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What is the correct way of defining the array in c? The following construction doesn't work, compiler gives an error "Expected Expression":

#include <iostream>
#include <unistd.h>

#define Lookup[9][] = {"00", "01", "02", "03", "04", "05", "06", "07", "08"}

closed as unclear what you're asking by Paul R, glglgl, Yu Hao, Kerrek SB, Tom Fenech Apr 2 '14 at 9:07

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  • 3
    Your example in C++, not in plain C... – gavenkoa Feb 9 '12 at 9:38
  • 6
    Ugh! Don't #define data! – pmg Feb 9 '12 at 9:39
2

The correct way to define and initialize your array is

char Lookup[][3] = {"00", "01", "02", "03", "04", "05", "06", "07", "08"};

Each element of the array Lookup is itself another array of 3 bytes. Counting with the zero terminator, that's enough space for strings 2 chars long.

The number of elements in the array is available with the expression sizeof Lookup / sizeof *Lookup, as in

int k;
for (k = 0; k < sizeof Lookup / sizeof *Lookup; k++) {
    printf("element at index %d: %s\n", k, Lookup[k]);
}
  • Is there a way to get rid of zero terminator? – Jake Badlands Feb 9 '12 at 9:53
  • (I need to make a lookup table for a really fast algorithm, and with zero terminator it will be more complicated and slow) – Jake Badlands Feb 9 '12 at 9:55
  • 1
    If you define the innermost arrays with just 2 bytes, the resulting elements are no longer strings, but it's possible. Not being strings, I like to make it somewhat clearer by using unsigned char (or signed char) rather than plain char: unsigned char Lookup[][2] = {"00", "01", "02", "03", "04", "05", "06", "07", "08"};. Remember the elements are no longer strings. The use of "%s" in printf is an error (as is the use of many functions in <string.h>). – pmg Feb 9 '12 at 9:58
  • Thank you very much! – Jake Badlands Feb 9 '12 at 10:00
2

To define an array of int, for example:

int int_array[10];

To define and initialise an array of int:

int int_array[] = { 1, 2, 3, 4, 5 };

Specifying the number of elements is optional if you initialise the array.

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