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In trapezoid $WXYZ$, $\overline{XY} \parallel \overline{WZ}$, $\angle WXZ = 105^\circ$, $\angle W = 43^\circ$, and $\angle Y = 141^\circ$. Find $\angle YXZ$, in degrees.
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In trapezoid $WXYZ$, $\overline{XY} \parallel \overline{WZ}$, $\angle WXZ = 105^\circ$, $\angle W = 43^\circ$, and $\angle Y = 141^\circ$. Find $\angle YXZ$, in degrees.

User Rhapsodyn
by
6.1k points

1 Answer

4 votes

Answer:

32 degrees

Explanation:

The diagram of the problem is drawn and attached.

In Triangle WXZ

105+43+
\angle WZX=180 (Sum of Angles in a Triangle)

148+
\angle WZX=180


\angle WZX=180-148


\angle WZX=32 degrees

Since |XY|//|WZ| (parallel to)


\angle WZX=
\angle YXZ (Alternate Angles)

Therefore:


\angle YXZ=32 degrees

In trapezoid $WXYZ$, $\overline{XY} \parallel \overline{WZ}$, $\angle WXZ = 105^\circ-example-1
User Alexandre Rademaker
by
5.5k points
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