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Updated on: 22 Jul 2022, 02:44
Originally posted by NvrEvrGvUp on 15 Nov 2013, 01:52.
Last edited by Bunuel on 22 Jul 2022, 02:44, edited 2 times in total.
Last edited by Bunuel on 22 Jul 2022, 02:44, edited 2 times in total.
Edited the question.
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Given: 4^(2t+1) - 4^(t+2) = 128. Find: t
A. -1.5
B. -0.5
C. 0.5
D. 1.5
E. 2.5
A. -1.5
B. -0.5
C. 0.5
D. 1.5
E. 2.5
15 Nov 2013, 02:00
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NvrEvrGvUp
\(4^{2t+1} - 4^{t+2} = 128\);
\(4*4^{2t} - 4^2*4^{t} = 128\);
\(4*(4^t)^2 -16*4^t - 128=0\);
\((4^t)^2 -4*4^t - 32=0\);
Solve for 4^t: \(4^t=-4\) (discard, because 4^t cannot be negative) or \(4^t=8\).
\(4^t=8\) --> \(2^{2t}=2^3\) --> \(2t=3\) --> \(t=1.5\).
Hope it's clear.
26 Oct 2017, 15:38
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NvrEvrGvUp
4^(2t+1) - 4^(t+2) = 128
4^2t x 4 - 4^t x 4^2 = 128
4(4^t)^2 - 16(4^t) - 128 = 0
If we let x = 4^t, we have:
4x^2 - 16x - 128 = 0
x^2 - 4x - 32 = 0
(x - 8)(x + 4) = 0
x = 8 or x = -4
Since x = 4^t, we have:
4^t = 8 or 4^t = -4
Notice that 4 is positive, so 4^t also will be positive for any values of t, and thus 4^t can’t be -4. We are left with 4^t = 8:
2^(2t) = 2^3
2t = 3
t = 3/2
