Integrand size = 19, antiderivative size = 196 \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=-\frac {1}{2} d^{4/3} x+\frac {3 d \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}}{b c n \log (F)}+\frac {3 \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3}}{4 b c n \log (F)}-\frac {\sqrt {3} d^{4/3} \arctan \left (\frac {\sqrt [3]{d}+2 \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}}{\sqrt {3} \sqrt [3]{d}}\right )}{b c n \log (F)}+\frac {3 d^{4/3} \log \left (\sqrt [3]{d}-\sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}\right )}{2 b c n \log (F)} \] Output:
-1/2*d^(4/3)*x+3*d*(d+e*(F^(c*(b*x+a)))^n)^(1/3)/b/c/n/ln(F)+3/4*(d+e*(F^( c*(b*x+a)))^n)^(4/3)/b/c/n/ln(F)-3^(1/2)*d^(4/3)*arctan(1/3*(d^(1/3)+2*(d+ e*(F^(c*(b*x+a)))^n)^(1/3))*3^(1/2)/d^(1/3))/b/c/n/ln(F)+3/2*d^(4/3)*ln(d^ (1/3)-(d+e*(F^(c*(b*x+a)))^n)^(1/3))/b/c/n/ln(F)
Time = 0.52 (sec) , antiderivative size = 213, normalized size of antiderivative = 1.09 \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=\frac {15 d \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}+3 e \left (F^{c (a+b x)}\right )^n \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}-4 \sqrt {3} d^{4/3} \arctan \left (\frac {1+\frac {2 \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}}{\sqrt [3]{d}}}{\sqrt {3}}\right )+4 d^{4/3} \log \left (\sqrt [3]{d}-\sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}\right )-2 d^{4/3} \log \left (d^{2/3}+\sqrt [3]{d} \sqrt [3]{d+e \left (F^{c (a+b x)}\right )^n}+\left (d+e \left (F^{c (a+b x)}\right )^n\right )^{2/3}\right )}{4 b c n \log (F)} \] Input:
Integrate[(d + e*(F^(c*(a + b*x)))^n)^(4/3),x]
Output:
(15*d*(d + e*(F^(c*(a + b*x)))^n)^(1/3) + 3*e*(F^(c*(a + b*x)))^n*(d + e*( F^(c*(a + b*x)))^n)^(1/3) - 4*Sqrt[3]*d^(4/3)*ArcTan[(1 + (2*(d + e*(F^(c* (a + b*x)))^n)^(1/3))/d^(1/3))/Sqrt[3]] + 4*d^(4/3)*Log[d^(1/3) - (d + e*( F^(c*(a + b*x)))^n)^(1/3)] - 2*d^(4/3)*Log[d^(2/3) + d^(1/3)*(d + e*(F^(c* (a + b*x)))^n)^(1/3) + (d + e*(F^(c*(a + b*x)))^n)^(2/3)])/(4*b*c*n*Log[F] )
Time = 0.46 (sec) , antiderivative size = 170, normalized size of antiderivative = 0.87, number of steps used = 9, number of rules used = 8, \(\frac {\text {number of rules}}{\text {integrand size}}\) = 0.421, Rules used = {2720, 798, 60, 60, 69, 16, 1082, 217}
Below are the steps used by Rubi to obtain the solution. The rule number used for the transformation is given above next to the arrow. The rules definitions used are listed below.
| \(\displaystyle \int \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3} \, dx\) |
| \(\Big \downarrow \) 2720 |
| \(\displaystyle \frac {\int F^{-c (a+b x)} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}dF^{c (a+b x)}}{b c \log (F)}\) |
| \(\Big \downarrow \) 798 |
| \(\displaystyle \frac {\int F^{-c (a+b x)} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}d\left (F^{c (a+b x)}\right )^n}{b c n \log (F)}\) |
| \(\Big \downarrow \) 60 |
| \(\displaystyle \frac {d \int F^{-c (a+b x)} \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}d\left (F^{c (a+b x)}\right )^n+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
| \(\Big \downarrow \) 60 |
| \(\displaystyle \frac {d \left (d \int \frac {F^{-c (a+b x)}}{\left (e \left (F^{c (a+b x)}\right )^n+d\right )^{2/3}}d\left (F^{c (a+b x)}\right )^n+3 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
| \(\Big \downarrow \) 69 |
| \(\displaystyle \frac {d \left (d \left (-\frac {3 \int \frac {1}{\sqrt [3]{d}-\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}d\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}{2 d^{2/3}}-\frac {3 \int \frac {1}{F^{2 c (a+b x)}+d^{2/3}+\sqrt [3]{d} \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}d\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}{2 \sqrt [3]{d}}-\frac {\log \left (\left (F^{c (a+b x)}\right )^n\right )}{2 d^{2/3}}\right )+3 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
| \(\Big \downarrow \) 16 |
| \(\displaystyle \frac {d \left (d \left (-\frac {3 \int \frac {1}{F^{2 c (a+b x)}+d^{2/3}+\sqrt [3]{d} \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}d\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}{2 \sqrt [3]{d}}+\frac {3 \log \left (\sqrt [3]{d}-\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )}{2 d^{2/3}}-\frac {\log \left (\left (F^{c (a+b x)}\right )^n\right )}{2 d^{2/3}}\right )+3 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
| \(\Big \downarrow \) 1082 |
| \(\displaystyle \frac {d \left (d \left (\frac {3 \int \frac {1}{-F^{2 c (a+b x)}-3}d\left (\frac {2 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}{\sqrt [3]{d}}+1\right )}{d^{2/3}}+\frac {3 \log \left (\sqrt [3]{d}-\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )}{2 d^{2/3}}-\frac {\log \left (\left (F^{c (a+b x)}\right )^n\right )}{2 d^{2/3}}\right )+3 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
| \(\Big \downarrow \) 217 |
| \(\displaystyle \frac {d \left (d \left (-\frac {\sqrt {3} \arctan \left (\frac {\frac {2 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}}{\sqrt [3]{d}}+1}{\sqrt {3}}\right )}{d^{2/3}}+\frac {3 \log \left (\sqrt [3]{d}-\sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )}{2 d^{2/3}}-\frac {\log \left (\left (F^{c (a+b x)}\right )^n\right )}{2 d^{2/3}}\right )+3 \sqrt [3]{e \left (F^{c (a+b x)}\right )^n+d}\right )+\frac {3}{4} \left (e \left (F^{c (a+b x)}\right )^n+d\right )^{4/3}}{b c n \log (F)}\) |
Input:
Int[(d + e*(F^(c*(a + b*x)))^n)^(4/3),x]
Output:
((3*(d + e*(F^(c*(a + b*x)))^n)^(4/3))/4 + d*(3*(d + e*(F^(c*(a + b*x)))^n )^(1/3) + d*(-((Sqrt[3]*ArcTan[(1 + (2*(d + e*(F^(c*(a + b*x)))^n)^(1/3))/ d^(1/3))/Sqrt[3]])/d^(2/3)) - Log[(F^(c*(a + b*x)))^n]/(2*d^(2/3)) + (3*Lo g[d^(1/3) - (d + e*(F^(c*(a + b*x)))^n)^(1/3)])/(2*d^(2/3)))))/(b*c*n*Log[ F])
Int[(c_.)/((a_.) + (b_.)*(x_)), x_Symbol] :> Simp[c*(Log[RemoveContent[a + b*x, x]]/b), x] /; FreeQ[{a, b, c}, x]
Int[((a_.) + (b_.)*(x_))^(m_)*((c_.) + (d_.)*(x_))^(n_), x_Symbol] :> Simp[ (a + b*x)^(m + 1)*((c + d*x)^n/(b*(m + n + 1))), x] + Simp[n*((b*c - a*d)/( b*(m + n + 1))) Int[(a + b*x)^m*(c + d*x)^(n - 1), x], x] /; FreeQ[{a, b, c, d}, x] && GtQ[n, 0] && NeQ[m + n + 1, 0] && !(IGtQ[m, 0] && ( !Integer Q[n] || (GtQ[m, 0] && LtQ[m - n, 0]))) && !ILtQ[m + n + 2, 0] && IntLinear Q[a, b, c, d, m, n, x]
Int[1/(((a_.) + (b_.)*(x_))*((c_.) + (d_.)*(x_))^(2/3)), x_Symbol] :> With[ {q = Rt[(b*c - a*d)/b, 3]}, Simp[-Log[RemoveContent[a + b*x, x]]/(2*b*q^2), x] + (-Simp[3/(2*b*q) Subst[Int[1/(q^2 + q*x + x^2), x], x, (c + d*x)^(1 /3)], x] - Simp[3/(2*b*q^2) Subst[Int[1/(q - x), x], x, (c + d*x)^(1/3)], x])] /; FreeQ[{a, b, c, d}, x] && PosQ[(b*c - a*d)/b]
Int[((a_) + (b_.)*(x_)^2)^(-1), x_Symbol] :> Simp[(-(Rt[-a, 2]*Rt[-b, 2])^( -1))*ArcTan[Rt[-b, 2]*(x/Rt[-a, 2])], x] /; FreeQ[{a, b}, x] && PosQ[a/b] & & (LtQ[a, 0] || LtQ[b, 0])
Int[(x_)^(m_.)*((a_) + (b_.)*(x_)^(n_))^(p_), x_Symbol] :> Simp[1/n Subst [Int[x^(Simplify[(m + 1)/n] - 1)*(a + b*x)^p, x], x, x^n], x] /; FreeQ[{a, b, m, n, p}, x] && IntegerQ[Simplify[(m + 1)/n]]
Int[((a_) + (b_.)*(x_) + (c_.)*(x_)^2)^(-1), x_Symbol] :> With[{q = 1 - 4*S implify[a*(c/b^2)]}, Simp[-2/b Subst[Int[1/(q - x^2), x], x, 1 + 2*c*(x/b )], x] /; RationalQ[q] && (EqQ[q^2, 1] || !RationalQ[b^2 - 4*a*c])] /; Fre eQ[{a, b, c}, x]
Int[u_, x_Symbol] :> With[{v = FunctionOfExponential[u, x]}, Simp[v/D[v, x] Subst[Int[FunctionOfExponentialFunction[u, x]/x, x], x, v], x]] /; Funct ionOfExponentialQ[u, x] && !MatchQ[u, (w_)*((a_.)*(v_)^(n_))^(m_) /; FreeQ [{a, m, n}, x] && IntegerQ[m*n]] && !MatchQ[u, E^((c_.)*((a_.) + (b_.)*x)) *(F_)[v_] /; FreeQ[{a, b, c}, x] && InverseFunctionQ[F[x]]]
Time = 0.10 (sec) , antiderivative size = 176, normalized size of antiderivative = 0.90
| method | result | size |
| derivativedivides | \(\frac {\frac {3 {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {4}{3}}}{4}+3 d {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}+3 \left (\frac {\ln \left ({\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}-d^{\frac {1}{3}}\right )}{3 d^{\frac {2}{3}}}-\frac {\ln \left ({\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {2}{3}}+d^{\frac {1}{3}} {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}+d^{\frac {2}{3}}\right )}{6 d^{\frac {2}{3}}}-\frac {\sqrt {3}\, \arctan \left (\frac {\sqrt {3}\, \left (\frac {2 {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}}{d^{\frac {1}{3}}}+1\right )}{3}\right )}{3 d^{\frac {2}{3}}}\right ) d^{2}}{\ln \left (F \right ) b c n}\) | \(176\) |
| default | \(\frac {\frac {3 {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {4}{3}}}{4}+3 d {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}+3 \left (\frac {\ln \left ({\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}-d^{\frac {1}{3}}\right )}{3 d^{\frac {2}{3}}}-\frac {\ln \left ({\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {2}{3}}+d^{\frac {1}{3}} {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}+d^{\frac {2}{3}}\right )}{6 d^{\frac {2}{3}}}-\frac {\sqrt {3}\, \arctan \left (\frac {\sqrt {3}\, \left (\frac {2 {\left (d +e \left (F^{c \left (b x +a \right )}\right )^{n}\right )}^{\frac {1}{3}}}{d^{\frac {1}{3}}}+1\right )}{3}\right )}{3 d^{\frac {2}{3}}}\right ) d^{2}}{\ln \left (F \right ) b c n}\) | \(176\) |
Input:
int((d+e*(F^(c*(b*x+a)))^n)^(4/3),x,method=_RETURNVERBOSE)
Output:
1/ln(F)/b/c/n*(3/4*(d+e*(F^(c*(b*x+a)))^n)^(4/3)+3*d*(d+e*(F^(c*(b*x+a)))^ n)^(1/3)+3*(1/3/d^(2/3)*ln((d+e*(F^(c*(b*x+a)))^n)^(1/3)-d^(1/3))-1/6/d^(2 /3)*ln((d+e*(F^(c*(b*x+a)))^n)^(2/3)+d^(1/3)*(d+e*(F^(c*(b*x+a)))^n)^(1/3) +d^(2/3))-1/3/d^(2/3)*3^(1/2)*arctan(1/3*3^(1/2)*(2/d^(1/3)*(d+e*(F^(c*(b* x+a)))^n)^(1/3)+1)))*d^2)
Time = 0.08 (sec) , antiderivative size = 180, normalized size of antiderivative = 0.92 \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=-\frac {4 \, \sqrt {3} d^{\frac {4}{3}} \arctan \left (\frac {2 \, \sqrt {3} {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} d^{\frac {2}{3}} + \sqrt {3} d}{3 \, d}\right ) + 2 \, d^{\frac {4}{3}} \log \left ({\left (F^{b c n x + a c n} e + d\right )}^{\frac {2}{3}} + {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} d^{\frac {1}{3}} + d^{\frac {2}{3}}\right ) - 4 \, d^{\frac {4}{3}} \log \left ({\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} - d^{\frac {1}{3}}\right ) - 3 \, {\left (F^{b c n x + a c n} e + 5 \, d\right )} {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}}}{4 \, b c n \log \left (F\right )} \] Input:
integrate((d+e*(F^((b*x+a)*c))^n)^(4/3),x, algorithm="fricas")
Output:
-1/4*(4*sqrt(3)*d^(4/3)*arctan(1/3*(2*sqrt(3)*(F^(b*c*n*x + a*c*n)*e + d)^ (1/3)*d^(2/3) + sqrt(3)*d)/d) + 2*d^(4/3)*log((F^(b*c*n*x + a*c*n)*e + d)^ (2/3) + (F^(b*c*n*x + a*c*n)*e + d)^(1/3)*d^(1/3) + d^(2/3)) - 4*d^(4/3)*l og((F^(b*c*n*x + a*c*n)*e + d)^(1/3) - d^(1/3)) - 3*(F^(b*c*n*x + a*c*n)*e + 5*d)*(F^(b*c*n*x + a*c*n)*e + d)^(1/3))/(b*c*n*log(F))
Timed out. \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=\text {Timed out} \] Input:
integrate((d+e*(F**((b*x+a)*c))**n)**(4/3),x)
Output:
Timed out
Time = 0.13 (sec) , antiderivative size = 215, normalized size of antiderivative = 1.10 \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=-\frac {\sqrt {3} d^{\frac {4}{3}} \arctan \left (\frac {\sqrt {3} {\left (2 \, {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} + d^{\frac {1}{3}}\right )}}{3 \, d^{\frac {1}{3}}}\right )}{b c n \log \left (F\right )} - \frac {d^{\frac {4}{3}} \log \left ({\left (F^{b c n x + a c n} e + d\right )}^{\frac {2}{3}} + {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} d^{\frac {1}{3}} + d^{\frac {2}{3}}\right )}{2 \, b c n \log \left (F\right )} + \frac {d^{\frac {4}{3}} \log \left ({\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} - d^{\frac {1}{3}}\right )}{b c n \log \left (F\right )} + \frac {3 \, {\left ({\left (F^{b c n x + a c n} e + d\right )}^{\frac {4}{3}} + 4 \, {\left (F^{b c n x + a c n} e + d\right )}^{\frac {1}{3}} d\right )}}{4 \, b c n \log \left (F\right )} \] Input:
integrate((d+e*(F^((b*x+a)*c))^n)^(4/3),x, algorithm="maxima")
Output:
-sqrt(3)*d^(4/3)*arctan(1/3*sqrt(3)*(2*(F^(b*c*n*x + a*c*n)*e + d)^(1/3) + d^(1/3))/d^(1/3))/(b*c*n*log(F)) - 1/2*d^(4/3)*log((F^(b*c*n*x + a*c*n)*e + d)^(2/3) + (F^(b*c*n*x + a*c*n)*e + d)^(1/3)*d^(1/3) + d^(2/3))/(b*c*n* log(F)) + d^(4/3)*log((F^(b*c*n*x + a*c*n)*e + d)^(1/3) - d^(1/3))/(b*c*n* log(F)) + 3/4*((F^(b*c*n*x + a*c*n)*e + d)^(4/3) + 4*(F^(b*c*n*x + a*c*n)* e + d)^(1/3)*d)/(b*c*n*log(F))
Time = 0.16 (sec) , antiderivative size = 185, normalized size of antiderivative = 0.94 \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=-\frac {4 \, \sqrt {3} d^{\frac {4}{3}} \arctan \left (\frac {\sqrt {3} {\left (2 \, {\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {1}{3}} + d^{\frac {1}{3}}\right )}}{3 \, d^{\frac {1}{3}}}\right ) + 2 \, d^{\frac {4}{3}} \log \left ({\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {2}{3}} + {\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {1}{3}} d^{\frac {1}{3}} + d^{\frac {2}{3}}\right ) - 4 \, d^{\frac {4}{3}} \log \left ({\left | {\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {1}{3}} - d^{\frac {1}{3}} \right |}\right ) - 3 \, {\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {4}{3}} - 12 \, {\left (F^{b c n x} F^{a c n} e + d\right )}^{\frac {1}{3}} d}{4 \, b c n \log \left (F\right )} \] Input:
integrate((d+e*(F^((b*x+a)*c))^n)^(4/3),x, algorithm="giac")
Output:
-1/4*(4*sqrt(3)*d^(4/3)*arctan(1/3*sqrt(3)*(2*(F^(b*c*n*x)*F^(a*c*n)*e + d )^(1/3) + d^(1/3))/d^(1/3)) + 2*d^(4/3)*log((F^(b*c*n*x)*F^(a*c*n)*e + d)^ (2/3) + (F^(b*c*n*x)*F^(a*c*n)*e + d)^(1/3)*d^(1/3) + d^(2/3)) - 4*d^(4/3) *log(abs((F^(b*c*n*x)*F^(a*c*n)*e + d)^(1/3) - d^(1/3))) - 3*(F^(b*c*n*x)* F^(a*c*n)*e + d)^(4/3) - 12*(F^(b*c*n*x)*F^(a*c*n)*e + d)^(1/3)*d)/(b*c*n* log(F))
Timed out. \[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=\int {\left (d+e\,{\left (F^{c\,\left (a+b\,x\right )}\right )}^n\right )}^{4/3} \,d x \] Input:
int((d + e*(F^(c*(a + b*x)))^n)^(4/3),x)
Output:
int((d + e*(F^(c*(a + b*x)))^n)^(4/3), x)
\[ \int \left (d+e \left (F^{c (a+b x)}\right )^n\right )^{4/3} \, dx=\frac {3 f^{b c n x +a c n} \left (f^{b c n x +a c n} e +d \right )^{\frac {1}{3}} e +15 \left (f^{b c n x +a c n} e +d \right )^{\frac {1}{3}} d +4 \left (\int \frac {1}{\left (f^{b c n x +a c n} e +d \right )^{\frac {2}{3}}}d x \right ) \mathrm {log}\left (f \right ) b c \,d^{2} n}{4 \,\mathrm {log}\left (f \right ) b c n} \] Input:
int((d+e*(F^((b*x+a)*c))^n)^(4/3),x)
Output:
(3*f**(a*c*n + b*c*n*x)*(f**(a*c*n + b*c*n*x)*e + d)**(1/3)*e + 15*(f**(a* c*n + b*c*n*x)*e + d)**(1/3)*d + 4*int((f**(a*c*n + b*c*n*x)*e + d)**(1/3) /(f**(a*c*n + b*c*n*x)*e + d),x)*log(f)*b*c*d**2*n)/(4*log(f)*b*c*n)