3

Is there a way of iterating over all entries of an HttpParams object?

Someone else had a similar problem ( Print contents of HttpParams / HttpUriRequest? ) but the answers don't really work.

When looking into BasicHttpParams I see that there is a HashMap inside, but no way of accessing it directly. Also AbstractHttpParams doesn't provide any direct access to all entries.

Since I cannot rely on predefined key names the ideal way would be to iterate just over all entries HttpParams encapsulates. Or at least get a list of key names. What am I missing?

4 Answers 4

4

Your HttpParams is used to create HttpEntity set on HttpEntityEnclosedRequestBase object and you can then have a List back using the following code

final HttpPost httpPost = new HttpPost("http://...");

final ArrayList<NameValuePair> params = new ArrayList<NameValuePair>();
params.add(new BasicNameValuePair("a_param", username));
params.add(new BasicNameValuePair("a_second_param", password));

//  add the parameters to the httpPost
HttpEntity entity;
try
{
    entity = new UrlEncodedFormEntity(params);
    httpPost.setEntity(entity);
}
catch (final UnsupportedEncodingException e)
{
    // this should never happen.
    throw new IllegalStateException(e);
}
HttpEntity httpEntity = httpPost.getEntity();

try
{
    List<NameValuePair> parameters = new ArrayList<NameValuePair>( URLEncodedUtils.parse(httpEntity) );
}
catch (IOException e)
{
}
1
  • I did a similar thing just to get the parameters off of a URI (this is a Groovy snippet, the same holds in Java): def uri = new URI("https://www.yahoo.com?foo=bar") List<NameValuePair> parameters = new ArrayList<NameValuePair>(URLEncodedUtils.parse(uri, "UTF-8")); parameters.each { parameter -> println parameter.name + ": " + parameter.value } This is a decent way to deconstruct the parameters for a request without messing around with the HttpParams object, which is mostly useless unless you know exactly what you want. Nov 1, 2012 at 19:16
2

If you know there's a HashMap inside, and you really need to get those params, you can always force your way in using reflection.

Class clazz = httpParams.getClass();

Field fields[] = clazz.getDeclaredFields();
System.out.println("Access all the fields");
for (int i = 0; i < fields.length; i++){ 
   System.out.println("Field Name: " + fields[i].getName()); 
   fields[i].setAccessible(true); 
   System.out.println(fields[i].get(httpParams) + "\n"); 
}
1
  • I somehow assumed that there must be some other way, other than using reflection. Isn't an HttpParams object processed somewhere in HttpClient, where it would need to be stripped in order to prepare the HTTP request?
    – Brian
    Feb 21, 2012 at 15:32
0

I wanted to finish building your solution to view all HttpParams via a cast to BasicHttpParams

HttpParams params = //Construction of params not shown

BasicHttpParams basicParams = (BasicHttpParams) params;
Set<String> keys = basicParams.getNames();

for (String key : keys) {
    System.out.println("[Key]:" + key + " [Value]:" + basicParams.getParameter(key));
}
-1

I just use this to set the Params:

HttpGet get = new HttpGet(url);
get.setHeader("Content-Type", "text/html");
get.getParams().setParameter("http.socket.timeout",20000);
1
  • 1
    But I wanted to read all parameters from an HttpRequest. So sticking with your example, get a list from get.getParams().
    – Brian
    Mar 2, 2012 at 7:36

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