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#include "stdio.h"
#include "malloc.h"

int main()

{

    char*x=(char*)malloc(1024);
    *(x+2)=3; -----------------------------> Problem with big numbers 
    printf("\n%d",*(x+2));
    printf("\n%d",sizeof(long int));
    printf("\n %ld \n\n",(long int)sizeof(long int));
}

This works fine when I give small numbers in the line marked with an arrow (------->), but does not work for large values. I want to store big numbers. What should I do?

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Please post a code example of what you mean by a "big number". –  Oliver Charlesworth Sep 14 '11 at 16:42
    
#include<stdio.h> #include<malloc.h> int main() { charx=(char)malloc(1024); *(x+2)=319222; // -------- this wont work. It says overflow problem. printf("\n%d",*(x+2)); printf("\n%d",sizeof(long int)); printf("\n %ld \n\n",(long int)sizeof(long int)); } –  sai sindhu Sep 14 '11 at 16:44
    
What do you expect to happen? char is only guaranteed to hold values up to 127 (or 255). –  Kerrek SB Sep 14 '11 at 16:44
    
Sorry for messing it out here. I mean to say *(x+2)=319222 doesnot work. –  sai sindhu Sep 14 '11 at 16:45
1  
enable warnings: -Wall –  Karoly Horvath Sep 14 '11 at 16:45

3 Answers 3

You are allocating a char buffer. The elements of such an array is only guaranteed to hold small values, at most up to 255. If you want to store numeric values, use some numeric array instead (e.g. long or int, depending on how large the desired values actually are). E.g.

long* x = (long*)malloc(1024 * sizeof(long));
x[2] = 319222; // x[2] is equivalent to *(x+2)

Here you can check the limits for all scalar data types in C.

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malloc caster should programming in C++ not in C –  user411313 Sep 14 '11 at 20:09

Use a larger type, like an int or a long. In C, char is usually only an 8 bit quantity which will be limited to a valid range of +/- 128.

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Ya.. Exactly. I want to store large numbers in void * buffer but that does not allow me to do arithmetic operations like *(x+2) –  sai sindhu Sep 14 '11 at 16:49
    
And i have to do it void * buffer only –  sai sindhu Sep 14 '11 at 16:50

All the buffer allocation and pointer arithmetic is getting in the way of understanding. Essentially the issue is that char has a limited range, typically -127 to 128 or 0 to 255.

The simplest way to see your problem is with code like this:

char c = 256;//no good
int i = 256;//no problem

From what you have said in the comments, it sounds like you want to cast the char* to int* and write over the buffer that way. I hope you know what you are doing.

*(int*)x[2] = 666;
share|improve this answer
    
On which compiler does that not compile? gcc only warns about the first assignment. –  bitmask Sep 14 '11 at 16:56
    
@bitmask C really does let you get away with murder! –  David Heffernan Sep 14 '11 at 16:58
    
C is anarchy! That's the beauty of C. –  bitmask Sep 14 '11 at 17:06

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