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The following script should validate only certain input fields depending on the selection a user makes in a drop-down box (var problem).

The trouble I'm having is when the if statement runs for problem == 4 (below) and the user has filled in the corresponding cityid field, the alert (Alert#3) for the next if statement (problem == 5) is triggered. I only want Alert#3 to trigger if the user has selected problem == 5 from the drop-down AND has not filled in the model field.

The same trouble happens respectively when if statement runs for problem == 5.

function ValidateSOR()
{

    var user = document.SOR.User;
    var problem= document.SOR.Problem;
    var cityid = document.SOR.CityID;
    var errors1 = document.SOR.ErrorCodes1;
    var model = document.SOR.Model;
    var errors2 = document.SOR.ErrorCodes2;
    var software = document.SOR.SoftwareType;

    if (user.value == "")
    {
        window.alert("Please enter your name.");
        user.focus();
        return false;
    }

    if (problem.selectedIndex < 1)
    {
        alert("Alert#1");
        problem.focus();
        return false;
    }

    if (problem.selectedIndex == 4) 
    {
        cityid.focus();
    }
        else if (cityid.value == "")
    {
        alert("Alert#2");
        cityid.focus();
        return false;
    }

    if (problem.selectedIndex == 5) 
    {
        model.focus();
    }
        else if (model.value == "")
    {
        alert("Alert#3");
        model.focus();
        return false;
    }

    if (problem.selectedIndex == 6) 
    {
        software.focus();
    }
        else if (software.value == "")
    {
        alert("Alert#4");
        software.focus();
        return false;
    }

    return true;
}
share|improve this question
2  
javascript is different from java. –  Nambari Jul 17 '13 at 17:41
    
Okay... does the difference relate to my problem or how I would solve it? –  user2170703 Jul 17 '13 at 17:45
2  
Orthogonal comment: consider using a validation library/plugin rather than writing bespoke validation. It tends to be much simpler and clearer. –  Matt Ball Jul 17 '13 at 17:47
    
And it is always better to know atleast some basics about what you are working. –  Nambari Jul 17 '13 at 17:50
1  
So true. One is always learning. Thank you! –  user2170703 Jul 17 '13 at 17:51

2 Answers 2

You're not returning from the function when you discover that the problem is #4. Thus, because it is 4, then it's not 5, and so the "else" part of that branch is taken.

edit — OK, let's look at the code:

if (problem.selectedIndex == 4) {
    cityid.focus();
}
else if (cityid.value == "") {
    alert("Alert#2");
    cityid.focus();
    return false;
}

if (problem.selectedIndex == 5) {
    model.focus();
}
else if (model.value == "") {
    alert("Alert#3");
    model.focus();
    return false;
}

If the index is 4, what happens? This code runs:

  cityid.focus();

Then what? The code proceeds to the next if statement:

if (problem.selectedIndex == 5) {

Now, if we just got through noticing that the index was 4, then what are the chances that it will be equal to 5? Zero! Thus, that comparison is guaranteed to be false, so we move to the else part. Apparently, your "model.value" is the empty string, so that if statement succeeds. You get the alert.

I think your problems would be solved by bringing the logic of the code more in line with the logic of your validation process:

if (problem.selectedIndex == 4 || cityid.value == "") {
  cityid.focus();
  return false;
}

That way, if the index is 4 or if the city ID value is empty, then you'll treat that as an error with the city ID and exit the function. It won't matter what comes after that, because the return leaves the function at that point.

share|improve this answer
    
Hmm, I'm not quite sure what your mean or how I would edit the code to do that. Could you give me an example? –  user2170703 Jul 17 '13 at 17:48
    
@user2170703 if the index is 4, then what happens after that if statement? It will not return from the function, because the return statement is inside the else clause. Thus, it will move to the next test, and 4 is not equal to 5. –  Pointy Jul 17 '13 at 17:53
    
I guess I'm still a beginner at this and have a lot to learn! I do really well with visual examples. Any chance you could rewrite one of the if and else statements to help? –  user2170703 Jul 17 '13 at 17:57
    
@user2170703 I'll extend the answer. –  Pointy Jul 17 '13 at 17:58
    
I have extended the answer to provide explaination... not sure whether will be accepted otherwise Pointy mentioned, he will be putting things there. –  Guanxi Jul 17 '13 at 18:00

You should restructure each IF like so:

if (problem.selectedIndex == 4 || cityid.value == "") 
{
    cityid.focus();
    return false;
}

if (problem.selectedIndex == 5 || model.value == "") 
//and so on

so it returns either way and does not hit the next if statement

share|improve this answer
    
Here's the code that finally worked, and I had to change index numbers: if (problem.selectedIndex == 3){ if (cityid.value == ""){ window.alert("Give us the ID number, etc."); cityid.focus(); return false;} } if (problem.selectedIndex == 4){ if (model.value == ""){ window.alert("Give us the model number, etc."); model.focus(); return false;} } if (problem.selectedIndex == 5){ if (software.value == ""){ window.alert("What software is giving you trouble"); software.focus(); return false;} } –  user2170703 Jul 18 '13 at 0:21

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