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To the first O of the array?

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5 Answers 5

up vote 11 down vote accepted

Exactly. *p and p[0] are the same. Here are some neat features you want to know:

  • "Pointer notation" generally refers to using the 'dereference' (or 'indirection') operator
  • "Array notation" generally refers to using the brackets and offset value

You can represent an address in memory using either interchangeably:

  • *p is equivalent to p[0]
  • *(p+1) is equivalent to p[1], and more awesomely also equivalent to 1[p]

NOTE:

  • As noted in another response, the general form is that *(p+i) is equivalent to p[i]
  • Also, please don't use i[p]
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I don't think the syntax that allows '1[p]' is awsome. I think the language is confusing enough for beginners that we don't need to point out the dark corners of the language (they will be found as the person gets better). –  Loki Astari Jul 15 '10 at 18:29
    
I agree with you about the language being confusing, but the reason I consider this particular point "awesome" is that it implicitly gives us intriguing information about the language's specifications. I think understanding that array notation is simply pointer arithmetic is overlooked. If one knows about pointer arithmetic (commutative property holds) and realizes that the syntax allows for i[p]. Then one can gather that these two "notations" are in some ways the same to the compiler -- that's awesome! –  tjeezy Jul 15 '10 at 20:29
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+1 for a more than one sentence answer. -1.9 for mentioning the 1[p] abomination. net 0 (I rounded up). –  deft_code Jul 15 '10 at 22:57

Yes.

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Correct - *p is equivalent to p[0].

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p contains the address of the first O of the array.

Indexing happens like so:

p[i] = *(p+i); //note the pointer arithmetic
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*p is pointing to first element p[0].

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