Show that $YZ+JK=JF$
I tried Pythagorean theorem.
OG: Area of a square inside a square created by connecting point-opposite midpoint
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Let $\angle{ACB} = \theta$. Now apply $\tan\theta$, it gives $\frac12$. It is same with angles $DFC, KLF, LAY,$ so these angles are equal.
Hence $\triangle{AXB}, \triangle{LYZ}, \triangle{FJK}$ and $\triangle{CED}$ are congruent by ASA rule.
We can also see some similar triangles. These are $\triangle{LYZ} $ is similar to $\triangle{LJF}$, and etc. So $LY = YJ$ and etc. Also $2YZ = JF$ and $2JK = CE$. But $CE = JF$, so $YZ = JK = \frac{1}{2}JF$.
Hence $YZ + JK = JF$ (Hence Proved)
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Why is theta 26.56 degrees? @Congruent – Feb 21 '23 at 02:38
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What are you trying to say? – Arya Feb 21 '23 at 07:37
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$tan(\theta)=\dfrac{1}{2} \iff \theta \approx 26.56$ degree – Feb 21 '23 at 18:59
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I just took theta to get the triangles congruent. You can also use SAS rule of congruency. – Arya Feb 22 '23 at 08:38