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I would like to know, I have just created my datatables, but two of them are giving JSON formatting errors. I am doing a join of two tables in these two. I tried running the query in phpmyadmin, and it works just fine Here is one example of my server-side files:

<?php
$username="drup197";
$password="*****";
$database="census";
$server="localhost";

$link = mysqli_connect($server,$username,$password,$database);

//@mysql_select_db($database,$link) or die( "Unable to select database");
$query = "
    SELECT *   
    FROM national_age_gender_demographics INNER JOIN arizona_age_gender_demogrpahics
    WHERE national_age_gender_demographics.age_group = arizona_age_gender_demogrpahics.age_group
    ORDER BY national_age_gender_demographics.index_number";

$result = mysqli_query($link,$query);

if(!$result)  die( "Query: " . $query . "\nError:" . mysql_error() );

//print_r($row);
$tableData = '{"aaData": [[';
$numRows = $result->num_rows;
$row = mysqli_fetch_array($result);

for ($i = 0; $i < $numRows; $i++) {
    if ($i != 0) {
        $tableData .= ",[";
    }
    $tableData .= '"' . $row['age_group'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.both_pop'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.male_pop'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.female_pop'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.male_percent'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.female_percent'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.both_percent'] . '",';
    $tableData .= '"' . $row['national_age_gender_demographics.males_per_100_females'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.both_pop'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.male_pop'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.female_pop'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.male_percent'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.female_percent'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.both_percent'] . '",';
    $tableData .= '"' . $row['arizona_age_gender_demographics.males_per_100_females'] . '"]';
    if ($i != $numRows - 1) {
        $row = mysqli_fetch_array($result);
    }
}
$tableData .= ']}';
echo $tableData;
?>

Does anyone know what is wrong here?

share|improve this question
    
Why are you trying to build the JSON array yourself? Why don't you use the PHP built in functions json_encode() and json_decode() for this? –  Steven V Apr 29 '13 at 18:30
    
or if those functions not available, download the PEAR version –  Waygood Apr 29 '13 at 18:32
    
Re:SV It worked just fine when using a single table. However, I am specifically having trouble when I join two tables. –  Pink Jazz Apr 29 '13 at 18:59

1 Answer 1

Firstly Steven is right, its better to use the json encode (or at least neater) to create your json, save you from the messy ifs and bracket business.

I would also recommend using mysqli_fetch_assoc rather than using mysqli_fetch_array, which as you currently specified should return both associative and numbered results (see here http://php.net/manual/en/mysqli-result.fetch-array.php), which probably messes up your results.

eg:

...
$row = mysqli_fetch_assoc($result);
$json_data = json_encode($row);
echo $json_data;
?>

Try that and see how you get on?

share|improve this answer
    
Nope, still getting the error. –  Pink Jazz Apr 29 '13 at 19:25
    
what is the error exactly? –  Nick Martin Apr 29 '13 at 19:32
    
Actually, I have found the error myself - I spelled "demographics" wrong in a few places in the query. While I am no longer getting the error, the rows end up blank. Could anyone help me here? FYI, I tried using the above method as well, but the processing and loading gets stuck in an infinite loop. –  Pink Jazz Apr 29 '13 at 19:36
    
With the correct query, how many rows are returned? you could find this out by echoing $numRows = $result->num_rows; –  Nick Martin Apr 29 '13 at 19:50
    
Guess I was wrong, I am still getting the error. However, when using your method, on closer inspection, I am getting the following JavaScript error: Unable to get property 'length' of undefined or null reference: jquery.dataTables.min.js, line 59 character 74 –  Pink Jazz Apr 29 '13 at 19:58

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