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I am trying to see to get around pointer to pointers. I am confused with this

int syntax_error(int num) {
   cout << num << endl;
   static char *err[] = {
        "Cannot open\n",
        "I can open\n",
        "Thank you\n"

    printf("%s", err[num]);

    cout<<"&err[num][1]"<<" "<<&err[num][1]<<endl;
    cout<<"&err[num]"<<" "<<&err[num]<<endl;
    cout<<"err[num][1]"<<" "<<err[num][1]<<endl;
    cout<<"*err[num]"<<" "<<*err[num]<<endl;

    return 0;

Say num = 3. Then the following outputs were produced

   Thank you
   &err[num][1] hank you
   &err[num] 0x8049ca4
   err[num][1] h
   *err[num] T

I read that the & operator refers to the address of the pointer to which it refers to. Here should it not return the address of err[num][1] rather than what is stored from there till end. On the other hand, &[num] is returning the address. I am confused here. It would be greatly appreciated if someone could help.

Question re edited: & operator should refer to the address. So &err[num][1] should return an address. Here it gave the string starting from err[3][1]. On the other hand &err[num] returns an address. So why this mix up

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painful to read – apartridge Jul 17 '13 at 1:23
Please reframe your question ! – AbKDs Jul 17 '13 at 1:28
Actually, when num is 2, printf("%s", err[num]); will print Sorry not Thank you. – Annie Kim Jul 17 '13 at 1:33
@AnnieKim I am sorry. I meant num = 3 – Vaidyanathan Jul 17 '13 at 14:47

2 Answers 2

up vote 3 down vote accepted

[] is not a standalone operator, it is defined as follows:

a[b] == *(a + b)

If you rewrite the expressions you will quickly start to understand what is happening:

&err[num][1] == &(*(*(err + num) + 1)) == *(err + num) + 1

This is char * pointer pointing to the second character in the specific string.

&err[num] == &(*(err + num)) == err + num

This is char ** pointer pointing into the outer array.

cout knows how to print a C string char* but not a char** pointer, so it just prints the pointer value.

Note: it's generally a bad idea to mix C and C++ I/O.

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Thanks alot. just a question more. So how will I output the char ** pointer which points into the outer array? – Vaidyanathan Jul 17 '13 at 2:23
@Vaidyanathan Well, that depends on what you want to output. There is no reasonable semantic for printing a char ** pointer. – Let_Me_Be Jul 17 '13 at 2:43
Thanks a lot :) – Vaidyanathan Jul 20 '13 at 23:40

When you pass a char * to op<<, it assumes it's a C-style string and acts accordingly. The address of the second character in a C-style string is no different to the address of the first, in terms of its backing type - it's still a char *.

If you really want the pointer itself, cast it to a void * so that it doesn't know what the underlying type is.

For example:

#include <iostream>
int main (void) {
    const char *name = "=paxdiablo";
    std::cout << name << ' ' << (void*)name << '\n';
    std::cout << &name[1] << "  " << (void*)&(name[1]) << '\n';
    return 0;


=paxdiablo 0x8048880
paxdiablo  0x8048881
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