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How do I add a static value as first element or starting of my array? The data for array is coming from my database.

Below I am trying to add "Select Style" in the front but not it is just combing my first to elements.

$query = "SELECT DISTINCT name FROM ImageInfo";

$db = new connection();

$result = $db->query($query);


while($info = mysql_fetch_array($result)){
    $content[] = $info;
}
$result=array();

$count = count($content);

$result[0][] = "Select Style";

for ($x=0;$x<$count;++$x)
{
    $result[$x][] = $content[$x]['name'];
}

echo json_encode($result);
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4 Answers 4

up vote 1 down vote accepted

@Denoteone, Following should do the trick,

$result[0][] = "Select Style";
for ($x=0;$x<$count;++$x)
{
    $result[][] = $content[$x]['name'];
}
share|improve this answer
    
Thanks that is what I will use +1 –  Denoteone Aug 23 '11 at 6:18

Your issue seems to be with the following lines

$result[0][] = "Select Style";

and

$result[$x][] = $content[$x]['name'];

You are setting the first value in the array as "Select Style" then in the first iteration of the for loop you have $x == 0 so it is overriding the value you put in

You can change

    $result[$x][] = $content[$x]['name']; 

to

    $result[][] = $content[$x]['name']; 

Alternatively you can remove the following line:

    $result[0][] = "Select Style";  

And place the following directly after your for loop:

    array_unshift($result, "Select Style"); 
share|improve this answer
    
Perfect I will use the first example the second put it outside of the array when I encoded it as JSON +1 –  Denoteone Aug 23 '11 at 6:17

Using

array_unshift

can solve the problem

<?php
  $queue = array("orange", "banana");
  array_unshift($queue, "apple", "raspberry");
  print_r($queue);
?>

after this code, the $queue array becomes

Array
(
  [0] => apple
  [1] => raspberry
  [2] => orange
  [3] => banana
)

from http://php.net/manual/en/function.array-unshift.php

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Change this

$result=array();

to this

$result=array( 'Select Style' );

And, btw, your code could use a little revamp

$query = "SELECT DISTINCT name FROM ImageInfo";
$db = new connection();
$result = $db->query($query);
$content = array('Select Style');
while($row = mysql_fetch_array($result)){
    $content[] = $row['name'];
}
echo json_encode($content);
share|improve this answer

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