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How do I fwrite a struct containing an array

#include <iostream>
#include <cstdio>

typedef struct {
  int ref; 
  double* ary;
} refAry;

void fillit(double *a,int len){
  for (int i=0;i<len;i++) a[i]=i;
}

int main(){
  refAry a;
  a.ref =10;
  a.ary = new double[10];
  fillit(a.ary,10);
  FILE *of;
  if(NULL==(of=fopen("test.bin","w")))
     perror("Error opening file");
  fwrite(&a,sizeof(refAry),1,of);

  fclose(of);
  return 0;
}

The filesize of test.bin is 16 bytes, which I guess is (4+8) (int + double*). The filesize should be 4+10*8 (im on 64bit)

~$ cat test.bin |wc -c
16
~$ od -I test.bin 
0000000                   10             29425680
0000020
~$ od -fD test.bin -j4
0000004   0,000000e+00   7,089709e-38   0,000000e+00
                     0       29425680              0
0000020

thanks

share|improve this question
    
You seem to be writing pure C but then what's with the inclusion of <iostream>? –  Manuel Feb 8 '10 at 18:00
    
new isn't in C where I come from... –  Carl Norum Feb 8 '10 at 18:02
    
And new without a matching delete? –  Manuel Feb 8 '10 at 18:12
    
Well that's still C++. Bad C++, but C++ nonetheless. –  Carl Norum Feb 8 '10 at 18:23
    
Actually the file size should be (8 + 10 * 8) not (4 + 10 * 8), assuming you correct the code to write the array as represented in memory. Since you're on a 64 bit platform the size of a pointer is 64 bits. Your struct members will be aligned on an 8 byte boundary because the size your pointer is larger than the size of your int. This means that there will be 4 bytes of padding between your int member and the pointer, which is why the size of your struct is 16, not 12. –  Void Feb 8 '10 at 19:31

4 Answers 4

up vote 2 down vote accepted

You are writing the pointer (a memory address) into the file, which is not what you want. You want to write the content of the block of memory referenced by the pointer (the array). This can't be done with a single call to fwrite. I suggest you define a new function:

void write_my_struct(FILE * pf, refAry * x)
{
    fwrite(&x->ref, sizeof(x->ref), 1, pf);
    fwrite(x->ary, sizeof(x->ary[0]), x->ref, pf);
}

You'll need a similar substitute for fread.

share|improve this answer

Your structure doesn't actually contain an array, it contains a pointer. If you really want variable-length structures, you'll need to keep a size field in there so that you know how big it is. The C FAQ has an example of exactly what it looks you're trying to do. In your case it might look something like this:

typedef struct {
    int ref; 
    double ary[1];
} refAry;

#define SIZE_OF_REFARY (sizeof(refAry) - sizeof(double))

To allocate:

size_t alloc_size = SIZE_OF_REFARY + 10*sizeof(double);
refAry *a = malloc(alloc_size);
a->ref = 10;

To write:

fwrite(a, SIZEP_OF-REFARY + a->ref * sizeof(double), 1, file);
share|improve this answer
    
Check his code, ref acts as the size field. BTW, this code is a total hack, I don't think it should be recommended. –  Manuel Feb 8 '10 at 18:54
    
Oh yeah, ok. I'll go clean that up. I'll go along with not recommended, but it's definitely popular; there's a lot of code out there that behaves this way. –  Carl Norum Feb 8 '10 at 19:11

Your structure contains a pointer, not an array of 10. the sizeof() picks that up.

You'll need something like fwrite(a.ary, sizeof(double), 10, of); in order to write the actual array

share|improve this answer

If the size of the array is always 10, then simply change your struct to:

typedef struct {
  int ref; 
  double ary[10];
} refAry;

You can then write this out with a single call to fwrite, using sizeof(refAry) for the size.

share|improve this answer
    
I guess he wants to have a dynamic array, otherwise he doesn't need to store the size (ref). –  Manuel Feb 8 '10 at 18:13

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