Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have a dynamic dropdown. That populates the second drop down. My javascript is not taking my variables when I change my selection when I tested with one php variable. Am new to this


<script type="text/javascript">
function populate(s1,s2){
var s1 = document.getElementById(s1);
var s2 = document.getElementById(s2);
s2.innerHTML = "";
if(s1.value=="<?php echo $car; ?>"){
var optionArray=[" ","camero Camaro","convette Convette"];
} else
var optionArray=[" ","avanger Avanger","challenger Challenger"];
} else if(s1.value=="Ford"){
var optionArray=[" ","mustang Mustang","fiesta Fiesta"];
for (var option in optionArray){
var pair = optionArray[option].split(" ");
var newOption = document.createElement("option");
newOption.value = pair[0];
newOption.innerHTML = pair[1];

PHP file:

<select name="slct1" id="slct1" onchange="populate(,'slct2')">

<option value=""></option>
<option value="<?php $car = 'Chevy';echo $car; ?>">Chevy</option>
<option value="Dodge">Dodge</option>
<option value="Ford">Ford</option>
<hr />
<select id="slct2" name="slct2">
<hr />
share|improve this question
Why not just assign a variable in js.. say var foo = <?php echo $car; ?> thus meaning you're able to then if(var.value == foo) { } – Phorce Mar 16 '13 at 18:31
@saiyan101 Hi, I tried to post my answer but some error occurred. However please check this demo that I created for you as an example. .You could achieve the result easily using jquery. – black_belt Mar 16 '13 at 18:54

5 Answers 5

It is because you assign a variable <?php $car = 'Chevy'; ?>

You need to print it <?php echo 'Chevy'; ?> or <?php echo $car; ?>

share|improve this answer
<option value="<?='Chevy'?>">Chevy</option>
share|improve this answer


if(s1.value=="<?php echo $car; ?>"){

Will be parsed and the value of $car will be added.

<option value="<?php $car = 'Chevy'; ?>">Chevy</option>

Replace it with

<option value="<?php $car = 'Chevy'; echo $car; ?>">Chevy</option>

And remember to assign something to $car. As i said above,

if(s1.value=="<?php echo $car; ?>"){

will be parsed, add $car = 'Chevy'; above it

share|improve this answer
I have tried it i have changed my code. Its not working – saiyan101 Mar 16 '13 at 18:34
if(s1.value=="<?php echo $car; ?>"){ will be blank if $car = 'Chevy'; is used later. Will be if(s1.value==""){ – Marco Acierno Mar 16 '13 at 18:41

If the javascript code you show is in a *.js file the inline php in it will not be parsed by php.

I can't tell if that is the problem you are having or if it is something deeper. When the javascript is sent to your browser does line 6 look like:

if(s1.value=="<?php echo $car; ?>"){



if it looks like the first one, but you want it to look like the second one then you need to have your javascript be in the php file so it has access to your variables.

share|improve this answer

Problem is int this line

if(s1.value=="<?php echo $car; ?>"){ 

Try using hidden input tag of html

<input id="hidden_field" name="hidden_field" type="hidden" value="<?php echo $car;?>" />

and in Javascript

var hidden_Value = document.getElementById('hidden_field').value;
if(s1.value==hidden_Value ){ 
share|improve this answer

Your Answer


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.