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好的,我的第一篇文章,因为我已经达到了研究的极限。我尝试运行 3 个请求,每个请求在 for 循环中都有不同的 url(我也尝试过 while 和 if)并且代码运行完美,直到它到达请求队列。现在的事情是:在请求队列之后我想得到响应,然后才再次进行 for 循环,但这似乎不是程序想要做的,因为在我添加请求队列后,类又返回到 for 循环,并继续整个函数直到结束,只有最后我得到 3 个后续响应,这让我很生气,因为我每次都想要一个请求。我之前做过很多请求,并认为我知道如何解决这个问题,但我不能 =s 代码:

public class MainActivity extends FragmentActivity {

private String totalresults, word, results, server, userAgent, quantity, urly, nome;
private int counter,limit;
EditText nome_empresa;
public TextView output;
ProgressDialog PD;
ViewPager viewPager=null;
public ArrayList half_cards, all_cards;


@Override
protected void onCreate(Bundle savedInstanceState) {
    super.onCreate(savedInstanceState);
    setContentView(R.layout.activity_main);
    nome_empresa = (EditText) findViewById(R.id.nome_empresa);
    output = (TextView) findViewById(R.id.output);
    PD = new ProgressDialog(this);
    PD.setMessage("Loading....");
    PD.setCancelable(false);
    //viewPager = (ViewPager) findViewById(R.id.pager);
    //FragmentManager fragmentManager = getSupportFragmentManager();
    //viewPager.setAdapter(new MyAdapterAlfa(fragmentManager));

}



public void vamos(View view) {
    nome = nome_empresa.getText().toString();
    PD.show();
    googlesearch(nome, 200, 0);
    ListView lv = (ListView) findViewById(R.id.custom_list_view);

    lv.setAdapter(new ArrayAdapter<String>(MainActivity.this,
            android.R.layout.simple_list_item_1, all_cards));
    all_cards = get_cards(totalresults, nome);
    PD.dismiss();

}

public void googlesearch(String worde, int limite, int start) {
    word = worde;
    results = "";
    totalresults = "";
    server = "www.google.com";
    userAgent = "(Mozilla/5.0 (Windows; U; Windows NT 6.0;en-US; rv:1.9.2) Gecko/20100115 Firefox/3.6";
    quantity = "100";
    counter = start;
    limit = limite;
    do_search();
}

public void do_search() {

    for(int l=counter; l<=limit; l+=100){
        urly = "http://" + server + "/search?num=" + quantity + "&start=" + Integer.toString(counter) + "&hl=en&meta=&q=%40\"" + word + "\"";
        RequestQueue requestQueue = Volley.newRequestQueue(this);
        StringRequest strReq = new StringRequest(Request.Method.GET, urly, new Response.Listener<String>() {
            @Override
            public void onResponse(String response) {
                try {
                    half_cards = get_cards(response, word);
                    all_cards.addAll(half_cards);
                } catch (Exception e) {
                    e.printStackTrace();
                }

            }
        }, new Response.ErrorListener() {

            @Override
            public void onErrorResponse(VolleyError error) {
                VolleyLog.e("Error: " + error.getMessage());
            }
        });
            requestQueue.add(strReq);
    }
}

public ArrayList get_cards(String ola, String ole){
    myparser rawres = new myparser(ola, ole);
    return rawres.cards();
}

}

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1 回答 1

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Volley 请求是异步的,因此当响应返回时,循环已经结束了一段时间。要执行请求队列,它必须是递归的 - 运行下一个请求调用以响应前一个请求。

于 2016-08-10T16:42:01.340 回答