3.4.38 \(\int \frac {x^3}{(8 c-d x^3) (c+d x^3)^{3/2}} \, dx\) [338]

Optimal. Leaf size=66 \[ \frac {x^4 \sqrt {1+\frac {d x^3}{c}} F_1\left (\frac {4}{3};1,\frac {3}{2};\frac {7}{3};\frac {d x^3}{8 c},-\frac {d x^3}{c}\right )}{32 c^2 \sqrt {c+d x^3}} \]

[Out]

1/32*x^4*AppellF1(4/3,3/2,1,7/3,-d*x^3/c,1/8*d*x^3/c)*(1+d*x^3/c)^(1/2)/c^2/(d*x^3+c)^(1/2)

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Rubi [A]
time = 0.04, antiderivative size = 66, normalized size of antiderivative = 1.00, number of steps used = 2, number of rules used = 2, integrand size = 27, \(\frac {\text {number of rules}}{\text {integrand size}}\) = 0.074, Rules used = {525, 524} \begin {gather*} \frac {x^4 \sqrt {\frac {d x^3}{c}+1} F_1\left (\frac {4}{3};1,\frac {3}{2};\frac {7}{3};\frac {d x^3}{8 c},-\frac {d x^3}{c}\right )}{32 c^2 \sqrt {c+d x^3}} \end {gather*}

Antiderivative was successfully verified.

[In]

Int[x^3/((8*c - d*x^3)*(c + d*x^3)^(3/2)),x]

[Out]

(x^4*Sqrt[1 + (d*x^3)/c]*AppellF1[4/3, 1, 3/2, 7/3, (d*x^3)/(8*c), -((d*x^3)/c)])/(32*c^2*Sqrt[c + d*x^3])

Rule 524

Int[((e_.)*(x_))^(m_.)*((a_) + (b_.)*(x_)^(n_))^(p_)*((c_) + (d_.)*(x_)^(n_))^(q_), x_Symbol] :> Simp[a^p*c^q*
((e*x)^(m + 1)/(e*(m + 1)))*AppellF1[(m + 1)/n, -p, -q, 1 + (m + 1)/n, (-b)*(x^n/a), (-d)*(x^n/c)], x] /; Free
Q[{a, b, c, d, e, m, n, p, q}, x] && NeQ[b*c - a*d, 0] && NeQ[m, -1] && NeQ[m, n - 1] && (IntegerQ[p] || GtQ[a
, 0]) && (IntegerQ[q] || GtQ[c, 0])

Rule 525

Int[((e_.)*(x_))^(m_.)*((a_) + (b_.)*(x_)^(n_))^(p_)*((c_) + (d_.)*(x_)^(n_))^(q_), x_Symbol] :> Dist[a^IntPar
t[p]*((a + b*x^n)^FracPart[p]/(1 + b*(x^n/a))^FracPart[p]), Int[(e*x)^m*(1 + b*(x^n/a))^p*(c + d*x^n)^q, x], x
] /; FreeQ[{a, b, c, d, e, m, n, p, q}, x] && NeQ[b*c - a*d, 0] && NeQ[m, -1] && NeQ[m, n - 1] &&  !(IntegerQ[
p] || GtQ[a, 0])

Rubi steps

\begin {align*} \int \frac {x^3}{\left (8 c-d x^3\right ) \left (c+d x^3\right )^{3/2}} \, dx &=\frac {\sqrt {1+\frac {d x^3}{c}} \int \frac {x^3}{\left (8 c-d x^3\right ) \left (1+\frac {d x^3}{c}\right )^{3/2}} \, dx}{c \sqrt {c+d x^3}}\\ &=\frac {x^4 \sqrt {1+\frac {d x^3}{c}} F_1\left (\frac {4}{3};1,\frac {3}{2};\frac {7}{3};\frac {d x^3}{8 c},-\frac {d x^3}{c}\right )}{32 c^2 \sqrt {c+d x^3}}\\ \end {align*}

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Mathematica [B] Leaf count is larger than twice the leaf count of optimal. \(233\) vs. \(2(66)=132\).
time = 6.35, size = 233, normalized size = 3.53 \begin {gather*} \frac {x \left (x^3 \sqrt {1+\frac {d x^3}{c}} F_1\left (\frac {4}{3};\frac {1}{2},1;\frac {7}{3};-\frac {d x^3}{c},\frac {d x^3}{8 c}\right )+\frac {64 c \left (-1+\frac {256 c^2 F_1\left (\frac {1}{3};\frac {1}{2},1;\frac {4}{3};-\frac {d x^3}{c},\frac {d x^3}{8 c}\right )}{\left (8 c-d x^3\right ) \left (32 c F_1\left (\frac {1}{3};\frac {1}{2},1;\frac {4}{3};-\frac {d x^3}{c},\frac {d x^3}{8 c}\right )+3 d x^3 \left (F_1\left (\frac {4}{3};\frac {1}{2},2;\frac {7}{3};-\frac {d x^3}{c},\frac {d x^3}{8 c}\right )-4 F_1\left (\frac {4}{3};\frac {3}{2},1;\frac {7}{3};-\frac {d x^3}{c},\frac {d x^3}{8 c}\right )\right )\right )}\right )}{d}\right )}{864 c^2 \sqrt {c+d x^3}} \end {gather*}

Warning: Unable to verify antiderivative.

[In]

Integrate[x^3/((8*c - d*x^3)*(c + d*x^3)^(3/2)),x]

[Out]

(x*(x^3*Sqrt[1 + (d*x^3)/c]*AppellF1[4/3, 1/2, 1, 7/3, -((d*x^3)/c), (d*x^3)/(8*c)] + (64*c*(-1 + (256*c^2*App
ellF1[1/3, 1/2, 1, 4/3, -((d*x^3)/c), (d*x^3)/(8*c)])/((8*c - d*x^3)*(32*c*AppellF1[1/3, 1/2, 1, 4/3, -((d*x^3
)/c), (d*x^3)/(8*c)] + 3*d*x^3*(AppellF1[4/3, 1/2, 2, 7/3, -((d*x^3)/c), (d*x^3)/(8*c)] - 4*AppellF1[4/3, 3/2,
 1, 7/3, -((d*x^3)/c), (d*x^3)/(8*c)])))))/d))/(864*c^2*Sqrt[c + d*x^3])

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Maple [C] Result contains higher order function than in optimal. Order 9 vs. order 6.
time = 0.33, size = 1038, normalized size = 15.73

method result size
elliptic \(-\frac {2 x}{27 d c \sqrt {\left (x^{3}+\frac {c}{d}\right ) d}}+\frac {2 i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}} \sqrt {\frac {i \left (x +\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}-\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right ) \sqrt {3}\, d}{\left (-c \,d^{2}\right )^{\frac {1}{3}}}}\, \sqrt {\frac {x -\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{d}}{-\frac {3 \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}+\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}}}\, \sqrt {-\frac {i \left (x +\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}+\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right ) \sqrt {3}\, d}{\left (-c \,d^{2}\right )^{\frac {1}{3}}}}\, \EllipticF \left (\frac {\sqrt {3}\, \sqrt {\frac {i \left (x +\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}-\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right ) \sqrt {3}\, d}{\left (-c \,d^{2}\right )^{\frac {1}{3}}}}}{3}, \sqrt {\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{d \left (-\frac {3 \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}+\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right )}}\right )}{81 d^{2} c \sqrt {d \,x^{3}+c}}-\frac {8 i \sqrt {2}\, \left (\munderset {\underline {\hspace {1.25 ex}}\alpha =\RootOf \left (d \,\textit {\_Z}^{3}-8 c \right )}{\sum }\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}} \sqrt {2}\, \sqrt {\frac {i d \left (2 x +\frac {-i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}+\left (-c \,d^{2}\right )^{\frac {1}{3}}}{d}\right )}{\left (-c \,d^{2}\right )^{\frac {1}{3}}}}\, \sqrt {\frac {d \left (x -\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{d}\right )}{-3 \left (-c \,d^{2}\right )^{\frac {1}{3}}+i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}}\, \sqrt {-\frac {i d \left (2 x +\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}+\left (-c \,d^{2}\right )^{\frac {1}{3}}}{d}\right )}{2 \left (-c \,d^{2}\right )^{\frac {1}{3}}}}\, \left (i \left (-c \,d^{2}\right )^{\frac {1}{3}} \underline {\hspace {1.25 ex}}\alpha \sqrt {3}\, d -i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {2}{3}}+2 \underline {\hspace {1.25 ex}}\alpha ^{2} d^{2}-\left (-c \,d^{2}\right )^{\frac {1}{3}} \underline {\hspace {1.25 ex}}\alpha d -\left (-c \,d^{2}\right )^{\frac {2}{3}}\right ) \EllipticPi \left (\frac {\sqrt {3}\, \sqrt {\frac {i \left (x +\frac {\left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}-\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right ) \sqrt {3}\, d}{\left (-c \,d^{2}\right )^{\frac {1}{3}}}}}{3}, -\frac {2 i \left (-c \,d^{2}\right )^{\frac {1}{3}} \sqrt {3}\, \underline {\hspace {1.25 ex}}\alpha ^{2} d -i \left (-c \,d^{2}\right )^{\frac {2}{3}} \sqrt {3}\, \underline {\hspace {1.25 ex}}\alpha +i \sqrt {3}\, c d -3 \left (-c \,d^{2}\right )^{\frac {2}{3}} \underline {\hspace {1.25 ex}}\alpha -3 c d}{18 d c}, \sqrt {\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{d \left (-\frac {3 \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}+\frac {i \sqrt {3}\, \left (-c \,d^{2}\right )^{\frac {1}{3}}}{2 d}\right )}}\right )}{2 \underline {\hspace {1.25 ex}}\alpha ^{2} \sqrt {d \,x^{3}+c}}\right )}{243 d^{4} c}\) \(724\)
default \(\text {Expression too large to display}\) \(1038\)

Verification of antiderivative is not currently implemented for this CAS.

[In]

int(x^3/(-d*x^3+8*c)/(d*x^3+c)^(3/2),x,method=_RETURNVERBOSE)

[Out]

-1/d*(2/3*x/c/((x^3+c/d)*d)^(1/2)-2/9*I/c*3^(1/2)/d*(-c*d^2)^(1/3)*(I*(x+1/2/d*(-c*d^2)^(1/3)-1/2*I*3^(1/2)/d*
(-c*d^2)^(1/3))*3^(1/2)*d/(-c*d^2)^(1/3))^(1/2)*((x-1/d*(-c*d^2)^(1/3))/(-3/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d
*(-c*d^2)^(1/3)))^(1/2)*(-I*(x+1/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d*(-c*d^2)^(1/3))*3^(1/2)*d/(-c*d^2)^(1/3))^
(1/2)/(d*x^3+c)^(1/2)*EllipticF(1/3*3^(1/2)*(I*(x+1/2/d*(-c*d^2)^(1/3)-1/2*I*3^(1/2)/d*(-c*d^2)^(1/3))*3^(1/2)
*d/(-c*d^2)^(1/3))^(1/2),(I*3^(1/2)/d*(-c*d^2)^(1/3)/(-3/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d*(-c*d^2)^(1/3)))^(
1/2)))-8*c/d*(-2/27*x/c^2/((x^3+c/d)*d)^(1/2)+2/81*I/c^2*3^(1/2)/d*(-c*d^2)^(1/3)*(I*(x+1/2/d*(-c*d^2)^(1/3)-1
/2*I*3^(1/2)/d*(-c*d^2)^(1/3))*3^(1/2)*d/(-c*d^2)^(1/3))^(1/2)*((x-1/d*(-c*d^2)^(1/3))/(-3/2/d*(-c*d^2)^(1/3)+
1/2*I*3^(1/2)/d*(-c*d^2)^(1/3)))^(1/2)*(-I*(x+1/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d*(-c*d^2)^(1/3))*3^(1/2)*d/(
-c*d^2)^(1/3))^(1/2)/(d*x^3+c)^(1/2)*EllipticF(1/3*3^(1/2)*(I*(x+1/2/d*(-c*d^2)^(1/3)-1/2*I*3^(1/2)/d*(-c*d^2)
^(1/3))*3^(1/2)*d/(-c*d^2)^(1/3))^(1/2),(I*3^(1/2)/d*(-c*d^2)^(1/3)/(-3/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d*(-c
*d^2)^(1/3)))^(1/2))+1/243*I/c^2/d^3*2^(1/2)*sum(1/_alpha^2*(-c*d^2)^(1/3)*(1/2*I*d*(2*x+1/d*(-I*3^(1/2)*(-c*d
^2)^(1/3)+(-c*d^2)^(1/3)))/(-c*d^2)^(1/3))^(1/2)*(d*(x-1/d*(-c*d^2)^(1/3))/(-3*(-c*d^2)^(1/3)+I*3^(1/2)*(-c*d^
2)^(1/3)))^(1/2)*(-1/2*I*d*(2*x+1/d*(I*3^(1/2)*(-c*d^2)^(1/3)+(-c*d^2)^(1/3)))/(-c*d^2)^(1/3))^(1/2)/(d*x^3+c)
^(1/2)*(I*(-c*d^2)^(1/3)*_alpha*3^(1/2)*d-I*3^(1/2)*(-c*d^2)^(2/3)+2*_alpha^2*d^2-(-c*d^2)^(1/3)*_alpha*d-(-c*
d^2)^(2/3))*EllipticPi(1/3*3^(1/2)*(I*(x+1/2/d*(-c*d^2)^(1/3)-1/2*I*3^(1/2)/d*(-c*d^2)^(1/3))*3^(1/2)*d/(-c*d^
2)^(1/3))^(1/2),-1/18/d*(2*I*(-c*d^2)^(1/3)*3^(1/2)*_alpha^2*d-I*(-c*d^2)^(2/3)*3^(1/2)*_alpha+I*3^(1/2)*c*d-3
*(-c*d^2)^(2/3)*_alpha-3*c*d)/c,(I*3^(1/2)/d*(-c*d^2)^(1/3)/(-3/2/d*(-c*d^2)^(1/3)+1/2*I*3^(1/2)/d*(-c*d^2)^(1
/3)))^(1/2)),_alpha=RootOf(_Z^3*d-8*c)))

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Maxima [F]
time = 0.00, size = 0, normalized size = 0.00 \begin {gather*} \text {Failed to integrate} \end {gather*}

Verification of antiderivative is not currently implemented for this CAS.

[In]

integrate(x^3/(-d*x^3+8*c)/(d*x^3+c)^(3/2),x, algorithm="maxima")

[Out]

-integrate(x^3/((d*x^3 + c)^(3/2)*(d*x^3 - 8*c)), x)

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Fricas [B] Leaf count of result is larger than twice the leaf count of optimal. 2628 vs. \(2 (52) = 104\).
time = 6.87, size = 2628, normalized size = 39.82 \begin {gather*} \text {Too large to display} \end {gather*}

Verification of antiderivative is not currently implemented for this CAS.

[In]

integrate(x^3/(-d*x^3+8*c)/(d*x^3+c)^(3/2),x, algorithm="fricas")

[Out]

1/486*(4*sqrt(3)*(c*d^3*x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*arctan(1/9*((9*sqrt(3)*c^6*d^8*x^5*(1/(c^7*d^8))^(5
/6) + 3*sqrt(3)*(5*c^4*d^5*x^4 + 8*c^5*d^4*x)*sqrt(1/(c^7*d^8)) - sqrt(3)*(c*d^3*x^6 - 40*c^2*d^2*x^3 - 32*c^3
*d)*(1/(c^7*d^8))^(1/6))*sqrt(d*x^3 + c) - (12*sqrt(3)*(c^5*d^7*x^6 - c^6*d^6*x^3 - 2*c^7*d^5)*(1/(c^7*d^8))^(
2/3) + 18*sqrt(3)*(c^3*d^4*x^5 + c^4*d^3*x^2)*(1/(c^7*d^8))^(1/3) + 3*sqrt(3)*(d^2*x^7 + 5*c*d*x^4 + 4*c^2*x)
- sqrt(d*x^3 + c)*(9*sqrt(3)*(c^6*d^8*x^5 + 2*c^7*d^7*x^2)*(1/(c^7*d^8))^(5/6) + 3*sqrt(3)*(7*c^4*d^5*x^4 + 4*
c^5*d^4*x)*sqrt(1/(c^7*d^8)) + sqrt(3)*(c*d^3*x^6 + 32*c^2*d^2*x^3 + 40*c^3*d)*(1/(c^7*d^8))^(1/6)))*sqrt((d^3
*x^9 - 276*c*d^2*x^6 - 1608*c^2*d*x^3 - 1088*c^3 + 18*(c^5*d^8*x^8 + 20*c^6*d^7*x^5 - 8*c^7*d^6*x^2)*(1/(c^7*d
^8))^(2/3) + 6*sqrt(d*x^3 + c)*((c^6*d^9*x^7 - 28*c^7*d^8*x^4 - 272*c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + 4*(c^4*d^
6*x^6 + 41*c^5*d^5*x^3 + 40*c^6*d^4)*sqrt(1/(c^7*d^8)) - 24*(c^2*d^3*x^5 + c^3*d^2*x^2)*(1/(c^7*d^8))^(1/6)) -
 18*(c^3*d^5*x^7 - 52*c^4*d^4*x^4 - 80*c^5*d^3*x)*(1/(c^7*d^8))^(1/3))/(d^3*x^9 - 24*c*d^2*x^6 + 192*c^2*d*x^3
 - 512*c^3)))/(d^2*x^7 - 7*c*d*x^4 - 8*c^2*x)) + 4*sqrt(3)*(c*d^3*x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*arctan(1/
9*((9*sqrt(3)*c^6*d^8*x^5*(1/(c^7*d^8))^(5/6) + 3*sqrt(3)*(5*c^4*d^5*x^4 + 8*c^5*d^4*x)*sqrt(1/(c^7*d^8)) - sq
rt(3)*(c*d^3*x^6 - 40*c^2*d^2*x^3 - 32*c^3*d)*(1/(c^7*d^8))^(1/6))*sqrt(d*x^3 + c) + (12*sqrt(3)*(c^5*d^7*x^6
- c^6*d^6*x^3 - 2*c^7*d^5)*(1/(c^7*d^8))^(2/3) + 18*sqrt(3)*(c^3*d^4*x^5 + c^4*d^3*x^2)*(1/(c^7*d^8))^(1/3) +
3*sqrt(3)*(d^2*x^7 + 5*c*d*x^4 + 4*c^2*x) + sqrt(d*x^3 + c)*(9*sqrt(3)*(c^6*d^8*x^5 + 2*c^7*d^7*x^2)*(1/(c^7*d
^8))^(5/6) + 3*sqrt(3)*(7*c^4*d^5*x^4 + 4*c^5*d^4*x)*sqrt(1/(c^7*d^8)) + sqrt(3)*(c*d^3*x^6 + 32*c^2*d^2*x^3 +
 40*c^3*d)*(1/(c^7*d^8))^(1/6)))*sqrt((d^3*x^9 - 276*c*d^2*x^6 - 1608*c^2*d*x^3 - 1088*c^3 + 18*(c^5*d^8*x^8 +
 20*c^6*d^7*x^5 - 8*c^7*d^6*x^2)*(1/(c^7*d^8))^(2/3) - 6*sqrt(d*x^3 + c)*((c^6*d^9*x^7 - 28*c^7*d^8*x^4 - 272*
c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + 4*(c^4*d^6*x^6 + 41*c^5*d^5*x^3 + 40*c^6*d^4)*sqrt(1/(c^7*d^8)) - 24*(c^2*d^3
*x^5 + c^3*d^2*x^2)*(1/(c^7*d^8))^(1/6)) - 18*(c^3*d^5*x^7 - 52*c^4*d^4*x^4 - 80*c^5*d^3*x)*(1/(c^7*d^8))^(1/3
))/(d^3*x^9 - 24*c*d^2*x^6 + 192*c^2*d*x^3 - 512*c^3)))/(d^2*x^7 - 7*c*d*x^4 - 8*c^2*x)) - 36*sqrt(d*x^3 + c)*
d*x + 36*(d*x^3 + c)*sqrt(d)*weierstrassPInverse(0, -4*c/d, x) + 2*(c*d^3*x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*l
og((d^3*x^9 + 318*c*d^2*x^6 + 1200*c^2*d*x^3 + 640*c^3 + 18*(c^5*d^8*x^8 + 38*c^6*d^7*x^5 + 64*c^7*d^6*x^2)*(1
/(c^7*d^8))^(2/3) + 6*sqrt(d*x^3 + c)*((c^6*d^9*x^7 + 80*c^7*d^8*x^4 + 160*c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + (7
*c^4*d^6*x^6 + 152*c^5*d^5*x^3 + 64*c^6*d^4)*sqrt(1/(c^7*d^8)) + 6*(5*c^2*d^3*x^5 + 32*c^3*d^2*x^2)*(1/(c^7*d^
8))^(1/6)) + 18*(5*c^3*d^5*x^7 + 64*c^4*d^4*x^4 + 32*c^5*d^3*x)*(1/(c^7*d^8))^(1/3))/(d^3*x^9 - 24*c*d^2*x^6 +
 192*c^2*d*x^3 - 512*c^3)) - 2*(c*d^3*x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*log((d^3*x^9 + 318*c*d^2*x^6 + 1200*c
^2*d*x^3 + 640*c^3 + 18*(c^5*d^8*x^8 + 38*c^6*d^7*x^5 + 64*c^7*d^6*x^2)*(1/(c^7*d^8))^(2/3) - 6*sqrt(d*x^3 + c
)*((c^6*d^9*x^7 + 80*c^7*d^8*x^4 + 160*c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + (7*c^4*d^6*x^6 + 152*c^5*d^5*x^3 + 64*
c^6*d^4)*sqrt(1/(c^7*d^8)) + 6*(5*c^2*d^3*x^5 + 32*c^3*d^2*x^2)*(1/(c^7*d^8))^(1/6)) + 18*(5*c^3*d^5*x^7 + 64*
c^4*d^4*x^4 + 32*c^5*d^3*x)*(1/(c^7*d^8))^(1/3))/(d^3*x^9 - 24*c*d^2*x^6 + 192*c^2*d*x^3 - 512*c^3)) + (c*d^3*
x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*log((d^3*x^9 - 276*c*d^2*x^6 - 1608*c^2*d*x^3 - 1088*c^3 + 18*(c^5*d^8*x^8
+ 20*c^6*d^7*x^5 - 8*c^7*d^6*x^2)*(1/(c^7*d^8))^(2/3) + 6*sqrt(d*x^3 + c)*((c^6*d^9*x^7 - 28*c^7*d^8*x^4 - 272
*c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + 4*(c^4*d^6*x^6 + 41*c^5*d^5*x^3 + 40*c^6*d^4)*sqrt(1/(c^7*d^8)) - 24*(c^2*d^
3*x^5 + c^3*d^2*x^2)*(1/(c^7*d^8))^(1/6)) - 18*(c^3*d^5*x^7 - 52*c^4*d^4*x^4 - 80*c^5*d^3*x)*(1/(c^7*d^8))^(1/
3))/(d^3*x^9 - 24*c*d^2*x^6 + 192*c^2*d*x^3 - 512*c^3)) - (c*d^3*x^3 + c^2*d^2)*(1/(c^7*d^8))^(1/6)*log((d^3*x
^9 - 276*c*d^2*x^6 - 1608*c^2*d*x^3 - 1088*c^3 + 18*(c^5*d^8*x^8 + 20*c^6*d^7*x^5 - 8*c^7*d^6*x^2)*(1/(c^7*d^8
))^(2/3) - 6*sqrt(d*x^3 + c)*((c^6*d^9*x^7 - 28*c^7*d^8*x^4 - 272*c^8*d^7*x)*(1/(c^7*d^8))^(5/6) + 4*(c^4*d^6*
x^6 + 41*c^5*d^5*x^3 + 40*c^6*d^4)*sqrt(1/(c^7*d^8)) - 24*(c^2*d^3*x^5 + c^3*d^2*x^2)*(1/(c^7*d^8))^(1/6)) - 1
8*(c^3*d^5*x^7 - 52*c^4*d^4*x^4 - 80*c^5*d^3*x)*(1/(c^7*d^8))^(1/3))/(d^3*x^9 - 24*c*d^2*x^6 + 192*c^2*d*x^3 -
 512*c^3)))/(c*d^3*x^3 + c^2*d^2)

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Sympy [F(-1)] Timed out
time = 0.00, size = 0, normalized size = 0.00 \begin {gather*} \text {Timed out} \end {gather*}

Verification of antiderivative is not currently implemented for this CAS.

[In]

integrate(x**3/(-d*x**3+8*c)/(d*x**3+c)**(3/2),x)

[Out]

Timed out

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Giac [F]
time = 0.00, size = 0, normalized size = 0.00 \begin {gather*} \text {could not integrate} \end {gather*}

Verification of antiderivative is not currently implemented for this CAS.

[In]

integrate(x^3/(-d*x^3+8*c)/(d*x^3+c)^(3/2),x, algorithm="giac")

[Out]

integrate(-x^3/((d*x^3 + c)^(3/2)*(d*x^3 - 8*c)), x)

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Mupad [F]
time = 0.00, size = -1, normalized size = -0.02 \begin {gather*} \int \frac {x^3}{{\left (d\,x^3+c\right )}^{3/2}\,\left (8\,c-d\,x^3\right )} \,d x \end {gather*}

Verification of antiderivative is not currently implemented for this CAS.

[In]

int(x^3/((c + d*x^3)^(3/2)*(8*c - d*x^3)),x)

[Out]

int(x^3/((c + d*x^3)^(3/2)*(8*c - d*x^3)), x)

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