mysql_field_name

(PHP 4, PHP 5)

mysql_field_nameRetourne le nom d'une colonne dans un résultat MySQL

Avertissement

Cette extension était obsolète en PHP 5.5.0, et a été supprimée en PHP 7.0.0. À la place, vous pouvez utiliser l'extension MySQLi ou l'extension PDO_MySQL. Voir aussi MySQL : choisir une API du guide. Alternatives à cette fonction :

Description

mysql_field_name(resource $result, int $field_offset): string|false

mysql_field_name() retourne le nom du champ de l'index spécifié.

Liste de paramètres

result

La ressource de résultat qui vient d'être évaluée. Ce résultat vient de l'appel à la fonction mysql_query().

field_offset

La position numérique du champ. field_offset commence à 0. Si field_offset n'existe pas, une alerte de niveau E_WARNING sera générée.

Valeurs de retour

Le nom du champ de l'index spécifié en cas de succès ou false si une erreur survient.

Exemples

Exemple #1 Exemple avec mysql_field_name()

<?php
/* Supposons que la table utilisée contienne trois champs :
* user_id
* username
* password.
*/
$link = mysql_connect('localhost', 'mysql_user', 'mysql_password');
if (!
$link) {
die(
'Impossible de se connecter au serveur MySQL : ' . mysql_error());
}
$dbname = 'mydb';
$db_selected = mysql_select_db($dbname, $link);
if (!
$db_selected) {
die(
"Impossible de se connecter à la base $dbname: " . mysql_error());
}
$res = mysql_query('select * from users', $link);

echo
mysql_field_name($res, 0) . "\n";
echo
mysql_field_name($res, 2);
?>

L'exemple ci-dessus va afficher :

user_id
password

Notes

Note: Les noms des champs retournés par cette fonction sont sensibles à la casse.

Note:

Pour des raisons de compatibilité ascendante, l'alias obsolète suivant peut être utilisé : mysql_fieldname()

Voir aussi

add a note add a note

User Contributed Notes 12 notes

up
13
anonymous at site dot com
16 years ago
This function is slightly stupid to be honest, why not just make an array of field names... You could consolidate the two of these functions that way and it makes it a lot easier to list them when your script is dynamic.

<?php

   
function mysql_field_array( $query ) {
   
       
$field = mysql_num_fields( $query );
   
        for (
$i = 0; $i < $field; $i++ ) {
       
           
$names[] = mysql_field_name( $query, $i );
       
        }
       
        return
$names;
   
    }
   
   
// Examples of use
   
   
$fields = mysql_field_array( $query );
   
   
// Show name of column 3
   
   
echo $fields[3];
   
   
// Show them all
   
   
echo implode( ', ', $fields[3] );
   
    
// Count them - easy equivelant to 'mysql_num_fields'
   
   
echo count( $fields );

?>
up
2
janezr at jcn dot si
19 years ago
This is another variant of displaying all columns of a query result, but with a simplified while loop.

<?
$query
="select * from user";
$result=mysql_query($query);
$numfields = mysql_num_fields($result);

echo
"<table>\n<tr>";

for (
$i=0; $i < $numfields; $i++) // Header
{ echo '<th>'.mysql_field_name($result, $i).'</th>'; }

echo
"</tr>\n";

while (
$row = mysql_fetch_row($result)) // Data
{ echo '<tr><td>'.implode($row,'</td><td>')."</td></tr>\n"; }

echo
"</table>\n"
?>
up
0
matt at iwdt dot net
23 years ago
here's one way to print out a row of <th> tags from a table
NOTE: i didn't test this

$result = mysql_query("select * from table");

for ($i = 0; $i < mysql_num_fields($result); $i++) {
    print "<th>".mysql_field_name($result, $i)."</th>\n";
}

post a comment if there's an error
up
-1
matteo.cisilino[no_more]cisilino[spm]com
17 years ago
james, why make so difficult when it's very simple :\

$numberfields = mysql_num_fields($res_gb);

   for ($i=0; $i<$numberfields ; $i++ ) {
       $var = mysql_field_name($res_gb, $i);
       $row_title .= $var;
   }

echo $row_title;
up
-2
jimharris at blueyonder dot co dot uk
20 years ago
The code in the last comment has an obvious mistake in the for loop expression.  The correct expression in the for-loop is $x<$y rather than $x<=$y...

$result = mysql_query($sql,$conn) or die(mysql_error());
$rowcount=mysql_num_rows($result);
$y=mysql_num_fields($result);
for ($x=0; $x<$y; $x++) {
   echo = mysql_field_name($result, $x).'<br>';
}
up
-2
jason dot chambes at phishie dot net
21 years ago
<?
/*
    By simply calling the searchtable() function
    with these variables it will serach the desired
    database and procude a table for each field that
    there is a match.
*/

function searchtable($host,$user,$pass,$database,$tablename,$userquery)
{
   
$link   = mysql_connect($host, $user, $pass) or die("Could not connect: " . mysql_error());
   
$db     = mysql_select_db($database, $link) or die(mysql_error());
   
$fields = mysql_list_fields($database, $tablename, $link);
   
$cols   = mysql_num_fields($fields);

    for (
$i = 1; $i < $cols; $i++) {
       
$allfields[] = mysql_field_name($fields, $i);
    }
    foreach (
$allfields as $myfield) {
       
$result = mysql_query("SELECT * FROM $tablename WHERE $myfield like '%$userquery%' ");
        if (
mysql_num_rows($result) > 0){
            echo
"<h3>search <i>$database</i> for <i>$userquery</i>, found match(es) in <i>$myfield</i>: </h3>\n";
            echo
"<table border=1 align=\"center\">\n\t<tr>\n";
            for (
$i = 1; $i < $cols; $i++) {
                echo
"\t\t<th";
                if (
$myfield == mysql_field_name($fields, $i)){
                    echo
" bgcolor=\"orange\"> ";
                } else {
                    echo
">";
                }
                echo
mysql_field_name($fields, $i) . "</th>\n";
            }
            echo
"\t</tr>\n";
           
$myrow = mysql_fetch_array($result);
            do {
                echo
"\t<tr>\n";
                for (
$i = 1; $i < $cols; $i++){
                    echo
"\t\t<td> $myrow[$i] &nbsp;</td>\n";
                }
                echo
"\t</tr>\n";
            } while (
$myrow = mysql_fetch_array($result));
            echo
"</table>\n";
        }
    }
}

searchtable($host,$user,$pass,$database,$tablename,$userquery);
?>
up
-3
tiptonentserv at gmail dot com
13 years ago
simple sql to xml converter works with any sql query and returns the name of the table as the root element "row" as each row element and the names of the columns are your children of row. fully tested.

<?php
function sqlToXml($host,$user,$pass,$database,$tablename,$query){

   
$link   = mysql_connect($host, $user, $pass) or die("Could not connect: " . mysql_error());
   
$db     = mysql_select_db($database, $link) or die(mysql_error());
   
   
$result = mysql_query($query);
    if(!
$result){ die('Invalid query: '.mysql_error()); }
   
   
$numOfCols = mysql_num_fields($result);
   
$numOfRows = mysql_num_rows($result);
   
   
$info = mysql_fetch_assoc($result);
   
   
//send headers
   
header('Content-type: text/xml');
   
header('Pragma: public');       
   
header('Cache-control: private');
   
header('Expires: -1');
   
$xml = '<?xml version="1.0" encoding="utf-8"?>';
   
$xml.= "<{$tablename}>";
   
    if(
$numOfRows > 0){
        do {
           
$xml.= "<row>";
            foreach(
$info as $column => $value) {
               
$xml.= "<{$column}>{$value}</{$column}>";
            }
           
$xml.= "</row>";
        }
        while (
$info = mysql_fetch_array($result));
    }
   
$xml.= "</{$tablename}>";
   
   
mysql_free_result($result);   
    return
$xml;
   
}
?>
up
-3
blackjackdevel at gmail dot com
17 years ago
Strangely using an aproach like this:
$res=mysql_query("SELECT * FROM `orders`",$conec) or die (mysql_error());

$fields = mysql_num_fields($res);
$out="";
for ($i = 0; $i < $fields; $i++) {
    $fname=mysql_field_name($res, $i);

}

Outputted the E_Warning:
Warning: mysql_field_name() [function.mysql-field-name]: Field N is invalid for MySQL result index

With a lot of different number at N. But expliciting all fields instead of *. Didn't outputted the error.

It maybe a caracteristic of this mysql database(it is from a open source application) because i never saw this in my own databases. Anyway hope this help if someone face the same strange situation
up
-4
clinnenb at hotmail dot com
19 years ago
The following will create a PHP array, $array, containing the MySQL query results with array indexes of the same name as field names returned by the MySQL query.

while ($line = mysql_fetch_array($result, MYSQL_ASSOC)) {
    $i=0;
    foreach ($line as $col_value) {
        $field=mysql_field_name($result,$i);
        $array[$field] = $col_value;
        $i++;
    }
}
up
-5
bags
14 years ago
When using aliases, it appears impossible to discover the name of the underlying column.
select `ID` as `anAlias` from `aTable` returns 'anAlias' as the mysql_field_name(). I have tried all the mysql_field_xxx() functions and none return the real column name.
up
-5
colin dot truran at shiftf7 dot com
20 years ago
T simply itterate through all the field names on a result set try using this.

$result = mysql_query($sql,$conn) or die(mysql_error());
$rowcount=mysql_num_rows($result);
$y=mysql_num_fields($result);
for ($x=0; $x<=$y; $x++) {
    echo = mysql_field_name($result, $x).'<br>';
}

This is useful if you have a result set that joins several tables dynamicaly and you are never sure what all the fields will be when you come to display them.

I suggest you place this within a loop through your result rows and include a field flag check  around the echo to only show certain data types like this.

$y=mysql_num_fields($result);
while ($row=mysql_fetch_array($result)) {
  for ($x=0; $x<=$y; $x++) {
    $fieldname=mysql_field_name($result,$x);
    $fieldtype=mysql_field_type($result, $x);
    if ($fieldtype=='string' && $row[$fieldname]!='')   
       echo $row[$fieldname].' , ';
   }
   echo '<br>';
}
up
-5
aaronp123 att yahoo dott comm
21 years ago
You could probably elaborate on this by sending a full sql query to this function...but I titled it simple_query() because it doesn't really allow for joins.  Never the less, if you want to get a quick array full of a single row result set this is painless:

function simple_query($table_name, $key_col, $key_val) {
    // open the db
    $db_link = my_sql_link();
    // query table using key col/val
    $db_rs = mysql_query("SELECT * FROM $table_name WHERE $key_col = $key_val", $db_link);
    $num_fields = mysql_num_fields($db_rs);
    if ($num_fields) {
        // first (and only) row
        $row = mysql_fetch_assoc($db_rs);
        // load up array
        for ($i = 0; $i < $num_fields; $i++) {
            $simple_q[mysql_field_name($db_rs, $i)] = $row[mysql_field_name($db_rs, $i)];
        }
        // and return
        return $simple_q;
    } else {
        // no rows
        return false;
    }
    mysql_free_result($db_rs);
}

**Please note that my_sql_link() is just a function I have to open up a my sql connection.**
To Top