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This might be a simple question but I've never come across something like it. Let me start by saying I am working in standard C in a GCC compiler and this is for an embedded system.

I have a structure that holds an averaging array, running sum, zero offset, scale factor, divisor factor, and pointers to the averaging array. Basically I declared this:

typedef struct  tag_avgAry {
    int array[AVG_ARRY_LEN];
    int *start;
    int *current;
    int *end;
    long sum;
    int avg;
    int factor;
    int zero;
    int value;
    unsigned char scale;
} avgAry;

So my issue is this. I need to pass a structure created with this typedef and a data variable to a function that handles updating the running average and the array table with the new data. I already have a function declared:

 void processArray(int data, avgAry array)

Now I know I need to change array to *array so that I'm actually modifying the structure I'm passing and not just a copy but how do I then handle the pointers that are part of the structure. i.e. if one of my stucts is called phA then to store the number 8 in the current element of the array in the structure I would write:

*phA.current++ = 8;

And would then check the "current" pointer against the "start" and "end" pointers and reset it if needed... But if I do it through calling the processArray function as follows...

processArray(8,(avgAry *)(&phA));

how do I reference the pointers in the structure because my understanding is that to access, lets say, the sum element of phA in the function I would write:

*array.sum = data;

But would I write something like this if I wanted to access the pointer current?

*(*array.current)++ = data;

I'm sorry, its just been a long time since I've had to get this in depth with pointers and structures... Been spending too much time doing ASM I guess.

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2 Answers 2

up vote 0 down vote accepted

It should be *(*array).current but you could just use *array->current.

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The idiomatic way to access the array element would be the following

array[0]->current += data;

The -> operator is short hand for (*theValue).theMember and is the preferred method for accessing pointer members. The [0] indexer syntax is the preferred method for accessing array elements. Using * directly on an array is acceptable though if you are doing pointer arithmetic

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This... Very much this! I was reading OP question and became mad before finishing it, thanks Jared for bringing sanity and calmness back to my mind. –  speeder Jan 30 '14 at 18:54
    
Ok. I think I understand that, but in my situation my incoming member is simply called array for clarity. It is not actually an array but a structure that contains several variables, pointers, and one integer array as member of the structure. So would I still do it the same way just leave off the [0]? –  balmerjd Jan 30 '14 at 18:58
    
@user3221422 will have to know the exact type of array to answer that –  JaredPar Jan 30 '14 at 19:00

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