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Currently, I have the following PHP code loaded every time the page is refreshed. I am trying to update the views column +1 every time the page is loaded. To do this, I first retrive the previous views value from the table, then run another query to add + to that number. The problem that is occurring is every time I refresh the page, The code somehow adds two instead of 1. So instead of the $viewsA variable increasing by +1, it is increasing by +2.

$query = mysql_query("SELECT * FROM Games WHERE pagename = '$game' ");

WHILE($datarows = mysql_fetch_array($query)):

    $title = $datarows['title'];
    $description = $datarows['desc'];
    $img_url = $datarows['img'];
    $cat = $datarows['cat'];
    $pagename = $datarows['page'];
    $rating = $datarows['rat'];
    $viewsA = $datarows['view_count'];
    $gameid = $datarows['id'];

endwhile;

$updateviews = $viewsA +1;


mysql_query("UPDATE  `trainw_games`.`Games` SET  `view_count` =  '$updateviews' WHERE  `Games`.`id` = $gameid;");

What do I need to change to make it only add +1 to the views column?

share|improve this question
    
+.5 instead of +1 O_O –  gangreen Sep 5 '12 at 0:57
    
are you sure your script is not being executed twice per request? –  Yanick Rochon Sep 5 '12 at 0:59
    
You are getting the value from $viewsA = $datarows['views']; and updating view_count. Check the value of views if that field exists in the database. –  Deepak Sep 5 '12 at 1:00
    
+.5 doesn't work. It still adds Two. And how could it possibly be executed twice if it is outside the endwhile? Just asking, I am still learning about Mysql and PHP. Also, It was suppose to be view_count and I just missed that when I retyped it really quick on here. –  user1380936 Sep 5 '12 at 1:01

2 Answers 2

up vote 6 down vote accepted

I don't think that a while loop is appropriate for this problem. I would recommend to echo $viewsA . '-' . $updateviews; to see what the value is before and after the add.

But, why not just run a single UPDATE statement?

UPDATE Games SET view_count = view_count + 1 WHERE Games.id = $gameid

Of course, you should stop using mysql_ functions and use either MySQLi or PDO:

$stmt = $mysqli->prepare("UPDATE Games SET view_count = view_count + 1 WHERE Games.id = ?"); 
$stmt->bind_param($gameid);
$stmt->execute();
$stmt->close(); 
share|improve this answer
    
+1 for your alternate solution, but its fun to find why it is doing that though!! –  Deepak Sep 5 '12 at 1:06
    
Fatal error: Call to a member function prepare() on a non-object in –  user1380936 Sep 5 '12 at 1:09
    
Do you have mysqli extension installed with your PHP instance? Otherwise try the old mysql_query("UPDATE..."); –  Kermit Sep 5 '12 at 1:12
    
I probably do not have the extension installed. And when I tried the old update way you stated, It still updates by two. Thanks for your help though.. :/ –  user1380936 Sep 5 '12 at 1:14
2  
+1 for using MySQLi –  John Woo Sep 6 '12 at 1:08

Do you have multiple rows in your database? If yes, it maybe caused by overriding the previous value.

For example:-

If first row the view_count is 1. While the second row view_count is 2.

that overrides the the first row with 2 + 1 = 3 Which makes you thought increased by 2?

UPDATE 1: Ok, try this, put this

$updateviews1 = $viewsA + 1;
if ($viewsA < $updateviews1) { //execute the viewsA + 1 }
share|improve this answer
    
The table has 500+ rows, but each row is unique and only one row loads for each page, depending on the game that is loaded. For example, when someone visites, mysite.com/trainmaina, it loads the row with the exact name trainmania. Then a different row loads for mysite.com/earntodie –  user1380936 Sep 5 '12 at 1:16
    
Updated my answer. –  Furry Sep 5 '12 at 1:21
    
Now it doesn't update at all –  user1380936 Sep 5 '12 at 1:24
    
'mysql_query("UPDATE trainw_games.Games SET view_count = '$updateviews' WHERE Games.id = $gameid;");' Must be inside the if statement –  Furry Sep 5 '12 at 1:26

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