I believe I am a bit confused with the isset function in PHP. I'm trying to use this function to determine is a field in a form is null... I was under the impressions that the isset function checks to see if a field has a value in it... but I believe the isset function only determines if the thing passed to it exists.
For example.
If I have a form input field with the name attribute set to "day". I would use isset($_GET['day']); to determine if the form input field is not null? Or does isset just check to see if the 'day' exists and doesn't check that value that it passes?
Any help would be great!
Thanks!
From the PHP isset() page:
[isset() determines] if a variable is set and is not NULL.
This means that:
$var1;
$var2 = NULL;
$var3 = 0;
$var4 = 'test';
isset($var1); //false
isset($var2); //false
isset($var3); //true; note that if($var3) still returns false
isset($var4); //true
isset($var0); //false
To sum up that bit up there, isset() returns FALSE if the variable is either not set (hence the function name) or contains NULL as a value. For isset() to return true, a variable has to both exist and contain an actual value (boolean false included).
In your case with $_GET['day'], you can use isset() to check if a value has actually been passed to it (i.e., that it's not null).
Isset just check if a variable is defined. Use empty to know if it is null or undefined or something like that.
if(!empty($_GET['day']))
//Stuff
Absolutely right, the isset() function just checks it the variable 'day' exists. In order to check if the value exist or is empty you have to use empty() function.
Related
Are those 2 expressions equivalent (I mean "can I replace the 1st one with the 2nd one):
if ($var) { ... }
and
if (!empty($var)) { ... }
I feel there is a difference but I rationally cannot say which one.
For me the first one evaluates if $var is true or false and I may be wrong but "false" evaluations means that $var is false (boolean), empty (string, object or array), 0 value (int, float or string) or undefined ... that's the way the "empty" function works (http://php.net/manual/en/function.empty.php).
If those tests are equivalent (at least in specific cases), which is better to use (readability, performance, maintenance, ...)?
Thanks
They differ in that for your second example, $var doesn't have to be set before using it. In the first case, if $var isn't set, a notice will be generated, while in the second example, it won't.
This can be useful for values submitted by users inside the $_GET and $_POST superglobals (.. and for $_COOKIE and $_SERVER).
// will generate a notice if there is no `foo` in the query string
if ($_GET['foo'])
// will not generate a notice, even if the key is not set
if (!empty($_GET['foo']))
!empty($var)
Determine whether a variable is considered to be not empty. A variable is considered not empty if it does exist or if its value equals TRUE. empty() does not generate a warning if the variable does not exist.
if ($var) { ... }
You'll test if $var contains a value that's not false -- 1 is true, 123 is too
Extra:
isset($var)
Using isset(), you'll test if a variable has been set -- i.e. if any not-null value has been written to it.
-
It all depends on what you want to check/test. I do hope it helps.
empty() -> If variable not exist or its equals to false empty function returns true.
Imagine that you did not declare $var
if ($var) {
echo '1';
}
else {
echo '2';
}
Output will be:
NOTICE Undefined variable: var on line number *
If you use empty:
if (!empty($var)) {
echo 1;
}
else {
echo 2;
}
Output will be:
2
Also the following values are considered to be empty
$var = 0;
$var = "";
$var = false;
$var = null;
Also check isset() function Php.net isset
For validating a variable value we can do
if(empty($var)){
}
OR
This will return true on empty string, 0 as number, false, null
if(!$var){
}
What is the difference between this two approaches, are them equivalent?
EDIT: Some examples where they behave different will be more pratical.
EDIT2: The only difference founded from answers is that the second will throw a notice if $var is undefined. What about the boolean value they return?
EDIT3: for $var I mean any variable with any value, or even an undefined variable.
Conclusion from users answers:
if(!$var) and empty($var) are equivalent as described here http://php.net/manual/en/types.comparisons.php, they will return the same bool value on the same variable.
if(!$var) will return a php notice if $var is not defined, normally this is not the case (if we write good code) most IDEs will underline it.
When checking simple variables if(!$var) should be ok
When checking arrays index ($var['key']) or object properties ($var->key)
empty($var['key']) is better using empty.
the problem is that since !$vars is shorter than empty($vars) many of us will prefer the first way
You prefer the first one because it is a "shorter way"?
Shorter code does not mean better code, or faster scripts ;)
The speed of PHP functions and its various other behaviours is not determined by the length of the function name. It is determined by what PHP is actually doing to evaluate, action, and return results.
Besides that, don't choose methods based on length of code, choose methods based on scenario and best approach "for a given scenario".
Which is best depends on what you need, and there are other variable checks other than the two you mentioned (isset() for one).
but the problem is are they equivalent always
Not necessarily - see
http://php.net/manual/en/types.comparisons.php
Or create a quick test script to see what PHP returns for your two scenarios.
You could also be initialising your variables in your framework (or, likely, stand alone script), which means the scenario changes, as could your question and approach you use.
It's all contextual as to which is the best.
As for the required answer.
Anyway, to answer your question, here are some tests:
(!$vars)
Example code:
if ( !$vars )
{
echo "TRUE";
}
else
{
echo "FALSE";
}
will return:
Notice: Undefined variable: vars in /whatever/ on line X
TRUE
However, if you initialise the var in your scripts somewhere first:
$vars = "";
$vars = NULL;
$vars = 0;
Any of the above will return:
[no PHP notice]
TRUE
$vars = "anything";
will return:
FALSE
This is because with the exclamation mark you are testing if the var is FALSE, so when not initialised with a string the test script returns TRUE because it is NOT FALSE.
When we initialise it with a string then the var NOT being FALSE is FALSE.
empty($vars)
Example code:
if ( empty($vars) )
{
echo "TRUE";
}
else
{
echo "FALSE";
}
Not initialised/set at all, and all of the following:
$vars = "";
$vars = NULL;
$vars = 0;
will return:
TRUE
There is no PHP notice for using empty, so here we show a difference between the two options (and remember when I said the shortest code is not necessarily the "best"? Depends on the scenario etc.).
And as with the previous test:
$vars = "anything";
returns:
FALSE
This is the same with ( !$var ), you are testing IF EMPTY, and without the var being initialised at all, or with any "empty()" value: eg (""), or NULL, or zero (0), then testing if the var is empty is TRUE, so we get TRUE output.
You get FALSE when setting the var to a string because IS EMPTY = FALSE as we set it to something.
The difference is empty() does not throw a PHP notice when var is not defined, whereas (!$var) will.
Also, you may prefer it for being "shorter code", but if (!$var) isn't really much shorter/better looking than the widely used if (empty($var)).
But again, this depends on the scenario - PHP provides different options to suit different requirements.
No they are not equal
if(empty($var)){
echo "empty used\n";
}
if(!$var){ # line no. 6
echo "! used";
}
will output
empty used
Notice: Undefined variable: var in /var/www/html/test.php on line 6
! used
Following values are considered to be empty when using empty() function
"" (an empty string)
0 (0 as an integer)
0.0 (0 as a float)
"0" (0 as a string)
NULL
FALSE
array() (an empty array)
$var; (a variable declared, but without a value)
As you can read in empty docs
empty() is essentially the concise equivalent to !isset($var) || $var
== false.
They are not.
The first one verify if $var has any value.
The second one verify as boolean - if true or not.
The second one will give you a notice, the first one will be true if the value is empty for $var.
If you wish to verify if $var exists, use isset.
if( !isset($var) )
echo '$var does not exists!<br>';
if(empty($var))
echo 'The value is empty or does not exists!<br>';
if( !$var )
echo 'Value is false!<br>';
$var = '';
if(empty($var))
echo 'The value is empty or does not exists!<br>';
Use this to view the notice
error_reporting(-1);
ini_set('display_errors', 1);
The main difference is that empty() will not complain if the variable does not exist, whereas using ! will generate a warning.
In older versions of PHP, empty() only worked on direct variables, meaning this would fail:
empty($a && $b);
This has been changed in 5.5
The official manual contains all you have to know on this subject:
http://php.net/manual/en/types.comparisons.php
if (!$var) is the last column, boolean : if($x) negated.
As you can see they are the same, but empty won't complain if the variable wasn't set.
From the manual:
empty() does not generate a warning if the variable does not exist
Take some time, and study that chart.
As far as I know, it's pretty simple.
empty() is basically equivalent to !isset($var) || !$var and does not throw any warnings/notices, whereas using just !$var will throw a notice if the variable isn't defined.
For the sake of completeness, the following are considered empty when using empty():
empty strings
empty arrays
0, 0.0, '0' (int, float, string)
null
false
defined variables without a value
From a boolean value return empty is equivaliend to !:
empty($var) === !$var; // supposed that $vars has been defined here
From a notice/waning notification they are not equivalent:
empty($array['somekey']); //will be silent if somekey does not exists
!$array['somekey']; // will through a warning if somekey does not exists
Possibly a strange one that I hope can be done in one line.
I have to have an IF statement that will checks two things.
The first checks if the variable $loggedInfo['status'] is set and is equal to "client".
The second checks that the variable $loggedInfo['address1'] is set and is blank.
The reason being that when the first variable equals staff then the 'address1' variable doesn't exist.
I did have the following but when I log in as staff it still checks for the address1
if((isset($loggedInfo['status'])=="client")&&(!$loggedInfo['address1'])){
//Do something
}
isset returs true or false. you have to do separate check for the actual value
if(
isset($loggedInfo['status']) && $loggedInfo['status']=="client" &&
isset($loggedInfo['address1']) && trim($loggedInfo['address1']) != ''
)
{
//Do something
}
if((isset($loggedInfo['status']) && $loggedInfo['status']=="client") &&(empty($loggedInfo['address1'])){
//Do something
}
isset() returns TRUE if the given variable is defined in the current scope with a non-null value.
empty() returns TRUE if the given variable is not defined in the current scope, or if it is defined with a value that is considered "empty". These values are:
NULL // NULL value
0 // Integer/float zero
'' // Empty string
'0' // String '0'
FALSE // Boolean FALSE
array() // empty array
Depending PHP version, an object with no properties may also be considered empty.
Well you just can't compare the return value of isset() with the string "client", because it will never equal that. To quote http://php.net/manual/en/function.isset.php its return values are "TRUE if var exists and has value other than NULL, FALSE otherwise".
First check if it is set
if ((isset($loggedInfo['status']) === true) && ($loggedInfo['status'] === "client") && (empty($loggedInfo['address1']) === true)) {
// Do something
}
Key take away from this should be to look up return values for every function you use, like empty(), in the manual http://www.php.net/manual/en/function.empty.php. This will save you a lot of headaches in the future.
How would I determine if a $_POST is null? I want to do an if/else based on whether an ID is submitted or not, to determine whether a record should be inserted into a MySQL database, or updated.
Would I use isset($_POST["ID"]) ?
There are several functions in php for this.
People use empty or isset for this purpose. Many use the one and dont think about the difference.
This example from the documentation shows clearly the difference.
$var = 0;
// Evaluates to true because $var is empty
if (empty($var)) {
echo '$var is either 0, empty, or not set at all';
}
// Evaluates as true because $var is set
if (isset($var)) {
echo '$var is set even though it is empty';
}
In this particular case, you should use empty and not isset, because the variable can be set, but empty.
you need to use empty():
if (!empty($_POST["ID"])) {
//rest of code here
}
I read somewhere that the isset() function treats an empty string as TRUE, therefore isset() is not an effective way to validate text inputs and text boxes from a HTML form.
So you can use empty() to check that a user typed something.
Is it true that the isset() function treats an empty string as TRUE?
Then in which situations should I use isset()? Should I always use !empty() to check if there is something?
For example instead of
if(isset($_GET['gender']))...
Using this
if(!empty($_GET['gender']))...
isset vs. !empty
FTA:
"isset() checks if a variable has a
value including (False, 0 or empty
string), but not NULL. Returns TRUE
if var exists; FALSE otherwise.
On the other hand the empty() function
checks if the variable has an empty
value empty string, 0, NULL or
False. Returns FALSE if var has a
non-empty and non-zero value."
In the most general way :
isset tests if a variable (or an element of an array, or a property of an object) exists (and is not null)
empty tests if a variable (...) contains some non-empty data.
To answer question 1 :
$str = '';
var_dump(isset($str));
gives
boolean true
Because the variable $str exists.
And question 2 :
You should use isset to determine whether a variable exists ; for instance, if you are getting some data as an array, you might need to check if a key isset in that array.
Think about $_GET / $_POST, for instance.
Now, to work on its value, when you know there is such a value : that is the job of empty.
Neither is a good way to check for valid input.
isset() is not sufficient because – as has been noted already – it considers an empty string to be a valid value.
! empty() is not sufficient either because it rejects '0', which could be a valid value.
Using isset() combined with an equality check against an empty string is the bare minimum that you need to verify that an incoming parameter has a value without creating false negatives:
if( isset($_GET['gender']) and ($_GET['gender'] != '') )
{
...
}
But by "bare minimum", I mean exactly that. All the above code does is determine whether there is some value for $_GET['gender']. It does not determine whether the value for $_GET['gender'] is valid (e.g., one of ("Male", "Female","FileNotFound")).
For that, see Josh Davis's answer.
isset is intended to be used only for variables and not just values, so isset("foobar") will raise an error. As of PHP 5.5, empty supports both variables and expressions.
So your first question should rather be if isset returns true for a variable that holds an empty string. And the answer is:
$var = "";
var_dump(isset($var));
The type comparison tables in PHP’s manual is quite handy for such questions.
isset basically checks if a variable has any value other than null since non-existing variables have always the value null. empty is kind of the counter part to isset but does also treat the integer value 0 and the string value "0" as empty. (Again, take a look at the type comparison tables.)
If you have a $_POST['param'] and assume it's string type then
isset($_POST['param']) && $_POST['param'] != '' && $_POST['param'] != '0'
is identical to
!empty($_POST['param'])
isset() is not an effective way to validate text inputs and text boxes from a HTML form
You can rewrite that as "isset() is not a way to validate input." To validate input, use PHP's filter extension. filter_has_var() will tell you whether the variable exists while filter_input() will actually filter and/or sanitize the input.
Note that you don't have to use filter_has_var() prior to filter_input() and if you ask for a variable that is not set, filter_input() will simply return null.
When and how to use:
isset()
True for 0, 1, empty string, a string containing a value, true, false
False for null
e.g
$status = 0
if (isset($status)) // True
$status = null
if (isset($status)) // False
Empty
False for 1, a string containing a value, true
True for null, empty string, 0, false
e.g
$status = 0
if(empty($status)) // true
$status = 1
if(empty($status)) // False
isset() vs empty() vs is_null()
isset is used to determine if an instance of something exists that is, if a variable has been instantiated... it is not concerned with the value of the parameter...
Pascal MARTIN... +1
...
empty() does not generate a warning if the variable does not exist... therefore, isset() is preferred when testing for the existence of a variable when you intend to modify it...
isset() is used to check if the variable is set with the value or not and Empty() is used to check if a given variable is empty or not.
isset() returns true when the variable is not null whereas Empty() returns true if the variable is an empty string.
isset($variable) === (#$variable !== null)
empty($variable) === (#$variable == false)
I came here looking for a quick way to check if a variable has any content in it. None of the answers here provided a full solution, so here it is:
It's enough to check if the input is '' or null, because:
Request URL .../test.php?var= results in $_GET['var'] = ''
Request URL .../test.php results in $_GET['var'] = null
isset() returns false only when the variable exists and is not set to null, so if you use it you'll get true for empty strings ('').
empty() considers both null and '' empty, but it also considers '0' empty, which is a problem in some use cases.
If you want to treat '0' as empty, then use empty(). Otherwise use the following check:
$var .'' !== '' evaluates to false only for the following inputs:
''
null
false
I use the following check to also filter out strings with only spaces and line breaks:
function hasContent($var){
return trim($var .'') !== '';
}
Using empty is enough:
if(!empty($variable)){
// Do stuff
}
Additionally, if you want an integer value it might also be worth checking that intval($variable) !== FALSE.
I use the following to avoid notices, this checks if the var it's declarated on GET or POST and with the # prefix you can safely check if is not empty and avoid the notice if the var is not set:
if( isset($_GET['var']) && #$_GET['var']!='' ){
//Is not empty, do something
}
$var = '';
// Evaluates to true because $var is empty
if ( empty($var) ) {
echo '$var is either 0, empty, or not set at all';
}
// Evaluates as true because $var is set
if ( isset($var) ) {
echo '$var is set even though it is empty';
}
Source: Php.net
isset() tests if a variable is set and not null:
http://us.php.net/manual/en/function.isset.php
empty() can return true when the variable is set to certain values:
http://us.php.net/manual/en/function.empty.php
<?php
$the_var = 0;
if (isset($the_var)) {
echo "set";
} else {
echo "not set";
}
echo "\n";
if (empty($the_var)) {
echo "empty";
} else {
echo "not empty";
}
?>
!empty will do the trick. if you need only to check data exists or not then use isset other empty can handle other validations
<?php
$array = [ "name_new" => "print me"];
if (!empty($array['name'])){
echo $array['name'];
}
//output : {nothing}
////////////////////////////////////////////////////////////////////
$array2 = [ "name" => NULL];
if (!empty($array2['name'])){
echo $array2['name'];
}
//output : {nothing}
////////////////////////////////////////////////////////////////////
$array3 = [ "name" => ""];
if (!empty($array3['name'])){
echo $array3['name'];
}
//output : {nothing}
////////////////////////////////////////////////////////////////////
$array4 = [1,2];
if (!empty($array4['name'])){
echo $array4['name'];
}
//output : {nothing}
////////////////////////////////////////////////////////////////////
$array5 = [];
if (!empty($array5['name'])){
echo $array5['name'];
}
//output : {nothing}
?>
Please consider behavior may change on different PHP versions
From documentation
isset() Returns TRUE if var exists and has any value other than NULL. FALSE otherwise
https://www.php.net/manual/en/function.isset.php
empty() does not exist or if its value equals FALSE
https://www.php.net/manual/en/function.empty.php
(empty($x) == (!isset($x) || !$x)) // returns true;
(!empty($x) == (isset($x) && $x)) // returns true;
When in doubt, use this one to check your Value and to clear your head on the difference between isset and empty.
if(empty($yourVal)) {
echo "YES empty - $yourVal"; // no result
}
if(!empty($yourVal)) {
echo "<P>NOT !empty- $yourVal"; // result
}
if(isset($yourVal)) {
echo "<P>YES isset - $yourVal"; // found yourVal, but result can still be none - yourVal is set without value
}
if(!isset($yourVal)) {
echo "<P>NO !isset - $yourVal"; // $yourVal is not set, therefore no result
}