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maihuna: Legendary Member; Posts: 1578; Joined: Sun Dec 28, 2008 1:49 am; Thanked: 82 times; Followed by:9 members; GMAT Score:720

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by maihuna » Sat Mar 28, 2009 12:31 am

i want to see efficient way to solve:

A B
X 3
----
CA5

A B
X 6
------
BBB

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Source: Beat The GMAT — Problem Solving | Sat Mar 28, 2009 12:31 am

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Ian Stewart: GMAT Instructor; Posts: 2623; Joined: Mon Jun 02, 2008 3:17 am; Location: Montreal; Thanked: 1090 times; Followed by:355 members; GMAT Score:780

Re: symbols

by Ian Stewart » Sat Mar 28, 2009 1:26 am

maihuna wrote:i want to see efficient way to solve:

A B
X 3
----
CA5

Certainly B must be 5. Since 3B = 15, we'll carry a 1 when we multiply by the second digit, so 3A + 1 = 10C + A, or 2A + 1 = 10C. The left side of that equation is odd, the right side even, so has no solutions. Is there a typo somewhere?

maihuna wrote: A B
X 6
------
BBB

You might notice that 111 = 3*37, so any three digit number with identical digits is a multiple of 37. That only leaves two possibilities for AB: 37 or 74. We can quickly check that only 74 will give us the correct units digit, so must be right.

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