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I am using same query again and again on different pages in between to fetch result. I want to make a function for this query.

$result = mysql_query(" SELECT name FROM tablename where id= '$row[name_id]'"); 
$row = mysql_fetch_array($result); 
echo $row ['name']; 

How to make and how to call the function?

share|improve this question
    
Before you do anything else, you need to fix the gaping SQL injection vulnerability in your code. –  Jack Maney Apr 23 '12 at 7:11
    
If you are making the same query again and again, why not use PDO prepared statement and just execute it whenever you need? that's a better approach. –  itachi Apr 23 '12 at 7:24
    
@itachi just because it won't help a bit. you can't pass resources between pages –  Your Common Sense Apr 23 '12 at 7:30
    
@YourCommonSense: Yes, it depends on the implementation. but if it is in same page, worth to consider (Specially if all request passes through one file). –  itachi Apr 23 '12 at 7:37
    
@itachi nope, it is not. You just simple CAN't DO THAT across different requests. And the question is to call this query "on different pages". READ IT FIRST. (not to mention that benefit is hardly measurable) –  Your Common Sense Apr 23 '12 at 7:42

4 Answers 4

sample class stored sample.php

class sample
{

    function getName(id)
    {
         $result = mysql_query("SELECT name FROM tablename where id='$id'"); 
         $row = mysql_fetch_array($result); 
         return $row ['name']; 
    }
}

use page include sample.php,then create object,then call getName() function.

<?php
 include "db.class.php";
 include "sample.php";
 $ob=new sample();         //create object for smaple class
 $id=12;
 $name=$ob->getName($id);  //call function..
?>
share|improve this answer

This is a good idea but first of all you have to create a function to run queries (as you have to run various queries way more often than a particular one)

function dbget() {
  /*
  easy to use yet SAFE way of handling mysql queries.

  usage: dbget($mode, $query, $param1, $param2,...);
  $mode - "dimension" of result:
  0 - resource
  1 - scalar
  2 - row
  3 - array of rows

  every variable in the query have to be substituted with a placeholder
  while the avtual variable have to be listed in the function params
  in the same order as placeholders have in the query.

  use %d placeholder for the integer values and %s for anything else
  */
  $args = func_get_args();
  if (count($args) < 2) {
    trigger_error("dbget: too few arguments");
    return false;
  }
  $mode  = array_shift($args);
  $query = array_shift($args);
  $query = str_replace("%s","'%s'",$query); 

  foreach ($args as $key => $val) {
    $args[$key] = mysql_real_escape_string($val);
  }

  $query = vsprintf($query, $args);
  if (!$query) return false;

  $res = mysql_query($query);
  if (!$res) {
    trigger_error("dbget: ".mysql_error()." in ".$query);
    return false;
  }

  if ($mode === 0) return $res;

  if ($mode === 1) {
    if ($row = mysql_fetch_row($res)) return $row[0];
    else return NULL;
  }

  $a = array();
  if ($mode === 2) {
    if ($row = mysql_fetch_assoc($res)) return $row;
  }
  if ($mode === 3) {
    while($row = mysql_fetch_assoc($res)) $a[]=$row;
  }
  return $a;
}

then you may create this particular function you are asking for

function get_name_by_id($id){
    return dbget("SELECT name FROM tablename where id=%d",$id); 
}
share|improve this answer

You should probably parse the database connection as well

$database_connection = mysql_connect('localhost', 'mysql_user', 'mysql_password');

function get_row_by_id($id, $database_link){
    $result = mysql_query("SELECT name FROM tablename where id= '{$id}"); 
    return mysql_fetch_array($result);
}

Usage

$row = get_row_by_id(5, $database_connection);

[EDIT] Also it would probably help to wrap the function in a class.

share|improve this answer
function getName($id){
    $result = mysql_query("SELECT name FROM tablename where id= '$row[name_id]'"); 
    $row = mysql_fetch_array($result); 
    return $row ['name']; 
}

call the function by

$id = 1; //id number
$name = getName($id);
echo $name; //display name
share|improve this answer
    
yes i need this.... thanks you –  Deved Apr 23 '12 at 8:03
    
No problem @user1239494. Glad to help, though I don't know who give me me a negative point, HA! hahaha –  SuperNoob Apr 23 '12 at 23:31
    
i cant give because i have no privileged.... –  Deved Apr 25 '12 at 9:17
    
It's okay @Deved, the important thing is that I helped you. –  SuperNoob Apr 25 '12 at 23:28

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