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.

How can I prevent the user from inserting more than one line break in a row into a text field? I prefer a solution using jQuery.

UPDATE 1:

I have inserted anadeo's code into my code which looks like the following. Unfortunately it doesn't work - it still allows more than one line break in a row in the textarea #posttext. Anyone know how to fix this? Thanks :)

//Post something
$('#postDiv').on('keydown', '#posttext', function(e) {
if (e.which==13 && !e.shiftKey && $('#posttext').val()!=' Post something...') {

    var last = false;

    var code = (e.keyCode ? e.keyCode : e.which);
    if(code == 13) {
        if (last) { e.preventDefault(); }
        last=true;
    }else{
        last=false;
    }

    //If not currently loading and enough text typed in, submit
    if($('#imageFeedback').html()!=' | Loading...' && $('#posttext').val().length>15){

        //Say that it is loading
        $('#imageFeedback').css('color','black').css('font-weight','normal').html(' | Loading...');

        //Call function to post
        post($(this));
        return false;
    }
}
});
share|improve this question
2  
Anything you've tried so far? –  xbonez May 7 '12 at 23:33
    
Nope, to be honest I have no idea how to approach this. –  Charles May 7 '12 at 23:37

4 Answers 4

up vote 2 down vote accepted
$(textarea).on('keydown', function(e) {
    var code = (e.keyCode ? e.keyCode : e.which);
    if(code == 13 && this.value.match(/\n/g)) e.preventDefault();
});​

FIDDLE

...more than one line break in a row

Are you thinking of avoiding more than one line break in a row (one after another), like so:

var last = false;

$(textarea).on('keydown', function(e) {
    var code = (e.keyCode ? e.keyCode : e.which);
    if(code == 13) {
        if (last) { e.preventDefault(); }
        last=true;
    }else{
        last=false;
    }
});​

FIDDLE

EDIT:

Firstly, on() is only supported in jQuery 1.7+, so make sure you are using a newer version of the library.

You are also using the delegated version of on(), and that should'nt be a problem, but it assumes that your textarea is inserted into the DOM at a later time, and not present from the start, ie. it's dynamically inserted with JS etc.

The rest seems ok, but the last variable will have to be placed outside the keydown function to work properly, and the var code should be at the top, doing the check for the enter key only once, as the second check is not really necessary. The code variable is really optional, as jQuery is supposed to normalize e.which, but doing a check to see if keycode or which is supported seems like a good idea to ensure cross browser compatibility.

The check for the #posttext value will only work once, as soon as a linebreak is entered the value is no longer Post something..., and the "limit linebreaks" function will be enabled?

All in all I think this should work, try it and see ?

var last = false;

$('#postDiv').on('keydown', '#posttext', function(e) {
    var code = (e.keyCode ? e.keyCode : e.which);
    if (code==13 && !e.shiftKey && $('#posttext').val()!=' Post something...') {
        if (last) { e.preventDefault(); }
        last=true;
    }else{
        last=false;
    }
});​

FIDDLE

Also, It would probably be a good idea to use a less common variable name instead of last, something like MyLastTyped, PostTextLast etc. that is less likely to be confused with a function or variable with the name last in some other place or plugin etc.

share|improve this answer
    
Like to see people using .on() –  honyovk May 8 '12 at 0:11
    
@adeneo In fiddle it works and that is exactly what I need. Please see question edit, I have included it in my code but it doesn't work. –  Charles May 8 '12 at 9:30
    
@Dennis - Updated my answer as it was a little to much for a comment, see if that's working for you now, if not I'll have a look at it again ! –  adeneo May 8 '12 at 12:59
    
@adeneo this is awesome! works perfectly! :) thank you very much! –  Charles May 8 '12 at 19:12

I came up with this:

NEW AND IMPROVED (can define how many newlines allowed)

http://jsfiddle.net/cEzUx/6/

<textarea id="my" rows="5"></textarea>
<div id="out"> </div>

maxBreaks = 1;

$("#my").keydown(function(e) {
    if(e.keyCode == 13) {    
        if(countBreaks($("#my").val()) == maxBreaks) {
            e.preventDefault();
        }
    }
});

function countBreaks(str) {
  var num = 0;        
  for (var i = 0; i < str.length; i++) {
      if (str.charAt(i) === '\n') { num++; }
  }
  return num;
}
​
share|improve this answer
$("#myTarea").keydown(function(e) {
    if(e.keyCode == 13) {
       if($(this).val().match(/\n/)) e.preventDefault();
    }
});

<textarea id="myTarea" rows="5"></textarea>

DEMO.

share|improve this answer

The key to the solution is to prevent the default behavior of inserting the carriage return \n, once you detect that there is at least one \n character on the page.

In the event object passed into the keypress handler, use the "which" method to check for the enter key "keypress" event, which is represented by the number 13. If that key is pressed, check the entire contents of the textarea for a carriage return, which again is represented by the escape sequence \n. If the length of the collection of \n characters is greater than 0, then invoke event.preventDefault(), which prevents the enter key from being added to the textarea's value property:

$('#wmd-input').keypress(function(event) {
    if(event.which == 13 && $('#wmd-input').val().match(/\n/g).length > 0) {
        event.preventDefault();
    }
});
share|improve this answer

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.