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We have three 16-bit words:

0110011001100000
0101010101010101
1000111100001100

sum of the first two

0110011001100000
0101010101010101
-----------------
1011101110110101

adding the sum to the third

1000111100001100
1011101110110101
-------------------
10100101011000001

but the book says for that part that it's:

0100101011000010

It says that the last addition had overflow which was wrapped around but i don't understand.

After that it obtains the 1st complement:

1011010100111101

which becomes the checksum.

I don't understand the adding the sum to the third part. Can anyone explain?

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1 Answer 1

up vote 1 down vote accepted

Here's adding the sum to the third value.

Note the indentation. The overflow bit is the leftmost bit.

 1000111100001100
 1011101110110101
-----------------
10100101011000001
^

Add the overflow to the truncated result:

 0100101011000001
 0000000000000001
-----------------
 0100101011000010

Which is the desired result for that step.

share|improve this answer
    
oh i see now, thank you! –  user2122810 Mar 13 '13 at 17:44
    
@user2122810: You're welcome. –  Jon Seigel Mar 13 '13 at 18:02

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