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I always believed that in C :

int a[5][3]={1,2,3,4,5,6,7,8,9,10,11,12,13,14,15};

refers to an array of arrays and in memory fifteen contiguous blocks are stored but a[0] is the pointer to a[0][0] and a[1] is the pointer to a[1][0] and so on. So I thought it to be similar to be an array of pointers. What is the difference between them?

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similar questions ? –  Grijesh Chauhan Jul 31 '13 at 8:22
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2 Answers

Arrays and pointers have a very curious and intimate relationship in C (and C++). In most contexts, if you have something that is an 'array of X', then it will be silently converted to a 'pointer to X' that points at the first element of the array.

Your belief that

int a[5][3];

creates an array of arrays is entirely correct. According to the declaration, it is an array of 5 arrays of 3 ints and it occupies 15 contiguous integers in memory.

Where you go wrong is in believing a[0] to be a pointer. In fact, a[0] is the first sub-array of a and is itself an array of 3 ints. However, due to the curious relationship between pointers and arrays, the expression a[0] is almost always converted to a pointer.

One of the major differences between an array of arrays and an array of pointers is in where the array elements reside. An array of arrays will always occupy a contiguous block of memory, but the pointers in an array of pointers will each refer to their own (often disjoint) blocks of memory.

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If you would add a note " and it occupies 15 contiguous integers in memory" to say "in the C implementation" would help. –  Jimmy Hoffa Jul 23 '13 at 15:16
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Also an array of pointers (to arrays) could also describe a jagged array, as opposed to a 2d array as user1369975 is describing it. –  TimG Jul 23 '13 at 16:35
    
@JimmyHoffa: In what way would that addition help? –  Bart van Ingen Schenau Jul 23 '13 at 16:38
    
@BartvanIngenSchenau in many languages saying an array occupies contiguous space in memory is inaccurate, you're speaking about C so it's accurate here but if you would just qualify that statement as being about C it would make sure no poor green Ruby or PHP developer in the future misconstrues your statement –  Jimmy Hoffa Jul 23 '13 at 16:43
    
@JimmyHoffa: The question is clearly tagged as a C question (and arguably belongs on SO). If a PHP or Ruby developer gets an incorrect impression because they did not pay attention to the tags, I consider that to be their problem. As a side note, I nearly downvoted your answer, because arrays in C are definitely not a high-level construct. –  Bart van Ingen Schenau Jul 23 '13 at 17:01
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Arrays and pointers loosely equate to the same thing. When you declare an array N long, you're allocating a block of memory N long (times the size of the value type) and returning the pointer to the first element. Expressions like arr[2] then retrieve a value from that memory by counting forward from that first pointer. If you have an array of arrays, then all you're storing in the first one (in your a array) is pointers to where the other arrays are stored. (That said, I believe they should be in a contiguous block as you said)

Does that help the explanation somewhat?

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No pointers != arrays. Arrays aren't first class and decay to pointers when used in expressions. This difference is exposed with extren declarations and sizeof –  jozefg Jul 23 '13 at 14:22
    
Join The Whiteboard chat if you want to understand what happened with your answer –  Jimmy Hoffa Jul 23 '13 at 17:58
    
@Katana314: The downvotes you got over at P.SE were most likely triggered by your first sentence. Equating pointers to arrays is one of the hardest misconceptions in C to get rid of. If you think of pointers and arrays as the same, then you will be bitten by hard to understand errors. –  Bart van Ingen Schenau Jul 25 '13 at 11:30
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