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    String id = request.getParameter("id") != null ? request.getParameter("id") : "0";
            aaaa doc = bbb.getdetailsById(id);    
            byte b[] = doc.getUploaded();        
            try {
                response.setContentType("APPLICATION/OCTET-STREAM");
                String disHeader = "Attachment;Filename=" + doc.getName();
                response.setHeader("Content-Disposition", disHeader);
                servletoutputstream = response.getOutputStream();
                servletoutputstream.write(b, 0, b.length);
}

I have this piece of code. the code audit tool says that the servletoutputstream.write(b, 0, b.length); is xss vulnerable. but i dont have any clue how it is reporting the same. and how to fix it. i am using ESAPI to validate the input and to escape the output in other xss vulnerable reported issue. do i need to do the same to these also? please give suggestions or solutions. after doing some research work i found that the byte b[] needs to be escape for the htmlESCAPE or xmlESCAPE by using ESAPI. will it solve the issue?

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It seems like your code is sending some uploaded file or something? In such case, you don't want to modify it in any way. –  Peter Štibraný Jun 19 '12 at 7:35

3 Answers 3

up vote 0 down vote accepted

Validate the input 'id' using ESAPI for example. Validate the fileName for FILE DOWNLOAD INJECTION using ESAPI. also validate the byte b[] using getVAlidatedFileContent() using ESapi.

This is a case of STORED XSS VULNERABILITY ISSUE.

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If you use Spring MVC, there is a feature for the purpose, enabled as follows:

<context-param>
    <param-name>defaultHtmlEscape</param-name>
    <param-value>true</param-value>
</context-param>

here is the clue

2nd clue

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can u please xplain what this is intended to do? is it from the esapi from the owasp? –  R.K.R Jun 19 '12 at 7:24
    
Without any additional context or explanation, this is simply wrong. –  Peter Štibraný Jun 19 '12 at 7:24
    
there's a link in my comment –  user965347 Jun 19 '12 at 7:25
    
downvoted damn –  user965347 Jun 19 '12 at 7:26
    
just got clicked not intensionally perfect now –  R.K.R Jun 19 '12 at 7:31

if getUploaded() returns some javascript code which is uploaded by hacker<script>alert('hi')</script> then this may create problem.

You can try below solution to format the strings which comes with Spring framework.

HtmlUtils.htmlEscape("<script> alter(''hi)</script>")

Output:

&lt;script&gt; alter(''hi)&lt;/script&gt

You can JSTL library also to format the string containing javascript.

public static byte[] getFormatedString(byte[] string){

    String str=new String(string);
    str=HtmlUtils.htmlEscape(str);
    return str.getBytes();

}

Your Code :

String id = request.getParameter("id") != null ? request.getParameter("id") : "0";
    aaaa doc = bbb.getdetailsById(id);    
    byte b[] = doc.getUploaded();        
    try {
        response.setContentType("APPLICATION/OCTET-STREAM");
        String disHeader = "Attachment;Filename=" + doc.getName();
        response.setHeader("Content-Disposition", disHeader);
        servletoutputstream = response.getOutputStream();
        servletoutputstream.write(getFormatedString(b), 0, b.length);
share|improve this answer
    
even if it is of byte type? –  R.K.R Jun 19 '12 at 7:37
    
It takes string as parameter so you can covert byte[] to string then format it and again convert it to byte[]. –  amicngh Jun 19 '12 at 7:53
    
does escaping either from htmlEscape or by the use of ESAPI by OWASP like ESAPI.encoder().encodeForHTML is the best solution foe these types of problem in xss? do you have any other solution or suggestion, as i cannot test this solution and had to deliver it directly to the client? –  R.K.R Jun 19 '12 at 10:15

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