Jac*_*uck 0 php mysql database forms html5
我刚刚开始尝试学习PHP和MYSQL,并且一直在关注创建网页搜索引擎的一些教程,但是遇到了一个问题,当我提交表单时结果没有返回,我不知道在哪里问题在于或在哪里尝试对其进行故障排除,所以它认为在这里发布我的问题值得一试.希望有人可以帮助我,提前谢谢.
PHP
<?php
mysql_connect("localhost","root","123")or die("Could not connect to Db");
mysql_select_db("members") or die("Could not find db");
if(isset($_POST['submit'])){
$searchq = $_POST['submit'];
$searchq = preg_replace("#[^0-9a-z]#i","",$searchq);
$query = mysql_query("Select * FROM memberlist WHERE Fname LIKE '%$searchq%' OR Lname LIKE '%$searchq%' ") or die(mysql_error());
$count = mysql_num_rows($query);
if($count == 0){
$output = "No results were found, sorry.";
}
else{
while($row = mysql_fetch_array($query)){
$firstname = $row['Fname'];
$lastname = $row['Lname'];
$output .= "<div>".$firstname." ".$firstname."</div>";
}
}
}
?>
HTML
<!doctype html>
<html lang="en">
<head>
<meta charset="UTF-8">
<title>Search</title>
</head>
<body>
<form action="index.php" method="post">
<input type="text" name="searchfname" placeholder="Enter first name">
<input type="text" name="searchlname" placeholder="Enter last name">
<input type="submit" name="submit" value="Submit">
</form>
<?php print($output);?>
</body>
</html>
您可以$_POST['submit']用来检查表单是否已提交,但它不包含所有表单值.您可以按各自的名称访问单独的表单值.
因此,请使用$_POST['searchfname']第一个文本框中的值和$_POST['searchlname']第二个文本框中的值.
您的代码应该更像这样;
$searchqf = $_POST['searchfname'];
$searchql = $_POST['searchlname'];
$searchqfreplace = preg_replace("#[^0-9a-z]#i","",$searchqf);
$searchqlreplace = preg_replace("#[^0-9a-z]#i","",$searchql);
$query = mysql_query("Select * FROM memberlist WHERE Fname LIKE '%$searchqf%' OR Lname LIKE '%$searchql%' ") or die(mysql_error());
$count = mysql_num_rows($query);
请注意,这种组合查询的方式非常不安全,并且易受SQL注入攻击.
您还需要一种解决问题的方法.你可能想看看echo和print_r.
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