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My project is to receive two very large integers and add/multiply them. I completed addition: I created a linked list and stored 4 digits each (as characters) in each node of the list, in reverse (so 10034 would be stored in the list as 4300 (node1), and 1 (node2)).

Took me a while, but I was able to get addition to work (by adding the node in first list to the other node in the second list, repeating for each). I converted the value in the node to an integer to make this easier, but stored the sum of each node in a character array which was then inserted into the new linked list (the sum list).

Now I'm up to multiplication and I'm simply lost. The algorithm to get this done is simply escaping me, and I've been bashing my head against the screen for the better part of the day trying to figure it out. Let's say I have the digits 10034 (stored as 4300 in node 1, 1 in node 2) and 22346 (stored as 6432 in node 1 of its list, 2 in node 2).

The product would be 224219764. If I try to do what I did with addition, node 1 of list 1 * node 1 of list 2 would be 79764.. which seems to be a step in the right direction (the 9764 matches up with the real product), but after that I just get lost.

Can anyone offer any insight? Thank you.

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What programming language are you doing this in? Have you considered using a library that will handle large number arithmetic instead of implementing it yourself (see gmplib.org)? –  KSletmoe Oct 19 '12 at 0:51
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Also, possible duplicate: stackoverflow.com/questions/12430339/c-large-number-arithmetic –  KSletmoe Oct 19 '12 at 0:51
    
C++. And no, it's a project for class, so I can't use any libraries beyond the standard fair (iostream, fstream, etc). I'm not asking for someone to do this for me; I understand the method and was able to do addition with it, but the exact algorithm for implementing multiplication is just eluding me and I'm about to lose it :( –  Robert Joseph Dacunto Oct 19 '12 at 0:53
    
You'd only have to adapt the manual way of multiplying numbers by saving partial results and carrying things as needed. –  madth3 Oct 19 '12 at 3:48
    
@Robert Joseph Dacunto Did you check the link I sent in my second comment? I believe the accepted answer there has what you are looking for (at least partially) –  KSletmoe Oct 19 '12 at 4:18

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