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I have seen similar questions here on stack overflow but I didn't understand the answers so I thought, I'd post the question myself and correspond with any of the helpful programmers. I'm trying to display an image which is stored in a database and I am getting a broken image link. I have two php files as follows:

<html>
<head>
    <title>Upload an image</title>
</head>
<body>
<form action="image_practice.php" method="POST" enctype="multipart/form-data">
    Image: <input type="file" name="image"> <input type="submit" value="Upload Image">
</form>
    <?php
if (function_exists('hex2bin') !== true)
    {
        function hex2bin($data)
        {
            return pack("H*", $data);
        }
    }
        //file properties
        $file= $_FILES['image']['tmp_name'];
        if (!isset($file))
            echo "Please select an image";
        else{
            $image = bin2hex(file_get_contents($_FILES['image']['tmp_name']));
        $image = hex2bin($image['Image']);
            if ($image_size==FALSE)
                echo "That's not an image";
            else {
                if(!$insert = mysql_query("INSERT INTO ImageDetails VALUES('','$image_name','$image')"))
                    echo "Problem Uploading image.";
                else {
                  $lastid= mysql_insert_id();
                  echo "Image Uploaded.<p />Your Image:<p \><img src='GetImage_prac.php?id=$lastid'>";
                }
            }
        }
        ?>
    </body>
    </html>

and then another php file which displays the image as follows:

<?php
  if (function_exists('hex2bin') !== true)
{
    function hex2bin($data)
    {
        return pack("H*", $data);
    }
}$id=addslashes($_REQUEST['id']);
  $image= mysql_query("SELECT * FROM ImageDetails WHERE id=$id");
  $image= mysql_fetch_assoc($image);
  $image= $image['Image'];
  header("Content-type: image/jpeg");
  echo $image;
?>

I don't understand why the image isn't displaying. Can anyone help? I think the table definition is as follows:

CREATE TABLE ImageDetails2
(
ImageId int NOT NULL AUTO_INCREMENT,
Name varchar(30) NOT NULL,
Image BLOB,
PRIMARY KEY(ImageId)
);
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3 Answers 3

This is a shot at something that may cause the error, but it can be an other:

Check that there is no unicode BOM at the start of the php file that outputs the image.

To do this (and even more), save the image when the browser presents the error, rename it to text, or look at it using a hex editor and compare that with the initial image.

A BOM looks like this in a non-unicode (hex-)editor: .

share|improve this answer
1  
This is ruled out by the warning the OP got, but nice thinking, +1! –  Alix Axel May 10 '13 at 15:27
    
How does a warning about a bad hex encoding rule it out - he needs to make sure the image is not only stored correctly, but also displayed correctly, that is where the BOM might come in. He also will be able to see PHP warnings and errors in the downloaded (broken) image file. –  Adder May 10 '13 at 15:33
1  
It has been a long time since I made the mistake of saving PHP files with BOM, but back then (if I remember correctly) nothing was outputted (not even errors) - but then again, that might be due to the HTTP server. –  Alix Axel May 10 '13 at 15:35
2  
Anyway, I'm feeling more inclined to the truncated contents theory right now (BLOB has a limit of only 64KB). –  Alix Axel May 10 '13 at 15:37
    
That is a good idea, too. He would have to use LONGBLOB then. –  Adder May 10 '13 at 15:39

Probably the culprit is mysql_real_escape_string().


Also, bare in mind that the BLOB MySQL data type has a limit of 64KB, which, because of the base64 encoding inflation, represents a true file limit of ~48KB - if you try to upload a bigger file it'll get truncated and it will display a corrupted file afterwards (= display nothing).


Okay, I re-did your whole code, the problem was the query in the display script:

SELECT * FROM ImageDetails WHERE id=$id

Should be:

SELECT * FROM ImageDetails WHERE ImageId=$id

Anyway, here it is, all fixed and improved. It has to work now:


<html>
    <head>
        <title>Upload an image</title>
    </head>

    <body>
        <form action="image_practice.php" method="POST" enctype="multipart/form-data">
            <label for="image">Image:</label>
            <input type="file" name="image" id="image">
            <input type="submit" value="Upload Image">
        </form>
        <?php

        if ((strcasecmp('POST', $_SERVER['REQUEST_METHOD']) === 0) && (isset($_FILES) === true))
        {
            if (exif_imagetype($_FILES['image']['tmp_name']) != false)
            {
                $image = file_get_contents($_FILES['image']['tmp_name']);
                $image_name = mysql_real_escape_string($_FILES['image']['name']);

                $image = base64_encode($image); 

                if (mysql_query("INSERT INTO ImageDetails VALUES ('', '$image_name', '$image');") !== false)
                {
                    echo 'Image Uploaded.<p />Your Image:<p \><img src="GetImage_prac.php?id=' . mysql_insert_id() . '">';
                }

                else
                {
                    echo "Problem Uploading image.";
                }
            }

            else
            {
                echo "That's not an image.";
            }
        }

        ?>
    </body>
</html>

<?php

// connect to MySQL here

if (array_key_exists('id', $_REQUEST) === true)
{
    $query = mysql_query("SELECT * FROM ImageDetails WHERE ImageId = " . intval($_REQUEST['id']) . " LIMIT 1;"); # you had "WHERE id" here!
    $result = mysql_fetch_assoc($query);

    if ($result !== false)
    {
        $image = $result['Image'];

        $image = base64_decode($image);
    }
}

if (isset($image) === true)
{
    header('Content-type: image/jpeg'); echo $image;
}

else # display a 1x1 spacer GIF as fallback
{
    $image = base64_decode('R0lGODlhAQABAID/AMDAwAAAACH5BAEAAAAALAAAAAABAAEAAAICRAEAOw==');

    header('Content-type: image/gif'); echo $image;
}

?>
share|improve this answer
1  
@user2363025: I copied hex2bin from somewhere and I forgot to change a variable. Try again please. If it doesn't work, post the updated code you're using to insert and display, as well as the table definition (SHOW CREATE TABLE ...). –  Alix Axel May 10 '13 at 14:37
1  
@user2363025: The hex2bin function snippet. –  Alix Axel May 10 '13 at 14:44
1  
@user2363025: The code I posted... Just copy it again and replace the whole thing. –  Alix Axel May 10 '13 at 14:59
1  
@user2363025: The change actually was one occurrence of $hex_string to $data. –  Alix Axel May 10 '13 at 15:00
2  
@Adder: Yeah, I was reading the manual but still can't find it. I switched to base64 mainly because the hex2bin function I copied was buggy. –  Alix Axel May 10 '13 at 15:21

if you are using chrome right click on the broken image and inspect the element and see what is wrong with the code.

Do you have the html for the img src inside the database rows? if so its a waste having it in there it should be in the php file and if you dont then thats your problem

share|improve this answer
    
@ Dan Hastings. In google chrome inspect element, it's the line <img src="GetImage_prac.php?id=12"> that has the error. In the database rows I have an actual blob file??? –  user2363025 May 10 '13 at 14:20
    
by the looks of it the data you have stored in the database for the image source is wrong. what you are doing is setting the source of the image as a php file. Im guessing that the php file is what you call and it will return the image with id 12? Why cant you store the actual file path in the db? eg /images/gallery/img.jpg then just insert that into the img src? –  Dan Hastings May 10 '13 at 14:24
    
Another potential problem is that the image may not be image/jpeg it might be a better solution to get the mime type of the uploaded file and save that in the database as well. –  Orangepill May 10 '13 at 14:30
1  
@Orangepill: That is easily fixable. –  Alix Axel May 10 '13 at 14:38
1  
@DanHastings: It's easier alright but there are valid reasons to do it - like preventing anyone with a direct URL from being served the image without some prior server-side checks for instance. And BLOBs are stored in disk by MySQL, so they don't eat memory and can't be indexable. –  Alix Axel May 10 '13 at 15:03

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