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I am very confused in the concept of returning address by $ra. Does it return the address of the current instruction being executed or the instruction to be executed next? For explanation please use the following code,

  1. Consider a code fragment that calls three functions func_A, func_B, and func_C. The Instruction 1 is located at address 1996. What would be loaded in register $ra when each of the three functions is called?
Instruction 1
Instruction 2
jal func_A
Instruction 3
jal func_B
Instruction 4
jal func_C
Instruction 5

Thanks in advance.

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I don't remember the mips arch but it's logical that the return address is the instruction to be executed next, otherwise you would be in an infinite loop –  Itsik Aug 21 '11 at 9:57

1 Answer 1

up vote 3 down vote accepted

The next instruction is stored in $ra

So, when calling func_A, $ra = 2008; when calling func_B, $ra = 2016; when calling func_C, $ra = 2024.

This is logical, because you return from a subroutine by jr $ra, thus jumping to the instruction after the subroutine call.

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You forgot about the MIPS branch delay slot after each JAL. Instruction 3 is executed before the start of func_A, so $ra will contain the address of "jal func_B" i.e.2012 at the start of func_A. Similarly $ra contains 2020 when calling $func_B, and 2028 when calling func_C. –  markgz Aug 31 '11 at 21:49

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