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I need help displaying data from mysql to a webpage, I am coding in php.

My database consists of products which are cars(same type e.g Chevy), right now I have 2 rows (I can add more if I want to), each cars contains the image path, and description.

I can show one row (car) but I am unable to show all rows. I know I have to go through a loop to get all the data from the cars database but I am not sure how to implement it.

This is what I have so far. Assuming I already connected to my database note: the image path I would like to show the picture in my website.

This is how i would like it to display in my webpage:

    $query = "SELECT * FROM cars where cars.carType = 'Chevy' AND \
    cars.active = 1";
    $numberOfFieds = mysqli_num_fields($result);
    $numberOfRows = mysqli_num_rows($result);

   /* Gets the contents */
   $row = mysqli_fetch_row($result);
   $rows = mysqli_fetch_assoc($result);
   $fieldcarssontable = array_keys($row);



  echo "<table>";

  while($row = mysqli_fetch_assoc($result)){
   echo "<th>" . $fieldcarssontable[imgPath] . "</th>";
   echo "<th>" . $fieldcarssontable[description] . "</th>";

  }


  echo "</tr>";

  echo "</table>";
share|improve this question
    
Your pictures don't work. Look into the while loop. –  Kermit Nov 30 '12 at 23:48
    
you are missing $ with numberOfFieds = mysqli_num_fields($result); and please add ' single quotes after and at end of echo ' "your code" '; or you have see my answer... –  Adeel Mughal Dec 1 '12 at 0:08

3 Answers 3

up vote 0 down vote accepted

Just add a while loop. mysqli_fetch_assoc returns a row and moves the internal pointer to the next row until all rows are fetched, then it returns false and the while loop will stop

Pseudo syntax to understand while

while ( this is true ) {
     execute this
}

So on your case you can say

while ( $row = mysqli_fetch_assoc( $result ) ) {
   // process/output $row
} 

mysqli_fetch_assoc and mysqli_fetch_row literally do the same, assoc gives you the array with your result field names as index so this is simpler to access ( $row['name'] rather than $row[0] when using fetch_row )

Have fun! :)

EDIT

// connect to your database server
$link = mysqli_connect('localhost', 'my_user', 'my_password', 'my_db');

// an error occured
if (!$link) {
    die('Connect Error (' . mysqli_connect_errno() . ') '
        . mysqli_connect_error());
}

// build your query
$query = "SELECT 
               *      # select actual fields instead of *
          FROM 
               cars
          WHERE
               cars.carType = 'Chevy'
          AND
               cars.active = 1";

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

if ( !$result ) {
     die( 'no result' );
}

// number of fields
$numberOfFields = mysqli_num_fields($result);

// the field names
$fieldNames     = mysqli_fetch_fields($result);

// number of result rows
$numberOfRows = mysqli_num_rows($result);

// watch the content of fieldName and compare it with the table header in the output
print_r( $fieldName );

echo "<table>\n";

// table header, not neccessary to put this into a loop if the query isn't dynamic 
// so you actually know your field names - you can echo the header without any variable.
// for the sake of learning about loops I added this

foreach( $fieldNames as $index => $fieldName ) {
    echo "\t<th>field #" $index . ", name:" . $fieldName . "</th>\n";
}

// now it's time to walk through your result rows, since we only need to check for "true" a while loop does best

while ( $row = mysqli_fetch_assoc( $result ) ) {
    echo "\t<tr><td>" . $row['imgPath'] . "</td><td>" . $row['description'] . "</td></tr>\n";
}

echo "</table>\n";

// remove the result from memory
mysqli_free_result( $result );

mysqli_close( $link );
share|improve this answer
    
I tried your way, but it doesn't work, I edited my question –  Israel Rodriguez Dec 1 '12 at 4:27
    
First make sure you actually get a result from the query, then array_keys returns what you want but the result is accessed with numerical index. Watch the content of it with print_r for better understanding. Also you can remove the first two fetch commands, the while loop should wrap the actual table cols, you want the table header only once, so use mysqli_fetch_fields out of your loop. We're not here to write your code :) –  Michel Feldheim Dec 1 '12 at 10:07

You misspelled $numberOfFields in your loop, which means you're using a different variable for your loop control. Your loop won't work.

I recommend turning on the error reporting so PHP can catch this stuff for you.

share|improve this answer
    
Oh.. thanks but i think that wont solve my problem though –  Israel Rodriguez Dec 1 '12 at 1:41

Use this... just while loop

<?php
// Array
while($result = mysql_fetch_assoc($result)) {
        //show you fields
        echo $result["FieldName"];
    }
?>

Or use this proper

<?php
// Edit it as per your query
$query = "SELECT * FROM cars"; 

if ($result = $mysqli->query($query)) {

    /* fetch associative array */
    while($row = $result->fetch_assoc()) {
        //show you fields
        echo $row["Name"];
    }

    /* free result set */
    $result->free();
}

/* close connection */
$mysqli->close();
?>
share|improve this answer

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