-2

Consider:

<form action="sql5_2.php" method="POST">
    <h3>Update customer Record</h3>
    <input type = "text" name ="PATNUM" placeholder ="Enter Patient number "><br>
    <input type = "text" name ="PAT_FORENAME" placeholder ="Enter Patient Forename "><br>
    <input type = "text" name ="PAT_SURNAME" placeholder ="Enter Patient Lastname"><br>
    <input type = "text" name ="STREET_ADDRESS" placeholder ="Enter Address"><br>
    <input type = "text" name ="TOWN" placeholder ="Enter Town"><br>
    <input type = "text" name ="POST_CODE" placeholder ="Enter Postcode"><br>
    <input type = "text" name ="AGE" placeholder ="Enter Patient Age"><br>
    <br><input type = "submit" value ="Save"><br>
</form>

<?php
    $conn = mysqli_connect ("localhost", "B00657633", "Jpr3EjPw")
              or die ("could not connect: " . mysqli_error($conn));
    print "successful connection<br>";

    mysqli_select_db($conn, 'B00657633') or die ('db will not open');

    $patnum = $_POST[PATNUM];
    $firstname = $_POST[PAT_FORENAME];
    $lastname = $_POST[PAT_SURNAME];
    $address = $_POST[STREET_ADDRESS];
    $town = $_POST[TOWN];
    $postcode = $_POST[POST_CODE];
    $age = $_POST[AGE];

    $sql = "UPDATE patient3 SET PATNUM='$patnum', PAT_FORNAME='$firstname', STREET_ADDRESS='$address', TOWN='$town' , POST_CODE='$postcode' , AGE='$age' WHERE PATNUM= $patnum";

    if (mysqli_query($conn, $sql)) {
        echo "Record updated successfully";
        echo '<br><a class="button" href="sql5_2.php?PATNUM=' . $patnum . '">View updated records</a><br>';
    }

    mysqli_close($conn);
?>
</div>
  • 1
    @andre3wap Yipe! - yeah, big time and I wasn't up to doing it. – Funk Forty Niner Mar 3 '16 at 19:47
  • 1
    And I hope this is testing db credentials – devpro Mar 3 '16 at 19:50
  • 1
    "cant get the information to be shown on my web page" - I'm under the impression that what you posted for code here, isn't causing the error, but more for another piece of code where you are using this for <a class="button" href="sql5_2.php?PATNUM=' . $patnum . '">View updated records</a>. If so, then your posted code does not support the question. – Funk Forty Niner Mar 3 '16 at 20:05
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    Your SQL should also be prepared statements. It's not good to put your variables directly into your sql statements. Use bind_param php.net/manual/en/mysqli-stmt.bind-param.php – ashin999 Mar 3 '16 at 20:46
  • 2
    Uh, what is the question? – Jay Blanchard Mar 4 '16 at 13:25
1

$_POST is an array so use key to fetch values like as

$_POST['key'] = $value;

You missed to enclosed keys into quote( ' ) like as

$patnum = $_POST['PATNUM'];
$firstname = $_POST['PAT_FORENAME'];
$lastname = $_POST['PAT_SURNAME'];
$address = $_POST['STREET_ADDRESS'];
$town = $_POST['TOWN'];
$postcode = $_POST['POST_CODE'];
$age = $_POST['AGE'];

Note about the level of error reporting.

If the level of error reporting isn't set on the server in order to catch them by default, the POST arrays without the quotes would be valid.

It tries to resolve the identifier as a constant and if the constant doesn't exist, PHP assumes the identifier should be quoted.

Otherwise, when using error_reporting(E_ALL); it would produce:

E_NOTICE : type 8 -- Use of undefined constant PATNUM - assumed 'PATNUM'

Therefore, it's usually best to catch all errors and to quote POST arrays.

Reference:

|improve this answer|||||
1

Your POST variables need to be in single quotes:

$patnum= $_POST[PATNUM]; has to be $patnum= $_POST['PATNUM'];

This applies to all.

Also where condition has to be in single quotes:

$sql = "UPDATE patient3 SET PATNUM='$patnum', PAT_FORNAME='$firstname', STREET_ADDRESS='$address', TOWN='$town' , POST_CODE='$postcode' , AGE='$age' WHERE PATNUM= '$patnum'";

Note about the level of error reporting.

If the level of error reporting isn't set on the server in order to catch them by default, the POST arrays without the quotes would be valid.

It tries to resolve the identifier as a constant and if the constant doesn't exist, PHP assumes the identifier should be quoted.

Otherwise, when using error_reporting(E_ALL); it would produce:

E_NOTICE : type 8 -- Use of undefined constant PATNUM - assumed 'PATNUM'

Therefore, it's usually best to catch all errors and to quote POST arrays.

Reference:

|improve this answer|||||
  • 1
    A certain someone told me some time ago, that PHP should populate those. I believe that certain someone was "Barmar". – Funk Forty Niner Mar 3 '16 at 19:45
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    @devpro all I need to do now, is find me a throne. Maybe my outhouse will do for now ;-) – Funk Forty Niner Mar 3 '16 at 19:49
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    @FakhruddinUjjainwala if the POST array(s) was(were) inserted directly into the query and not properly quoted, then it will throw an error. This works $_POST[PATNUM] = "JOHN"; echo $patnum= $_POST[PATNUM]; – Funk Forty Niner Mar 3 '16 at 19:58
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    @FakhruddinUjjainwala check it out eval.in/529783 – Funk Forty Niner Mar 3 '16 at 20:02
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    @FakhruddinUjjainwala See what I left to the OP... and you're welcome. – Funk Forty Niner Mar 3 '16 at 20:06
0

First of all, consider this as an example to get you in the right direction, not a to be used in production.

It's is important to validate user input, the minimum would be to:

  • Check if a variable is set in $_POST, before trying to access it, use isset(), empty() ...
  • Validate the data it contains, do you expect an INT, a range between 2 - 99, an email ...
  • Use prepared statements to protect from SQL Injection, if not possible use mysqli_real_escape_string at least.

Html form:

<form action="sql5_2.php" method="POST">
    <h3>Update customer Record</h3>        
        <input type = "text" name ="PATNUM" placeholder ="Enter Patient number "><br>
        <input type = "text" name ="PAT_FORENAME" placeholder ="Enter Patient Forename "><br>
        <input type = "text" name ="PAT_SURNAME" placeholder ="Enter Patient Lastname"><br>
        <input type = "text" name ="STREET_ADDRESS" placeholder ="Enter Address"><br>
        <input type = "text" name ="TOWN" placeholder ="Enter Town"><br>
        <input type = "text" name ="POST_CODE" placeholder ="Enter Postcode"><br>
        <input type = "text" name ="AGE" placeholder ="Enter Patient Age"><br>
        <br><input type = "submit" value ="Save"><br>
</form>

Here's the PHP sql5_2.php file:

<?php
// I assume this is an example, but in real life don't print errors to the client
$conn = mysqli_connect ("localhost", "*********", "********")
    or die ("could not connect: " . mysqli_error($conn));
print "successful connection<br>";

mysqli_select_db($conn, 'B00657633') or die ('db will not open');


if ( !isset($_POST['PATNUM']) )
{
    die("No 'Patient number' supplied");
} else 
{
    // Here validate the patient number
    // I assume it's a natural number auto-generated by DB
    if (1 !== @preg_match('/(^0$)|(^[1-9]{1}\d*)$/', $_POST['PATNUM'] ))
    {
        die("Invalid 'Patient number': ".$_POST['PATNUM']);
    }

    $patnum = $_POST['PATNUM'];
}

$firstname = $lastname = $address = $town = $postcode = $age = NULL;

// At least some basic SQL Injection prevention
if ( isset($_POST['PAT_FORENAME'] )
{
    $firstname= mysqli_real_escape_string($conn, $_POST['PAT_FORENAME']);
}

// Use the same style for the other variables

// Example using direct query
$sql = "UPDATE patient3 SET "
    ." PAT_FORNAME='$firstname' "
    ." WHERE PATNUM= $patnum";

if (mysqli_query($conn, $sql)) {
    echo "Record updated successfully";
} else {
    die("Record could not be updated");

mysqli_close($conn);

Is using prepared statements, follow the example below:

if ( !isset($_POST['PATNUM']) )
{
    die("No 'Patient number' supplied");
} else 
{
    // Here validate the patient number
    // I assume it's a natural number auto-generated by DB
    if (1 !== @preg_match('/(^0$)|(^[1-9]{1}\d*)$/', $_POST['PATNUM'] ))
    {
        die("Invalid 'Patient number': ".$_POST['PATNUM']);
    }

    $patnum = $_POST['PATNUM'];
}

if ( !isset($_POST['PAT_FORENAME'] )
{
    die('No name supplied');
}

$db = new mysqli('localhost', '*******', '********', 'B00657633');

if (mysqli_connect_errno()) {
    printf("Connect failed: %s\n", mysqli_connect_error());
    die();
}

$statment = $db->prepare("UPDATE patient3 SET PATNUM=? WHERE PATNUM=?");
if ( false === $statement )
    die();

if ( false === $statement->bind_param('sd', $_POST['PAT_FORENAME'], $patnum) )
    die();

if ( false === $statement->execute() )
    die();
|improve this answer|||||
  • Your script is at risk for SQL Injection Attacks. Learn about prepared statements for MySQLi. – Jay Blanchard Mar 4 '16 at 13:01
  • 1
    @JayBlanchard I noted at the beginning that this is an example, to get her in the right direction, not to be used in production and not full-fledged. Also I noted to at least use *escape_string if for some reason not possible to use prepared statements. I edited a bit, hope it's more clear now. – Radu Maris Mar 4 '16 at 20:46

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