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While looking at some conceptual questions in C,I came across this question in a book. What is the output of the following program ?

#include<stdio.h>
#include<string.h>
int main()
{
    static char s[25]="The cocaine man";
    int i=0;
    char ch;
    ch=s[++i];
    printf("%c",ch);
    ch=s[i++];
    printf("%c",ch);
    ch=i++[s];
    printf("%c",ch);
    ch= ++i[s];
    printf("%c\n",ch);
    return 0;
}

Answer :

 hhe!

Can anyone please explain how this output came ?

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2 Answers 2

up vote 3 down vote accepted

Starting from the first assignment

ch=s[++i];

increments i(i=1) and assigns ch the character at index (i=1) of s.

ch=s[i++];

assigns ch the character at index (i=1) of s and then increments i(i=2).

ch=i++[s];

assigns ch the character at index (i=2) of s and then increments i(i=3). Key: s[i] == i[s].

ch= ++i[s];

increments the ASCII value at index (i=3) of s and assigns it to ch. Key : [] has higher precedence than prefix ++

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The key to understanding this is that in C, the following are equivalent:

x[y]
*(x+y)

and also that prefix ++ has lower precedence than [].

A table of the ASCII character set will also come in handy.

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let me explain the output correct me where I am wrong,initially i=0 so s[++i] will give me s[1] which is h.After that i=1,s[i++] will give me s[1] which is h and increment i to 2.Then i++[s] will give s[2] which is e and increment i to 3.Am I right ? And how are we getting ! as output for the last ? –  dark_shadow Apr 9 '12 at 18:10
    
Also notice that ++i[s]==++(i[s]); i.e. Get the value of i[s]==*(i+s) then increment. This explain the "!". Different from i++[s] == *((i++) + s) –  rbelli Apr 9 '12 at 18:10

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