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I am so stuck on something that I'm sure has a simple solution but it is defeating me and my basic PHP!

I have a MySQL db containing user entered tags (labels) for a collection of videos. I query the db to find the 5 most frequently appearing tags for the video.

 $sql_get_toptags=mysql_query("SELECT TagName,Count(TagName) AS TagFreq 
                                 FROM Tags 
                                 Where vidID='$vidid' 
                                 Group BY TagName 
                                 Order By Count(TagName) DESC limit 5",$db);

If I loop through the results, they are output to the browser no problem

 while($myrow = mysql_fetch_assoc($sql_get_toptags)) {
   $tagname = $myrow[TagName];
   echo $tagname;
 } 

What I want to do is find out if the tag the user has just entered is in that most frequent entered list and its position i.e 1.tagname I'd like the 1 and the tagname to be variables that I can reuse, in the example below $answer is the 1 $tagname is obviously the tagname.

This is what I have:

 $sql_get_toptags=mysql_query("SELECT TagName,Count(TagName) AS TagFreq 
                                 FROM Tags 
                                 Where vidID='$vidid' 
                                 Group BY TagName 
                                 Order By Count(TagName) DESC limit 5",$db);

  while($myrow = mysql_fetch_assoc($sql_get_toptags)) {
      $tagname = $myrow[TagName];
      for ($i=1; $i<=5; $i++){
         echo $i,$tagname;
         echo "<br>";
         if ($tag==$tagname){
           $TopTag=$tagname;
           $answer=$i;
        }
     }
  }
  if (($TopTag!='') && ($answer!='')){
     echo "your tag is no.".$answer;
  }

This doesn't work. here is an example of what it outputs:

1beard
2beard
3beard
4beard
5beard
1explosion
2explosion
3explosion
4explosion
5explosion
1rubbish
2rubbish
3rubbish
4rubbish
5rubbish
1volcano
2volcano
3volcano
4volcano
5volcano
1awesome
2awesome
3awesome
4awesome
5awesome
you're tag is no.5

I have tried what feels like a million combinations of loops I can't get what I want.

In my mind $tagname[] should be an array and the key the number in the brackets e.g tagname[2] it would be 3rd in the list. So if ($tag==$tagname[2]){ //echo "That tag is 3rd most popular"; } But $tagname is just one row and if I try creating an array in the while loop I just overwrite the last entry with each iteration.

I'd really appreciate any advice.

Output I want to see (i.e if $tag=explosion)

1beard 2explosion 3rubbish 4volcano 5awesome

you're tag is no.2

share|improve this question
    
what's the expected ouput ? –  Girish Mar 6 '13 at 12:50
    
added the expected output should be a list but the editor is insisting it be on one line. –  user2051199 Mar 6 '13 at 12:55
    
as an aside, PHP functions that start with mysql_ have been deprecated as of PHP 5.5.0. If you are in a position to do so, please consider updating your code to use the MySQLi or PDO extensions instead. –  dnagirl Mar 6 '13 at 12:59

2 Answers 2

up vote 0 down vote accepted

Try this:

$sql_get_toptags=mysql_query("SELECT TagName,Count(TagName) AS TagFreq FROM GT_Tags Where VidID='$vidid' Group BY TagName Order By Count(TagName) DESC limit 5",$db);

while($myrow = mysql_fetch_assoc($sql_get_toptags)) {
    $tagnames[] = $myrow['TagName'];
}
foreach($tagnames as $key=>$name){
    echo ($key+1)." ".$name;
    $reversed[$name]=$key+1;
}

if(isset($reversed[$tag])) {
    echo "Your tag is no. ".$reversed[$tag];
} else {
    echo "Your tag is not in the top 5";    
}

You could also use array_flip to swap the keys and array values.

share|improve this answer
    
Thank you, it's closer, but all that's output is "Your tag is no." –  user2051199 Mar 6 '13 at 13:02
    
hold on, sorry I refreshed and the answer has changed. –  user2051199 Mar 6 '13 at 13:03
    
Sorry try again. –  karmafunk Mar 6 '13 at 13:06
    
I get this 0 beard1 explosion2 rubbish3 volcano4 awesomeYour tag is no. Which is even closer, but still no number –  user2051199 Mar 6 '13 at 13:08
    
I have tried the following code and it works: $tag="two"; $tagnames=array("one","two","three"); foreach($tagnames as $key=>$name){ echo ($key+1)." ".$name; $reversed[$name]=$key+1; } if(isset($reversed[$tag])) { echo "Your tag is no. ".$reversed[$tag]; } else { echo "Your tag is not in the top 5"; } –  karmafunk Mar 6 '13 at 13:21
$sql_get_toptags=mysql_query("SELECT TagName,Count(TagName) AS TagFreq FROM GT_Tags Where VidID='$vidid' Group BY TagName Order By Count(TagName) DESC limit 5",$db);
$tagNames = array();

while($myrow = mysql_fetch_assoc($sql_get_toptags)) {
  $tagNames[] = $myrow['TagName'];
}

$tagNo = array_search($tag, $tagNames);
if($tagNo) {
  echo "Your tag is no. " . $tagNo;
} else {
      echo "Your tag is not in the top 5";    
}
share|improve this answer
    
Thank you. I get this error: "array_search() expects parameter 2 to be array, null given in" I don't think I'm getting an array I've had this problem $tagnames is always a string. –  user2051199 Mar 6 '13 at 13:14
    
@user2051199 what error ? –  Girish Mar 6 '13 at 13:15
    
sorry I keep hitting return and posting comment instead of getting a new line. My brainhurts!!! –  user2051199 Mar 6 '13 at 13:16
    
initialize the array before fetching rows. check my edit. –  Girish Mar 6 '13 at 13:18
    
Now all I get is "Your tag is not in the top 5" even for tags I know are in the top 5 –  user2051199 Mar 6 '13 at 13:22

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