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i Have set up a site that lets user upload images then those images get displayed back on the home screen. but i hit a wall just now so i got past to letting the user upload an image then that images gets saved to a folder and a database but how can i do it so the image gets displayed on the home screen.

 <?php

 // Connect to database

 $errmsg = "";
 if (! @mysql_connect("localhost","alfred1000351","*******")) {
 $errmsg = "Cannot connect to database";
     }
 @mysql_select_db("drp_2cgih5o233");



 $q = <<<CREATE
 create table pix (
 pid int primary key not null auto_increment,
 title text,
 imgdata longblob)
 CREATE;
 @mysql_query($q);

 // Insert any new image into database

  if ($_REQUEST[completed] == 1) {
  // Need to add - check for large upload. Otherwise the code
  // will just duplicate old file ;-)
 // ALSO - note that latest.img must be public write and in a
 // live appliaction should be in another (safe!) directory.
 move_uploaded_file($_FILES['imagefile']['tmp_name'],"latest.img");
 $instr = fopen("latest.img","rb");
 $image = addslashes(fread($instr,filesize("latest.img")));
 if (strlen($instr) < 149000) {
 mysql_query ("insert into pix (title, imgdata) values (\"".
 $_REQUEST[whatsit].
 "\", \"".
 $image.
 "\")");
 } else {
 $errmsg = "Too large!";
 }
 }

 // Find out about latest image

  $gotten = @mysql_query("select * from pix order by pid desc limit 1");
  if ($row = @mysql_fetch_assoc($gotten)) {
  $title = htmlspecialchars($row[title]);
  $bytes = $row[imgdata];
  } else {
  $errmsg = "There is no image in the database yet";
  $title = "no database image available";
  // Put up a picture of our training centre
  $instr = fopen("../wellimg/ctco.jpg","rb");
   $bytes = fread($instr,filesize("../wellimg/ctco.jpg"));
  }

 // If this is the image request, send out the image

if ($_REQUEST[gim] == 1) {
 header("Content-type: image/jpeg");
print $bytes;
exit ();
}
?>

<html><head>
<title>Upload an image to a database</title>
<body bgcolor=white><h2>Here's the latest picture</h2>
<font color=red><?= $errmsg ?></font>
<center><img src=?gim=1 width=144><br>
<b><?= $title ?></center>
<hr>
<h2>Please upload a new picture and title</h2>
<form enctype=multipart/form-data method=post>
<input type=hidden name=MAX_FILE_SIZE value=150000>
<input type=hidden name=completed value=1>
Please choose an image to upload: <input type=file name=imagefile><br>
Please enter the title of that picture: <input name=whatsit><br>
then: <input type=submit></form><br>
<hr>

</body>
</html>
share|improve this question
    
This is an example/collection from several files, or true implementation? – raPHPid Jun 5 '12 at 6:09
    
sorry I'm new to this but i don't understand what you are saying – Juan Ortiz Jun 5 '12 at 6:10
    
No problem. My question is, is this "real code" you are going to implement, or just an example of code what you have? – raPHPid Jun 5 '12 at 6:15
    
this is the real code I'm trying to implement. Why is the code wrong – Juan Ortiz Jun 5 '12 at 6:18
    
I was just thinking, because it has so many "points to fix", so I wanted to make sure, until replying to it. – raPHPid Jun 5 '12 at 6:24

Here is my toughts:

  1. Do not suppress warnings what you get from DB. They are real, and needed. Remove all @-characters from the front of DB-calls. If you get any notices, warnings, errors do not suppress them, correct them.

  2. If you are making new code, consider using PDO as DB API, not the old, deprecating PHP MySQL API. It's as easy as MySQL API to use.

  3. You only want try to create table only once, remove it from code which is executed many times.

  4. You should check if $_REQUEST parameters exists, and not compare them if they do not. Also you need to put the parameter names in quotes, otherwise PHP thinks you are using constants, which you are not. So line if ($_REQUEST[completed] == 1) { must be fixed to if(isset($_REQUEST['completed']) && $_REQUEST['completed'] == 1) {. Same appies to whatisit and gim -params.

  5. The code if (strlen($instr) < 149000) { does not work as intented, you cannot get length of resource. You are probably looking for this functionality: if (strlen($_FILES['imagefile']['size']) < 149000) {.

  6. Same (as in step 4) with $row s you need to put the literas in quotes, so fix those lines as: $title = htmlspecialchars($row['title']); $bytes = $row['imgdata'];

  7. Othewise than that it should work. However, it contains DB-security hole, which can lead to compromize your website, so I recommend you NOT to put this to any real site. Just for your own/friends fun.

share|improve this answer
    
ok thank you i will try all of this – Juan Ortiz Jun 5 '12 at 7:01

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