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Python The Challenge: Weird Multiplication. “Russian Peasant” or “Ancient Egyptian” method for multiplication.

The algorithm is as follows: If A and B are the 2 integers (only integers) to be multiplied, we repeatedly multiply A by 2 and divide B by 2, until B cannot be divided any further, that is, until its value becomes 0 (remember, this is integer division). During each step, whenever B is an odd number, we add the corresponding A value to the product we are generating. In the end, the sum of the A values that had corresponding odd B values is the product.

22nd Sep 2022, 12:11 PM
vivek ms
vivek ms - avatar
2 Respuestas
+ 2
If you want to create a challenge, please follow the instructions in the top of this thread: https://www.sololearn.com/Discuss/1270852/?ref=app Why only Python? I think, if you let the participants choose the languages themselves, they will be more likely to submit a code...
22nd Sep 2022, 2:03 PM
Lisa
Lisa - avatar
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Taking some of the mystery out of it, that algorithm is how you multiply in base 2. Each time you multiply A by 2, it shifts A by one place (i.e., one bit) leftward. Dividing B by 2 shifts B one place (bit) rightward. If B is odd, that means its lowest bit is 1 so you would add 1*A (or simply A). If B is even, then its lowest bit is 0 so you would add 0*A (or simply 0, therefore you may skip the addition). It is the same procedure as decimal long-hand multiplication, except done in binary.
24th Sep 2022, 7:27 AM
Brian
Brian - avatar