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Is it sufficient to declare an instance of a structure-typed variable as volatile (if its fields are accessed in re-entrant code), or must one declare specific fields of the structure as volatile?

Phrased differently, what are the semantic differences (if any) between:

typdef struct {
  uint8_t bar;
} foo_t;

volatile foo_t foo_inst;

and

typedef struct{
  volatile uint8_t bar;
} foo_t;

foo_t foo_inst;

I recognize that declaring a pointer-typed variable as volatile (e.g. volatile uint8_t * foo) merely informs the compiler that the address pointed-to by foo may change, while making no statement about the values pointed to by foo. It is unclear to me whether an analogy holds for structure-typed variables.

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2 Answers 2

up vote 37 down vote accepted

In your example, the two are the same. But the issues revolve around pointers.

First off, volatile uint8_t *foo; does tell the compiler the memory being pointed to is volatile. If you want to mark the pointer itself as volatile, you would need to do uint8_t * volatile foo;

And that is where you get to the main differences between marking the struct as volatile vs marking individual fields. If you had:

typedef struct
{
    uint8_t *field;
} foo;

volatile foo f;

That would act like:

typedef struct
{
    uint8_t * volatile field;
} foo;

and not like:

typedef struct
{
    volatile uint8_t *field;
} foo;
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If the field were a uint8_t field[10], when you mark the structure as volatile is the underlying data marked as volatile or the "effective" pointer to field marked volatile? –  Mark Elliot Jan 11 '10 at 20:31
    
The underlying data is volatile. One thing to think about is that the 'effective' pointer is not modifiable (it's always the address of the first element) so volatile would have no meaning in regards to it. –  R Samuel Klatchko Jan 11 '10 at 20:38

if you declare a structure with volatile then all its members will also be volatile

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on a sidebar this is also true for const –  Alon Jan 11 '10 at 20:22

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