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I have a Physician Query:

// Primary Physician Query
$qPhysician = mysql_query("SELECT * FROM physicians ORDER BY lastName ASC, firstName ASC");
$rowPhysician = mysql_fetch_array($qPhysician);

// State Query for Physician
$idStatePhysician = $rowPhysician['idstate'];
$qStatePhysician = mysql_query("SELECT * FROM states WHERE idstate=$idStatePhysician");
$rowStatePhysician = mysql_fetch_array($qStatePhysician);

// City Query for Physician
$idCityPhysician = $rowPhysician['idcity'];
$qCityPhysician = mysql_query("SELECT * FROM cities WHERE idcities=$idCityPhysician");
$rowCityPhysician = mysql_fetch_array($qCityPhysician);

I have a while loop to display all physicians row to a table:

$num = mysql_num_rows($qPhysician);
    $i=0;
    while($i < $num)
        {
        $idphysicians = $rowPhysician['idphysicians'];
        if ($i % 2 == 0){
        echo "<tr class='even' onclick=\"DoNav('physicianUpdate.php?idphysicians=$idphysicians');\">";
        }
        else{
        echo "<tr class='odd' onclick=\"DoNav('physicianUpdate.php?idphysicians=$idphysicians');\">";
        }
        echo "<td>" . mysql_result($qPhysician,$i,"lastName") . "</td>";
        echo "<td>" . mysql_result($qPhysician,$i,"firstName") . "</td>";
        echo "<td>"; 
        if(isset($rowPhysician['idcity'])){echo mysql_result($qCityPhysician,$i,"name");} else{}
        echo "</td>";
        $i++;
        }

My problem is: I have 3 rows of data from my physicians table. Each has a value for 'idcity' reflecting the idnumber from my City table. However, the 1st row of Data displays the idcity=Name properly, but the 2nd and 3rd row gave an error:

Warning: mysql_result() [function.mysql-result]: Unable to jump to row 1 on MySQL result index 7 in C:\wamp\www\iPOC\physicians.php on line 55

Also, if I have a blank value for idcity on one of the row, it also generates an error.

Please help! Thanks in advance!

share|improve this question

The problem is that you're using mysql_result() with a one-way result. The correct fix is to use one of the mysql_fetch_*() functions instead, checking the returned value in your while loop.

while($row = mysql_fetch_array($qPhysician)) {
   ...
}
share|improve this answer
    
when I changed it to this code, it shows like a hundreds of records of the same thing and it wasn't stopping. So I manually killed the task for loading – Arnold Porche Villaluz Jul 17 '11 at 10:00
    
ok it kinda work, but it only displayed the last 2 rows. The row "Arnold Villaluz" did not display. – Arnold Porche Villaluz Jul 17 '11 at 10:04

Something like this would probably work better:

$qCityPhysician = mysql_query("SELECT * FROM cities WHERE idcities=$idCityPhysician");
$qCityPhysicians = array();
while($row = mysql_fetch_array($qCityPhysician)) {
   $qCityPhysicians[$row['idcity']] = $row['name'];
}
$qPhysician = mysql_query("SELECT * FROM physicians ORDER BY lastName ASC, firstName ASC");
$i=0;
while($row = mysql_fetch_array($qPhysician)) {
    if ($i % 2 == 0) {
        echo "<tr>";
        echo "<td>" . $row['lastName'] . "</td>";
        echo "<td>" . $row['firstName'] . "</td>";
        echo "<td>"; 
        if(isset($row['idcity'])) {
            echo $qCityPhysicians[$row['idcity']];
        }
        echo "</td>";
        $i++;
     }
 }
share|improve this answer
    
Do you really want "if ($i % 2 == 0) {" in there? That would cause it to skip every odd row. – Max Davis Jul 17 '11 at 10:09
    
it displays nothing? – Arnold Porche Villaluz Jul 17 '11 at 10:14
    
the reason why I have that. It's for my alternating row: if ($i % 2 == 0){ echo "<tr class='even' onclick=\"DoNav('physicianUpdate.php?idphysicians=$idphysicians');\">"; } else{ echo "<tr – Arnold Porche Villaluz Jul 17 '11 at 10:15
    
ok, I re-updated the code with the actual one. I was trying to show less code as possible to avoid confusion :) – Arnold Porche Villaluz Jul 17 '11 at 10:17
    
ok, i got all the errors out by putting if isset before running the query for each city table and state table. But my problem now is, I have 3 rows of data, but only 2 gets displayed. The last row is not showing up. – Arnold Porche Villaluz Jul 17 '11 at 10:30

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