Problem #PRU-100260

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Problem

In every right-angled triangle the arm is greater than the hypotenuse. Consider a triangle $A B C$ with right angle at $C$ .

The difference of the squares of the hypothenuse and one of the arms is $A B^{2} - B C^{2}$ . This expression can be represented in the form of a product $A B^{2} - B C^{2} = (A B - B C) (A B + B C)$ or $A B^{2} - B C^{2} = - (B C - A B) (A B + B C)$ Dividing the right hand sides by the product $- (A B - B C) (A B + B C)$ , we obtain the proportion $\frac{A B + B C}{- (A B + B C)} = \frac{B C - A B}{A B - B C} .$ Since the positive quantity is greater than the negative one we have $A B + B C > - (A B + B C)$ . But then also $B C - A B > A B - B C$ , and therefore $2 B C > 2 A B$ , or $B C > A B$ , i.e. THE ARM IS GREATER THAN THE HYPOTENUSE!

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