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Вмъкване в база данни (mysql) с помощта на Ajax и PHP

Както и да е, този конкретен код позволява вмъкване в базата данни, въпреки че все още има някакъв проблем някъде, който не мога да разбера.

index.html

<!DOCTYPE html>
<html lang="en">
  <head>
    <title>Bootstrap Example with Ajax</title>
    <meta charset="utf-8">
    <meta name="viewport" content="width=device-width, initial-scale=1">
    <link rel="stylesheet" href="https://maxcdn.bootstrapcdn.com/bootstrap/3.3.6/css/bootstrap.min.css">
    <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.12.0/jquery.min.js"></script>
    <script src="http://maxcdn.bootstrapcdn.com/bootstrap/3.3.6/js/bootstrap.min.js"></script>
    <script>
      $(function () {
        $('button').click(function () {
          var name2 = $('#name').val();
          var email2 = $('#email').val();
          var password2 = $('#password').val();
          var gender2 = $('#gender').val();
          console.log('starting ajax');
          $.ajax({
            url: "./insert.php",
            type: "post",
            data: { name: name2, email: email2, password: password2, gender: gender2 },
            success: function (data) {
              var dataParsed = JSON.parse(data);
              console.log(dataParsed);
            }
          });

        });
      });

    </script>

    <style>
      .custom{
         margin-left:200px;
      }
    </style>
  </head>
  <body>

    <div class="container">
      <h2 class="text-center">Insert Data Using Ajax</h2>

      <form class="form-horizontal" >
        <div class="form-group">
          <label class="col-sm-2 control-label">Name</label>
          <div class="col-sm-10">
            <input class="form-control" name="name" id="name" type="text" placeholder="Enter you name">
          </div>
        </div>
        <div class="form-group">
          <label for="email" class="col-sm-2 control-label">Email</label>
          <div class="col-sm-10">
            <input class="form-control" name="email" id="email" type="text" placeholder="Your Email...">
          </div>
        </div>
          <div class="form-group">
            <label for="password" class="col-sm-2 control-label">Password</label>
            <div class="col-sm-10">
              <input class="form-control" name="password" id="password" type="text" placeholder="Your Password...">
            </div>
          </div>
          <div class="form-group">
            <label for="gender" class="col-sm-2 control-label">Gender</label>
            <div class="col-sm-10">
              <select id="gender" class="form-control">
                <option value="Male">Male</option>
                <option value="Female">Female</option>
              </select>
            </div>
          </div>
          <div class="form-group">
            <div class="col-sm-offset-2 col-sm-10">
              <button type="submit" class="btn btn-default">Submit</button>
            </div>
          </div>
      </form>
    </div>
  </body>
</html>

insert.php

<?php

    //Create connection
  $connection = mysqli_connect('localhost', 'root', '', 'dbase');
    if($_POST['name']){
      $name = $_POST['name'];
      $email = $_POST['email'];
      $password= $_POST['password'];
      $gender = $_POST['gender'];

      $q = "INSERT INTO user (name, email, password, gender) VALUES ('$name', '$email', '$password', '$gender')";

      $query = mysqli_query($connection, $q);

      if($query){
          echo json_encode("Data Inserted Successfully");
          }
      else {
          echo json_encode('problem');
          }
      }

?>


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