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Frank ICSE Solutions for Class 9 Maths Mid-point and Intercept Theorems Ex 15.2
Ex No: 15.2
Solution 1:
Solution 2:
Solution 3:
Solution 4:
Solution 5:
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Solution 6:
Note: This question is incomplete.
According to the information given in the question,
F could be any point on BC as shown below:
So, this makes it impossible to prove that DP = DE, since P too would shift as F shift because P too would be any point on DE as F is.
Note: If we are given F to be the mid-point of BC, the result can be proved.
Solution 7:
From the figure EF ∥ AB and E is the midpoint of BC.
Therefore, F is the midpoint of AC.
Here EF ∥ BD, EF = BD as D is the midpoint of AB.
BE ∥ DF, BE = DF as E is the midpoint of BC.
Therefore BEFD is a parallelogram.
Remark: Figure modified
Solution 8:
Solution 9:
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