【发布时间】:2019-01-04 12:30:33
【问题描述】:
我尝试打开此帖子以获得有关搜索表单无法正常工作的问题的帮助。
我有一个 MySQL 数据库,其中一些数据存储在不同的表中:
数据库是:list_pec 表为:pec_1、pec_2、pec_3 和 pec_4
所有这些表都包含具有不同数据的相同行。行是 名字、姓氏、电子邮件、id_client、id_2client
我的目标是在 PHP 中创建一个搜索表单,其中有一个输入标签和一个选择表单,用于连接到数据库并将我作为输出查询结果。
在 PHP 文件下面连接我称为“conn.php”的 MySQL 数据库
<?php
$host = "localhost";
$userName = "demo";
$password = "demo";
$dbName = "list_pec";
// Create database connection
$conn = new mysqli($host, $userName, $password, $dbName);
// Check connection
if ($conn->connect_error) {
die("Connection failed: " . $conn->connect_error);
}
?>
下面的文件名为“search.php”,其中有表单和 php 代码,obv 我希望在同一个 .php 文件中有查询结果,所以我在表单操作中使用了<?pho echo $_SERVER ['PHP_SELF']; ?>
<?
error_reporting(E_ALL);
ini_set('display_errors', '1');
include("conn.php");
$search_output = "";
if (isset($_POST["submit"])){
if($_POST['option']== "a"){
$sqlcommand="SELECT email, id_client, id_2client FROM pec_1 WHERE email = 'email'";
}
else if ($_POST['option'] == "b"){
$sqlcommand="SELECT email, id_client, id_2client FROM pec_2 WHERE email = 'email'";
}
else if ($_POST['option'] == "c"){
$sqlcommand="SELECT email, id_client, id_2client FROM pec_3 WHERE email = 'email'";
}
else if ($_POST['option'] == "d"){
$sqlcommand="SELECT email, id_client, id_2client FROM pec_4 WHERE email = 'email'";
}
$query = mysqli_query($conn,$sqlcommand) or die (mysqli_error($conn));
$search_output .="<hr />query result: ";
if ($row = mysqli_fetch_array($query)){
$email = $row ["email"];
$pec = $row ["id_client"];
$sdi = $row ["id_2client"];
$search_output .= "<hr/><p> $email - $id_client - $id_2client</p>";
} else{
$search_output= "<hr /> No Result";
}
}
?>
<html>
<head>
<link rel="stylesheet" href="https://maxcdn.bootstrapcdn.com/bootstrap/4.0.0/css/bootstrap.min.css" integrity="sha384-Gn5384xqQ1aoWXA+058RXPxPg6fy4IWvTNh0E263XmFcJlSAwiGgFAW/dAiS6JXm" crossorigin="anonymous">
<title>Search id_client and id_2client</title>
</head>
<body>
<section>
<div class="container">
<div class="row my-5">
<h1>Search id_client and id_2client</h1>
</div>
<form name="ricerca-pec" method="post" action="<?php echo $_SERVER ['PHP_SELF']; ?>">
<div class="form-group">
<label for="exampleFormControlInput1">Inserisci l'email del cliente</label>
<input type="email" class="form-control" id="exampleFormControlInput1" placeholder="youremail@email.com" name="email">
</div>
<div class="form-group">
<label for="exampleFormControlSelect1">Select Option</label>
<select class="form-control" id="exampleFormControlSelect1" name="option">
<option value="a">A</option>
<option value="b">B</option>
<option value="c">C</option>
<option value="d">D</option>
</select>
</div>
<input class="btn btn-primary" type="submit" name="submit"></input>
</form>
</div>
</section>
<section>
<div class="container">
<div class="row">
<p><?php echo $search_output; ?></p>
</div>
</div>
</section>
<script src="https://code.jquery.com/jquery-3.2.1.slim.min.js" integrity="sha384-KJ3o2DKtIkvYIK3UENzmM7KCkRr/rE9/Qpg6aAZGJwFDMVNA/GpGFF93hXpG5KkN" crossorigin="anonymous"></script>
<script src="https://cdnjs.cloudflare.com/ajax/libs/popper.js/1.12.9/umd/popper.min.js" integrity="sha384-ApNbgh9B+Y1QKtv3Rn7W3mgPxhU9K/ScQsAP7hUibX39j7fakFPskvXusvfa0b4Q" crossorigin="anonymous"></script>
<script src="https://maxcdn.bootstrapcdn.com/bootstrap/4.0.0/js/bootstrap.min.js" integrity="sha384-JZR6Spejh4U02d8jOt6vLEHfe/JQGiRRSQQx"</script>
</body>
</html>
当我使用搜索表单(在文件 /search.php 中)我有一个答案“没有结果”,所以我看到查询被正确执行,但似乎变量“电子邮件”不是从 $ 发送的_POST 表单提交查询。
实际上,如果我在 search.php 文件中修改第一个查询,用 'email@email.com' 替换为 'email'(包含在表 DB pec_1 中),我可以看到查询的正确结果
$sqlcommand="SELECT email, id_client, id_2client FROM pec_1 WHERE email = 'email@email.com'";
拜托,我请求一些帮助以了解问题并解决,我阅读了其他帖子但没有解决我的问题。
谢谢。
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