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i want to upload a file by my php, my code is like this :

$hasil = mysql_query("select ID from userownfile order by ID DESC");
$dt = mysql_fetch_array($hasil);
$old_id = substr($dt['ID'],2);

$newId = $old_id[0] + 1;

$base = $_REQUEST['image'];
$filename = $newId . ".jpg";
$buffer = base64_decode($base);
$path = "img/" . $filename . ".jpg";
$handle = fopen($path, 'wb');
$numbytes = fwrite($handle, $buffer);
fclose($handle);
$conn = mysql_connect("localhost","root","");
mysql_select_db("db_bloodglucose");
$sql = "insert into userownfile(ID, file) values('" . $newId . "','" . $path . "')";
$r = mysql_query($sql);

at first upload, i've succed to upload a file which name is 1.jpg, but when i want to upload the second time etc, it didn't show up on my database, it keep showing 1.jpg, i wonder why the number didn't increase.. anyone can help me? thanks before

i've been change my code like this :

<?php

$hasil = mysql_query("select ID from userownfile order by ID DESC");
$dt = mysql_fetch_array($hasil);
$old_id = substr($dt['ID'],2);

$newId = mysql_insert_id() + 1;

$base = $_REQUEST['image'];
$filename = $newId . ".jpg";
$buffer=base64_decode($base);
$path = "img/".$filename.".jpg";
$handle = fopen($path, 'wb');
$numbytes = fwrite($handle, $buffer);
fclose($handle);
$conn=mysql_connect("localhost","root","");
mysql_select_db("db_bloodglucose");
$sql = "insert into userownfile(ID, file) values('" . $newId . "','" . 

$path . "')";
$r=mysql_query($sql);
?>

but, it keep stuck to 1, the number isn't increasing, anyone can help me please?

share|improve this question
    
Does anything actually get inserted into the database on the first try? –  Pekka 웃 Sep 15 '11 at 10:59
    
@Handy see my question above - does anything get inserted into the database? –  Pekka 웃 Sep 15 '11 at 11:15
    
@pekka, the first one get inserted on my database, 1.jpg, but when i try again the 2nd etc, it didn't work... i've set my id into "no auto increment" –  Handy Sep 15 '11 at 11:23

1 Answer 1

I guess mistake is here:

$dt = mysql_fetch_array($hasil)
$old_id = substr($dt['ID'],2);
$newId = $old_id[0]+1;

may be

$newId = $dt[0]+1;

or just

$newId = $old_id+1;

But much better use mysql_insert_id which will give you inserted record id to avoid concurrency problems.

share|improve this answer
    
i've tried both, but it still didn't work, btw i've set my id into "no auto increment", it is right? i've no idea how to do it, can u show me some example based on my code? thanks before –  Handy Sep 15 '11 at 11:25
    
mysql_insert_id will obviously not work if the field is not auto increment. However, in this case I think the field should be an auto incrementing field! –  w3d Sep 15 '11 at 11:37
    
$newId = mysql_insert_id($hasil); i've tried it with autoincrement, but the second one came with no name. just ".jpg" that's it, am i missing something? –  Handy Sep 15 '11 at 11:46
    
try code like this: CREATE TABLE animals (id INT NOT NULL AUTO_INCREMENT, name VARCHAR(30) NOT NULL, PRIMARY KEY (id)); mysql_query("INSERT INTO animals (name) VALUES ('dog');") or die(mysql_error()); var_dump(mysql_insert_id()); –  ryabenko-pro Sep 16 '11 at 16:08
    
So, is it solved? –  ryabenko-pro Sep 29 '11 at 10:41

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