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can you tell me please if the next code can work and what is the meaning of it? I'm talking about the line: if((a=b=c)) st - a struct that was defined.

st* a;
st* b;
st* c;
. // build the struct c correctly with malloc etc
if((a=b=c)) - the line

Is there a double assignment of the struct c into a and b (shallow copy ?)

Thank you

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Please don't write unreadable code for the sake of it. A better way to write this would be: a=c; b=c; if(c != NULL). – Lundin Apr 25 '14 at 8:53
Yes, but I found this code and I did not understand it. Thank you – user3479031 Apr 25 '14 at 9:06

2 Answers 2

b=c returns the value of b (after c is assigned), which is assigned to a. They're pointers so it's only copying the 4 or 8 bytes for that, not the struct.

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The whole expression evaluates in the end to the value c had prior to the expression, which is true, if the pointer was not 0 in the first place. – meandbug Apr 25 '14 at 7:52
@meandbug Sure, but the assignments happen nevertheless. – glglgl Apr 25 '14 at 7:53
Thank you all ! – user3479031 Apr 25 '14 at 7:56

The mean of this code line is rather simple but overall I would say useless (no offense of this).

What happens is:

b (as pointer) points to the same memory location of c, a (as pointer) points to the same memory location of b (and hence c)

if c was null, then it would return false.

I would say that it is like saying

if (c != 0)

in terms of logical condition with the addition of the assignment of the pointers a and b.

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Thank you, it can be used when I want to assign the head and the tail of a link list for the first time and do something while c!=0 – user3479031 Apr 25 '14 at 8:43

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