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Please look at the below code snippet and let me know how the out comes out as 1 2 .

int[] a = { 1, 2, 3, 4 };
int[] b = { 2, 3, 1, 0 };
System.out.println( a [ (a = b)[3] ] );
System.out.println(a[0]);

Actual answer 1 2

Thanks

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What was your intension? Are you sure that you want to assign b to a (a=b), or did you want to compare anything (==)? –  mrab Mar 22 '12 at 9:31
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Whatever his intention is, this is an interesting result. –  enobayram Mar 22 '12 at 9:34
    
This is not production code :), Its more learning code ... I am just trying to wrap my head around the order of execution and I agree it look crap :) –  Sudarshan Mar 22 '12 at 9:36
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@enobayram - This is the result I would expect. He first assignes b to a, then prints the value of index 3 and finally the value of index 0. –  mrab Mar 22 '12 at 9:38
    
@Sudarshan just look at the resulting bytecode –  scibuff Mar 22 '12 at 9:41
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3 Answers

up vote 5 down vote accepted

I'll try to explain:

a [ (a = b)[3] ] will be executed in the following order:

  1. a [...] - the array a will be read and the reference is stored for that
  2. (a = b) - the variable a is set to reference array b
  3. (a=b)[3] - the 4th element of array b is read (because of step 2) , the value is 0
  4. a [ (a = b)[3] ] - this is now equal to a[0] (because of steps 1 and 3), the value is 1

a[0] now yields 2 since a references array b (because of step 2) and the first element in that array is 2.

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Seriously, what is the purpose of this? Why would you ever wanna do something that makes the code so unreadable. What would you expect the outcome to be?

The result of System.out.println( a [ (a = b)[3] ] ); has to do with the order in which things are pushed to the evaluation stack ... e.g.

  1. reference to a
  2. change reference stored in a to that stored in b
  3. evaluated b[3] => 0
  4. print index 0 of the array to which reference was pushed in 1.), i.e. the original a

so it prints the element at 0 of the original a array

System.out.println(a[0]); is then simply b[0]

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b[3] is 0 (fourth element), that's why 1 is printed, it's a[0]. However, it's really strange that the original a is still evaluated in step 4, don't know if it's part of the specs... –  Aurélien Ribon Mar 22 '12 at 9:37
    
Yup thanks :), look at my above comment to know why i wrote such a question in the first place :) –  Sudarshan Mar 22 '12 at 9:39
    
no it is not strange at all, if you read the bytecode you'll see in which order things are pushed and popped from the stack. Anyways, it just server him right to get the unexpected result when doing stupid things such as a[ (a=b)[3] ] –  scibuff Mar 22 '12 at 9:40
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First two lines initialize your arrays. First sysout assigns b to a then prints a[3], ie. your a is now having values {2,3,1,0}. Second sysout prints a[0].

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