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11 May 2017, 03:10
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D
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
25%
(medium)
Question Stats:
80% (02:32) correct
20%
(02:31)
wrong
based on 702
sessions
History
Date
Time
Result
Not Attempted Yet
Updated on: 08 Feb 2021, 09:13
Originally posted by BrentGMATPrepNow on 11 May 2017, 09:16.
Last edited by BrentGMATPrepNow on 08 Feb 2021, 09:13, edited 1 time in total.
Last edited by BrentGMATPrepNow on 08 Feb 2021, 09:13, edited 1 time in total.
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Bunuel
ALWAYS check the answer choices first.
The answer choices tell us that the 3 radicals (square root expressions) can probably all be rewritten as EITHER 3 times some integer OR 6 times some integer.
Since 1323 is ODD, we know that we can't rewrite it as 6 times some integer.
So, let's rewrite each expression as 3 time some integer.
√1323 + √588 + √243 = √(441 x 3) + √(196 x 3) + √(81 x 3)
Now we'll apply a nice rule that says: √(ab) = (√a)(√b)
= (√441)(√3) + (√196)(√3) + (√81)(√3)
√441 is a tough one to evaluate. However, if we recognize that √400 = 20, then perhaps √441 = 21. A quick check (21² = 441) confirms this.
√196 is a little easier. we might already know that √225 = 15, so we might check whether √196 = 14 A quick check (14² = 196) confirms this.
Finally, we should know that √81 = 9
So, we get....
= 21√3 + 14√3 + 9√3
= 44√3
Answer: D
11 May 2017, 04:02
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Bunuel
\(√1323+√588+√243\)
=\(√(3^2*7^2*3)+√(2^2*7^2*3)+√(3^5)\)
=\(21√3+14√3+9√3\)
=\(44√3\)
