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I'm using Apache Wicket and I have following problem:

Inside a onSubmit() method I am sending a POST request to external web address with Apache httpClient. As a response I get html (inside my response object).

How can I get Wicket to render this html in browser?

So basically what I'm trying to do here, is simply what would normally happen if I submitted a html form to this web address. However for security reasons I don't want to give user pages containing forms that contain this data I'm trying to send.

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Is it just an HTML snippet you want to render or a complete HTML page with external CSS references etc.? If it is just a snippet you could simply use a Label and call setEscapeModelStrings(false) before rendering. –  DerMiggel Dec 19 '12 at 21:28
    
It's a complete HTML page I want to render. Thanks anyway. –  user1390856 Dec 19 '12 at 22:12
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You could subclass WebPage and override getMarkupStream to return a stream containing the desired HTML. –  Nicktar Dec 20 '12 at 9:51
    
Displaying a page sent to you by another web site isn't exactly safe either. In fact it is potentially far more dangerous than showing users the form fields they submit. –  biziclop Dec 20 '12 at 13:26

1 Answer 1

You can get the response via getResponse() in any component. (I assume the onSubmit() is on a form).

How about something like:

getResponse().reset();
getResponse().write(htmlPage);

htmlPage should be a CharSequence containing the html page to be rendered.

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