Optimal. Leaf size=403 \[ \frac {\text {Li}_4\left (-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{8 b^3}-\frac {\text {Li}_4\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{8 b^3}-\frac {i x \text {Li}_3\left (-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{4 b^2}+\frac {i x \text {Li}_3\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{4 b^2}-\frac {x^2 \text {Li}_2\left (-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{4 b}+\frac {x^2 \text {Li}_2\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{4 b}-\frac {1}{6} i x^3 \log \left (1+\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )+\frac {1}{3} x^3 \cot ^{-1}(d \tan (a+b x)+c) \]
[Out]
________________________________________________________________________________________
Rubi [A] time = 0.51, antiderivative size = 403, normalized size of antiderivative = 1.00, number of steps used = 11, number of rules used = 6, integrand size = 15, \(\frac {\text {number of rules}}{\text {integrand size}}\) = 0.400, Rules used = {5176, 2190, 2531, 6609, 2282, 6589} \[ -\frac {i x \text {PolyLog}\left (3,-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{4 b^2}+\frac {i x \text {PolyLog}\left (3,-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{4 b^2}+\frac {\text {PolyLog}\left (4,-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{8 b^3}-\frac {\text {PolyLog}\left (4,-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{8 b^3}-\frac {x^2 \text {PolyLog}\left (2,-\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )}{4 b}+\frac {x^2 \text {PolyLog}\left (2,-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )}{4 b}-\frac {1}{6} i x^3 \log \left (1+\frac {(i c+d+1) e^{2 i a+2 i b x}}{i c-d+1}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (d+1)}\right )+\frac {1}{3} x^3 \cot ^{-1}(d \tan (a+b x)+c) \]
Antiderivative was successfully verified.
[In]
[Out]
Rule 2190
Rule 2282
Rule 2531
Rule 5176
Rule 6589
Rule 6609
Rubi steps
\begin {align*} \int x^2 \cot ^{-1}(c+d \tan (a+b x)) \, dx &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{3} (b (1-i c-d)) \int \frac {e^{2 i a+2 i b x} x^3}{1-i c+d+(1-i c-d) e^{2 i a+2 i b x}} \, dx+\frac {1}{3} (b (1+i c+d)) \int \frac {e^{2 i a+2 i b x} x^3}{1+i c-d+(1+i c+d) e^{2 i a+2 i b x}} \, dx\\ &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{6} i x^3 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )-\frac {1}{2} i \int x^2 \log \left (1+\frac {(1-i c-d) e^{2 i a+2 i b x}}{1-i c+d}\right ) \, dx+\frac {1}{2} i \int x^2 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right ) \, dx\\ &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{6} i x^3 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )-\frac {x^2 \text {Li}_2\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b}+\frac {x^2 \text {Li}_2\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b}-\frac {\int x \text {Li}_2\left (-\frac {(1-i c-d) e^{2 i a+2 i b x}}{1-i c+d}\right ) \, dx}{2 b}+\frac {\int x \text {Li}_2\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right ) \, dx}{2 b}\\ &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{6} i x^3 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )-\frac {x^2 \text {Li}_2\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b}+\frac {x^2 \text {Li}_2\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b}-\frac {i x \text {Li}_3\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b^2}+\frac {i x \text {Li}_3\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b^2}-\frac {i \int \text {Li}_3\left (-\frac {(1-i c-d) e^{2 i a+2 i b x}}{1-i c+d}\right ) \, dx}{4 b^2}+\frac {i \int \text {Li}_3\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right ) \, dx}{4 b^2}\\ &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{6} i x^3 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )-\frac {x^2 \text {Li}_2\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b}+\frac {x^2 \text {Li}_2\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b}-\frac {i x \text {Li}_3\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b^2}+\frac {i x \text {Li}_3\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b^2}+\frac {\operatorname {Subst}\left (\int \frac {\text {Li}_3\left (-\frac {(1+i c+d) x}{1+i c-d}\right )}{x} \, dx,x,e^{2 i a+2 i b x}\right )}{8 b^3}-\frac {\operatorname {Subst}\left (\int \frac {\text {Li}_3\left (-\frac {(c-i (-1+d)) x}{c+i (1+d)}\right )}{x} \, dx,x,e^{2 i a+2 i b x}\right )}{8 b^3}\\ &=\frac {1}{3} x^3 \cot ^{-1}(c+d \tan (a+b x))-\frac {1}{6} i x^3 \log \left (1+\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )+\frac {1}{6} i x^3 \log \left (1+\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )-\frac {x^2 \text {Li}_2\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b}+\frac {x^2 \text {Li}_2\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b}-\frac {i x \text {Li}_3\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{4 b^2}+\frac {i x \text {Li}_3\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{4 b^2}+\frac {\text {Li}_4\left (-\frac {(1+i c+d) e^{2 i a+2 i b x}}{1+i c-d}\right )}{8 b^3}-\frac {\text {Li}_4\left (-\frac {(c+i (1-d)) e^{2 i a+2 i b x}}{c+i (1+d)}\right )}{8 b^3}\\ \end {align*}
________________________________________________________________________________________
Mathematica [A] time = 0.89, size = 363, normalized size = 0.90 \[ \frac {1}{3} x^3 \cot ^{-1}(d \tan (a+b x)+c)+\frac {-4 i b^3 x^3 \log \left (1+\frac {(c-i (d+1)) e^{2 i (a+b x)}}{c+i (d-1)}\right )+4 i b^3 x^3 \log \left (1+\frac {(c-i d+i) e^{2 i (a+b x)}}{c+i (d+1)}\right )-6 b^2 x^2 \text {Li}_2\left (-\frac {(c-i (d+1)) e^{2 i (a+b x)}}{c+i (d-1)}\right )+6 b^2 x^2 \text {Li}_2\left (-\frac {(c-i d+i) e^{2 i (a+b x)}}{c+i (d+1)}\right )-6 i b x \text {Li}_3\left (-\frac {(c-i (d+1)) e^{2 i (a+b x)}}{c+i (d-1)}\right )+6 i b x \text {Li}_3\left (-\frac {(c-i d+i) e^{2 i (a+b x)}}{c+i (d+1)}\right )+3 \text {Li}_4\left (-\frac {(c-i (d+1)) e^{2 i (a+b x)}}{c+i (d-1)}\right )-3 \text {Li}_4\left (-\frac {(c-i d+i) e^{2 i (a+b x)}}{c+i (d+1)}\right )}{24 b^3} \]
Antiderivative was successfully verified.
[In]
[Out]
________________________________________________________________________________________
fricas [C] time = 0.81, size = 1973, normalized size = 4.90 \[ \text {result too large to display} \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________
giac [F] time = 0.00, size = 0, normalized size = 0.00 \[ \int x^{2} \operatorname {arccot}\left (d \tan \left (b x + a\right ) + c\right )\,{d x} \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________
maple [C] time = 64.67, size = 8034, normalized size = 19.94 \[ \text {output too large to display} \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________
maxima [F] time = 0.00, size = 0, normalized size = 0.00 \[ \frac {1}{6} \, x^{3} \arctan \left (-{\left (d + 1\right )} \cos \left (2 \, b x + 2 \, a\right ) + c \sin \left (2 \, b x + 2 \, a\right ) + d - 1, -c \cos \left (2 \, b x + 2 \, a\right ) - {\left (d + 1\right )} \sin \left (2 \, b x + 2 \, a\right ) - c\right ) - \frac {1}{6} \, x^{3} \arctan \left (-{\left (d - 1\right )} \cos \left (2 \, b x + 2 \, a\right ) + c \sin \left (2 \, b x + 2 \, a\right ) + d + 1, -c \cos \left (2 \, b x + 2 \, a\right ) - {\left (d - 1\right )} \sin \left (2 \, b x + 2 \, a\right ) - c\right ) - 4 \, b d \int -\frac {2 \, {\left (c^{2} + d^{2} + 1\right )} x^{3} \cos \left (2 \, b x + 2 \, a\right )^{2} + 2 \, c d x^{3} \sin \left (2 \, b x + 2 \, a\right ) + 2 \, {\left (c^{2} + d^{2} + 1\right )} x^{3} \sin \left (2 \, b x + 2 \, a\right )^{2} + {\left (c^{2} - d^{2} + 1\right )} x^{3} \cos \left (2 \, b x + 2 \, a\right ) - {\left (2 \, c d x^{3} \sin \left (2 \, b x + 2 \, a\right ) - {\left (c^{2} - d^{2} + 1\right )} x^{3} \cos \left (2 \, b x + 2 \, a\right )\right )} \cos \left (4 \, b x + 4 \, a\right ) + {\left (2 \, c d x^{3} \cos \left (2 \, b x + 2 \, a\right ) + {\left (c^{2} - d^{2} + 1\right )} x^{3} \sin \left (2 \, b x + 2 \, a\right )\right )} \sin \left (4 \, b x + 4 \, a\right )}{3 \, {\left (c^{4} + d^{4} + 2 \, {\left (c^{2} - 1\right )} d^{2} + {\left (c^{4} + d^{4} + 2 \, {\left (c^{2} - 1\right )} d^{2} + 2 \, c^{2} + 1\right )} \cos \left (4 \, b x + 4 \, a\right )^{2} + 4 \, {\left (c^{4} + d^{4} + 2 \, {\left (c^{2} + 1\right )} d^{2} + 2 \, c^{2} + 1\right )} \cos \left (2 \, b x + 2 \, a\right )^{2} + {\left (c^{4} + d^{4} + 2 \, {\left (c^{2} - 1\right )} d^{2} + 2 \, c^{2} + 1\right )} \sin \left (4 \, b x + 4 \, a\right )^{2} + 4 \, {\left (c^{4} + d^{4} + 2 \, {\left (c^{2} + 1\right )} d^{2} + 2 \, c^{2} + 1\right )} \sin \left (2 \, b x + 2 \, a\right )^{2} + 2 \, c^{2} + 2 \, {\left (c^{4} + d^{4} - 2 \, {\left (3 \, c^{2} + 1\right )} d^{2} + 2 \, c^{2} + 2 \, {\left (c^{4} - d^{4} + 2 \, c^{2} + 1\right )} \cos \left (2 \, b x + 2 \, a\right ) - 4 \, {\left (c d^{3} + {\left (c^{3} + c\right )} d\right )} \sin \left (2 \, b x + 2 \, a\right ) + 1\right )} \cos \left (4 \, b x + 4 \, a\right ) + 4 \, {\left (c^{4} - d^{4} + 2 \, c^{2} + 1\right )} \cos \left (2 \, b x + 2 \, a\right ) - 4 \, {\left (2 \, c d^{3} - 2 \, {\left (c^{3} + c\right )} d - 2 \, {\left (c d^{3} + {\left (c^{3} + c\right )} d\right )} \cos \left (2 \, b x + 2 \, a\right ) - {\left (c^{4} - d^{4} + 2 \, c^{2} + 1\right )} \sin \left (2 \, b x + 2 \, a\right )\right )} \sin \left (4 \, b x + 4 \, a\right ) + 8 \, {\left (c d^{3} + {\left (c^{3} + c\right )} d\right )} \sin \left (2 \, b x + 2 \, a\right ) + 1\right )}}\,{d x} \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________
mupad [F] time = 0.00, size = -1, normalized size = -0.00 \[ \int x^2\,\mathrm {acot}\left (c+d\,\mathrm {tan}\left (a+b\,x\right )\right ) \,d x \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________
sympy [F(-1)] time = 0.00, size = 0, normalized size = 0.00 \[ \text {Timed out} \]
Verification of antiderivative is not currently implemented for this CAS.
[In]
[Out]
________________________________________________________________________________________