QUESTION IMAGE
Question
given: $overline{lk}congoverline{np}$; m is the mid - point of $overline{kp}$; $overline{lm}congoverline{om}$; $overline{mn}congoverline{om}$
prove: $\triangle lkmcong\triangle npm$
- $overline{lk}congoverline{np}$, m is the mid - point of $overline{kp}$. 1. given
- definition of a mid - point
- $overline{lm}congoverline{om}$, $overline{mn}congoverline{om}$
4.
- $\triangle lkmcong\triangle npm$
Step1: State given information
Given $\overline{LK}\cong\overline{NP}$, M is mid - point of $\overline{KP}$, $\overline{LM}\cong\overline{OM}$, $\overline{MN}\cong\overline{OM}$
Step2: Apply mid - point definition
$KM = MP$ as M is mid - point of $\overline{KP}$
Step3: Restate given
$\overline{LM}\cong\overline{OM}$, $\overline{MN}\cong\overline{OM}$
Step4: Use transitive property
$\overline{LM}=\overline{MN}$
Step5: Apply SSS criterion
$\triangle LKM\cong\triangle NPM$
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- Given
- $KM = MP$; Since M is the mid - point of $\overline{KP}$, by the definition of a mid - point, a mid - point divides a line segment into two equal parts.
- Given
- $\overline{LM}=\overline{MN}$; Because $\overline{LM}\cong\overline{OM}$ and $\overline{MN}\cong\overline{OM}$, by the transitive property of congruence (if $a = c$ and $b = c$, then $a = b$).
- $\triangle LKM\cong\triangle NPM$; By the Side - Side - Side (SSS) congruence criterion since $\overline{LK}\cong\overline{NP}$ (given), $KM = MP$ (from step 2) and $\overline{LM}=\overline{MN}$ (from step 4).