Difference between revisions of "1998 CEMC Gauss (Grade 7) Problems/Problem 6"
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If anyone knows the LaTeX to show long multiplication, any help would be appreciated. | If anyone knows the LaTeX to show long multiplication, any help would be appreciated. | ||
− | + | While doing the long multiplication the numbers in the thousand place are 1, 9, 1 and 2 respectively. When added together the sum is 13, so the answer is (A) 13 | |
− | == | + | 879 x 492 = 432,468 |
− | + | 879 | |
+ | x 492 | ||
+ | _______ | ||
+ | 1,758 | ||
+ | 79,110 | ||
+ | + 351,600 | ||
+ | _________ | ||
+ | = 432,468 | ||
+ | Therefore when 1, 9, 1, 2 are added together the total is 13, so (A) 13 is correct answer. | ||
− | + | -edited by De-math-wiz | |
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Latest revision as of 16:30, 12 May 2024
Problem
In the multiplication question, the sum of the digits in the four boxes is:
[Multiply using long multiplication. Find the sum of the four numbers in the thousands place column.]
Solution
Multiplying, we find that the numbers in the thousands place column are 1, 9, 1, and 2 respectively. Adding yields a sum of 12, so the answer is
-edited by coolmath34
If anyone knows the LaTeX to show long multiplication, any help would be appreciated.
While doing the long multiplication the numbers in the thousand place are 1, 9, 1 and 2 respectively. When added together the sum is 13, so the answer is (A) 13
879 x 492 = 432,468
879 x 492 _______ 1,758 79,110 + 351,600 _________ = 432,468
Therefore when 1, 9, 1, 2 are added together the total is 13, so (A) 13 is correct answer.
-edited by De-math-wiz