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This is one of the only moments in Ruby I would call actual WTFs. You have to use unless defined? var var = :value end With the postfix syntax, the interpreter will internally nil-ify the value so it can reason about the variable, thus making it defined before the check is done: # Doesn't print anything unless defined?(foo) and (p(foo) or true) foo ...


Local variables are defined (as nil) at the point they are parsed. Definition of var2 precedes the condition. That makes var2 defined even when if the assignment is not executed. Then, the condition evaluates that var2 is defined, which retains the value nil for var2.


No, braces do not act as a stack frame.b is also an automatic variable for main method & will be treated same as a but with additional scoping So,it going to be in the same stack frame with the main method in the same stack of memory.


I think it would be useful to differentiate lifetime and scope: Lifetime and scope are often confused because of the strong connection between the lifetime and scope of a local variable. The most succinct way to put it is that the contents of a local variable are guaranteed to be alive at least as long as the current "point of execution" is inside the ...


I. About local variables Local variables are allocated on the Stack. The Stack is based on a LIFO (Last-In-First-Out) pattern. So variables are destroyed and deallocated in the reverse order of allocation and construction. II. About your example Your function main() is called: x1 is allocated and constructed on the Stack, x2 is allocated and ...


You should get acquainted with the notions: Local variables, scope, and duration Variables that are declared inside a function or block are local variables. They can be used only by statements that are inside that function or block of code. Local variables are not known to functions outside their own.


Just make a little change in your code,use integer pointer.As below: #include <stdio.h> #include <conio.h> void main() { int i = 1; int *p = &i; //Address of i given to p(integer pointer) { int i = 2; printf("%d", i); printf("---->Desire value in inner loop i= %d<-----\n",*p); } ...


This all about the lexical scope here - int i = 1; { // inside this you can't access the outer i as they have same name so it will be shadowed by inner one int i = 2; printf("%d", i); // this will print the value of inner i } Similarly you can't access inner i outside these { } . If you want to print outer i you can just put a ...


C follows lexical scope. It means the name resolution of a variable is done depending on the location of the variable in the source code. The variable is resolved by searching its containing block, if that fails then searching the outer containing block.So, { int i=2; printf("%d",i); //this i is the one you defined just above, inside {} ...

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