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I have large tables in my database and instead of specifying each column name I am trying to build the query dynamically.

I am trying to do an update in the 'motherboard' table based on the POST data received. The $data object i receive has more fields than the table has. (I added some fields for some flags.) Hence, I am retrieving the record I'm about to update and by comparing each of it's columns with my $data object fields I am constructing the UPDATE query.

I'm new to php, therefore I don't know the syntax well.

This is the code:

<?php
$data = json_decode($_POST["data"], true);
$id = $data["ID"];

include_once 'dbconnect.php';
$query = sprintf("SELECT * FROM `motherboard` WHERE ID = " . $id . ";");
$result = mysqli_query($con, $query);
$existingData = mysqli_fetch_assoc($result);
include_once 'dbclose.php';



$statement = "";
$statement = "UPDATE motherboard SET ";
$flag = false;
foreach ($existingData as $key => $value) {
    if ($existingData->$key != $data->$key) {
        $statement .= $key . " = " . $data->$key . " , ";
        $flag = true;
    }
}
if ($flag)
    $statement = substr($statement, 0, strrchr($statement, ',') - 1);

$statement .= " WHERE ID = " . $id . ";";

echo $statement;
?>

My main problem is in the foreach loop. I don't know how can I compare and then use for building the query the $existingData and $data variables.

How can I achieve this?

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5  
Danger: You are using an obsolete database API and should use a modern replacement. You are also vulnerable to SQL injection attacks that a modern API would make it easier to defend yourself from. –  Quentin Dec 12 '13 at 18:33
    
@Quentin .. beat me to it. –  Kenny Thompson Dec 12 '13 at 18:33
    
I don't understand the need to select from DB first. If you only have certain pieces of data to update for a row, only update that data. You don't need to have every fiedl accounted for in the UPDATE statement. –  Mike Brant Dec 12 '13 at 18:37
1  
Your foreach loop is utterly useless - you're trying to loop on a mysqli result handle. It is NOT something that's iterable like that. –  Marc B Dec 12 '13 at 18:37
    
@MikeBrant I want to check first if the column value is different from the post data. Only then I will add the column to the UPDATE query. –  razvan Dec 12 '13 at 18:40

4 Answers 4

Don't use this approach please, if you want a SOLID application that will outrun the ages, use specific column names and not some junkish foreach loop that builds your SQL for you. If you want to evade the writting of SQL, use an ORM, there are ton's that exist out there and most of them are bundled with a framework right off the start making it simpler to learn the ropes!

Examples of simple to learn frameworks: (But not necessarely weak frameworks)

  • Cake PHP
  • Laravel

Good luck

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You need to change some code ...

$result = mysqli_query($con, $query);
$existingData = mysqli_fetch_assoc($result);

Now your $existingData is an array you can loop though;

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Honestly I would recommend you take advantage of a framework with an ORM or just a standalone ORM. I suggest Laravel or CodeIgniter (if you are new to programming in general then CodeIgniter will be the easiest).

Next, why is your POST data JSON encoded? Why not just POST all the form variables? I would recommend that way instead to simplify it (even from JS).

Finally, you have to make sure you sanitize your inputs. You can use mysqli_real_escape_string(). I am assuming you will use the MySQLi DB interface. (Ref: http://php.net/manual/en/mysqlinfo.api.choosing.php)

Actually one last note: Laravel is, in my opinion, the future of PHP frameworks. It is beautiful, lightweight, and powerful. I HIGHLY recommend that you learn it. Ref: http://laravel.com/

share|improve this answer
    
1. A ORM framework won't be an advantage. If I need to create tables at run-time, as far as I know, an ORM would be a problem. 2.POST data is JSON encoded because I'm using Knockout.js. 3. I will sanitize it later. For now I just want to get it working. Afterwards, I could add some validation and protection. –  razvan Dec 12 '13 at 19:18
    
@razvan If you need to create variable schemas at runtime, you should perhaps be limiting those schemas to temp tables or possibly you should even be investigating NoSQL solutions that don't limit you to a specific schema. There is not problem with JSON data though I would say if you are going to POST JSON, actually POST JSON using application/json content type and decode the posted data from raw input rather than use a mix of JSON data sent within a form-encoded envelope (i.e. such that $_POST is populated). –  Mike Brant Dec 12 '13 at 19:56

I managed to get it working. Now I'm constructing my queries based on the difference between the existing data and the updates from the user. The foreach loop now looks like this:

foreach ($existingData as $key => $value) {
    if ($existingData[$key] != $data[$key]) {
        $statement .=  $key . " = \"" . $data[$key] . "\" , ";
        $flag = true;
    }
}

This is the part that was interesting for me. The rest of the code should be updated according to the latest API.

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