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我上傳圖像和使用PHP在Mysql數據庫中保存記錄時遇到問題,有人能幫助我嗎?如何使用PHP在Mysql數據庫中上傳圖像
代碼:
<?php
ini_set('mysql.connect_timeout', 300);
ini_set('default_socket_timeout', 300);
?>
<html>
<body>
<form method="post" enctype="multipart/form-data">
</br>
<input type="text" name="dbname"/>
<input type="file" name="dbimage"/>
<br> <br>
<input type="submit" name"submit" value"Upload"/>
</form>
<?php
if(isset($_POST['submit'])){
if(getimage($_FILES['dbimage']['tmp_name']) == FALSE) {
echo "Please select an image";
} else {
$dbimage = addcslashes($_FILES['dbimage']['tmp_name']);
$dbname = addcslashes($_FILES['dbimage']['dbname']);
$dbimage = file_get_contents($image);
$dbimage = base64_encode($dbimage);
saveimage($dbname, $dbimage);
}
function saveimage() {
$con = mysql_connect("localhost", "root", "");
mysql_select_db("db_test", $con);
$qry = "insert into table1 (dname,dpic) values ('$dbname','$dbimage')";
$result = mysql_query($qry, $con);
if ($result){
echo "Image uploaded.";
} else {
echo " Image not uploaded.";
}
}
}?>
</body>
</html>
你的「麻煩」是什麼?什麼不起作用?你得到什麼錯誤? (你打開了錯誤報告嗎?) – Epodax
沒有錯誤,但記錄不保存 –
然後你很可能沒有打開錯誤報告,打開錯誤報告(把它放在你的代碼的頂部:'error_reporting( E_ALL); ini_set(「display_errors」,1);'),看看它說什麼。 – Epodax