I have a layout similar to this:

<div id="..."><img src="..."></div>

and would like to use a jQuery selector to select the child img inside the div on click.

To get the div, I've got this selector:

$(this)

How can I get the child img using a selector?

16 Answers 16

up vote 2710 down vote accepted

The jQuery constructor accepts a 2nd parameter called context which can be used to override the context of the selection.

jQuery("img", this);

Which is the same as using .find() like this:

jQuery(this).find("img");

If the imgs you desire are only direct descendants of the clicked element, you can also use .children():

jQuery(this).children("img");
  • 566
    for what it's worth: jQuery("img", this) is internally converted into: jQuery(this).find("img") So the second is ever so slightly faster. :) – Paul Irish Jan 8 '10 at 23:49
  • 24
    Thanks @Paul, I was worried that using find() was wrong, turns out it's the only way ;) – Agos Feb 17 '10 at 11:36
  • 5
    If the node is a direct child, wouldn't it be fastest to just do $(this).children('img'); ? – adamyonk Aug 5 '11 at 11:58
  • 11
    @adamyonk infact not, atleast not if this is anything to go by: jsperf.com/jquery-children-vs-find/3 – Simon Stender Boisen Oct 13 '11 at 6:21
  • 3
    I'm seeing the exact opposite of what @PaulIrish stated in this example - jsperf.com/jquery-selectors-comparison-a . Can anyone shed some light? Either I got the test-case wrong, or jquery changed this optimization in the last 4 years. – Jonathan Vanasco Nov 21 '13 at 20:19

You could also use

$(this).find('img');

which would return all imgs that are descendants of the div

  • In general cases, it seems like $(this).children('img') would be better. e.g. <div><img src="..." /><div><img src="..." /></div></div> because presumably the user wants to find 1st-level imgs. – Buttle Butkus Oct 28 '14 at 6:47

If you need to get the first img that's down exactly one level, you can do

$(this).children("img:first")
  • 5
    Does :first only match "down exactly one level", or does it match the "first" img that was found? – Ian Boyd May 15 '12 at 21:08
  • 2
    @IanBoyd, .children() is where the "down exactly one level" comes from and :first is where the "first" came from. – Tyler Crompton Jul 3 '12 at 21:43
  • 2
    @IanBoyd, that element would be unaccounted for. It would only apply if you use .find() instead of .children() – Tyler Crompton Jul 4 '12 at 1:26
  • 2
    if you're using :first with a .find() be careful, jQuery seems to find all the descendants and then return the first element, very expensive sometimes – Clarence Liu Oct 8 '12 at 23:43
  • 1
    @ButtleButkus In the question, this was already a reference to the <div> containing the <img>, however if you has multiple levels of tag to traverse from the reference you had then you definitely could definitely compose more than one children() call – rakslice Oct 28 '14 at 17:47

If your DIV tag is immediately followed by the IMG tag, you can also use:

$(this).next();
  • 16
    .next() is really fragile, unless you can always guarantee the element will be the next element, it's better to use a different method. In this case, the IMG is a descendant, not a sibling, of the div. – LocalPCGuy Dec 28 '11 at 18:12
  • The OP explicitly asked for a child img inside the div. – Giorgio Tempesta May 25 at 10:15

The direct children is

$('> .child', this)
  • 1
    This answer is potentially misleading as there is no element with a 'child' class so it won't work. – Giorgio Tempesta May 25 at 10:17

You can find all img element of parent div like below

$(this).find('img') or $(this).children('img')

If you want specific img element you can write like this

$(this).children('img:nth(n)')  
// where n is the child place in parent list start from 0 onwards

Your div contain only one img element. So for this below is right

 $(this).find("img").attr("alt")
                  OR
  $(this).children("img").attr("alt")

But if your div contain more img element like below

<div class="mydiv">
    <img src="test.png" alt="3">
    <img src="test.png" alt="4">
</div>

then you can't use upper code to find alt value of second img element. So you can try this:

 $(this).find("img:last-child").attr("alt")
                   OR
 $(this).children("img:last-child").attr("alt")

This example shows a general idea that how you can find actual object within parent object. You can use classes to differentiate your child object. That is easy and fun. i.e.

<div class="mydiv">
    <img class='first' src="test.png" alt="3">
    <img class='second' src="test.png" alt="4">
</div>

You can do this as below :

 $(this).find(".first").attr("alt")

and more specific as:

 $(this).find("img.first").attr("alt")

You can use find or children as above code. For more visit Children http://api.jquery.com/children/ and Find http://api.jquery.com/find/. See example http://jsfiddle.net/lalitjs/Nx8a6/

Without knowing the ID of the DIV I think you could select the IMG like this:

$("#"+$(this).attr("id")+" img:first")
  • 54
    this probably actually works but it's kinda the Rube Goldberg answer :) – Scott Evernden Apr 9 '09 at 0:39
  • 8
    and if you are going to use that code, at least do: $("#" + this.id + " img:first") – LocalPCGuy Dec 28 '11 at 18:08
  • 9
    @LocalPCGuy You meant: "and if you are going to use that code call for help" – gdoron Mar 24 '13 at 13:36
  • Why would you do this if 'this' already selects the actual div? Besides, if the div does not have an id this code won't work. – Giorgio Tempesta May 25 at 10:21

Ways to refer to a child in jQuery. I summarized it in the following jQuery:

$(this).find("img"); // any img tag child or grandchild etc...   
$(this).children("img"); //any img tag child that is direct descendant 
$(this).find("img:first") //any img tag first child or first grandchild etc...
$(this).children("img:first") //the first img tag  child that is direct descendant 
$(this).children("img:nth-child(1)") //the img is first direct descendant child
$(this).next(); //the img is first direct descendant child
  • I would use the nth-child() – A McGuinness Sep 29 at 20:11

Try this code:

$(this).children()[0]
  • 13
    that would work although it returns a dom element not a jq object – redsquare Nov 20 '08 at 21:07
  • 2
    I don't know if it is the best approach to the current situation, but if you want to go this route and still end up with a jQuery object, just wrap it that way: $($(this).children()[0]). – patridge Feb 24 '10 at 17:16
  • 19
    or even easier $(this:first-child) – rémy May 11 '11 at 9:52
  • 3
    instead of $($(this).children()[x]) use $(this).eq(x) or if you want the first one, just $(this).first(). – Cristi Mihai May 21 '12 at 20:03
  • 15
    @rémy: That's not even valid syntax. (Took all of 2 years for anyone to notice...) – BoltClock Jun 17 '13 at 18:40

You can use either of the following methods:

1 find():

$(this).find('img');

2 children():

$(this).children('img');

jQuery's each is one option:

<div id="test">
    <img src="testing.png"/>
    <img src="testing1.png"/>
</div>

$('#test img').each(function(){
    console.log($(this).attr('src'));
});

You can use Child Selecor to reference the child elements available within the parent.

$(' > img', this).attr("src");

And the below is if you don't have reference to $(this) and you want to reference img available within a div from other function.

 $('#divid > img').attr("src");

Also this should work:

$("#id img")

You may have 0 to many <img> tags inside of your <div>.

To find an element, use a .find().

To keep your code safe, use a .each().

Using .find() and .each() together prevents null reference errors in the case of 0 <img> elements while also allowing for handling of multiple <img> elements.

// Set the click handler on your div
$("body").off("click", "#mydiv").on("click", "#mydiv", function() {

  // Find the image using.find() and .each()
  $(this).find("img").each(function() {
  
        var img = this;  // "this" is, now, scoped to the image element
        
        // Do something with the image
        $(this).animate({
          width: ($(this).width() > 100 ? 100 : $(this).width() + 100) + "px"
        }, 500);
        
  });
  
});
#mydiv {
  text-align: center;
  vertical-align: middle;
  background-color: #000000;
  cursor: pointer;
  padding: 50px;
  
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/1.9.1/jquery.min.js"></script>

<div id="mydiv">
  <img src="" width="100" height="100"/>
</div>

  • why did you do this? $("body").off("click", "#mydiv").on("click", "#mydiv", function() { – Chris22 Sep 16 '17 at 1:18
  • I don't know how or where @Alex is using his snippet. So, I made it as safe and generic as possible. Attaching an event to body will make it so the event will trigger even if the div were not in the dom at the time the event was created. Clearing the event before creating a new one prevents the handler from running more than once when an event is triggered. It is not necessary to do it my way. Simply attaching the event to the div would also work. – Jason Williams Sep 26 '17 at 21:32
  • Thanks. I've seen this before in a script and while it worked for what the programmer intended, when I tried to use it for a modal window, the event still created several modals on single click. I guess I was using it wrong, but I wound up using event.stopImmediatePropagation() on the element to prevent that from happening. – Chris22 Sep 30 '17 at 1:48

Here's a functional code, you can run it (it's a simple demonstration).

When you click the DIV you get the image from some different methods, in this situation "this" is the DIV.

$(document).ready(function() {
  // When you click the DIV, you take it with "this"
  $('#my_div').click(function() {
    console.info('Initializing the tests..');
    console.log('Method #1: '+$(this).children('img'));
    console.log('Method #2: '+$(this).find('img'));
    // Here, i'm selecting the first ocorrence of <IMG>
    console.log('Method #3: '+$(this).find('img:eq(0)'));
  });
});
.the_div{
  background-color: yellow;
  width: 100%;
  height: 200px;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<div id="my_div" class="the_div">
  <img src="...">
</div>

Hope it helps!

$(document).ready(function() {
  // When you click the DIV, you take it with "this"
  $('#my_div').click(function() {
    console.info('Initializing the tests..');
    console.log('Method #1: '+$(this).children('img'));
    console.log('Method #2: '+$(this).find('img'));
    // Here, i'm selecting the first ocorrence of <IMG>
    console.log('Method #3: '+$(this).find('img:eq(0)'));
  });
});
.the_div{
  background-color: yellow;
  width: 100%;
  height: 200px;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<div id="my_div" class="the_div">
  <img src="...">
</div>

protected by Bill the Lizard Jun 10 '10 at 18:44

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