Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
<?php
for ($i = 'a'; $i <= 'z'; $i++)
    echo "$i\n";

This snippet gives the following output (newlines are replaced by spaces):

a b c d e f g h i j k l m n o p q r s t u v w x y z aa ab ac ad ae af ag ah ai aj ak al am an ao ap aq ar as at au av aw ax ay az ba bb bc bd be bf bg bh bi bj bk bl bm bn bo bp bq br bs bt bu bv bw bx by bz ca cb cc cd ce cf cg ch ci cj ck cl cm cn co cp cq cr cs ct cu cv cw cx cy cz da db dc dd de df dg dh di dj dk dl dm dn do dp dq dr ds dt du dv dw dx dy dz ea eb ec ed ee ef eg eh ei ej ek el em en eo ep eq er es et eu ev ew ex... on to yz

share|improve this question
85  
Wow the output from that is really unexpected. –  GWW Nov 4 '10 at 15:38
25  
PHP is not C, even if the syntax tries to convince you of the contrary. –  joni Nov 4 '10 at 15:40
3  
a b c d e f g h i j k l m n o p q r s t u v w x y z aa ab ac ad ae af ag ah ai aj ak al am an ao ap aq ar as at au av aw ax ay az ba bb bc bd be bf bg bh bi bj bk bl bm bn bo bp bq br bs bt bu bv bw bx by bz ca cb cc cd ce cf cg ch ci cj ck cl cm cn co cp cq cr cs ct cu cv cw cx cy cz da db dc dd de df dg dh di dj dk dl dm dn do dp dq dr ds dt du dv dw dx dy dz ea eb ec ed ee ef eg eh ei ej ek el em en eo ep eq er es et eu ev ew ex... on to yz –  Surreal Dreams Nov 4 '10 at 15:41
8  
really fascinating! –  joni Nov 4 '10 at 15:43
4  
I mean, what the hell? –  Jefffrey Nov 10 '10 at 17:55

11 Answers 11

up vote 291 down vote accepted

From the docs:

PHP follows Perl's convention when dealing with arithmetic operations on character variables and not C's.

For example, in Perl 'Z'+1 turns into 'AA', while in C 'Z'+1 turns into '[' ( ord('Z') == 90, ord('[') == 91 ).

Note that character variables can be incremented but not decremented and even so only plain ASCII characters (a-z and A-Z) are supported.

From Comments:-
It should also be noted that that "<=" is a lexicographical comparison, so 'z'+1 ≤ 'z'. (Since 'z'+1='aa'≤'z'. But 'za'≤'z' is the first time the comparison is false.) Breaking when $i=='z' would work, for instance.

Example here.

share|improve this answer
24  
..... aannnd, there's the correct answer. I have never heard of this, very interesting! –  Pekka 웃 Nov 4 '10 at 15:44
23  
My mind just blew up. –  Stephen Nov 4 '10 at 16:42
65  
For completeness, you should also add that "<=" is lexicographical comparison, so 'z'+1 ≤ 'z'. (Since 'z'+1='aa'≤'z'. But 'zz'≤'z' is the first time the comparison is false.) Breaking when $i=='z' would work, for instance. –  ShreevatsaR Nov 4 '10 at 17:53
6  
as ShreevatsaR is saying, it's the comparator, not the arithmetic that's the trouble, don't focus on the ++ operator –  slf Nov 4 '10 at 18:49
10  
@ShreevatsaR: actually, 'yz'+1 = 'za'. The first comparison that fails is 'za'<='z' –  Milan Babuškov Nov 4 '10 at 20:48

Because once 'z' is reached (and this is a valid result within your range, the $i++ increments it to the next value in sequence), the next value will be 'aa'; and alphabetically, 'aa' is < 'z', so the comparison is never met

for ($i = 'a'; $i != 'aa'; $i++) 
    echo "$i\n"; 
share|improve this answer
47  
It is odd that 'z'++ = 'aa', but 'aa' < 'z'. That logic doesn't flow very well. –  Matthew Vines Nov 4 '10 at 15:47
17  
@Matthew: Alphabetize them. 'aa' would come first, thus it's "less than" the string 'z'. The loop terminates at 'zz' because it's alphabetically "greater than" (comes after) 'z'. It's illogical in the sense that you can "increment" something and get a lesser value, but it's logical in an alphabetical sense. –  eldarerathis Nov 4 '10 at 15:48
2  
The character incrementor is Perl logic (see CMS's quote from the docs). The comparison 'aa' < 'z' is standard string comparison logic. Not odd, once you understand how to use it... from the answers here, a lot of people don't. –  Mark Baker Nov 4 '10 at 15:49
5  
@eldarerathis Oh I definitely understand how it is working. I just find it odd at the same time. –  Matthew Vines Nov 4 '10 at 15:50
2  
It's incredibly useful for me, playing around with Excel columns that follow the same logical series –  Mark Baker Nov 4 '10 at 15:52

Others answers explain the observed behavior of the posted code. Here is one way to do what you want (and it's cleaner code, IMO):

foreach (range('a', 'z') as $i)
    echo "$i\n";

In response to ShreevatsaR's comment/question about the range function: Yes, it produces the "right endpoint", i.e. the values passed to the function are in the range. To illustrate, the output I got was:

a
b
c
d
e
f
g
h
i
j
k
l
m
n
o
p
q
r
s
t
u
v
w
x
y
z
share|improve this answer
2  
Does range() include the right endpoint? From experience with other languages, that's unexpected too! –  ShreevatsaR Nov 4 '10 at 17:54
1  
@ShreevatsaR: Yes, range() gives the "right" endpoint, see my edited answer (and follow the link to the function) for more info. –  GreenMatt Nov 4 '10 at 18:18
1  
What can I say… more PHP madness. :-) There's no other language I know of in which range() works this way. (Certainly not, say, Haskell or Python.) Didn't Dijkstra write something about this? –  ShreevatsaR Nov 5 '10 at 4:22
8  
Madness is in the inconsistency of PHP. range('A','CZ') works totally differently to the ++ incrementor, and the resulting array will just contain three values: A, B and C. –  Mark Baker Nov 5 '10 at 9:00

Other's already said why PHP doesn't show what you expect, here's how you get the result you might want

<?php
for ($i = ord('a'); $i <= ord('z'); $i++)
    echo chr($i);
?>
share|improve this answer
2  
Unnecessary. you don't need to do the ord() at all, just the correct comparison to terminate the loop –  Mark Baker Nov 4 '10 at 15:46
14  
@Mark, I do prefer clean and understandable code. –  Filip Ekberg Nov 4 '10 at 15:48
1  
+1 Much more comprehensible when not familiar with one of the more eccentric features of PHP. –  lonesomeday Nov 4 '10 at 17:41

Why not just use range('a','z')?

share|improve this answer
<?php

$i = 'a';
do {
echo ($j=$i++),"\r\n";
} while (ord($j) < ord($i));

?>
share|improve this answer

Php has the function of looping letters and can exceed beyond single characters, the rest will be done this way: aa ab ac... zz, and so on.

Try this:

<?php
for ($i = 'a'; $i !== 'aa'; $i++)
    echo "$i\n";
?>
share|improve this answer

Also this can be used:

for ($i = 'a'; $i <= 'z'; $i=chr(ord($i)+1))
    echo "$i\n";
share|improve this answer

Try this code i think this code is helping to you.

$alphas = range('A', 'Z');
foreach($alphas as $value){
    echo $value."<br>";
}

Display 26 letter in sequential

share|improve this answer

While the above answers are insightful to what's going on, and pretty interesting (I didn't know it would behave like this, and its good to see why.

The easiest fix (although perhaps not the most meaningful) would be just to change the condition to $i != 'z'

<?php
for ($i = 'a'; $i != 'z'; $i++)  
    echo "$i\n";
?>
share|improve this answer
4  
Note that this will only give you a to y, not z –  Mark Baker Nov 4 '10 at 16:41
    
doh! yep, good point. I can see the logic behind both the increment and the comparison, but it sure is strange that sometimes $a++ < $a –  jon_darkstar Nov 4 '10 at 18:07

Wow I really didn't know about this but its not a big code you can try echo "z" after loop Mark is Absolutely Right I use his method but if you want alternative then this may also you can try

<?php
for ($i = "a"; $i = "y"; $i++) {
    echo "$i\n";
    if ($i == "z") {}
}
echo "z";
?>
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.