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 have a select statement where I want to get all rows from a table but seem to be having a mental blockage - this should be elementary stuff but can't seem to get it working.

There are only two rows in the table 'postage_price' - and two columns : price | ref

Select statement is as follows:

$get_postage="SELECT price FROM postage_price ORDER BY ref DESC";
$get_postage_result=mysqli_query($dbc, $get_postage) or die("Could not get postage");
while($post_row=mysqli_fetch_array($dbc, $get_postage_result))
{
$post1[]=$post_row;
}

I am then trying to echo the results out:

echo $post1['0'];
echo $post1['1'];

this is not showing anything. My headache doesn't help either.

share|improve this question
    
It isn't showing anything at all or showing ArrayArray ? –  dev-null-dweller Nov 4 '12 at 11:34
    
nothing at all - all I need are to get the two values in the price column into an array and then list the values further on in the page. –  Sideshow Nov 4 '12 at 11:37

5 Answers 5

up vote 1 down vote accepted
while($post_row = mysqli_fetch_array($dbc, $get_postage_result))
{
    $post1[] = $post_row['price'];
}

As you see: $post_row in this line: = mysqli_fetch_array($dbc, $get_postage_result) is an array. You are trying to save the whole array value to another array in a block. :)

EDIT

while($post_row = mysqli_fetch_array($get_postage_result))
...
share|improve this answer
1  
not correct - but you have shown me my blatant error - The $dbc in the mysqli_fetch_array should not be there. I knew it was a basic error that was stopping this working :) Perhaps I started work too early this morning.... –  Sideshow Nov 4 '12 at 11:51
    
@Sideshow: Gotcha!! Haha, my bad. Thanks for your correction... –  mrjimoy_05 Nov 4 '12 at 11:56
    
no it was my error all along - should be illegal to code on a Sunday :) –  Sideshow Nov 4 '12 at 11:59
    
@Sideshow: Just do: $post_row = $get_postage_result->fetch_array() if you are tired to remember the parameters all the time (less parameters = less errors). See php.net/mysqli-result.fetch-array - it works out of the box with your code. Same for $dbc->query($get_postage) instead of mysqli_query. Just FYI. –  hakre Nov 4 '12 at 12:05

You have $post1[]=$post_row; and $post_row is itself an array. So you can access post data with following: $post1[NUMBER][0] where NUMBER is a $post1 array index and [0] is 0-index of $post_row returned by mysqli_fetch_array.

Probably you wanted to use $post1[]=$post_row[0]; in your code to avoid having array of arrays.

share|improve this answer

You are passing 1 and 0 as string indexes, this would only work if you had a column called 0 or 1 in you database. You need to pass them as numeric indexes.

Try:

print_r($post1[0]);
print_r($post1[1]);

or

print_r($post['price']);
print_r($post['ref']);
share|improve this answer

with all your help I have found the error - it is in the mysqli_fetch_array where I had the $dbc which is not required.

$get_postage="SELECT price FROM postage_price ORDER BY ref DESC";
$get_postage_result=mysqli_query($dbc, $get_postage) or die("Could not get postage");
while($post_row=mysqli_fetch_array($get_postage_result))
{
$post1[]=$post_row['price'];
}

instead of:

$get_postage="SELECT price FROM postage_price ORDER BY ref DESC";
$get_postage_result=mysqli_query($dbc, $get_postage) or die("Could not get postage");
while($post_row=mysqli_fetch_array($dbc, $get_postage_result))
{
$post1[]=$post_row['price'];
}

Bad day for me :(

Thanks all

share|improve this answer

If something does not work in a PHP script, first thing you can do is to gain more knowledge. You have written that

echo $post1['0'];
echo $post1['1'];

Is showing nothing. That could only be the case if those values are NULL, FALSE or an empty string.

So next step would be to either look into $post1 first

var_dump($post1);

by dumping the variable.

The other step is that you enable error display and reporting to the highest level on top of your script so you get into the know where potential issues are:

ini_set('display_errors', 1); error_reporting(~0);

Also you could use PHP 5.4 (the first part works with the old current PHP 5.3 as well, the foreach does not but you could make query() return something that does) and simplify your script a little, like so:

class MyDB extends mysqli
{
    private $throwOnError = true; # That is the die() style you do.

    public function query($query, $resultmode = MYSQLI_STORE_RESULT) {
        $result = parent::query($query, $resultmode);
        if (!$result && $this->throwOnError) {
            throw new RuntimeException(sprintf('Query "%s" failed: (#%d) %s', $query, $this->errno, $this->error));
        }
        return $result;
    }
}

$connection = new MyDB('localhost', 'testuser', 'test', 'test');
$query      = 'SELECT `option` FROM config';
$result     = $connection->query($query);
foreach ($result as $row) {
    var_dump($row);
}
share|improve this answer

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.