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.

I am trying to get it so that if I type in a name that ends with a space, the textfield will go red. Most of the code works its just one method does not seem to be working.

The issue must be somewhere in the last index part?

var NamePass = true;

function ValidateName() {
    var BlankPass = true;
    var GreaterThan6Pass = true;
    var FirstBlankPass = true;
    var BlankMiddleName = true;

    if (document.getElementById('Name').value == "") {
        BlankPass = false;
    }

    var Size = document.getElementById('Name').value.length;
    console.log("Size = " + Size);

    if (Size < 7) {
        GreaterThan6Pass = false;
    }

    if (document.getElementById('Name').value.substring(0, 1) == " ") {
        FirstBlankPass = false;
    }

    var LastIndex = document.getElementById('Name').value.lastIndexOf();

    if (document.getElementById('Name').value.substring((LastIndex - 1), 1) == " ") {
        FirstBlankPass = false;
    }

    string = document.getElementById('Name').value;
    chars = string.split(' ');
    if (chars.length > 1) {} else
        BlankMiddleName = false;

    if (BlankPass == false || GreaterThan6Pass == false || FirstBlankPass == false || BlankMiddleName == false) {
        console.log("BlankPass = " + BlankPass);
        console.log("GreaterThan6Pass = " + GreaterThan6Pass);
        console.log("FirstBlankPass = " + FirstBlankPass);
        console.log("BlankMiddleName = " + BlankMiddleName);
        NamePass = false;
        document.getElementById('Name').style.background = "red";
    } else {
        document.getElementById('Name').style.background = "white";
    }
}

http://jsfiddle.net/UTtxA/10/

share|improve this question
    
Please make sure to indent your code! If you could also try to provide a title that better describes your question in the future, it would be much appreciated. –  minitech May 1 '13 at 23:34
1  
So what part of it exactly does not work as expected? Btw, please store document.getElementById('Name') and its value in variables! –  Bergi May 1 '13 at 23:37
7  
The style of programming if (chars.length > 1) {} else { doSomething(); } I will never understand. Why, why, why, why, why do something so obfuscatory? Come on. Make it sensible: if (chars.length === 1) { doSomething(); }. –  ErikE May 1 '13 at 23:38
1  
I'm evil xD. I think this problem could be reduced to one line with a regular expression. This is what regex are for... But validating names is bad practice anyway, lots of possibilities (endless I'd say). Just validate length. –  elclanrs May 1 '13 at 23:40
3  
Btw. instead of disallowing spaces at the beginning and end of the text, it would be a better idea to just strip that whitespace. –  poke May 1 '13 at 23:46

1 Answer 1

up vote 3 down vote accepted

lastIndexOf gets the last index of a character, not the last index in a string. I think you meant to use length instead:

var LastIndex = document.getElementById('Name').value.length;

Another problem with that, though, is that substring takes a start and end index, not a start index and a substring length. You could use substr instead, but charAt is easier:

if (document.getElementById('Name').value.charAt(LastIndex - 1) == " ") {
    FirstBlankPass = false;
}

Now, for some general code improvement. Instead of starting with all your variables at true and conditionally setting them to false, just set them to the condition:

var NamePass = true;

function ValidateName() {
    var value = document.getElementById('Name').value;

    var BlankPass = value == "";
    var GreaterThan6Pass = value.length > 6;
    var FirstBlankPass = value.charAt(0) == " ";
    var LastBlankPass = value.charAt(value.length - 1) == " ";
    var BlankMiddleName = value.split(" ").length <= 1;

    if (BlankPass || GreaterThan6Pass || FirstBlankPass || LastBlankPass || BlankMiddleName) {
        console.log("BlankPass = " + BlankPass);
        console.log("GreaterThan6Pass = " + GreaterThan6Pass);
        console.log("FirstBlankPass = " + FirstBlankPass);
        console.log("BlankMiddleName = " + BlankMiddleName);
        NamePass = false;
        document.getElementById('Name').style.background = "red";
    } else {
        document.getElementById('Name').style.background = "white";
    }
}

A couple more points of note:

  • It’s probably a good idea to use camelCase variable names instead of PascalCase ones, the latter usually being reserved for constructors
  • blah == false should really be written as !blah
  • An empty if followed by an else can also be replaced with if(!someCondition)
  • That function looks like it should return true or false, not set the global variable NamePass

Penultimately, you can sum this all up in one regular expression, but if you intend to provide more specific error messages to the user based on what’s actually wrong, then I wouldn’t do that.

function validateName() {
    return /^(?=.{6})(\S+(\s|$)){2,}$/.test(document.getElementById('name').value);
}

And finally — please keep in mind that not everyone has a middle name, or even a name longer than 6 characters, as @poke points out.

share|improve this answer
    
wow I feel like iv'e discovered classes again for the first time. That you for taking the time to explain it and showing how to improve. Knowing now that you can take a value from the html and be able to it makes better sense. Thanks! –  Steven May 1 '13 at 23:52
    
Im trying to get it so 'nnnb nnnn' would be accepted. a space at front is not allowed and the same for the back. But you must have one somewhere in the name –  Steven May 1 '13 at 23:57
    
as for the return method, something like this? jsfiddle.net/UTtxA/12 –  Steven May 2 '13 at 0:00
    
@Steven: Almost, but just take out the var NamePass = ValidateName(); line and check it in the submit event to stop the form from being submitted. –  minitech May 2 '13 at 0:07
    
the submit event as in when I am finished and will have a submit button? –  Steven May 2 '13 at 0:16

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.