11

I have following table.

<form method="post" action="test.php">
  <input name="id[]" type="text" value="ID1" />
  <input name="value[]" type="text" value="Value1" />
  <hr />

  <input name="id[]" type="text" value="ID2" />
  <input name="value[]" type="text" value="Value2" />
  <hr />

  <input name="id[]" type="text" value="ID3" />
  <input name="value[]" type="text" value="Value3" />
  <hr />

  <input name="id[]" type="text" value="ID4" />
  <input name="value[]" type="text" value="Value4" />
  <hr />

  <input type="submit" />
</form>

And test.php file

<?php 

  $myarray = array( $_POST);
  foreach ($myarray as $key => $value)
  {
    echo "<p>".$key."</p>";
    echo "<p>".$value."</p>";
    echo "<hr />";
  }

?>

But it is only returning this: <p>0</p><p>Array</p><hr />

What I'm doing wrong?

5
  • Is there a reason why you are trying to collect multiple textfields into the same name? Also if you aren't concerned about how pretty it looks, echo "<p>" . print_r($value, TRUE) . "</p>"; could be your friend.
    – KyleWpppd
    Aug 17, 2011 at 13:41
  • @Kyle - in the end this will be a BIG table of the inputes to update the DB.
    – Iladarsda
    Aug 17, 2011 at 13:46
  • How are you filling out the table? Wouldn't a *.sql file be a decent choice assuming the text exists somewhere already?
    – KyleWpppd
    Aug 17, 2011 at 13:54
  • @Kyle - for me that would be the easiest - but for someone non technical - file where we are droping all of the content of the table form DB, fill / change the inputs and submit update is the correct way of doing it.
    – Iladarsda
    Aug 17, 2011 at 14:56
  • Possible duplicate of $_POST print variable name along with value
    – jww
    May 28, 2016 at 18:10

11 Answers 11

32

The foreach loops work just fine, but you can also simply

print_r($_POST);

Or for pretty printing in a browser:

echo "<pre>";
print_r($_POST);
echo "</pre>";
16
<?php 

 foreach ($_POST as $key => $value) {
  echo '<p>'.$key.'</p>';
  foreach($value as $k => $v)
  {
  echo '<p>'.$k.'</p>';
  echo '<p>'.$v.'</p>';
  echo '<hr />';
  }

} 

 ?>

this will work, your first solution is trying to print array, because your value is an array.

5

$_POST is already an array, so you don't need to wrap array() around it.

Try this instead:

<?php 

 for ($i=0;$i<count($_POST['id']);$i++) {

  echo "<p>".$_POST['id'][$i]."</p>";
  echo "<p>".$_POST['value'][$i]."</p>";
  echo "<hr />";

} 

 ?>

NOTE: This works because your id and value arrays are symmetrical. If they had different numbers of elements then you'd need to take a different approach.

6
  • This will retutn <p>id</p><p>Array</p><hr /><p>value</p><p>Array</p><hr /> only 2 of 4. Plus I want to display the VALUE of the field - what was inserted in the input.
    – Iladarsda
    Aug 17, 2011 at 13:11
  • right, sorry, missed the part where your name params are arrays. I'll edit. Aug 17, 2011 at 13:14
  • 1
    Careful with this method. It's fine for text inputs but if the inputs are mixed (say text and checkboxes), the counts won't match for unchecked checkboxes
    – Phil
    Aug 17, 2011 at 13:20
  • @Phil Hence my NOTE on the answer. Aug 17, 2011 at 13:22
  • @phil - actually I will be using this for checkboxes mainly. What the solution than?
    – Iladarsda
    Aug 17, 2011 at 13:29
2

You are adding the $_POST array as the first element to $myarray. If you wish to reference it, just do:

$myarray = $_POST;

However, this is probably not necessary, as you can just call it via $_POST in your script.

2

Why are you wrapping the $_POST array in an array?

You can access your "id" and "value" arrays using the following

// assuming the appropriate isset() checks for $_POST['id'] and $_POST['value']

$ids = $_POST['id'];
$values = $_POST['value'];

foreach ($ids as $idx => $id) {
    // ...
}

foreach ($values as $idx => $value) {
    // ...
}
1

Just:

foreach ( $_POST as $key => $value) {

  echo "<p>".$key."</p>";
  echo "<p>".$value."</p>";
  echo "<hr />";

} 
5
  • 1
    In addition, you can visualize the array using print_r($_POST) or var_dump($_POST).
    – TJHeuvel
    Aug 17, 2011 at 13:09
  • 1
    You can't echo $value as it is an array for both id and value keys
    – Phil
    Aug 17, 2011 at 13:12
  • @Phil well, you definitely can echo an array =)
    – Headshota
    Aug 17, 2011 at 13:16
  • I should have said "you can't echo $value and expect to see anything useful" ;-)
    – Phil
    Aug 17, 2011 at 13:18
  • This will retutn <p>id</p><p>Array</p><hr /><p>value</p><p>Array</p><hr /> only 2 of 4. Plus I want to display the VALUE of the field - what was inserted in the input.
    – Iladarsda
    Aug 17, 2011 at 13:27
1

Because you have nested arrays, then I actually recommend a recursive approach:

function recurse_into_array( $in, $tabs = "" )
{
    foreach( $in as $key => $item )
    {
        echo $tabs . $key . ' => ';
        if( is_array( $item ) )
        {
            recurse_into_array( $item, $tabs . "\t" );
        }
        else
        {
            echo $tabs . "\t" . $key;
        }
    }
}

recurse_into_array( $_POST );
1

Came across this 'implode' recently.

May be useful to output arrays. http://in2.php.net/implode

echo 'Variables: ' . implode( ', ', $_POST);
1
  • Note that this would output the values, but not the keys Oct 24, 2014 at 23:48
0

$_POST is an array in itsself you don't need to make an array out of it. What you did is nest the $_POST array inside a new array. This is why you print Array. Change it to:

foreach ($_POST as $key => $value) {

  echo "<p>".$key."</p>";
  echo "<p>".$value."</p>";
  echo "<hr />";

} 
0

$_POST is already an array. Try this:

foreach ($_POST as $key => $value) {
    echo "<p>".$key."</p>";
    echo "<p>".$value."</p>";
    echo "<hr />";
} 
0

As you need to see the result for testing purpose. The simple and elegant solution is the below code.

echo "<pre>";
print_r($_POST);
echo "</pre>";

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