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I have been using JSON objects encoded in PHP from my MySQL database in many places with no problems. I am now trying to create one from a resultset using COUNT(column) in the syntax and I think it is causing a the problem but I have no idea how to fix it.

My JS looks like this...

createTeacherStatsTab = function(){
    $('#main').append('<div id="teacherStatsTab></div>"');
    $.getJSON("php/countMarkingPerTeacher.php", function(data) {
        $.each(data, function(key, val) {
            $('#teacherStatsTab').append(val.teacher + ' : ' + val.count(teacher));
        });
    });
}

And my PHP looks like this...

$result = mysql_query("
SELECT teacher, COUNT(teacher) 
FROM Assessment
GROUP BY teacher
ORDER BY COUNT(teacher) DESC
");

$rows = array();
while($r = mysql_fetch_assoc($result)) {
$rows[] = $r;
}
print json_encode($rows);

The data that come back looks like this...

[
{
teacher: "SDe",
COUNT(teacher): "413"
},
{
teacher: "OJe",
COUNT(teacher): "297"
},
{
teacher: "AMi",
COUNT(teacher): "257"
},
{
teacher: "ASt",
COUNT(teacher): "218"
},
{
teacher: "VJa",
COUNT(teacher): "194"
},
{
teacher: "SLa",
COUNT(teacher): "125"
},
{
teacher: "MCr",
COUNT(teacher): "99"
}
]

It feels like this is probably something to do with the GROUP BY stripping ID's or something?

Can someone please help?

Thanks!

share|improve this question

4 Answers 4

up vote 1 down vote accepted

This is because JS interprets your property access as a function call because of the parenthesis:

val.count(teacher)

The most simple solution i guess is to give your COUNT() result an alias name:

$result = mysql_query("
SELECT 
  teacher, 
  COUNT(teacher) AS teacher_count
FROM Assessment
GROUP BY teacher
ORDER BY COUNT(teacher) DESC
");

And access it like:

$('#teacherStatsTab').append(val.teacher + ' : ' + val.teacher_count);
share|improve this answer
    
This has fixed it, I knew it was going to be something in the SQL syntax but it's my weakest area. I also realised that it was probably the parenthesis in the COUNT() that was causing a problem but i'd gone round in circles a few times and I'd lsot sight of it all. Thank you. –  Crin Nov 10 '12 at 14:11

I think that the object does not allow parenthesis on its properties, so when you call val.count(teacher) you are trying to call the inexisting count method of the val object. Try calling val["count(teacher)"] instead, or just changing the property name.

share|improve this answer
    
It'd be worth mentioning that if the query was slightly changed to something like SELECT teacher, COUNT(teacher) as teacherCount, then the whole problem goes away :) [edit - whoops.. you did.. sorry] –  Stephen Nov 10 '12 at 13:14
    
This makes sense but I have accepted the other answer as it was slightly clearer about how to fix it, as was the comment above this by @Stephen. Thank you for your help! :) –  Crin Nov 10 '12 at 14:12

Overall, the problem is that json_encode appears to be returning invalid JSON. Your object keys contain ( and ) which are invalid characters for object keys (unless they're contained in a string like in the example below).

[{
    "teacher": "SDe",
    "COUNT(teacher)": "413"
}, {
    "teacher": "OJe",
    "COUNT(teacher)": "297"
}, {
    "teacher": "AMi",
    "COUNT(teacher)": "257"
}, {
    "teacher": "ASt",
    "COUNT(teacher)": "218"
}, {
    "teacher": "VJa",
    "COUNT(teacher)": "194"
}, {
    "teacher": "SLa",
    "COUNT(teacher)": "125"
}, {
    "teacher": "MCr",
    "COUNT(teacher)": "99"
}]

The easiest fix is to alias your COUNT(teacher) column:

$result = mysql_query("
SELECT teacher, COUNT(teacher) AS count
FROM Assessment
GROUP BY teacher
ORDER BY COUNT(teacher) DESC
");

This should render your JSON as

[{
    teacher: "SDe",
    count: "413"
}, {
    teacher: "OJe",
    count: "297"
}, {
    teacher: "AMi",
    count: "257"
}, {
    teacher: "ASt",
    count: "218"
}, {
    teacher: "VJa",
    count: "194"
}, {
    teacher: "SLa",
    count: "125"
}, {
    teacher: "MCr",
    count: "99"
}]

which is valid JSON (without having to stringificate the keys) and your existing function should work fine (after changing val.count(teacher) to val.count):

createTeacherStatsTab = function () {
    $('#main').append('<div id="teacherStatsTab></div>"');
    $.getJSON("php/countMarkingPerTeacher.php", function (data) {
        $.each(data, function (key, val) {
            $('#teacherStatsTab').append(val.teacher + ' : ' + val.count);
        });
    });
}
share|improve this answer
    
This is fantastic, thank you. I have already accepted another answer but this is very clearly explained. Thank you for your time. –  Crin Nov 10 '12 at 14:14
    
Glad it helped. :) –  pete Nov 10 '12 at 14:16

you are getting array of json.so you have to get zeroth element and than you have to iterate over it so you have to do in this way

$.getJSON("php/countMarkingPerTeacher.php", function(data) {
    var myData = data[0];
    $.each(myData, function(key, val) {
        $('#teacherStatsTab').append(val.teacher + ' : ' + val.count(teacher));
    });
});

if your json was in this format than your code would have worked

{
teacher: "SDe",
COUNT(teacher): "413"
},
{
teacher: "OJe",
COUNT(teacher): "297"
},
{
teacher: "AMi",
COUNT(teacher): "257"
},
{
teacher: "ASt",
COUNT(teacher): "218"
},
{
teacher: "VJa",
COUNT(teacher): "194"
}
share|improve this answer
    
val.count isn't going to be a function here - that'll end up just erroring out. besides that, the data is already an array - doing something like data[0] will just grab the first element which is going to be {teacher: "SDe", COUNT(teacher): "413") –  Stephen Nov 10 '12 at 13:13

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