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I have a PHP page encoding a MySQL select into JSON. I would like to add a "Status value" as the first object of my array.

PHP code

{
//CREATE USER UNKNOWN ARRAY RESULT
$Statusresult = mysql_query("SELECT TEXT_KEY, TEXT_VALUE FROM T_TEXTS WHERE TEXT_KEY = 'USER_FAILED' ") or die(mysql_error());
$Statusrows = array();
while($s = mysql_fetch_assoc($Statusresult)) 
{
    $Statusrows[] = $s;
}
print json_encode($Statusrows);

}

This results is:

{
"TEXT_KEY" = "USER_FAILED";
"TEXT_VALUE" = "UNKNOWN USER";

}

I would like to add the first object manual, to have the result look like this:

        {
    "STATUS" = "1";
    "TEXT_KEY" = "USER_FAILED";
    "TEXT_VALUE" = "UNKNOWN USER";
}

How can I do this ?

I have tried this approach, but somehow there is an error...

{
    //CREATE USER UNKNOWN ARRAY RESULT
    $Statusresult = mysql_query("SELECT TEXT_KEY, TEXT_VALUE FROM T_TEXTS WHERE TEXT_KEY = 'USER_FAILED' ") or die(mysql_error());
    $Statusrows = array();
    $Statusrows = { "STATUS" => "1" };
    while($s = mysql_fetch_assoc($Statusresult)) 
    {
    //  $Statusrows[] = $s;
        array_push($Statusrows, $s);    
    }
    print json_encode($Statusrows);
}
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take a look at my answer –  GBD Sep 23 '12 at 16:39

3 Answers 3

up vote 4 down vote accepted

Add a virtual column on it,

SELECT '"1"' AS `STATUS`, TEXT_KEY, TEXT_VALUE 
FROM T_TEXTS 
WHERE TEXT_KEY = 'USER_FAILED'

SQLFiddle Demo

share|improve this answer
    
or add it as element zero before SQL objects ... –  Mike Sep 23 '12 at 15:57
    
I tried this, but the result is somehow different...Missing the " around 1 and status –  Ulrik Vadstrup Sep 23 '12 at 16:11
    
@UlrikVadstrup ok, see this –  John Woo Sep 23 '12 at 16:16
    
@UlrikVadstrup I just updated the answer. –  John Woo Sep 23 '12 at 16:16
1  
Problem found - wrong coding in xcode - Thanks a million John Woo :-) –  Ulrik Vadstrup Sep 23 '12 at 16:33

You can make use of the array union operator (+)­Docs:

$Statusrows[] = ["STATUS" => "1"] + $s;

Or:

$status1 = ["STATUS" => "1"];
while ($s = mysql_fetch_assoc($Statusresult)) 
{
    $Statusrows[] = $status1 + $s;
}

This would spare you to deal with that logic inside the SQL.

share|improve this answer

Try below:

$Statusrows = array();
while($s = mysql_fetch_assoc($Statusresult)) 
{
    $s["STATUS"] = "1";
    $Statusrows[] = $s;
}
share|improve this answer

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