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15 Sep 2014, 21:05
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tushain
Bunuel
vogelleblanc
If \(x = u^2 - v^2\), \(y = 2uv\) and \(z = u^2 + v^2\), and if \(x = 11\), what is the value of z?
(1) y = 60
(2) u = 6
sethiprashant i also think you are right with your reasoning that u and v do not have to be integers and thus 6 and 5 are not the only possible combination. However, the OA is D... :/
What are we overlooking?
Just to prove that i quote the question correctly, i attached a screenshot of the question
(1) y = 60
(2) u = 6
sethiprashant i also think you are right with your reasoning that u and v do not have to be integers and thus 6 and 5 are not the only possible combination. However, the OA is D... :/
What are we overlooking?
Just to prove that i quote the question correctly, i attached a screenshot of the question
For (1) we have:
\(11 = u^2 - v^2\);
\(60= 2uv\);
and we need to find the value of \(u^2 + v^2\).
If you solve \(11 = u^2 - v^2\) and \(60= 2uv\), you get (u, v) = (-6, -5) or (u, v) = (6, 5). In either case \(u^2 + v^2=36+25\).
Thus the answer is D.
Hope it's clear.
Thus there we can be 4 possibilities of (u,v) = (6,5)OR(6,-5)OR(-6,5)OR(-6,-5)
From this only we have sufficient info to answer " what is the value of z, given \(z = u^2 + v^2\) "
Because in each case, answer will be 61.
So we do not even need any statement!
Please explain if i am missing anything here..
TehMoUsE
I don't know why, but I started to solve this DS-question like a PS-question without considering the information given in (1) and (2).
\(x = u^2 - v^2\) ----> \(x = (u+v)*(u-v)\)
We're given \(x = 11\) , since 11 is a prime number the only factors of \(x\) are 1 and 11, this tells us \(u\) and \(v\) can take any combination of +-5 and+-6
Hence, \(z = u^2 + v^2\) will always take the value 61
Therefore we don't need any data to solve the problem!
edit: saw tushain came to the same conclustion
\(x = u^2 - v^2\) ----> \(x = (u+v)*(u-v)\)
We're given \(x = 11\) , since 11 is a prime number the only factors of \(x\) are 1 and 11, this tells us \(u\) and \(v\) can take any combination of +-5 and+-6
Hence, \(z = u^2 + v^2\) will always take the value 61
Therefore we don't need any data to solve the problem!
edit: saw tushain came to the same conclustion
Both of you incorrectly assume that the variables are integers only: 11 = u^2 - v^2 has infinitely many non-integer solutions for u and v.
30 Mar 2015, 08:54
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It seems that the only exact method to find u and v is solving for quadratic (4th power) equation, but it's also too time consuming. If someone knows quick method of finding u and v without assuming that tose numbers are integers please share it.[/quote]
If \(x = u^2 - v^2\), \(y = 2uv\) and \(z = u^2 + v^2\), and if \(x = 11\), what is the value of z?
Given: \(u^2 - v^2=11\) and \(y = 2uv\).
Question: \(u^2 + v^2=?\)
(1) y = 60 --> \(2uv=60\) --> \(4u^2v^2=3,600\).
Square \(u^2 - v^2=11\): \(u^4-2u^2v^2+v^2=121\);
Add \(4u^2v^2\) to both sides: \(u^4+2u^2v^2+v^4=121+3,600\);
Apply \(a^2+2ab+b^2=(a+b)^2\): \((u^2+v^2)^2=121+3,600\).
\(u^2+v^2=\sqrt{121+3,600}=61\).
Sufficient.
(2) u = 6 --> \(36 - v^2=11\) --> \(v^2=25\) --> \(u^2+v^2=36+25=61\). Sufficient.
Answer: D.
Hope it helps.[/quote]
Hi Bunuel
Stmtn 1
Can we use Differences of Square approach
Property - The difference between squares grows as the squares themselves get larger
Hence given u^2 - v^2 = x = 11
Thus the only numbers that fit this equation are when u = 6 and v = 5. Hence we can find Z - Sufficient
Similalry Stmtn 2 = Suff
Hence D
Pls mention if this approach is correct
Thanks
If \(x = u^2 - v^2\), \(y = 2uv\) and \(z = u^2 + v^2\), and if \(x = 11\), what is the value of z?
Given: \(u^2 - v^2=11\) and \(y = 2uv\).
Question: \(u^2 + v^2=?\)
(1) y = 60 --> \(2uv=60\) --> \(4u^2v^2=3,600\).
Square \(u^2 - v^2=11\): \(u^4-2u^2v^2+v^2=121\);
Add \(4u^2v^2\) to both sides: \(u^4+2u^2v^2+v^4=121+3,600\);
Apply \(a^2+2ab+b^2=(a+b)^2\): \((u^2+v^2)^2=121+3,600\).
\(u^2+v^2=\sqrt{121+3,600}=61\).
Sufficient.
(2) u = 6 --> \(36 - v^2=11\) --> \(v^2=25\) --> \(u^2+v^2=36+25=61\). Sufficient.
Answer: D.
Hope it helps.[/quote]
Hi Bunuel
Stmtn 1
Can we use Differences of Square approach
Property - The difference between squares grows as the squares themselves get larger
Hence given u^2 - v^2 = x = 11
Thus the only numbers that fit this equation are when u = 6 and v = 5. Hence we can find Z - Sufficient
Similalry Stmtn 2 = Suff
Hence D
Pls mention if this approach is correct
Thanks
10 Feb 2016, 23:49
Kudos
Bookmarks
vogelleblanc
If \(x = u^2 - v^2\), \(y = 2uv\) and \(z = u^2 + v^2\), and if \(x = 11\), what is the value of z?
(1) y = 60
(2) u = 6
(1) y = 60
(2) u = 6
my approach towards statement 2:
x=11 and u=6,
thus 11=6^2-v^2
25=v^2
v=5 or v=-5
Since z=u^2+v^2, it does not matter if v is 5 or -5, so z=55
Please correct me if something is wrong!/spoiler]
I do not understand statement 1, please help me
x=11 and u=6,
thus 11=6^2-v^2
25=v^2
v=5 or v=-5
Since z=u^2+v^2, it does not matter if v is 5 or -5, so z=55
Please correct me if something is wrong!/spoiler]
I do not understand statement 1, please help me
Responding to a pm:
Quote:
I have a quick question about how ( u + v)^2 * ( u - v)^2 = 11^2 in the problem below.
If (u - v)^2 = (u + v) * (u - v) = 11 , then does ( u + v)^2 * ( u - v)^2 = 11^2 ?
Is this correct? If not, can you please help me understand this?
If (u - v)^2 = (u + v) * (u - v) = 11 , then does ( u + v)^2 * ( u - v)^2 = 11^2 ?
Is this correct? If not, can you please help me understand this?
Note that \(x = u^2 - v^2\) and x is given as 11.
So,
u^2 - v^2 = 11
\((u + v)*(u - v) = 11\)
So \([(u + v)*(u - v)]^2 = 11^2\)
\((u+v)^2 * (u - v)^2 = 11^2\)
Does this help?
