1958 AHSME Problems/Problem 46
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Problem
For values of less than but greater than , the expression has:
Solution
From , we can further factor and then and finally . Using , we can see that . From there, we can get that .
From there, we get that x is either 2 or 0. Substituting both of them in, you get that if , then the value is . If you plug in the value of , you get the value of . So the answer is \textbf{(D)}
See Also
1958 AHSC (Problems • Answer Key • Resources) | ||
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