanceCount(ByVal StringToSearch As String,
                           ByVal StringToFind As String) As Long
        If Len(StringToFind) Then
            InstanceCount = UBound(Split(StringToSearch, StringToFind))
        End If
    End Function
share|improve this answer

Conversion of Ujjwal Manandhar's code to VB.net as follows...

Dim a As String = "this is test"
Dim pattern As String = "t"
Dim ex As New System.Text.RegularExpressions.Regex(pattern)
Dim m As System.Text.RegularExpressions.MatchCollection
m = ex.Matches(a)
MsgBox(m.Count.ToString())
share|improve this answer
    
thanks, I choose this version. Seems to be very fast as well. I was actually searching for CR and/or LF in a text string, and the frequency so I could adjust the size and height of a textbox in a Gridview to support the output. –  htm11h Mar 3 at 20:46
Public Function CountOccurrences(ByVal StToSerach As String, ByVal StToLookFor As String) As Int32
        Dim iPos = -1
        Dim iFound = 0
        Do
            iPos = StToSerach.IndexOf(StToLookFor, iPos + 1)
            If iPos <> -1 Then
                iFound += 1
            End If<br/>
        Loop Until iPos = -1
        Return iFound
    End Function

Code Usage:

Dim iCountTimes As Integer = CountOccurrences("Can I Call you Now?", "a")

Also you can have it as an Extension:

<Extension()> _
    Public Function CountOccurrences(ByVal StToSerach As String, ByVal StToLookFor As String) As Int32
        Dim iPos = -1
        Dim iFound = 0
        Do
            iPos = StToSerach.IndexOf(StToLookFor, iPos + 1)
            If iPos <> -1 Then
                iFound += 1
            End If
        Loop Until iPos = -1
        Return iFound
    End Function

Code Usage:

Dim iCountTimes2 As Integer = "Can I Call you Now?".CountOccurrences("a")
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1  
On Stack Overflow you can format code using the {} button in the editor. I've made this as an edit for you this time. –  Flexo Jun 16 '12 at 11:02
Public Class VOWELS

    Private Sub Button1_Click(sender As Object, e As EventArgs) Handles Button1.Click
        Dim str1, s, c As String
        Dim i, l As Integer
        str1 = TextBox1.Text
        l = Len(str1)
        c = 0
        i = 0
        Dim intloopIndex As Integer
        For intloopIndex = 1 To l
            s = Mid(str1, intloopIndex, 1)
            If (s = "A" Or s = "a" Or s = "E" Or s = "e" Or s = "I" Or s = "i" Or s = "O" Or s = "o" Or s = "U" Or s = "u") Then
                c = c + 1
            End If
        Next
        MsgBox("No of Vowels: " + c.ToString)
    End Sub
End Class
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When I found this solution I was looking for something slightly different as the string I wanted to count was longer than one character, so I came up with this solution:

    Public Shared Function StrCounter(str As String, CountStr As String) As Integer
        Dim Ctr As Integer = 0
        Dim Ptr As Integer = 1
        While InStr(Ptr, str, CountStr) > 0
            Ptr = InStr(Ptr, str, CountStr) + Len(CountStr)
            Ctr += 1
        End While
        Return Ctr
    End Function
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I suggest you to do like this:

String.Replace("e", "").Count
String.Replace("t", "").Count

You can also use .Split("e").Count - 1 or .Split("t").Count - 1 respetivelly, but it gives wrong values if you, for instance have an e or a t at the beginning of the String

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Another Possibility is to work with Split

Dim tmp() As String
tmp = Split(Expression, Delimiter)
Dim count As Integer = tmp.Length - 1
share|improve this answer

another possibility is to use regular expression

string a = "this is test";
string pattern = "t";
System.Text.RegularExpressions.Regex ex = new System.Text.RegularExpressions.Regex(pattern);
System.Text.RegularExpressions.MatchCollection m = ex.Matches(a);
MessageBox.Show(m.Count.ToString());

please convert this into VB.Net

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I found the best answer :P :

String.ToString.Count - String.ToString.Replace("e", "").Count
String.ToString.Count - String.ToString.Replace("t", "").Count
share|improve this answer

Using Regular Expressions...

Public Function CountCharacter(ByVal value As String, ByVal ch As Char) As Integer
  Return (New System.Text.RegularExpressions.Regex(ch)).Matches(value).Count
End Function
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    'trying to find the amount of "." in the text
    'if txtName looks like "hi...hi" then intdots will = 3
    Dim test As String = txtName.Text
    Dim intdots As Integer = 0
    For i = 1 To test.Length
        Dim inta As Integer = 0 + 1
        Dim stra As String = test.Substring(inta)
        If stra = "." Then
            intdots = intdots + 1
        End If
    Next
    txttest.text = intdots
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I use linq, and the solution is very simple:

Code in c#:

count=yourString.ToCharArray().Count(c => c == 'e');

The code in a function:

public static int countTheCharacters(string str, char charToCount){
   return str.ToCharArray().Count(c => c == charToCount);
}

Call the function:

count=countTheCharacters(yourString, 'e');
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1  
I posted something of a vb.net equivalent below. –  MattB Jul 21 '14 at 21:38

I think this would be the easiest:

Public Function CountCharacter(ByVal value As String, ByVal ch As Char) As Integer
  Return len(value) - len(replace(value, ch, ""))
End Function
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Function fNbrStrInStr(strin As Variant, strToCount As String)
    fNbrStrInStr = UBound(Split(strin, strToCount)) - LBound(Split(strin, strToCount))
End Function

used strin as variant to handle very long text. the split can be zero based or 1 based for low end depending on user settings, subtracting it ensures the correct count.

i did not include a test for strcount being longer than strin to keep code concise.

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Dim a 
inputString = InputBox("Enter String","Enter Value","")

MyString = UCase(inputString)

MsgBox MyString

Dim stringLength 

  stringLength  =Len(MyString)

  dim temp


  output=""

  i = 1

    do

        temp=Mid(MyString,i,1)

        msgbox temp & i

        CharacterCount = Len(MyString) - Len(Replace(MyString, temp, "")) 

        MyString = Replace(MyString, temp, "")

        output =output & temp & " : " & CharacterCount & vbNewline

    loop while MyString<>""


 msgbox output
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This won't even compile. –  Grant Winney Dec 19 '14 at 6:25
Private Sub Data_KeyPress(sender As Object, e As KeyPressEventArgs) Handles Data.KeyPress
    If Not IsNumeric(e.KeyChar) And Not e.KeyChar = ChrW(Keys.Back) And Not e.KeyChar = "." Then
        e.Handled = True
    Else
        If e.KeyChar = "." And Data.Text.ToCharArray().Count(Function(c) c = ".") > 0 Then
            e.Handled = True
        End If
    End If
End Sub
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1  
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  Kenster Jul 23 '14 at 11:32
    
Looks like you meant to post this over here, although you already posted an answer there. –  Grant Winney Dec 19 '14 at 6:17

Here is the direct code that solves OP problem:

        Dim str As String = "the little red hen"

        Dim total As Int32

        Dim Target As String = "e"
        Dim Temp As Int32
        Dim Temp2 As Int32 = -1
Line50:
        Temp = str.IndexOf(Target, Temp2 + 1)
        Temp2 = Temp
        If Temp <> -1 Then
            'means there is target there
            total = total + 1
            GoTo Line50
        End If

        MessageBox.Show(CStr(total))

Now, this is a handy function to solve OP problem:

    Public Function CountOccurrence(ByVal YourStringToCountOccurrence As String, ByVal TargetSingleCharacterToCount As String) As Int32
        Dim total As Int32

        Dim Temp As Int32
        Dim Temp2 As Int32 = -1
Line50:
        Temp = YourStringToCountOccurrence.IndexOf(TargetSingleCharacterToCount, Temp2 + 1)
        Temp2 = Temp
        If Temp <> -1 Then
            'means there is target there
            total = total + 1
            GoTo Line50
        Else
            Return total
        End If
    End Function

Example of using the function:

Private Sub Button1_Click(sender As System.Object, e As System.EventArgs) Handles Button1.Click
    Dim str As String = "the little red hen"

    MessageBox.Show(CStr(CountOccurrence(str, "e")))
    'it will return 4
End Sub
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5  
-1 Sorry but not only is that very verbose, you're using GOTOs ! –  Basic Apr 3 '12 at 22:30

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