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The operator ++ should be equivalent to + 1, so why does the following example produce different results?

#include <iostream>
#include <string>

int main()
{
    int i, n=25;
    std::string s1="a", s2="a", s1p="", s2p="";

    for (i=0;i<=n;i++)
    {
        s1p += s1;
        s1 = s1.at(0) + 1;

        s2p += s2;
        s2 = s2.at(0)++;
    }
    std::cout << "s1p = " << s1p << "\n" << "s2p = " << s2p << "\n";

    return 0;
}

Ouput:
s1p = abcdefghijklmnopqrstuvwxyz
s2p = aaaaaaaaaaaaaaaaaaaaaaaaaa
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I seem to have this tendency lately to ask really ill-considered questions - maybe I've a subliminal wish to equal the "goesto-operator" question., although that will take some doing :) –  slashmais Jun 21 '12 at 14:21

3 Answers 3

up vote 9 down vote accepted

The post-increment returns the value previously held by the variable.

Think of x++ (post-increment) as

int y = x;
x = x+1;
return y;

and of ++x (pre-increment) as

x = x+1;
return x;

To achieve your desired result, you need pre-increment.

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Aaah yes, amazing how something obvious goes slipping by ... LOL –  slashmais Jun 20 '12 at 7:05
    
Given that he's overwriting the results of the incrementation with an assignment anyway, I would question either the assignment, or the use of the increment operator (post or pre). One or the other (depending on what he wants), but not both. –  James Kanze Jun 20 '12 at 7:28
    
@JamesKanze I was just reading your answer. –  Luchian Grigore Jun 20 '12 at 7:29

The statement:

s2 = s2.at(0) ++;

is curious, to say the least. You're modifying s2 twice in the same statement. On a build-in type, this would be undefined behavior; on a user defined type (like std::string), it's just confusing. And because the side effects of the ++ must occur before the call to operator=, the ++ is effectively a no-op; any modification of any character in s2 is overwritten by the assignment.

If your goal is to assign a totally new value to the string, based on its first character (and ignoring any additional characters it might contain), then your modification of s1 is the correct solution. If your goal is to modify the first character in the string, leaving any other characters unchanged, then the correct solution is simply s.at(0) ++, ++ s.at(0) or s.at(0) += 1, without any assignment. (The second is the most idiomatic, when the results are not otherwise used.) And of course, if you want to build up a string of successive characters of the alphabet:

std::string s;
for ( char ch = 'a'; ch <= 'z'; ++ ch ) {
    s += ch;
}

would be the most idiomatic (even though it's formally wrong, and won't work in some environments: there's no guarantee that the letters of the alphabet occupy consecutive codepoints in the encoding).

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You are right. I am testing a string hash-function and wanted to run through strings from "a" through "ab", "abc", ..., "a..z" to check for collisions. My initial attempt was s2 which obviously did not work, and I then switched to s1 which is fine. I got so involved with the hash-function that I failed to spot the simple wrong interpretation of post-increment - which resulted in this slightly embarrassing question. –  slashmais Jun 20 '12 at 10:27

++ and +1 are not equivalent. To substitute n++; you have to use n = n+1; (or n+=1 if you want). ++ actually increments a variable whereas +1 just returns the result of the arithmetic operation. also note that n++ and ++n have different behavior.

n = 1;
i = 1;

a = ++n;
b = i++;
c = i;

The output for a, b and c would be

a: 2
b: 1
c: 2 
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