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I am not really familiar with jQuery. I have this code that I downloaded to create a fade in/fade out popup form. Here's the code:

<script type='text/javascript'>
    $(document).ready(function() {
        $('#button').click(function(e) { 
            $('#modal').reveal({ 
                animation: 'fade',
                animationspeed: 150,
                closeonbackgroundclick: true, 
                dismissmodalclass: 'close'
            });
            return false;
        });
    });
</script>

The code above executes when a button with an id='button' is clicked. Now I have multiple buttons, how can I call this function in all buttons? I tried setting the id of all buttons to button but only the first button works. Any help would be very much appreciated. By the way I forgot to mention, in my .php file i have this codes:

for ($c=1;$c<=5;$c++){
echo "<input type='button' id='button'">
};

This php code will display 5 buttons with the same id which is 'button'. What I want to happen is when I click any of the 5 buttons the jQuery function will execute which is popping up a fade in/fade out form.

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6 Answers 6

up vote 12 down vote accepted

First solution :

function doClick(e) { 
   $('#modal').reveal({ 
     animation: 'fade',
     animationspeed: 150,
     closeonbackgroundclick: true, 
     dismissmodalclass: 'close'
   });
   return false;
}
$('#button1').click(doClick);
$('#button2').click(doClick);

Second solution :

Give a class "someClass" to all the involved buttons

<input type=button class=someClass ...

and do

$('.someClass').click(function(e) { 
...
});

Third solution :

Use the comma to separate ids :

$('#button1, #button2').click(function(e) { 
...
});

Generally, the best solution is the second one : it allows you to add buttons in your code without modifying the javascript part. If you add some of those buttons dynamically, you may even do

$(document).on('click', '.someClass', function(e) { 
...
});
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1  
+1 nice overview of the different ways of achieving the same thing –  Mark Walters Oct 26 '12 at 8:16
    
Bravo! Bravo! Bravo! Thank you so much @dystroy, you're a genius. I used your 2nd solution and it perfectly works. –  clydewinux Oct 26 '12 at 8:25

IDs should be unique. Try using something like

$('input[type="button"]')
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1  
A class would be better suited IMO –  Rory McCrossan Oct 26 '12 at 8:10
    
@RoryMcCrossan As long as a container with an ID isnt specified, I would say it doesnt make that much of a difference. Just wanted to post an alternative to the other answers –  Johan Oct 26 '12 at 8:20

you class can call them by class you using , seperated id

$(document).ready(function() {
$('#button, #button1, #button2').click(function(e) { 
$('#modal').reveal({ 
animation: 'fade',
animationspeed: 150,
closeonbackgroundclick: true, 
dismissmodalclass: 'close'
});
return false;
});
});​
share|improve this answer
    
this should work, but I have 5 buttons with the same id generated from loop inside php file. Or is it possible naming a button id with an array, like button id='button[0]'? –  clydewinux Oct 26 '12 at 8:26
    
for that it is better to use class –  Pragnesh Chauhan Oct 26 '12 at 8:49
<script type='text/javascript'>
$(document).ready(function() {
$('#button1,#button2,#button3').click(function(e) { 
$('#modal').reveal({ 
animation: 'fade',
animationspeed: 150,
closeonbackgroundclick: true, 
dismissmodalclass: 'close'
});
return false;
});
});
</script>

or else use class as mentioned bt dystroy

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You can use css class name instead of id to achieve it like below

<script type='text/javascript'>
$(document).ready(function() {
    $('.fade').click(function(e) { 
        $('#modal').reveal({ 
            animation: 'fade',
            animationspeed: 150,
            closeonbackgroundclick: true, 
            dismissmodalclass: 'close'
        });
        return false;
    });
});
</script>

and your html of the buttons

<button class="fade">Button1</button>
<button class="fade">Button2</button>
<button class="fade">Button3</button>
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yes it works with this, like what @dystroy said. –  clydewinux Oct 26 '12 at 8:28

Use different ids for buttons and change your function as below.

$('#button1, #button2, #button3').click(function(e) {
.....

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