JsonObjectRequest - 无法发送参数

时间:2017-12-27 14:35:16

标签: php android http-post jsonobjectrequest

我不确定为什么我无法从PHP代码中获得正确的响应。对于我的PHP代码,它非常简单。它应该只返回POST参数。但在我的Android项目中,它为所有参数返回null。我试图在我的iOS项目中测试PHP代码。一切都很完美。它返回["target": zh, "arrayString": <__NSSingleObjectArrayI 0x6000000192a0>(hello world), "source": en]所以,我想我的Android项目可能有一些问题,然后我尝试创建一个新项目再做一次,但仍然遇到同样的问题。以下是我的新Android项目的步骤。

构建Gradle

dependencies {
    compile 'com.android.volley:volley:1.1.0'
}

AndroidManifest

<uses-permission android:name="android.permission.INTERNET" />

MainActivity

import android.os.Bundle;
import android.support.v7.app.AppCompatActivity;
import android.util.Log;

import com.android.volley.Request;
import com.android.volley.Response;
import com.android.volley.VolleyError;
import com.android.volley.toolbox.JsonObjectRequest;
import com.android.volley.toolbox.Volley;

import org.json.JSONArray;
import org.json.JSONException;
import org.json.JSONObject;

public class MainActivity extends AppCompatActivity {

    @Override
    protected void onCreate(Bundle savedInstanceState) {
        super.onCreate(savedInstanceState);
        setContentView(R.layout.activity_main);

        String requestString = "http://ddoommaaiinn.com/testPost.php";
        JSONObject parameters = new JSONObject();
        try {
            parameters.put("source", "en");
            parameters.put("target", "zh");
            JSONArray jsonArray = new JSONArray();
            jsonArray.put("hello world");
            parameters.put("stringArray", jsonArray);
        } catch (JSONException e) {
            e.printStackTrace();
        }

        Log.d("JSONParams", parameters.toString());

        JsonObjectRequest jsonRequest = new JsonObjectRequest(Request.Method.POST, requestString, parameters, new Response.Listener<JSONObject>() {
            @Override
            public void onResponse(JSONObject response) {
                //TODO: handle success
                Log.d("successful", response.toString());
            }
        }, new Response.ErrorListener() {
            @Override
            public void onErrorResponse(VolleyError error) {
                error.printStackTrace();
                //TODO: handle failure
            }
        });

        Volley.newRequestQueue(this).add(jsonRequest);
    }
}

调试

12-27 08:47:19.994 4363-4363/com.pakhocheung.testjsonobjectrequest D/JSONParams: {"source":"en","target":"zh","stringArray":["hello world"]}
12-27 08:47:20.050 4363-4395/com.pakhocheung.testjsonobjectrequest D/NetworkSecurityConfig: No Network Security Config specified, using platform default
12-27 08:47:20.079 4363-4397/com.pakhocheung.testjsonobjectrequest D/OpenGLRenderer: HWUI GL Pipeline
12-27 08:47:20.885 4363-4397/com.pakhocheung.testjsonobjectrequest I/zygote: android::hardware::configstore::V1_0::ISurfaceFlingerConfigs::hasWideColorDisplay retrieved: 0
12-27 08:47:20.886 4363-4397/com.pakhocheung.testjsonobjectrequest I/OpenGLRenderer: Initialized EGL, version 1.4
12-27 08:47:20.886 4363-4397/com.pakhocheung.testjsonobjectrequest D/OpenGLRenderer: Swap behavior 1
12-27 08:47:20.886 4363-4397/com.pakhocheung.testjsonobjectrequest W/OpenGLRenderer: Failed to choose config with EGL_SWAP_BEHAVIOR_PRESERVED, retrying without...
12-27 08:47:20.886 4363-4397/com.pakhocheung.testjsonobjectrequest D/OpenGLRenderer: Swap behavior 0
12-27 08:47:20.892 4363-4397/com.pakhocheung.testjsonobjectrequest D/EGL_emulation: eglCreateContext: 0xa6f859e0: maj 2 min 0 rcv 2
12-27 08:47:20.895 4363-4397/com.pakhocheung.testjsonobjectrequest D/EGL_emulation: eglMakeCurrent: 0xa6f859e0: ver 2 0 (tinfo 0xb050d880)
12-27 08:47:20.998 4363-4397/com.pakhocheung.testjsonobjectrequest D/EGL_emulation: eglMakeCurrent: 0xa6f859e0: ver 2 0 (tinfo 0xb050d880)
12-27 08:47:21.279 4363-4363/com.pakhocheung.testjsonobjectrequest D/successful: {"source":null,"target":null,"arrayString":null}

PHP代码

<?php
$source = $_POST['source'];
$target = $_POST['target'];
$arrayString = $_POST['stringArray'];
echo json_encode(array('source'=>$source,'target'=>$target,'arrayString'=>$arrayString));
?>

2 个答案:

答案 0 :(得分:1)

使用Foo时,JsonObjectRequest中的所有数据将作为(json)字符串找到。要获得该数据,请执行以下操作:

php://input

答案 1 :(得分:0)

看起来你好_POST无法正常工作

用于测试尝试将硬编码值

$source = 'test';
$target = 'test-target';
$arrayString = 'test-arrayString';

echo json_encode(array('source'=>$source,'target'=>$target,'arrayString'=>$arrayString));

它应该给出以下json

{"source":"test","target":"test-target","arrayString":"test-arrayString"}

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