How do I prove that, for example, $\sqrt{3}>\frac{153}{90}$? I can't represent it in any other way than periodic fraction and showing by "Hey, look at the calculator, it's bigger!" doesn't look like a good idea :) Representing as a difference of other powers also doesn't seem to work.. How can I elegantly prove this?
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1Are you allowing yourself to check that $3\cdot90^2>153^2$? (Also, $\frac{153}{90}$ reduces to $\frac{17}{10}$.) – 2'5 9'2 Apr 30 '12 at 16:25
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@DavidMitra Why are you cubing? – Thomas Andrews Apr 30 '12 at 16:26
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@ThomasAndrews erm, just a bit off at the moment :) – David Mitra Apr 30 '12 at 16:26
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1Note that 153 is divisible by 9. Clear fractions and square both sides. – Mark Bennet Apr 30 '12 at 16:27
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Oh my, for what a stupidity I asked.. My self-punishment is posted below, thank you all and sorry :) – Straightfw Apr 30 '12 at 16:40
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$\sqrt3>\frac{153}{90}$ if and only if $3>\left(\frac{153}{90}\right)^2=\frac{23409}{8100}$. Since $3=\frac{24300}{8100}>\frac{23409}{8100}$, the inequality is clearly true.
Jyrki Lahtonen
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Brian M. Scott
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OMG, thank you very much. Some say there aren't stupid question but mine proves the contrary.. :D Sorry and thank you again! – Straightfw Apr 30 '12 at 16:39