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Article

Calda, Emil
Jak se také dá poznat pravoúhlý trojúhelník. (Czech) [Another way of recognizing right triangle]. Učitel matematiky, vol. 21 (2013), issue 3, pp. 159-161
MSC: 97G40
Summary:
The author presents a proof that when given triangle $ABC$, point $P \neq S$ is a foot of a perpendicular from $C$ on $AB$, and $S$ is the middle of $AB$, then if angle $ACS$ equals angle $PCB$, then angle $BCA$ is a right one.
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