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02 Apr 2018, 01:45
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A
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
15%
(low)
Question Stats:
82% (01:33) correct
18%
(02:17)
wrong
based on 396
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The \(n_{th}\) term, \(t_n\), of a certain sequence is defined as \(t_n = t_{n-1} + 4\). If \(t_1 = -11\), then \(t_{82} =\)
(A) 313
(B) 317
(C) 320
(D) 321
(E) 340
(A) 313
(B) 317
(C) 320
(D) 321
(E) 340
02 Apr 2018, 03:02
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Bunuel
t2=t1+4
t3=t2+4
.
.
t82=t81+4
adding all we get t82=t1+81*4, since t1=-11
t82=313.
option A
02 Apr 2018, 19:42
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Bunuel
This problem looks like a regular arithmetic progression.
The standard equation for AP is usually detectable in questions like this one.
\(t_n = t_{n-1} + 4\)
\(t_1 = -11\)
\(t_2 =(t_{1} + 4)=(-11+4)= -7\)
\(t_3 = t_{2} + 4 = -3\)
\(t_4 = t_{3} + 4 = 1\)
The above is equivalent to . . . (looking for standard arithmetic sequence)
\(t_1 = -11\)
\(t_2 = t_1 + 4 = -7\)
\(t_3 = t_1 + 4 + 4 = -3\)
\(t_4 = t_1 + 4 + 4 + 4 = -1\)
Extrapolate the standard equation of arithmetic sequence.
The number of 4s added is (n - 1)
4 = common difference, d
\(a_n = a_1 + (n-1)d\)
Rewrite:
\(t_n = t_1 + (n-1)4\)
\(t_1\) is -11
Hence
\(t_{82} = -11 + (81*4) =\)
\((-11 + 324) = 313\)
Answer A
