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I know that the following two things are the same in c (because of offsets and arrays)

someArray[i]     //ith element of someArray
*(someArray + i) //ith element of someArray

However for structs, the same syntax doesn't seem to hold up very well...

someStruct[i]->*(someArray + j)   //compiler error
*(someStruct + i)->someArray[j]   //Also compiler error

Is there anyway to use the pointer/offset notation (the second one) to represent elements of a struct?

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4 Answers 4

up vote 5 down vote accepted

Assuming someStruct is an array of structs, and someArray is a struct member of array type, then either of these would be valid:

*(someStruct[i].someArray + j)

or

(*(someStruct + i)).someArray[j]

See e.g. http://ideone.com/UtLN2.

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Among other things, you are using the pointer resolution operator -> when you should probably be using the member reference operator .

Assuming someStruct[] is an array of structs (not pointers):

*(someStruct[i].someArray + j)
(*(someStruct + i)).someArray[j]
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From what I understood, I suppose that you want to represent fields of a structure through some pointer/offset arithmetic.

There's a standard macro, offsetof(type, field) in stddef.h which yields the offset of the field field inside the structure or union type type.

For example, suppose s is of type struct s*, and f is a field in struct s. Then *(s + offsetof(struct s, f)) is the same as s->f.

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This should work

*(someStruct[i]->someArray + j)

(*(someStruct + i))->someArray[j]

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