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I want my Spring MVC application to redirect to a dynamic URL (submitted by the user). So if I have code like this,

@RequestMapping("/redirectToSite")
protected ModelAndView redirect(
    @RequestParam("redir_url") String redirectUrl,
    HttpServletRequest request, 
    HttpServletResponse response) 
{
    // redirect to redirectUrl here
    return ?
}

what should I write to redirect to the submitted URL? For instance http://mySpringMvcApp/redirectToSite?redir_url=http://www.google.com should redirect to Google.

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4  
have you tried new ModelAndView(new RedirectView(redirectUrl))? –  Joe Feb 16 '12 at 13:23
    
@Joe: Worked as well. Great stuff. –  Gruber Feb 16 '12 at 13:36
    
Not sure if you thought about this, but you should consider that open redirects are a security anti pattern and you should at least do basic validation of the submitted url before actually redirecting to it. See e.g. owasp.org/index.php/… –  Kutzi Jul 10 at 8:18
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1 Answer 1

up vote 42 down vote accepted

Try this:

@RequestMapping("/redirectToSite")
protected String redirect(@RequestParam("redir_url") String redirectUrl) 
{
    return "redirect:" + redirectUrl;
}

This is explained in 16.5.3.2 The redirect: prefix of Spring reference documentation. Of course you can always do this manually:

response.sendRedirect(redirectUrl);
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Thanks a lot, just tested it and it worked. Had to change the method return type from ModelAndView to String. –  Gruber Feb 16 '12 at 13:30
    
@user1035411: True, I updated my answer to reflect this. –  Tomasz Nurkiewicz Feb 16 '12 at 13:32
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