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B
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Difficulty:
95%
(hard)
Question Stats:
37% (02:19) correct
63%
(02:27)
wrong
based on 282
sessions
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Not Attempted Yet
Figure not drawn to scale.
In triangle ABC, D is the mid-point of BC and E is the mid-point of AD. BF passes through E. What is the ratio of AF : FC ?
(A) 1:1
(B) 1:2
(C) 1:3
(D) 2:3
(E) 3:4
main-qimg-5456f088c373424b9e0b766a7449d264.png [ 19.74 KiB | Viewed 175090 times ]
In triangle ABC, D is the mid-point of BC and E is the mid-point of AD. BF passes through E. What is the ratio of AF : FC ?
(A) 1:1
(B) 1:2
(C) 1:3
(D) 2:3
(E) 3:4
Attachment:
main-qimg-5456f088c373424b9e0b766a7449d264.png [ 19.74 KiB | Viewed 175090 times ]
22 May 2017, 05:17
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Bunuel
This question can be solved using the concept of ratio of intercepts on transversals is the same. So if we have have two transversals on 3 parallel lines, the ratio of their intercepts will be the same.
Imagine a line parallel to BF passing through D. Say, there are another two lines parallel to these two lines passing through A and C respectively.
So we have 4 parallel lines and two transversals AD and AC.
Attachment:
Temp2.jpeg [ 44.72 KiB | Viewed 132240 times ]
Considering 3 parallel lines: the dashed line, BF and the red line,
AE/ED = AF/FP = 1/1
Considering 3 parallel lines: BF, the red line and the yellow line,
BD/DC = FP/PC = 1/1
From these, we get AF = FP = PC and hence AF:FC = 1:2
29 Apr 2018, 06:58
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Bunuel
VERY tricky question. I'd say it's skirting the 800 level of difficulty!
Here's a solution with some diagrams.
First, we'll add the given information.
Next, from point D let's add a line that's PARALLEL to BF
This addition of a parallel line allows us to see a variety of equivalent angles (and similar triangles!)
First, let's examine these two similar triangles.
Since side AD (on the blue triangle) is twice the length of side AE (on the red triangle), we can conclude that the blue triangle is twice as large as the red triangle.
So, side AP is twice the length of side AF.
This tells us that side PF = side AF
Now let's examine these two similar triangles.
Since side BC (on the purple triangle) is twice the length of side DC (on the green triangle), we can conclude that the purple triangle is twice as large as the green triangle.
So, side FC is twice the length of side PC.
This tells us that side PF = side PC
At this point, we know that side PF = side AF and side PF = side PC
Since both equations are set equal to PF, we can conclude that AF = FP = PC
So, the ratio of AF : FC = 1:2
Answer: B
Cheers,
Brent
