Answer to Question #331743 in Calculus for Kai

Define:

"x" - length of the rectangle "(x>0)"

"2^{-x}" - height of the rectangle "(x>0)"

Area of the rectangle:

"S(x)=x\\cdot2^{-x}"

"S\u2019(x)=2^{-x}-x\\cdot2^{-x}\\cdot\\ln2=0"

"x=\\frac {1}{\\ln2}"

"\\displaystyle S\u2019(\\frac{1}{2\\ln2})=2^{-\\frac{1}{2\\ln2}}(1-\\frac{1}{2\\ln2}\\cdot\\ln2)>0"

"\\displaystyle S\u2019(\\frac{2}{\\ln2})=2^{-\\frac{2}{\\ln2}}(1-\\frac{2}{\\ln2}\\cdot\\ln2)<0"

So "x=\\frac {1}{\\ln2}" corresponds to maximum of the function "S(x)" .

Answer:

"\\frac {1}{\\ln2}" - length of the rectangle

"2^{-\\frac {1}{\\ln2}}" - height of the rectangle