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In this piece of code, whenever you click the OK button, a number is displayed below it and right next to that number is an input field. This happens 10 times, each time a new number is displayed along with an input field. What I'm trying to do is this: whenever the OK button is hit, things are displayed and the last user input is stored in var temp and to check it, I append it to "begin".

    var NumberOfQuestions= 10;
    var questionCounter = 1;
    var score=0;

    //create the Problem array
    var QuestionArray = [];
    QuestionArray.push(0);
    for (i=1; i<=NumberOfQuestions; i++){
        var randomNumber = Math.floor(Math.random()*110);
        QuestionArray.push(randomNumber);
        }//end for loop



    $(function() {
    $("#ok").click(function() {
        if(questionCounter <= NumberOfQuestions){
            $("#ok").after("<p>" + QuestionArray[questionCounter]  + "<input type='text' size='1' class='r'/></p>");
            questionCounter++;}//end if
          var temp = (".r").value();
          $("#hg").append(temp);        
        });//end click function
    });


});

begin

OK

The problem is that nothing gets stored in the variable temp. I tried var temp = (".r").val(); but that doesn't help too. pls help

share|improve this question
    
$(".r").val(); //missing $ maybe also try setting $(".r").val("like this see if it stores anything"); –  Carnotaurus Feb 5 '12 at 7:59
    
Oops.....forgot it here.Doesn't work with the $ too. –  Akash Feb 5 '12 at 10:15

1 Answer 1

If you take the value after adding the new input temp is empty becouse the input is still empty. Take the last input you generate before you add the new input like this:

$(function() {
$("#ok").click(function() {
    var temp = $(".r").last().val();
    $("#hg").append(temp); 
    if(questionCounter <= NumberOfQuestions){
        $("#ok").after("<p>" + QuestionArray[questionCounter]  + "<input type='text'          size='1' class='r'/></p>");
        questionCounter++;}//end if               
    });//end click function
});
share|improve this answer
    
tried that....still nothing –  Akash Feb 5 '12 at 10:15
    
You want to get the value of the old input, right? –  Hadas Feb 5 '12 at 10:29
    
yes. the problem with the code you suggest is that now nothing happens when i click the ok button ! –  Akash Feb 5 '12 at 11:31
    
You use val() or value()? val() is the right.(I have a mistake) –  Hadas Feb 5 '12 at 12:01
    
tried both....none work –  Akash Feb 7 '12 at 10:42

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