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If I have the following:

char test[10] = "#";

Is test[1] through test[9] guaranteed to be \0? Or is only test[1] guaranteed to be \0?

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1 Answer 1

up vote 35 down vote accepted

This definition

char test[10] = "#";

is equivalent to

char test[10] = { '#', '\0' };

That is two elements of the array are initialized explicitly by the initializers. All other elements of the array will be zero initialized that is implicitly they will be set tto '\0'

According to the C++ Standard (section 8.5.2 Character arrays)

3 If there are fewer initializers than there are array elements, each element not explicitly initialized shall be zero-initialized (8.5).

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Thanks, do you have the line from the specification that states this? –  Mark Ingram Aug 18 '14 at 11:26
    
@ark Ingram See my updated post. –  Vlad from Moscow Aug 18 '14 at 11:32

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