6

What could be the reason of this error in the code below?

loginButton.setOnClickListener(new View.OnClickListener()
        {
            @Override
            public void onClick (View v){
                final String e_mail = e_mailEditText.getText().toString();
                final String password = passwordEditText.getText().toString();

                // Response received from the server
                Response.Listener<String> responseListener = new Response.Listener<String>() {
                    @Override
                    public void onResponse(String response) {
                        try {
                            JSONObject jsonResponse = new JSONObject(response);
                            boolean success = jsonResponse.getBoolean("success");

                            if (success) {
                                String name = jsonResponse.getString("name");
                                //  int age = jsonResponse.getInt("age");

                                Intent intent = new Intent(login.this, Welcome.class);
                                intent.putExtra("name", name);
                                // intent.putExtra("age", age);
                                intent.putExtra("e_mail", e_mail);
                                login.this.startActivity(intent);
                            } else {
                                AlertDialog.Builder builder = new AlertDialog.Builder(login.this);
                                builder.setMessage("Login Failed")
                                        .setNegativeButton("Retry", null)
                                        .create()
                                        .show();
                            }

                        } catch (JSONException e) {
                            e.printStackTrace();
                        }
                    }
                };

                LoginRequest loginRequest = new LoginRequest(e_mail, password, responseListener);
                RequestQueue queue = Volley.newRequestQueue(login.this);
                queue.add(loginRequest);
            }
        });
2
  • thanks Dan Roche it work thank god Jun 30, 2016 at 5:16
  • how i do i fix it i have it comment out Jun 30, 2016 at 5:19

3 Answers 3

10

Check if you have the key first:

if (jsonObject.has("name")) {
    String name = jsonObject.getString("name");
}
1
  • Excellent suggestion. Checking if key is present first will prevent "org.json.JSONException: No value for yourKey" being thrown.
    – MosesK
    Jun 22, 2021 at 12:51
1

For others users which have the org.json.JSONException: No value for //your parameter.

In this case you should check if the name is empty.
For example using method jsonResponse.optString("name").

Live example:

if (success) {
    String name = jsonResponse.optString("name"); //will get name value or return empty String

    if (!name.equals("")) {

        //Your code if name is exist
        Intent intent = new Intent(login.this, Welcome.class);
        intent.putExtra("name", name);
        intent.putExtra("e_mail", e_mail);
        login.this.startActivity(intent);

    } else {
        //Your code if the name is empty
    }

} else {
    AlertDialog.Builder builder = new AlertDialog.Builder(login.this);
    builder.setMessage("Login Failed")
            .setNegativeButton("Retry", null)
            .create()
            .show();
}
0

Can't say for sure without knowing the context (or the line number of the exception), but my money would be on the call:

jsonResponse.getString("name")

Most likely, the JSON received from the server doesn't contain any name/value pairs with name name.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.