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How can I check if a given number is within a range of numbers?

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Related: How to check if integer is between a range? – kenorb Mar 12 '15 at 18:41
up vote 40 down vote accepted

The expression:

 ($min <= $value) && ($value <= $max)

will be true if $value is between $min and $max, inclusively

See the PHP docs for more on comparison operators

The link up there is fixed

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No it won't. Both comparison operators should be <=, or the operands of the second part of the expression should be swapped. ($value should not be greater than $max). – GolezTrol Jan 13 '11 at 19:00
    
You must have added that comment while I was correcting my error... this expression is now correct – Dancrumb Jan 13 '11 at 19:02
2  
Depending on whether the OP really means "integer" when asking for "integer" this will produce false results when $value is a float. Also, since the comparison is loose, passing a string might produce false result, e.g. (0 <= 'string') && ('string' <= 10) ); is true due to type juggling. – Gordon Jan 13 '11 at 19:14
    
@Gordon, only if you wish the boundary values to be treated inclusively... but a valid point, nonetheless – Dancrumb Jan 14 '11 at 16:37

You can use filter_var

filter_var(
    $yourInteger, 
    FILTER_VALIDATE_INT, 
    array(
        'options' => array(
            'min_range' => $min, 
            'max_range' => $max
        )
    )
);

This will also allow you to specify whether you want to allow octal and hex notation of integers. Note that the function is type-safe. 5.5 is not an integer but a float and will not validate.

Detailed tutorial:

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if (($num >= $lower_boundary) && ($num <= $upper_boundary)) {

You may want to adjust the comparison operators if you want the boundary values not to be valid.

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using a switch case

    switch ($num){

        case ($num>= $value1 && $num<= $value2): 
            echo "within range 1";
        break;
        case ($num>= $value3 && $num<= $value4): 
            echo "within range 2";
        break;
        .
        .
        .
        .
        .

        default: //default
            echo "within no range";
        break;
     }
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1  
Should be switch(true), otherwise if $num == 0, the case logic fails because PHP tries to match 0 == ($num>= $value1 && $num<= $value2), etc. I've suggested this as an edit. – Cabloo Nov 30 '15 at 5:28

You can try the following one-statement:

if (($x-$min)*($x-$max) < 0)

or:

if (max(min($x, $max), $min) == $x)
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You could whip up a little helper function to do this:

/**
 * Determines if $number is between $min and $max
 *
 * @param  integer  $number     The number to test
 * @param  integer  $min        The minimum value in the range
 * @param  integer  $max        The maximum value in the range
 * @param  boolean  $inclusive  Whether the range should be inclusive or not
 * @return boolean              Whether the number was in the range
 */
function in_range($number, $min, $max, $inclusive = FALSE)
{
    if (is_int($number) && is_int($min) && is_int($max))
    {
        return $inclusive
            ? ($number >= $min && $number <= $max)
            : ($number > $min && $number < $max) ;
    }

    return FALSE;
}

And you would use it like so:

var_dump(in_range(5, 0, 10));        // TRUE
var_dump(in_range(1, 0, 1));         // FALSE
var_dump(in_range(1, 0, 1, TRUE));   // TRUE
var_dump(in_range(11, 0, 10, TRUE)); // FALSE

// etc...
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function limit_range($num, $min, $max)
{
  // Now limit it
  return $num>$max?$max:$num<$min?$min:$num;
}

$min = 0;  // Minimum number can be
$max = 4;  // Maximum number can be
$num = 10;  // Your number
// Number returned is limited to be minimum 0 and maximum 4
echo limit_range($num, $min, $max); // return 4
$num = 2;
echo limit_range($num, $min, $max); // return 2
$num = -1;
echo limit_range($num, $min, $max); // return 0
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