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Web server generates images and sends them to client directly. There are no URLs to the images, for security reasons. For example, if I enter /images/25 URL in the browser server will send it and browser will download it.

Now I want to get this image from Ajax call and then display it on existing page. I can get the image data. My question is: how can I display an image?

$.get("/images/25", function (rawImageData) {
   // ??? Need to add an image to DOM
});

Update

I apologize for being so stupid. Thank you, JW. Of course I can just put img tag with src to my URL. It does not matter if this is a direct URL to an image file or the server sends it dynamically.

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Is the image data returned as base64? –  gideon Mar 1 '12 at 5:57
    
No, as binary, I am just stupid :) –  Evgeny Mar 1 '12 at 6:17

4 Answers 4

up vote 3 down vote accepted

So it sounds like there is a URL, and it's /images/25.

As far as I know, you can't display image data that you get from an AJAX call*. But why not just put the URL in an <img> tag? It doesn't matter to the browser that the image is generated by the server, rather than read from a file.

*EDIT: I was wrong; see gideon's answer if you really need to use an AJAX call (e.g. you need to make a POST request, or send certain headers).

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To expand on Matt's answer, if you are getting base64 data. You could do something like this:

You need a blank image

<img id="target" src="" />

And then

$.get("/images/25", function (rawImageData) {
      $("#target").attr("src","data:image/gif;base64," + rawImageData);
});

See this MDN reference for more in base64. I made a short demo here: http://jsfiddle.net/99jAX/1/

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You want to send the raw image data base64-encoded, combined with the data:// URI scheme.

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I'd bank on it being the same as if you rendered if via PHP or ASP or whatever. just something simple like

$('#elementOfChoice').append('<img src="'+ rawImageData +'" alt="something" />');

though I could be wrong. All depends on whats happening behind the scenes to make that image become what it is. If its gotta pass through a PHP file cause its a base_64 image and needs to be encoded, or whatever the case then that has to be done accordingly.

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