The number of ways to partition 6 with just 2, 1, and 0 are \begin{align*} 6 &= (3, 0, 7)\cdot(2, 1, 0)\\ &= (2, 2, 6)\cdot(2, 1, 0)\\ &= (1, 4, 5)\cdot(2, 1, 0)\\ &= (0, 6, 4)\cdot(2, 1, 0) ...

\displaystyle\frac{{1}}{{{4}\sqrt{{2}}}}{a}{r}{c}{\left(\frac{{{x}^{{16}}-{1}}}{{\sqrt{{2}}\cdot{x}^{{8}}}}\right)} \displaystyle+\frac{{1}}{{{8}\sqrt{{2}}}}{\ln}{\left|\frac{{{x}^{{16}}-\sqrt{{2}}\cdot{x}^{{8}}+{1}}}{{{x}^{{16}}+\sqrt{{2}}\cdot{x}^{{8}}+{1}}}\right|}+{C} ...

x2=3/4x-1/8 Two solutions were found :  x = 1/4 = 0.250  x = 1/2 = 0.500 Rearrange: Rearrange the equation by subtracting what is to the right of the equal sign from both sides of the equation ...

Hint: When x\ne 1, our function is \frac{1-x}{1-x^3}. Expand \frac{1}{1-x^3} by using the series for \frac{1}{1-t}, and multiply by 1-x. Remark: The answer sheet, if quoted correctly, is ...

HINT: Use Partial Fraction Decomposition \frac1{1+x+x^2+x^3}=\frac1{(x+1)(x^2+1)}=\frac A{x+1}+\frac B{x+i}+\frac C{x-i}

Concept : The binomial expansion (x + y)ⁿ can be written as : \displaystyle\sum_{a+b=n} \dfrac{n!}{a!b!} x^ay^b The number of terms in the above expansion is n+1 which is equal to the number of ...