I am following the book "C Primer Plus" and encounter a problem to understand the regions of memory. In the book, it states:

Typically, a program uses different regions of memory for static objects, automatic objects, and dynamically allocated objects. Listing 12.15 illustrates this point.

// where.c -- where's the memory?

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

int static_store = 30;
const char * pcg = "String Literal";
int main(void)
{
    int auto_store = 40;
    char auto_string[] = "Auto char Array";
    int *pi;
    char *pcl;

    pi = (int *) malloc(sizeof(int));
    *pi = 35;
    pcl = (char *) malloc(strlen("Dynamic String") + 1);
    strcpy(pcl, "Dynamic String");

    printf("static_store: %d at %p\n", static_store, &static_store);
    printf("  auto_store: %d at %p\n", auto_store, &auto_store);
    printf("         *pi: %d at %p\n", *pi, pi);
    printf("  %s at %p\n", pcg, pcg);
    printf(" %s at %p\n", auto_string, auto_string);
    printf("  %s at %p\n", pcl, pcl);
    printf("   %s at %p\n", "Quoted String", "Quoted String");
    free(pi);
    free(pcl);

    return 0;
}

Run the code and get:

static_store: 30 at 0x10a621040
  auto_store: 40 at 0x7ffee55df768
         *pi: 35 at 0x7fbf1d402ac0
  String Literal at 0x10a620f00
 Auto char Array at 0x7ffee55df770
  Dynamic String at 0x7fbf1d402ad0
   Quoted String at 0x10a620f9b

the book's conclusion:

As you can see, static data, including string literals occupies one region, automatic data a second region, and dynamically allocated data a third region (often called a memory heap or free store).

I could figure out they are of different address. How could I assure that they are of different regions?

  • 2
    You can see that static_store, String Literal and Quoted String are roughly in the same "memory region" (0x10a62xxx). So are auto_store and Auto char Array (0x7ffee55df). The rest (dynamic allocation) is still in another "region" (0x7fbf1d40). – Jabberwocky Oct 17 at 13:15
up vote 17 down vote accepted

Different regions have very different addresses. If they were in the same region, they would have similar addresses. Better example, where we allocate 2 objects in each region:

#include <stdio.h>
#include <stdlib.h>

int main (void)
{
  int stack1;
  int stack2;
  static int bss1;
  static int bss2;
  static int data1=1;
  static int data2=1;
  int* heap1 = malloc(1);
  int* heap2 = malloc(1);  
  char* rodata1 = "hello";
  char* rodata2 = "world";

  printf(".stack\t%p %p\n",  &stack1,  &stack2);
  printf(".bss\t%p %p\n",    &bss1,    &bss2);
  printf(".data\t%p %p\n",   &data1,   &data2);
  printf(".heap\t%p %p\n",   heap1,    heap2);
  printf(".rodata\t%p %p\n", rodata1,  rodata2);

  free(heap1);
  free(heap2);
}

Output (for example):

.stack  000000000022FE2C 000000000022FE28
.bss    0000000000407030 0000000000407034
.data   0000000000403010 0000000000403014
.heap   0000000000477C50 0000000000477C70
.rodata 0000000000404000 0000000000404006

As you can see the two variables in the same segment have nearly identical addresses, the only difference being the size of the objects (and possibly some room for alignment). While they have very different addresses compared to variables on the other rows.

  • 1
    (String literals don't necessarily end up in .rodata, but you get the idea) – Lundin Oct 17 at 13:22
  • Why are you showing two static int variables (bss1 and data1) in the same context (inside main)? The difference seems to be that one is initialised and the other one isn't, but does that matter? Maybe you wanted to put one of them outside of main? – Fabio Turati Oct 17 at 22:22
  • @FabioTurati, with some compilers, it matters, with others, it doesn't. – Mark Oct 17 at 23:04
  • @FabioTurati Because I wanted to illustrate that bss and data end up in quite different address spaces, as shown by the output example. Yes, initialization matters. This might be helpful in order to understand the different sections (it was written for embedded systems for applies universally, except there's no true NVM on a PC). – Lundin Oct 18 at 6:32
  • @Mark It has nothing to do with the compiler but rather linker format standards and the "CRT" executed before main() is called. – Lundin Oct 18 at 6:33

The C standard states that an object can have one of 4 different storage durations. These are:

  • static
  • automatic
  • allocated
  • thread

The code above addresses the first 3 of these.

A static object is is declared either at file scope or at local scope with the static modifier. String literals are also static objects.

An automatic object, typically referred to as a local variable, it declared within a function or an enclosing scope.

An allocated object is one whose memory is returned by an allocation function such as malloc.

In practice, compilers will typically place each of these object types in a different area of memory. Static objects are typically placed in the data section of an executable, automatic (read: local) objects are typically stored on the stack, and allocated objects are typically stored on the heap.

String literals in particular are static objects, and are typically placed in a special part of the data section marked read-only.

These regions are typically in different distinct regions of memory, however they are not required to be. So while in practice the addresses of objects in each of these regions will be noticeably different, they aren't required to be.

So you don't really need to "assure" that different types of variables are in different regions. The compiler takes care of that for you depending on how you define them.

What might help a bit to get the actual sections allocated for the program is the nm command, there you could e.g. see the static_store offset.

static_store: 30 at 0x600b00 ==> 0000000000600b00 D static_store

See it live on coliru: http://coliru.stacked-crooked.com/a/1b45e01f508ec7b7

Note the attached nm command: gcc main.cpp && ./a.out && nm a.out

However, you have to keep in mind that you're typically on a system with MMU thus having virtual memory addresses mapped to real memory.

Find more infos e.g. on https://www.embeddedrelated.com/showarticle/900.php

I want to try and explain this in a more simple way.

0x... is a hexadecimal string that represents a string of binary bits. You can think of it as representing a number, but shorthand because you don't need to know the number, just it's relative value to other similarly coded numbers. So this means that the "address value" is actually just a number.

Why use numbers to represent memory locations? Because for all intents and purposes, memory is just a really large byte array, who's values can be read by index. C logically (not physically) divides this memory array into different sections for efficient storage. So the closer 2 address locations are in memory, the closer they are together in that byte array representation.

The address range available to any application is determined at runtime, and is not actually any part of specific memory spaces. So in all fairness, there is no why to know for sure that certain items are in a certain memory region. Just that it is highly statistically implausible for 2 objects close together in memory to be in different regions.

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