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I am confused as to why an alert is not firing a json response. The response is coming into firebug. This was working ok when I was using php4.4.7 but then upgraded to php5.3.5 and now producing this error. Or probably my error. Can someone check my code and see where I am going wrong? If you need any more code, please let me know. many thanks

http://jsfiddle.net/QQtVv/

code here as per request:

function test(com,grid)
{
    if (com=='Delete')
        {
           if($('.trSelected',grid).length>0){
           if(confirm('Delete ' + $('.trSelected',grid).length + ' items?')){
            var items = $('.trSelected',grid);
            var itemlist ='';
            for(i=0;i<items.length;i++){
                itemlist+= items[i].id.substr(3)+",";
            }
            $.ajax({
               type: "POST",
               dataType: "json",
               url: "fileinrptdelete.php",
               data: "items="+itemlist,
               success: function(data){
                   alert("You have successfully deleted:"+"\n\n"+"Customer: "+data.customer+"\n"+"name: "+data.ref+"\n"+"boxref: "+data.boxref);
               $("#flex1").flexReload();
               }
             });
            }
            } else {
                alert('You have to select a row to delete.'); 
            } 
               }


    }

// this is from the file fileinrptdelete.php

header("Expires: Mon, 26 Jul 1997 05:00:00 GMT" );
header("Last-Modified: " . gmdate( "D, d M Y H:i:s" ) . "GMT" );
header("Cache-Control: no-cache, must-revalidate" );
header("Pragma: no-cache" );
header("Content-type: text/x-json");
$json = "";
$json .= "{\n";
$json .= "name: '".$ref."',\n";
$json .= "company: '".$customer."',\n";
$json .= "boxref: '".$boxref."',\n";
$json .= "total: $total\n";
$json .= "}\n";
echo $json;
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3  
Live links are a great adjunct to a question, but always post the relevant code in the question as well. Two reasons. 1. People shouldn't have to follow a link to help you. 2. StackOverflow is meant to be a resource not just for you now, but for others having a similar issue in the future. External links can get moved, modified, deleted, etc. By making sure the relevant code is in the question, we ensure that the question (and its answers) remain useful for a reasonable period of time. –  T.J. Crowder Jul 13 '11 at 10:11
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2 Answers

up vote 3 down vote accepted

The JSON is invalid (and served with the wrong content-type, it should be application/json).

Don't hand craft it. Use a library.

You are also trying to read data using the variable names you use in PHP and not using the names you apply to the keys in the JSON.

share|improve this answer
    
I am now getting an alert but the contents are undefined. Is the echo $json; the correct call in php5? –  bollo Jul 13 '11 at 10:23
    
I thought I was reading the json keys: $json .= "\"name\": \"".$ref."\",\n"; and in the success: alert("You have successfully deleted:"+"\n\n"+"Customer: "+data.company+"\n"+"name: "+data.ref+"\n"+"boxref: "+data.boxref); If this is not correct, could you please paste a sample for viewing. Thanks –  bollo Jul 13 '11 at 10:59
    
Ok I now see what I did. I was calling ref instead of name. –  bollo Jul 13 '11 at 11:01
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a valid JSON attributes and values must be enclosed in double quotes "name" : "value" other than that it looks okay to me.

share|improve this answer
    
They are enclosed in double quotes? $json .= "File: '".$custref."',\n"; –  bollo Jul 13 '11 at 10:25
    
no those are php quotes, not json quotes. you need it like $json .= "\"File\": \"".$custref."\",\n"; –  TheBrain Jul 13 '11 at 10:26
    
ok I see that now. thanks –  bollo Jul 13 '11 at 10:56
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