我想在 Google 地图中显示地址的位置。
如何使用 Google Maps API 获取地址的纬度和经度?
问问题
183512 次
10 回答
142
public GeoPoint getLocationFromAddress(String strAddress) {
Geocoder coder = new Geocoder(this);
List<Address> address;
GeoPoint p1 = null;
try {
address = coder.getFromLocationName(strAddress, 5);
if (address == null) {
return null;
}
Address location = address.get(0);
location.getLatitude();
location.getLongitude();
p1 = new GeoPoint((double) (location.getLatitude() * 1E6),
(double) (location.getLongitude() * 1E6));
return p1;
} catch (IOException e) {
e.printStackTrace();
}
return null;
}
strAddress是一个包含地址的字符串。该address变量保存转换后的地址。
于 2010-08-26T11:53:25.900 回答
90
具有更新 API 的 Ud_an 解决方案
注意:LatLng类是 Google Play 服务的一部分。
强制:
<uses-permission android:name="android.permission.ACCESS_COARSE_LOCATION"/>
<uses-permission android:name="android.permission.INTERNET"/>
更新:如果您有目标 SDK 23 及更高版本,请确保您注意位置的运行时权限。
public LatLng getLocationFromAddress(Context context,String strAddress) {
Geocoder coder = new Geocoder(context);
List<Address> address;
LatLng p1 = null;
try {
// May throw an IOException
address = coder.getFromLocationName(strAddress, 5);
if (address == null) {
return null;
}
Address location = address.get(0);
p1 = new LatLng(location.getLatitude(), location.getLongitude() );
} catch (IOException ex) {
ex.printStackTrace();
}
return p1;
}
于 2015-01-08T06:21:33.747 回答
52
如果您想将您的地址放在谷歌地图中,那么使用以下简单方法
Intent searchAddress = new Intent(Intent.ACTION_VIEW,Uri.parse("geo:0,0?q="+address));
startActivity(searchAddress);
或者
如果您需要从您的地址获取 lat long,请使用以下Google Place Api
创建一个返回带有HTTP 调用响应的JSONObject的方法,如下所示
public static JSONObject getLocationInfo(String address) {
StringBuilder stringBuilder = new StringBuilder();
try {
address = address.replaceAll(" ","%20");
HttpPost httppost = new HttpPost("http://maps.google.com/maps/api/geocode/json?address=" + address + "&sensor=false");
HttpClient client = new DefaultHttpClient();
HttpResponse response;
stringBuilder = new StringBuilder();
response = client.execute(httppost);
HttpEntity entity = response.getEntity();
InputStream stream = entity.getContent();
int b;
while ((b = stream.read()) != -1) {
stringBuilder.append((char) b);
}
} catch (ClientProtocolException e) {
} catch (IOException e) {
}
JSONObject jsonObject = new JSONObject();
try {
jsonObject = new JSONObject(stringBuilder.toString());
} catch (JSONException e) {
// TODO Auto-generated catch block
e.printStackTrace();
}
return jsonObject;
}
现在将该JSONObject传递给 getLatLong() 方法,如下所示
public static boolean getLatLong(JSONObject jsonObject) {
try {
longitute = ((JSONArray)jsonObject.get("results")).getJSONObject(0)
.getJSONObject("geometry").getJSONObject("location")
.getDouble("lng");
latitude = ((JSONArray)jsonObject.get("results")).getJSONObject(0)
.getJSONObject("geometry").getJSONObject("location")
.getDouble("lat");
} catch (JSONException e) {
return false;
}
return true;
}
我希望这对你和其他人有帮助..!! 谢谢..!!
于 2011-11-25T09:35:16.230 回答
7
以下代码适用于 google apiv2:
public void convertAddress() {
if (address != null && !address.isEmpty()) {
try {
List<Address> addressList = geoCoder.getFromLocationName(address, 1);
if (addressList != null && addressList.size() > 0) {
double lat = addressList.get(0).getLatitude();
double lng = addressList.get(0).getLongitude();
}
} catch (Exception e) {
e.printStackTrace();
} // end catch
} // end if
} // end convertAddress
其中地址是要转换为 LatLng 的字符串(123 Testing Rd City State zip)。
于 2014-05-21T09:32:11.373 回答
4
这是您如何找到我们点击地图的纬度和经度的方法。
public boolean onTouchEvent(MotionEvent event, MapView mapView)
{
//---when user lifts his finger---
if (event.getAction() == 1)
{
GeoPoint p = mapView.getProjection().fromPixels(
(int) event.getX(),
(int) event.getY());
Toast.makeText(getBaseContext(),
p.getLatitudeE6() / 1E6 + "," +
p.getLongitudeE6() /1E6 ,
Toast.LENGTH_SHORT).show();
}
return false;
}
它运作良好。
要获取位置的地址,我们可以使用地理编码器类。
于 2010-08-26T12:21:54.227 回答
1
对上述 Kandha 问题的回答:
它抛出“java.io.IOException 服务不可用”我已经授予了这些权限并包含库......我可以获得地图视图......它在地理编码器上抛出 IOException......
我只是在尝试后添加了一个 catch IOException 并解决了问题
catch(IOException ioEx){
return null;
}
于 2014-12-25T16:48:34.403 回答
1
public void goToLocationFromAddress(String strAddress) {
//Create coder with Activity context - this
Geocoder coder = new Geocoder(this);
List<Address> address;
try {
//Get latLng from String
address = coder.getFromLocationName(strAddress, 5);
//check for null
if (address != null) {
//Lets take first possibility from the all possibilities.
try {
Address location = address.get(0);
LatLng latLng = new LatLng(location.getLatitude(), location.getLongitude());
//Animate and Zoon on that map location
mMap.moveCamera(CameraUpdateFactory.newLatLng(latLng));
mMap.animateCamera(CameraUpdateFactory.zoomTo(15));
} catch (IndexOutOfBoundsException er) {
Toast.makeText(this, "Location isn't available", Toast.LENGTH_SHORT).show();
}
}
} catch (IOException e) {
e.printStackTrace();
}
}
于 2020-05-08T08:50:11.817 回答
0
Geocoder coder = new Geocoder(this);
List<Address> addresses;
try {
addresses = coder.getFromLocationName(address, 5);
if (addresses == null) {
}
Address location = addresses.get(0);
double lat = location.getLatitude();
double lng = location.getLongitude();
Log.i("Lat",""+lat);
Log.i("Lng",""+lng);
LatLng latLng = new LatLng(lat,lng);
MarkerOptions markerOptions = new MarkerOptions();
markerOptions.position(latLng);
googleMap.addMarker(markerOptions);
googleMap.animateCamera(CameraUpdateFactory.newLatLngZoom(latLng,12));
} catch (IOException e) {
e.printStackTrace();
}
于 2016-04-21T09:02:57.147 回答
0
public LatLang getLatLangFromAddress(String strAddress){
Geocoder coder = new Geocoder(this, Locale.getDefault());
List<Address> address;
try {
address = coder.getFromLocationName(strAddress,5);
if (address == null) {
return new LatLang(-10000, -10000);
}
Address location = address.get(0);
return new LatLang(location.getLatitude(), location.getLongitude());
} catch (IOException e) {
return new LatLang(-10000, -10000);
}
}
LatLang在这种情况下是一个 pojo 类。
<uses-permission android:name="android.permission.ACCESS_COARSE_LOCATION" />不需要许可。
于 2020-10-30T20:57:15.123 回答
0
我知道我在 2021 年的 10 年问题的贡献为时已晚。以下代码是完整的工作代码。
activity_main.xml 的代码:-
<RelativeLayout xmlns:android="http://schemas.android.com/apk/res/android"
xmlns:app="http://schemas.android.com/apk/res-auto"
xmlns:tools="http://schemas.android.com/tools"
android:layout_width="match_parent"
android:layout_height="match_parent"
tools:context=".MainActivity">
<TextView
android:layout_width="wrap_content"
android:layout_height="wrap_content"
android:text="Enter Address"
android:id="@+id/addressTV"
android:textAppearance="?android:attr/textAppearanceMedium"
android:layout_alignParentStart="true" />
<EditText
android:layout_width="fill_parent"
android:layout_height="wrap_content"
android:id="@+id/addressET"
android:layout_alignParentTop="true"
android:layout_toEndOf="@+id/addressTV"
android:singleLine="true"
android:hint="1600 Pennsylvania Ave NW Washington DC 20502" />
<Button
android:layout_width="wrap_content"
android:layout_height="wrap_content"
android:text="Show Lat/Long"
android:id="@+id/addressButton"
android:layout_below="@+id/addressTV"
android:layout_toEndOf="@+id/addressTV"
android:layout_marginTop="50dp" />
<TextView
android:layout_width="wrap_content"
android:layout_height="wrap_content"
android:textAppearance="?android:attr/textAppearanceLarge"
android:text=""
android:id="@+id/latLongTV"
android:layout_centerVertical="true"
android:layout_toEndOf="@+id/addressTV" />
AndroidManifest.xml 授予以下权限:
<uses-permission android:name="android.permission.ACCESS_FINE_LOCATION" />
<uses-permission android:name="android.permission.INTERNET" />
<uses-permission android:name="android.permission.ACCESS_BACKGROUND_LOCATION"/>
<uses-permission android:name="android.permission.ACCESS_COARSE_LOCATION"/>
MainActivity.java
public class MainActivity extends Activity {
Button addressButton;
TextView addressTV;
TextView latLongTV;
EditText addressET;
@Override
protected void onCreate(Bundle savedInstanceState) {
super.onCreate(savedInstanceState);
setContentView(R.layout.activity_main);
addressET = findViewById(R.id.addressET);
addressTV = (TextView) findViewById(R.id.addressTV);
latLongTV = (TextView) findViewById(R.id.latLongTV);
addressButton = (Button) findViewById(R.id.addressButton);
addressButton.setOnClickListener(new View.OnClickListener() {
@Override
public void onClick(View arg0) {
String address = addressET.getText().toString();
GeocodingLocation locationAddress = new GeocodingLocation();
locationAddress.getAddressFromLocation(address,
getApplicationContext(), new GeocoderHandler());
}
});
}
private class GeocoderHandler extends Handler {
@Override
public void handleMessage(Message message) {
String address;
switch (message.what) {
case 1:
Bundle bundle = message.getData();
address = bundle.getString("address");
break;
default:
address = null;
}
latLongTV.setText(address);
}
}
}
地理编码位置.java
public class GeocodingLocation {
public static void getAddressFromLocation(String locationAddress, Context context, Handler handler) {
Thread thread = new Thread() {
@Override
public void run() {
Geocoder geocoder = new Geocoder(context, Locale.getDefault());
String result = null;
try {
List addressList = geocoder.getFromLocationName(locationAddress,1);
if (addressList != null && addressList.size() > 0){
Address address = (Address) addressList.get(0);
StringBuilder stringBuilder = new StringBuilder();
stringBuilder.append(address.getLatitude()).append("\n");
stringBuilder.append(address.getLongitude()).append("\n");
result = stringBuilder.toString();
}
} catch (IOException e) {
e.printStackTrace();
} finally {
Message message = Message.obtain();
message.setTarget(handler);
if (result != null){
message.what = 1;
Bundle bundle = new Bundle();
result = "Address : "+locationAddress+
"\n\n\nLatitude and longitude\n"+result;
bundle.putString("address",result);
message.setData(bundle);
}
message.sendToTarget();
}
}
};
thread.start();
}
}
于 2021-06-29T07:16:53.673 回答