Regarding the IBM monthly puzzle, my solution is
LN(√(EXP(LN(2)/LOG(2))))
a friend of mine just sent me another answer
sec(arctan(2))^2 = 5
it is good. However, not many people have heard of sec(). We may revise it as:
exp(-ln(cos(arctan(2))^2))
And we can have another approach:
first: √√√√√√exp(2)
then ln (√√√√√√exp(2))=ln(exp(2))/64
ln (ln(√√√√√√exp(2)))= ln(ln(exp(2)))-ln64=ln2-6ln2=-5ln2
-ln (ln(√√√√√√exp(2)))/ln2=5
LN(√(EXP(LN(2)/LOG(2))))
a friend of mine just sent me another answer
sec(arctan(2))^2 = 5
it is good. However, not many people have heard of sec(). We may revise it as:
exp(-ln(cos(arctan(2))^2))
And we can have another approach:
first: √√√√√√exp(2)
then ln (√√√√√√exp(2))=ln(exp(2))/64
ln (ln(√√√√√√exp(2)))= ln(ln(exp(2)))-ln64=ln2-6ln2=-5ln2
-ln (ln(√√√√√√exp(2)))/ln2=5
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