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Verwenden PHP um die Datei hochzuladen und den Pfad zur MySQL-Datenbank hinzuzufügen

Upload.php:

<?php

//This is the directory where images will be saved
$target = "pics";
$target = $target . basename( $_FILES['Filename']['name']);

//This gets all the other information from the form
$Filename=$_POST['Filename'];
$Description=$_POST['Description'];
$pic=($_FILES['Filename']['name']);


// Connects to your Database
mysql_connect("localhost", "root", "") or die(mysql_error()) ;
mysql_select_db("altabotanikk") or die(mysql_error()) ;

//Writes the information to the database
mysql_query("INSERT INTO picture (Filename,Description)
VALUES ('$Filename', '$Description')") ;

//Writes the Filename to the server
if(move_uploaded_file($_FILES['Filename']['tmp_name'], $target)) {
    //Tells you if its all ok
    echo "The file ". basename( $_FILES['uploadedfile']['Filename']). " has been uploaded, and your information has been added to the directory";
} else {
    //Gives and error if its not
    echo "Sorry, there was a problem uploading your file.";
}
?>

Und hier ist das Formular (in einer separaten Datei):

<form method="post" action="upload.php" enctype="multipart/form-data">
    <p>Photo:</p>
    <input type="file" name="Filename"> 
    <p>Description</p>
    <textarea rows="10" cols="35" name="Description"></textarea>
    <br/>
    <input TYPE="submit" name="upload" value="Add"/>
</form>

Die Fehler sind 

 Undefined index: Filename on Line 17

($ Dateiname = $ _ POST ['Dateiname'];)

und

Undefined index: uploadedfile on Line 35

(das Echo "Die Datei". Basisname ($ _FILES ['uploadedfile'] ['Dateiname']). "wurde hochgeladen und Ihre Informationen wurden dem Verzeichnis hinzugefügt";)

echo"<pre>".print_r($_FILES,true)."</pre>";

gibt mir:

Array
(
    [Filename] => Array
        (
            [name] => Laserkanon.jpg
            [type] => image/jpeg
            [tmp_name] => C:\WampServer\tmp\php11D4.tmp
            [error] => 0
            [size] => 41813
        )

)
5
The Last Melody

Zuerst sollten Sie print_r($_FILES) zum Debuggen verwenden und sehen, was darin enthalten ist. :

ihr uploads.php würde so aussehen:

//This is the directory where images will be saved
$target = "pics/";
$target = $target . basename( $_FILES['Filename']['name']);

//This gets all the other information from the form
$Filename=basename( $_FILES['Filename']['name']);
$Description=$_POST['Description'];


//Writes the Filename to the server
if(move_uploaded_file($_FILES['Filename']['tmp_name'], $target)) {
    //Tells you if its all ok
    echo "The file ". basename( $_FILES['Filename']['name']). " has been uploaded, and your information has been added to the directory";
    // Connects to your Database
    mysql_connect("localhost", "root", "") or die(mysql_error()) ;
    mysql_select_db("altabotanikk") or die(mysql_error()) ;

    //Writes the information to the database
    mysql_query("INSERT INTO picture (Filename,Description)
    VALUES ('$Filename', '$Description')") ;
} else {
    //Gives and error if its not
    echo "Sorry, there was a problem uploading your file.";
}



?>
5
bksi
mysql_connect("localhost", "root", "") or die(mysql_error()) ;
mysql_select_db("altabotanikk") or die(mysql_error()) ;

Diese sind veraltet, verwenden Sie die folgenden ..

 // Connects to your Database
            $link = mysqli_connect("localhost", "root", "", "");

und zum Einfügen von Daten verwenden Sie Folgendes

 $sql = "INSERT INTO  Table-Name (Column-Name)
VALUES ('$filename')" ;
0
Shahid Amin