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Is there is a way to print the same physical address in these Program ( while using shared memory concept ) rather than printing different logical addresses...

The reason for me to print the same physical address :...

/*Its optional to read this, since I have provided lot of informations which is not to the core */

In my lab I got 2 programs one to store a string in a Physical memory via shared memory concept and the other program is to print the same string via accessing the shared memory.

PROGRAM 1:

#include<sys/types.h>
#include<string.h>
#include<sys/ipc.h>
#include<sys/shm.h>
#include<stdio.h>
main()
{
key_t key;
int shmid;
char* addr1;
key = ftok("/home/tamil/myc/pws.c",'T');
shmid = shmget(key,128*1024,IPC_CREAT|SHM_R|SHM_W);

addr1 = shmat(shmid,0,0);


printf("\nIPC SHARED MEMORY");
printf("\n SENDER ADDRESS");
printf("\nTHE ADDRESS IS %p",addr1);
printf("\nENTER THE MESSAGE:");
scanf("%s",addr1);
printf("\nMESSAGE STORED IN %p IS %s",addr1,addr1);

}

PROGRAM 2:
#include<sys/types.h>
#include<string.h>
#include<sys/ipc.h>
#include<sys/shm.h>
#include<stdio.h>

main()
{
 int shmid;
 char* addr1;
 key_t key;


key = ftok("/home/tamil/myc/pws.c",'T');
shmid = shmget(key,128*1024,SHM_R|SHM_W);

addr1 = shmat(shmid,0,0);


printf("\nIPC SHARED MEMORY");
printf("\n SENDER ADDRESS");
printf("\nTHE ADDRESSS IS %p",addr1);
printf("\nMESSAGE STORED IN %p IS %s",addr1,addr1);

}

  output:
    tamil@ubuntu:~/myc$ cc shmget.c
    tamil@ubuntu:~/myc$ ./a.out

    IPC SHARED MEMORY
     SENDER ADDRESS
    THE ADDRESS IS 0xb786c000
    ENTER THE MESSAGE:helloworld

    MESSAGE STORED IN 0xb786c000 IS helloworld
    tamil@ubuntu:~/myc$ cc shmget2.c
    tamil@ubuntu:~/myc$ ./a.out

    IPC SHARED MEMORY
     SENDER ADDRESS
    THE ADDRESSS IS 0xb7706000
    MESSAGE STORED IN 0xb7706000 IS helloworld
    tamil@ubuntu:~/myc$ 

Here these programs are printing the 2 different logical address. But ( to satisfy the college professor ) is there is a way to print the same physical address? Please help..

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1  
Under most OS, the user programs have no idea what physical memory is :) –  Armen Tsirunyan Mar 13 '11 at 17:36
1  
@Muthu: Yes, sir, yes, you are :) –  Armen Tsirunyan Mar 13 '11 at 17:41
1  
@Armen Tsirunyan: Sir, I am learning form you. So I am calling you as sir. But why are you calling me as sir? :)--- –  Muthu Ganapathy Nathan Mar 13 '11 at 17:43
2  
@Muthu: Because "sir" is a bit too formal for here. He was being humorous. :) –  cHao Mar 13 '11 at 17:51
1  
@Muthu, sar (correct pronunciation), you are learning but others are earning (earning points) so it is even steven –  necromancer Mar 13 '11 at 22:10

1 Answer 1

up vote 2 down vote accepted
  • Your programs are most likely already doing exactly what your professor asked you to do.
  • You are totally not understanding the concept of physical vs. virtual addresses. On any operating system that uses virtual memory, a regular application (as opposed to the OS itself) can not know any physical addresses at all.
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