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I know how to use typedef in order to define a new type (label).

For instance, typedef unsigned char int8 means you can use "int8" to declare variables of type unsigned char.

However, I can't understand the meaning of the following statment:

typedef unsigned char array[10]

Does that mean array is of type unsigned char[10]?

In other part of code, this type was used as a function argument:

int fct_foo(array* arr)

Is there anyone who is familiar with this statement?

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Your int8 documents the intent - you will be storing small numbers, rather than a character. Also, typically the convention is uint8_t as declared in the C99 types. –  user195488 May 22 '13 at 17:52

2 Answers 2

up vote 10 down vote accepted

Does that mean array is of type unsigned char[10]?

Replace "of" with "another name for the" and you have a 100% correct statement. A typedef introduces a new name for a type.

typedef unsigned char array[10];

declares array as another name for the type unsigned char[10], array of 10 unsigned char.

int fct_foo(array* arr)

says fct_foo is a function that takes a pointer to an array of 10 unsigned char as an argument and returns an int.

Without the typedef, that would be written as

int fct_foo(unsigned char (*arr)[10])
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And it means that within the function fct_foo, the array will have to be used with (*arr)[i], for example, to get at the ith character in the array. –  Jonathan Leffler May 22 '13 at 18:30

What that does is it makes a datatype called array that is a fixed length array of 10 unsigned char objects in size.

Here is a similar SO question that was asking how to do a fixed length array and that typedef format is explained in more depth.

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