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It is my first post here. I have a table where i collect the id's from facebook pages. I have another table where i collect all informations about these pages. My question is: how can i pass the id's from first table through json_decode ( graph.facebook.com/id ) and put the resulting info in to the second table? I have no clue about how can it be made. Thanks everyone and i'm sorry for my bad english. This is my add.php: `

if (!isset($addid))
{
?>
<form action="add.php">
Page/App ID: <input type="text" name="id">
<input type="submit" value="Submit">
<form>
<?php
 }
else
{
$url = "http://graph.facebook.com/" . $addid;
$geturl = file_get_contents($url);
$info = json_decode($geturl);
$pagetype = $info->icon_url;
if ($pagetype == '')
{
    $id = $info->id;
    $name = mysql_real_escape_string($info->name);
    $website = mysql_real_escape_string($info->website);
    $username = mysql_real_escape_string($info->username);
    $description = mysql_real_escape_string($info->description);
    $about = mysql_real_escape_string($info->about);
    $talking_about_count = $info->talking_about_count;
    if ($talking_about_count == '') { $talking_about_count = 0; }
    $category = mysql_real_escape_string($info->category);
    $link = mysql_real_escape_string($info->link);
    $likes = $info->likes;
    $date = date("Y-m-d H:i:s");
    if ($likes == '') { $likes == 0; }
    ?>
    <form action="add.php">
        Page/App Name/ID: <input type="text" name="id">
        <input type="submit" value="Submit">
        <form>
    <br>
    <br>
    <br>
    <div>
    Info about this page: <?php echo $name . " (" . $id . ")"; ?> <br><br>
    ID: <?php echo $id; ?> <br>
    Name: <?php echo $name; ?> <br>
    Website: <?php echo $website; ?> <br>
    Username: <?php echo $username; ?> <br>
    Description: <?php echo $description; ?> <br>
    About: <?php echo $about; ?> <br>
    Talking about count: <?php echo $talking_about_count; ?> <br>
    Category: <?php echo $category; ?> <br>
    Link: <?php echo $link; ?> <br>
    Likes: <?php echo $likes ?> <br>
    Image: <img src="http://graph.facebook.com/<?php echo $id?>/picture">          <br><br>
    Added on: <?php echo $date; ?><br><br><br>
    <br>
    <br>
    Adding info in database...
    <br>
    <?php
        $query = "INSERT INTO pages (id, name, website, username, description, about, talking_about_count, category, link, likes, addedon) VALUES ($id, '$name', '$website', '$username', '$description', '$about', $talking_about_count, '$category', '$link', $likes, $date)";
        mysql_query($query);
        echo "Done";
                    echo "</div";
    ?>
`
share|improve this question
    
What database driver are you using? MySQL does not have native JSON support. –  tadman Nov 13 '12 at 22:12
    
i have updated my question and added my add.php... However seems that is missing form this code his first 3 lines : include("db.php"); if (isset($_GET['id'])) { $addid = $_GET['id']; } //here comes the rest code from my first post. –  Ceuca Ciprian Nov 13 '12 at 22:29
    
I know that MySQL does not have native JSON suppot. The code, might be something like this: $data = mysql_query("SELECT id FROM ids"); while($info = mysql_fetch_array( $data )) { $url = "graph.facebook.com ". $info['id'] .""; } $geturl = file_get_contents($url); $info = json_decode($geturl); $pagetype = $info->icon_url; if ($pagetype == '') {...(the rest of code...) –  Ceuca Ciprian Nov 13 '12 at 22:38
    
Using mysql_query in new applications is generally a very bad idea and you'd be better off using PDO or mysqli. They're easier to use properly and a lot safer in the long run. What you've got here is typical of many mysql_query apps: You've forgotten to escape all of your variables. $talking_about_count isn't touched. With PDO and proper SQL placeholders this would not be an issue. –  tadman Nov 14 '12 at 0:44
    
So... let me explain this again, maybe you don't understand the first question. I have 1 table where i store only id's of pages. I have another table where i store all info's about pages. I need to take id's from first table and put this id in that part where is the link ie: graph.facebook.com/id , then put the resulting data into the second table. The problem is not that variable, since my query is working without quotes. The code above is working here: facestatistic.com/add.php (just put the id or name of page or id of application). Try facestatistic.com/add.php?id=coca-cola –  Ceuca Ciprian Nov 14 '12 at 11:36

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