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I have two PHP variables, both strings:

$friendslist = "2323443,7245,284683,345123,8456234,95432"

$id = "10288272";

The structure of the table I am concerned with is as follows:

Table Name: UserLinks

link_id   user_1    user_2

I need to insert these values into the table so that user_1 is always $id, and user_2 is the members of the $friendslist string. It will look like this:

link_id   user_1    user_2
1         10288272  2323443
2         10288272  7245
3         10288272  284683
4         10288272  345123

I know the basics of inserting many values, where in this cause I would use:

mysql_query("INSERT INTO UserLinks (User_1, User_2) VALUES ('10288272','2323443'),('10288272','7245'),('10288272','284683')");

But the only way I can think to of to write this (as these values are obviously not the actual values inserted) is something like this:

$friendarray = explode(",", $friendslist);

for ($n = 0; $n < count($friendarray); $n++) {
      $friendidpush = "('".$id."','".$friendarray[$n]."'),";
      array_push($frienduserarray, $friendidpush);
}

Followed by converting the $frienduserarray to a string, and then including it in my query. This returned an error for me, and I do not think this is the right way to do it... but I am struggling to find a solution online.

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1  
What is the error? –  xdazz Oct 19 '11 at 8:36
    
Warning: array_push() First argument should be an array –  TaylorMac Oct 19 '11 at 8:38
    
not sure if this is even a good way to do this, though :/ –  TaylorMac Oct 19 '11 at 8:39
    
What is $frienduserarray? –  xdazz Oct 19 '11 at 8:40
    
thank you below! yes it needed to be initialized properly... my bad –  TaylorMac Oct 19 '11 at 8:44

3 Answers 3

up vote 3 down vote accepted

You aren't initialising $frienduserarray as an array, so array_push doesn't work.

$friendarray = explode(",", $friendslist);
$frienduserarray = array();

for ($n = 0; $n < count($friendarray); $n++) {
      $friendidpush = "('".$id."','".$friendarray[$n]."'),";
      array_push($frienduserarray, $friendidpush);
}

Note that this seems to be complicating things to me. Why is the second array even necessary? Just use string concatenation.

$query = "INSERT INTO UserLinks (User_1, User_2) VALUES ";
$friendarray = explode(",", $friendslist);

foreach ($friendarray as $friend) {
    $query .= "('" . $id . "','" . $friend . "'),";
}

$query = substr($query, 0, -1); // remove trailing comma

mysql_query($query);
share|improve this answer
    
ah I see. I am still wondering if this is a good way to do this? I will continue if so ! –  TaylorMac Oct 19 '11 at 8:42
    
Col. Shrapnel your answer is great too! –  TaylorMac Oct 19 '11 at 8:54
$comma  = "";
$values = "";
$array  = explode(",",$friendslist);
foreach ($array as $friendid) {
  $values .= $comma."($id,$friendid)";
  $comma = ",";
}
$sql = "INSERT INTO UserLinks (User_1, User_2) VALUES $values"
share|improve this answer

You are getting this error because you have not declared the $frienduserarray as array any where in your code. Just declare it

 $frienduserarray=array();

before the for loop. After that your code should look like

  $friendarray = explode(",", $friendslist);
  $frienduserarray=array();
  for ($n = 0; $n < count($friendarray); $n++) {
      $friendidpush = "('".$id."','".$friendarray[$n]."'),";
      array_push($frienduserarray, $friendidpush);
  }
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