if function in javascript returns nothing..why?

Question

<p id="demo"></p>
<p id="demo2"></p>
<script>
function myFunction(x, y) {
    var mess2;
    var x = document.getElementById("id1").value;
    var y = document.getElementById("id2").value;
    var z = Math.abs(+ x) + Math.abs(+ y);
        if (var z <= 2.50) {
            mess2 = "message 1";
        } else if (2.50 < var z <= 4.00) {
            mess2 = "message 2";
        } else if (4.00 < var z <= 5.00) {
            mess2 = "message 3";
        } else {
            mess2 = "message 4";
        }
    document.getElementById("demo").innerHTML = + mess2;
    }
</script>

so this is my little function that I need to use to show some message depending on the inputed value that the user will write in an input window. the code worked fine when I outputed only the variable z as number, but when I added this if function it outputs nothing

Any advice? thank you :)

var z inside an expression is a syntax error. And there's no chained comparison in JavaScript. — Bergi, Aug 30, 2016 at 7:17

Wizard · Accepted Answer · 2016-08-30 07:41:31Z

4

function myFunction() { // no arguments here, x and y are calculated inside function
    var mess2;
    var x = document.getElementById("id1").value;
    var y = document.getElementById("id2").value;
    var z = Math.abs(x) + Math.abs(y); // Calculate z based on x and y
    if (z <= 2.50) {          // is z <= 2.50 ?
        mess2 = "message 1";
    } else if (z <= 4.00) {   // is z <= 4.00 ? (we know it's z > 2.50)
        mess2 = "message 2";
    } else if (z <= 5.00) {   // is z <= 5.00 ? (we know it's z > 4.00)
        mess2 = "message 3";
    } else {
        mess2 = "message 4";  // is z > 5.00?
    }
    document.getElementById("demo").innerHTML = mess2; // Change html of "demo" to the message
}

See this JSFiddle

edited Aug 30, 2016 at 7:41

answered Aug 30, 2016 at 7:16

Wizard

2,9612 gold badges13 silver badges22 bronze badges

An explanation of the changes would be nice.
– Bergi
Aug 30, 2016 at 7:36
I added some comments in my answer. Variable z must be declared only once, you can't redeclare it inside "if". Let me know if you need anything else :-)
– Wizard
Aug 30, 2016 at 7:42
@Matej Marić: if you like my solution, please kindly accept it as answer by clicking the checkmark :-)
– Wizard
Aug 30, 2016 at 7:46

Add a comment |

Bart K · Accepted Answer · 2016-08-30 07:16:06Z

1

Change:

document.getElementById("demo").innerHTML = + mess2;

to:

document.getElementById("demo").innerHTML += mess2;

and also you do not need to use 'var' keyword all the time, it is for declaration only.

Check this fiddle: https://jsfiddle.net/8cLegxbj/

answered Aug 30, 2016 at 7:16

Bart K

3241 silver badge8 bronze badges

Add a comment |

Gor · Accepted Answer · 2016-08-30 07:17:49Z

1

This is because you declare variable z in if statement. Declare it once after if statements and all will ok

answered Aug 30, 2016 at 7:17

Gor

2,8086 gold badges25 silver badges46 bronze badges

Add a comment |

Ritesh Kashyap · Accepted Answer · 2016-08-30 08:00:30Z

Check this:

You are accessing value of x and y through some input IDs(as per my understanding on your code) so no need to pass as function arguments.
no need to declare var in if condition as you have already declared it above.
if(4 < z <=5) will always return true irrespective of z value, so you should use logical operators instead.
Added a button to call you myFunction().

CODEPEN

function myFunction() {
  var mess2;
  var x = document.getElementById("id1").value;
  var y = document.getElementById("id2").value;

  var z = Math.abs(+x) + Math.abs(+y);
  if (z <= 2.50) {
    mess2 = "message 1";
  } else if (2.50 < z && z <= 4.00) {
    mess2 = "message 2";
  } else if (4.00 < z && z <= 5.00) {
    mess2 = "message 3";
  } else {
    mess2 = "message 4";
  }

  document.getElementById("demo").innerHTML = mess2;
}

Prakash · Accepted Answer · 2016-08-30 07:29:28Z

-1

I have made some changes,, check sample here - https://jsfiddle.net/ugoxr5m8/2/

<p id="demo">

</p>

function myFunction(x, y) {
  var mess2;
  //var x = document.getElementById("id1").value;
  //var y = document.getElementById("id2").value;
  var z = Math.abs(+x) + Math.abs(+y);

  if (z <= 2.50) {
    mess2 = "message 1";
  } else if (2.50 < z <= 4.00) {
    mess2 = "message 2";
  } else if (4.00 < z <= 5.00) {
    mess2 = "message 3";
  } else {
    mess2 = "message 4";
  }

  document.getElementById("demo").innerHTML = mess2;
}

myFunction(1, 2);

answered Aug 30, 2016 at 7:29

Prakash

12315 bronze badges

Which changes? Why are they important?
– Bergi
Aug 30, 2016 at 7:35
This code does not work as expected for any values larger than 4.
– Bergi
Aug 30, 2016 at 7:35

Add a comment |

New search experience powered by AI

Collectives™ on Stack Overflow

if function in javascript returns nothing..why?

5 Answers 5

Your Answer

Not the answer you're looking for? Browse other questions tagged
javascript
jquery
web-developer-toolbar
or ask your own question.

Hot Network Questions

Collectives™ on Stack Overflow

5 Answers 5

Your Answer

Sign up or log in

Post as a guest

Not the answer you're looking for? Browse other questions tagged javascriptjqueryweb-developer-toolbar or ask your own question.

Related

Not the answer you're looking for? Browse other questions tagged
javascript
jquery
web-developer-toolbar
or ask your own question.