api返回实现
$result = User::find($id);
if(empty($result)){
throw new ApiException('获取失败');
}
else{
return json_decode($result);
}
api返回信息
{
"msg": "",
"data": "获取失败",
"status": 0
}
1,添加异常类
namespace App\Exceptions;
class ApiException extends \Exception
{
function _construct($msg='')
{
parent::_construct($msg);
}
}
2,修改laravel异常类u。。。
namespace App\Exceptions;
public function render($request, Exception $e)
{
if ($e instanceof ApiException){
$result = [
"msg" => "",
"data"=>$e->getMessage(),
"status"=>0
];
return response()->json($result);
}
return parent::render($request, $e);
考虑开发配置时
public function render($request, Exception $e)
{
if(config('app.debug')){
return parent::render($request,$e);
}
return $this->handle($request,$e);
}
public function handle($request,Exception $e){
if ($e instanceof ApiException){
$result = [
"msg" => "",
"data"=>$e->getMessage(),
"status"=>0
];
return response()->json($result);
}
return parent::render($request, $e);
}