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I've got a chunk of text in a StringBuilder object. I need to replace one substring with another. The StringBuilder Replace method can do this, but it replaces every instance of the substring and I only want to replace the first found instance. Is there a way to tell StringBuilder to only do one replace?

I'm sure I could code this up myself, I'm just wondering if there is a built in way to achieve this that I am currently missing.

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It sure would be nice if StringBuilder had an IndexOf method. –  epotter Mar 2 '10 at 15:46

4 Answers 4

up vote 3 down vote accepted

Yes, but not directly. Two of the four overloads of Replace work on a substring of the StringBuilder contents, but you'll need to find the position of the first occurrence for that to work.

Here's the one you want:
http://msdn.microsoft.com/en-us/library/y1bxd041.aspx

Edit: Unfortunately, I don't see a way to find the first occurrence without calling ToString on the StringBuilder.

(Sorry for the VB, I have a VB project open.)

Dim orig As String = "abcdefgabcdefg"
Dim search As String = "d"
Dim replace As String = "ZZZ"
Dim sb As New StringBuilder(orig)

Dim firstOccurrence = sb.ToString().IndexOf(search)

If firstOccurrence > -1 Then
    sb.Replace(search, replace, firstOccurrence, search.Length)
End If
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That won't work simply if you don't know where in the string the first instance is. –  Dan Puzey Mar 2 '10 at 15:29
    
@Dan: Updated, please read again. –  Jon Seigel Mar 2 '10 at 15:30

This is different way of doing this, but works fine

        StringBuilder sb = new StringBuilder("OldStringOldWay");

        int index = sb.ToString().IndexOf("New");           

        sb.Remove(index, "Old".Length);
        sb.Insert(index, "New");

Another way could be using Extension Method

public static StringBuilder ReplaceOnce
             (this StringBuilder sb, string toReplace, string replaceWith)
     {
       int index = sb.ToString().IndexOf("New");
       sb.Remove(index, "Old".Length);
       sb.Insert(index, "New");
       return sb;
     }

And call ReplaceOnce as follows

static void Main(string[] args)
{
   StringBuilder sb = new StringBuilder("OldStringOldWay");
   sb.ReplaceOnce("Old", "New");
}
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If I have to make several of these replacements in quick succession, is there a more efficient way to find the start stringToReplace than to create a new String object from the StringBuilder? –  epotter Mar 2 '10 at 15:46

If you know the location of the substring you want to replace (maybe by using IndexOf) you can use the overload of StringBuilder's replace.

public StringBuilder Replace(char oldChar,char newChar,int startIndex,int count);
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One of challenges with this approach is that StringBuilder doesn't have it's own IndexOf method. –  epotter Mar 2 '10 at 15:36

Here is the IndexOf method that I created long time ago :).

/// <summary>
/// Gets the index of a string from a given index with case option
/// </summary>
/// <param name="sb"></param>
/// <param name="text"></param>
/// <param name="startIndex"></param>
/// <param name="ignoreCase"></param>
/// <returns></returns>
public static int IndexOf(this StringBuilder sb, string value, int startIndex, bool ignoreCase)
{
    int num3;
    int length = value.Length;
    int num2 = (sb.Length - length) + 1;

    if (ignoreCase == false)
    {
        for (int i = startIndex; i < num2; i++)
        {
            if (sb[i] == value[0])
            {
                num3 = 1;

                while ((num3 < length) && (sb[i + num3] == value[num3]))
                {
                    num3++;
                }

                if (num3 == length)
                {
                    return i;
                }
            }
        }
    }
    else
    {
        for (int j = startIndex; j < num2; j++)
        {
            if (char.ToLower(sb[j]) == char.ToLower(value[0]))
            {
                num3 = 1;

                while ((num3 < length) && (char.ToLower(sb[j + num3]) == char.ToLower(value[num3])))
                {
                    num3++;
                }

                if (num3 == length)
                {
                    return j;
                }
            }
        }
    }

    return -1;
}
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