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I am learning json now and have run into an issue:

I am using code like this to spit about and array of data:

<?php
 $requiredFieldsArray = array();
    $results = mysql_query("select account_id, display_name, id from field 
where account_id = $holdAcctID and required_flag = 1");
    while($result = mysql_fetch_assoc($results)) 
        {
        $requiredFieldsArray[] = $result;
    }
?>
<script language="javascript">
    var requiredFieldsPRS = <?php echo "new Array(". json_encode($requiredFieldsArray).")"; ?>;
</script>
}

It outputs this:

 var requiedFieldsPRS = new Array([{"account_id":"3","display_name":"Project Requested By","id":"15"},{"account_id":"3","display_name":"Project Title","id":"18"},{"account_id":"3","display_name":"Project Type","id":"19"},{"account_id":"3","display_name":"Banner Details","id":"20"},{"account_id":"3","display_name":"Email to Me","id":"2910"}]);;

In my code how can I remove the "[" and "]" from the beginning and end of the array, so it will appear like this?

var requiedFieldsPRS = new Array({"account_id":"3","display_name":"Project Requested By","id":"15"},{"account_id":"3","display_name":"Project Title","id":"18"},{"account_id":"3","display_name":"Project Type","id":"19"},{"account_id":"3","display_name":"Banner Details","id":"20"},{"account_id":"3","display_name":"Email to Me","id":"2910"});

Note: The opening and closing brackets are gone in the above output.

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2 Answers 2

up vote 0 down vote accepted

You can trim off leading and ending []s easily enough for this particular example:

var requiredFieldsPRS = <?php echo "new Array(". trim(json_encode($requiredFieldsArray), '[]').")"; ?>;

However if your Array constructor is not necessary you could just use:

var requiredFieldsPRS = <?php echo json_encode($requiredFieldsArray); ?>;
share|improve this answer
    
This worked perfectly - THANK YOU!!! –  user1176783 Feb 9 '12 at 17:20
    
This is probably impossible, but I'll ask, is there, in addition the the method above to remove the '[]', to remove the quotes that surround the keys, but leave them around the values? For example: {"account_id":"3","display_name":"Project Requested By","id":"15"} would output as {account_id:"3",display_name:"Project Requested By",id:"15"} –  user1176783 Feb 9 '12 at 17:55
    
@user1176783 You can do that fairly easily with a regex. Try something like preg_replace('/"([^"]+)":/', '$1:', trim(json_encode($requiredFieldsArray), '[]')) –  Paulpro Feb 9 '12 at 18:18
    
@user1176783 codepad.viper-7.com/KUVDGu –  Paulpro Feb 9 '12 at 18:19

try using JSON_FORCE_OBJECT key

    json_encode($requiredFieldsArray,JSON_FORCE_OBJECT);
share|improve this answer
    
is this what you meant: var requiredFieldsPRS3 = <?php echo json_encode($requiredFieldsArray,JSON_FORCE_OBJECT);?>; I am getting and empty variable result. –  user1176783 Feb 9 '12 at 17:00
    
What is your php version? If its < 5.3.0, than you cant use this option key :) Instead, try usings substr like: substr(json_encode($var),1,-1) - this will remove square brackets –  Alex Chorry Feb 9 '12 at 17:13

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