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in C# I would just do:

private long[] myMethodName()
{
    //etc
}

What is the equivalent in C?

This gives an error:

long[] readSeqFile(char *fileName)
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Correct me if I'm wrong, but wouldn't any long[] you create in the method be on the stack (and thus toast as soon as you return)? –  Dennis Meng Jul 18 '12 at 18:16

4 Answers 4

up vote 1 down vote accepted

Typically for C you would pass a pointer and length

// returns number of elements written
size_t myMethodName(long* dest, size_t len)
{
    //etc
}
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long *readSeqFile(char *filename);

You might want to make filename const:

long *readFileName(const char *const filename);

UPDATE: while this answers the original question, it's not very good C practise. If, as the poster says, he wants to read a list of integers from a file and get it back as an array of long, then the prototype is probably going to look something like this:

int readSeqFile(const char *const filename,long **longArray,size_t *const len);

and the implementation (in sketch form):

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

const size_t longArrayChunkSize=100;

int readSeqFile(const char *const filename,long **longArray, size_t *const len)
{
   FILE *fp;
   size_t nInts=0,curBufferLen;
   long tmp;

   fp=fopen(filename,"r");
   if(fp==NULL)
      return -1;

   *longArray=malloc(longArrayChunkSize*sizeof(long));
   if(*longArray==NULL)
      return -1;

   curBufferLen=longArrayChunkSize;

   // let's assume file is a list of integers, one per line
   while(read from file and !feof())
       {
       (scan line into tmp)
       longArray[nInts++]=tmp;
       if(nInts==curBufferLen)
          (realloc *longArray by longArrayChunkSize, increase curBufferLen)
       }

   *len=nInts;

   fclose(fp);

   return 0;
}

Call it like this: result=readSeqFile(filename,&longArray,&arrayLen); longArray is of type long* and it is the caller's responsibility to free it afterwards. The result is zero on success and -1 on error.

This is where you win with C++ and STL classes like vector<long> since you can just push_back() each long as it comes out of the file without having to worry about memeory management.

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Yes thanks. I will mark this as answer –  Matt Jul 18 '12 at 14:04
    
Who allocates the long*? Who deallocates? Typically in C, the caller would be responsible for data allocation and destruction. –  Josh Petitt Jul 18 '12 at 14:05
    
What I am trying to do is read in a file, populate a list of integers and return that to the caller. –  Matt Jul 18 '12 at 14:08
    
Sure Josh, but the question was how do you return an array of long as the return type of a function. That's how you do it. In cases like this the array would probably be statically declared inside the function. –  David G Jul 18 '12 at 14:08
    
@DavidG, sure but I don't know if the OP understands the C pattern for this. For a static array inside the function, you would most likely want to return a const long*. For Matt's follow-up, to populate a list of integers and return to caller, then the caller should probably pass a pointer to where to put the data. Look at memset or memcpy for the pattern. –  Josh Petitt Jul 18 '12 at 14:13

Nevermind.. I got it:

long *readSeqFile(char *fileName)

Thanks anyway

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1  
That is declared to return a pointer, not an array. Arrays and pointers are not the same thing. However, the formally right (and useless) answer is that in C and C++ it is impossible to declare a function that returns an object of built-in array type. Arrays are "non-returnable" in these languages. –  AndreyT Jul 18 '12 at 14:35

In C, functions cannot return array types; they can return pointers to arrays, such as

long (*readSeqFile(char *filename))[N]
{
  ...
}

the downside being that N must be a compile time constant if you're using a C89 or earlier compiler, or a C2011 compiler that doesn't support variable length arrays. You probably don't want to go this route if you don't know how big the array is supposed to be ahead of time.

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