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Hey I have something of this type

eph_t *a;

The type is eph_t as you can see. Its an array in C but I do not know the size of the array nor do I know what is the end element of the array. Is there a way, I can go through the whole array because I want to assign the values of every element in an array to something.

What can be my options to consider? If you could not understand something in the question just comment so that I can inform you.

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2  
That a is not an array, that is a pointer to eph_t. Nothing more (no memory block size information available), nothing less (you can use a pointer to point to an array or to a single item of the type, and use array indexing with any pointer). – hyde Aug 28 '13 at 10:46
1  
IMO interesting and related stuff: How does free know how much to free? – luk32 Aug 28 '13 at 12:26
up vote 7 down vote accepted

If you do not know the size of the array then it is unsafe to iterate over it. Any time that you attempt to read elements beyond the last one you will get undefined behaviour. There is nothing safe you can do unless you know the size of the array.

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1  
It's also possible to use a sentinel value, but that's tricky to handle correctly, too. – chrylis Aug 28 '13 at 10:28
    
@chrylis Not really difficult if you know he value of that sentinel. If you don't, you are lost. – glglgl Aug 28 '13 at 10:30
3  
@glglgl But then you have to remember to ensure that it's in place. Given the number of C string overrun bugs, it's apparently more difficult than it seems. – chrylis Aug 28 '13 at 10:31
1  
@chrylis That's right as well... One always things that it cannot be so hard, but apparently it is... – glglgl Aug 28 '13 at 10:35

As others have said, it is unsafe to iterate over an array when you do not know the end of the array. This is often worked around in the following way.

  1. If you have access to the array declaration (int a[10];) for example. you can use the sizeof operator to determine the array's size. Please note this WILL NOT WORK when passing a pointer to an array to a function.
  2. Functions that use an array will often take a direct size or some way to infer the size as extra parameters to the function (memset is a good example)
  3. The array may have a special terminator element (usually a NULL or 0 element at the end) when means you may not iterate beyond (C strings are good examples)

So if you are designing a function that takes an array as a parameter, please use the above patterns. If you are using a function that does not use one of the above pattern, report the problem to the library designer as a bug.

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A pointer in C is just an address. When used as an array, you have to figure out (by some other means) the length of the array.

A lot of libraries dealing with arrays have functions accepting both the pointer to the array and its size. For example qsort(3) wants a second nmemb argument giving the number of elements of the array base (first argument to qsort) to be sorted.

Alternatively, instead of passing just a pointer, you could use flexible array members (in C99) and pass (and return, when relevant) a pointer to a structure like

  struct eph_tuple_st {
     unsigned len;
     eph_t* ptrtab[];
  };

with the convention that the flexible array ptrtab field has len elements.

At last, as others suggested, you could use a sentinel value (i.e. a null word) to end the array. Generally I don't recommend that (risk of buffer overflow, time complexity to compute the actual size).

FWIW, recent C++ have std::dynarray (C++2014) and std::vector, and Ocaml has the Array module. You could switch to some more friendly programming language.

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can you tell me about any predefined function which determines the size of an array declared via pointers – Billa Aug 28 '13 at 10:27
    
@Billa None exists. This is a significant limitation in C, and all standard library functions that deal with arrays require you to provide the array's size. – chrylis Aug 28 '13 at 10:29
2  
No such function exist in standard C. Some malloc implementations may have a non-standard routine giving the size of a malloc-ed pointer. – Basile Starynkevitch Aug 28 '13 at 10:29
    
You may want to consider using a class instead of a struct if the length (and so also the pointer) is ever changed. It can lead to not obvious behaviour (see why). – Jonny Aug 28 '13 at 10:44
1  
Classes are only in C++, the OP tagged C not C++.... – Basile Starynkevitch Aug 28 '13 at 10:45

You can reserve the first element of array to store the size

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

typedef struct {
    int x, y;
    double z;
} eph_t;

static void temp(eph_t *a)
{
    size_t n;

    memcpy(&n, a - 1, sizeof(size_t)); /* get size (stored in a - 1) */
    printf("Count = %zu\n", n);
}

int main(void)
{
    const size_t n = 5;
    eph_t a[n + 1]; /* allocate space for 1 more element */

    memcpy(&a[0], &n, sizeof(size_t)); /* now the first element contains n */
    temp(a + 1); /* skip first element */
    return 0;
}
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