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The question is pretty self explanatory so is it possible to count how many times a letter is contained inside a string in as3 and return the value to some variable

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6 Answers 6

up vote 3 down vote accepted

Sure it is. Have a look at the ActionScript reference for:

String, string.length, and string.charAt()

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Yes ,that was pretty obvious, i thought about it at first but thiinked if there is some way of doing this without a loop through all the characters in the string.Looks like there isn't , but this worked for me var strCount:uint = str.indexOf(String(find.text)); for (var k:Number = 0; k < str.length; k++ ) { if (str.charAt(strCount) == str.charAt(k)) { numString++; times.text = numString.toString(); } } –  5et Dec 29 '10 at 21:03
function patternOccurrences(pattern:String, target:String):uint
    {
    return target.match(new RegExp(pattern, "g")).length;
    }
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You mean? return target.match(new RegExp(pattern, target)).length; –  redconservatory Jan 2 '11 at 20:18
    
no, i mean "g" (as in Global): help.adobe.com/en_US/FlashPlatform/reference/actionscript/3/… –  TheDarkIn1978 Jan 2 '11 at 23:59

I haven't worked with Actionscript or Flash much - A quick google resulted in this:

function getEntranceNumber(mytext:String,myletter:String):Number
    {
        if( myletter.length>1)
        {
            trace("length of a letter should be equal to 1");
            return 0;
        }
        else
        {
            var total:Number = 0;
            var i:Number;
            for( i=0 ; i<mytext.length ; i++ )
            {
                if( mytext[i]==myletter[0] )
                    total++;
            }
            return total;
        }
    }

Source : http://www.actionscript.org/forums/showthread.php3?t=145412

Edit : Here's another link that had some additional information on the same topic :

http://www.kirupa.com/forum/showthread.php?t=94654 (I believe it even includes a .fla script file)

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A solution with RegExp :

trace(count("abcdefg", "a"));//1
trace(count("aacdefg", "a"));//2
trace(count("aacdeAg", "a"));//2
trace(count("aacdeaa", "a"));//4
trace(count("aacdeaa", "e"));//1
trace(count("eacdeae", "e"));//3
trace(count("eacdeae", "z"));//0
function count(s : String, letter : String) : int {
    return s.match(new RegExp(letter,"g")).length;
}
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Thanks for the answer this looks like a solution will try this –  5et Dec 29 '10 at 21:12

Another option would be to use split() on the string and return its length minus one. I find it easier to use than RegExp for basic needs.

Example:

function getMatchCount ( search:String , target:String ):int
{
    return target.split( search ).length - 1;
}

trace( getMatchCount( "a" , "aardvark" ) ); // 3
trace( getMatchCount( "ball" , "volleyball baseball basketball football" ) ); // 4
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Regexps for such a simple task are IMHO overkill. Here's the most straightforward and also very efficient way:

    static public function CountSingleLetter( where : String, what : String ):int
    {
        var count:uint = 0;
        for (var k:Number = 0; k < where.length; ++k )
        {
            if (where.charAt(k) == what )
            {
                ++count;
            }
        }
        return count;
    }

Put this into some Utils class, or into the String.prototype, ie.

String.prototype.RemoveLastChar = function():String
{
    return this.substr(0, this.length - 1);
}

calling the prototype version is unfortunately not what you would expect:

line = line["RemoveLastChar"]();

Replacing the RemoveLastChar with CountSingleLetter left as an exercise for reader :)

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