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I create a char array, and I assume the char array is empty, if I want to check what the value of the first element in the array is (arr[0]) what would be the result of this expression?

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closed as not a real question by Wooble, George Stocker Oct 8 '12 at 4:13

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What happened when you tried? –  Wooble Oct 5 '12 at 16:23
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'I assume the char array is empty' -- What do you mean by this? –  Jim Balter Oct 5 '12 at 16:30
    
Also, what do you mean by 'I initialize a char array'? If you initialized it, then it will have the value of the initializer, but I suspect that you don't really mean "initialize". You could resolve some questions (and maybe avoid the atrociously bad answers below) but posting your actual code. –  Jim Balter Oct 5 '12 at 16:36
    
You need to add more detail to your original post, like the result of printing out the value, and what you expected. What languages did you study before? I am asking this, because I'm convinced with all the Python, Perl, Ruby, and Scala knowledge out there, some folks learning C may think something special happens when you test for a value in an array –  octopusgrabbus Oct 5 '12 at 16:40
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Downvote because @user1723575 could easily have answered this question himself by trying it or a quick google search (or stack overflow search for that matter). I don't see why there are 5 answers to this trivial question. –  jforberg Oct 5 '12 at 16:42
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4 Answers 4

It depends on where and how the array is declared.

If the array is declared at file scope (outside of any function), or is declared static, and does not have an explicit initializer, then the contents of the array will be initialized to 0.

If the array is declared at block scope (within a function or block) and is not declared static, and does not have an explicit initializer, then the contents of the array are indeterminate (essentially, garbage values, some of which may be trap representations).

If the array has been explicitly initialized, then it contains whatever was in the initializer.

EDIT

In response to the comments below, note that you shouldn't rely on implicit initialization for block-scope variables. If you need a block-scope array to be zeroed out on creation, use an initializer:

char foo[N] = {0};

When there are fewer elements in the initializer than there are in the array, elements in the array corresponding to elements in the initializer will be set to the value specified; all remaining entries will be implicitly initialized as if they were declared static.

In the example above, this means that the first element of foo is explicitly set to 0, while all the remaining elements are implicitly set to 0.

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In any case, it's bad form to rely on it. Variables which must be zero should be initialised to zero, explicitly. –  jforberg Oct 5 '12 at 16:47
    
@John Bode: what you're saying is all factual - I'm just afraid the OP's takeaway might be "Oh - I should make all my variables static, so I don't have to initialize them." A better answer might have touched (however briefly) on issues of "definition" vs. "declaration", or why a variable should be automatic vs. static vs. allocated from the heap. I agree with jforberg. IMHO... –  paulsm4 Oct 5 '12 at 19:40
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when initiate array. your are allocating a static memory. and then you will get the values of allocated memory so it's random values

if you want set the whole array to 0 then (According to Hunter McMillen Remark)

char arr[size] = { 0 }

or use memset() function

memset(arr,0,sizeof_your_arr);
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You can also do: char arr[size] = { 0 } –  Hunter McMillen Oct 5 '12 at 16:27
    
-1 The initializer for static variables is defined. –  Jim Balter Oct 5 '12 at 16:27
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If it's an auto variable, it will be filled with junk unless you explicitly initialize it, so there is no default value. arr[0] will likely contain a seemingly random value until explicitly changed to contain something else.

Of course, if you initialized the array (meaning that you filled the array with initial values explicitly using something like memset() or a for loop or a function call or whatever other means), you'll get exactly what you expect: the value with which you initialized it.

Do note though the difference between declaration and initialization.

void f(void) {
    int x;  // (1)
    x = 10; // (2)
}

At (1), you're declaring an auto integer variable. It has an undefined value right now (junk). At (2), you're initializing the variable. It now has the value of 10.

Of course, declaration and initialization can both be done at once:

void f(void) {
    int x = 10;
}

The same thing is true for arrays:

void f(void) {
    int x[2];  // x contains 2 junk values, so x[0] == junk
    x[0] = 1;  // x contains { 1, junk },   so x[0] == 1
    x[1] = 2;  // x contains { 1, 2 },      so x[0] == 1
}

or, to declare and initialize it:

void f(void) {
    int x[2] = { 1, 2 };
}
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Never expect any variable to have any certain value when you first initialize it unless you specify it explicitly. It will be filled with random stuff unless you set it yourself.

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1  
-1 This false if the variable is static. –  Jim Balter Oct 5 '12 at 16:26
    
I compared its value with '\0' ex: arr[0]=='\0' and it turns out to be true, I assume this is because that space in memory is really empty but in the case that it has something else I would be wrong, right? –  user1723575 Oct 5 '12 at 16:34
    
Yes, you never really know what may or may not already be there. –  zsnow Oct 5 '12 at 17:33
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