+ 5

Can anyone explain to me why the output of the code below is /* 6 */? I tink the answer should be 5...

$x=2; $y = ++$x; echo $x + $y. php question by xcrocodile

28th Nov 2017, 1:48 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
13 Respuestas
+ 11
$y = ++$x After this statement, both $y and $x will be 3 since it's pre-increment. https://www.sololearn.com/discuss/407846/?ref=app
28th Nov 2017, 2:04 PM
Shamima Yasmin
Shamima Yasmin - avatar
+ 9
Basically, when you do your operation on $y, it's increasing x by 1, which makes it 3. Thus $y is 3 and $x is now 3. 3 + 3 is 6. https://code.sololearn.com/wbSIb4u60wjV/#php <?php $x = 2; echo "Original var x value: " . $x; echo "<br>"; $y = ++$x; echo "Var y value (y = ++x): " . $y; echo "<br>"; echo "Var x value (after ++x): " . $x; echo "<br>"; $sum = $x + $y; echo "End result (x + y): " . $sum; ?>
28th Nov 2017, 2:08 PM
AgentSmith
+ 8
@Netkos. thnx man. It's not entirely clear to me. Bt I'll still analyze ur code further
28th Nov 2017, 2:05 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 6
the value of $x and $y become 3 after 2 line then answer is 3+3 =6 ++$x increases the value of $x by 1 and become 3 and due to pre increment $y =3 that's why answer is 6 not 5 plz replace the ++x by ++$x
28th Nov 2017, 2:03 PM
Randeep Singh
Randeep Singh - avatar
+ 6
As far as I am aware ++$x increments the value of $x changing it from 2 to 3. In effect your second line of code changes the value held in variable $x t0 3 which is then assigned to $y so that both $x and $y now hold the value 3 and so you get 6 being printed by the echo statement.
28th Nov 2017, 2:03 PM
Richard Myatt
Richard Myatt - avatar
+ 5
@Singh. really really helpful. Thank alot. like the simplicity of the code.
28th Nov 2017, 2:26 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 4
@Vince As others explained a bit better, when you do ++$x, you're incremented the variable $x by 1, which took it from a value of 2 to a value of 3. That value of 3 is stored in $y, but it's also stored in $x because you incremented the variable $x itself. That's why it ends up as 3 + 3, it's because $x and $y both equal 3 after you increment $x by 1.
28th Nov 2017, 2:07 PM
AgentSmith
+ 4
@richard && Yasmin. thnx alot
28th Nov 2017, 2:07 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 3
I'm tink the answer should be 5... since ++$x ==3 and y=$x : => y=3 echo $ x + $y => 2+3 ==5
28th Nov 2017, 1:51 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 3
@Sign. thnx man nw I get it. /^ and also for the correction. ** ++$x **
28th Nov 2017, 2:09 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 3
man it's @singh not @sign btw hope you will understand this concept.
28th Nov 2017, 2:12 PM
Randeep Singh
Randeep Singh - avatar
+ 3
Sorry. autocorrection on me fone. @singh
28th Nov 2017, 2:14 PM
function vince () { alert ( "PLATINUM");}vince ();
function vince () { alert ( "PLATINUM");}vince (); - avatar
+ 2
https://code.sololearn.com/wMo2pP0jW8yk/?ref=app in this code you can check the value of $x after 2nd line. I have also added explaination for pre increment and post increment .well this is my first php code.
28th Nov 2017, 2:22 PM
Randeep Singh
Randeep Singh - avatar