Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am new to mysqli and started trying to learn basic things. With respect to this i example (http://php.net/manual/en/mysqli-result.fetch-array.php) i was trying fetch_array. Here is my code.

$sqlGetChartData    =   "SELECT date, ratepersqft, location 
                          FROM ratepersqft
                         WHERE project_id = 1";
$runGetChartData    =   $mysqli->query($sqlGetChartData);

while($rowGetChartData = $runGetChartData->fetch_array(MYSQLI_BOTH))
    $arrGetChartData[]  =   $rowGetChartData;

    print "<pre>";
    print_r($arrGetChartData);
    exit();

Here i am getting this error Call to a member function fetch_array() on a non-object on line next to while condition line. I tried googling it and did not get result for my problem. Hope my question is clear. Thanks in Advance.

share|improve this question
add comment

2 Answers 2

up vote 8 down vote accepted

Always check for errors when running a query.
And please, don't stretch your code with unnecessarily long variables

$arrChartData[] = array();
$sql = "SELECT date, ratepersqft, location FROM ratepersqft WHERE project_id = 1";
$res = $mysqli->query($sql) or trigger_error($mysqli->error."[$sql]");
while($row = $res->fetch_assoc()) {
    $arrChartData[] = $row;
}

Look, first variable contains just SQL code with no special meaning in your program. An will be disposed on the very next line.
Second variable contains mysqli result. With no special meaning again. It's ok to use conventional name.
Same goes for the temporary $row variable.
The only variable that have special meaning in your code is $arrChartData[] - so, give it meaningful name. You need to initialize it before filling though.

And note the trigger_error part which will convert mysqli error into PHP error. Always run your queries this way, to be notified of all mysql errors

By the way, it is good practice to get rid of all temporary variables, by moving them into some sort of helper function, making your application code as simple as following 2 lines

$sql = "SELECT date, ratepersqft, location FROM ratepersqft WHERE project_id = 1";
$arrChartData[] = dbGetAll($sql);

it will make your code either short and readable

share|improve this answer
    
Thankyou. It works after making corrections with respect to your suggestions. –  Vignesh Gopalakrishnan Feb 1 '13 at 5:28
2  
That was such a nice way of explaining this, +1. –  Hanky 웃 Panky Feb 1 '13 at 6:14
add comment

The query probably failed and mysqli::query returned FALSE. Therefore $runGetChartData is not a mysqli_result object, but a boolean, which is why you are getting your error.

From the documentation:

Returns FALSE on failure. For successful SELECT, SHOW, DESCRIBE or EXPLAIN queries mysqli_query() will return a mysqli_result object. For other successful queries mysqli_query() will return TRUE.

share|improve this answer
    
Someone want to explain their downvote? –  lc. Feb 1 '13 at 5:34
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.