3.5.72 \(\int (c+a^2 c x^2)^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx\) [472]

3.5.72.1 Optimal result
3.5.72.2 Mathematica [A] (verified)
3.5.72.3 Rubi [C] (verified)
3.5.72.4 Maple [F]
3.5.72.5 Fricas [F(-2)]
3.5.72.6 Sympy [F]
3.5.72.7 Maxima [F]
3.5.72.8 Giac [F(-2)]
3.5.72.9 Mupad [F(-1)]

3.5.72.1 Optimal result

Integrand size = 23, antiderivative size = 319 \[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\frac {3}{8} c x \sqrt {c+a^2 c x^2} \sqrt {\text {arcsinh}(a x)}+\frac {1}{4} x \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)}+\frac {c \sqrt {c+a^2 c x^2} \text {arcsinh}(a x)^{3/2}}{4 a \sqrt {1+a^2 x^2}}+\frac {c \sqrt {\pi } \sqrt {c+a^2 c x^2} \text {erf}\left (2 \sqrt {\text {arcsinh}(a x)}\right )}{256 a \sqrt {1+a^2 x^2}}+\frac {c \sqrt {\frac {\pi }{2}} \sqrt {c+a^2 c x^2} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )}{16 a \sqrt {1+a^2 x^2}}-\frac {c \sqrt {\pi } \sqrt {c+a^2 c x^2} \text {erfi}\left (2 \sqrt {\text {arcsinh}(a x)}\right )}{256 a \sqrt {1+a^2 x^2}}-\frac {c \sqrt {\frac {\pi }{2}} \sqrt {c+a^2 c x^2} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )}{16 a \sqrt {1+a^2 x^2}} \]

output
1/4*c*arcsinh(a*x)^(3/2)*(a^2*c*x^2+c)^(1/2)/a/(a^2*x^2+1)^(1/2)+1/32*c*er 
f(2^(1/2)*arcsinh(a*x)^(1/2))*2^(1/2)*Pi^(1/2)*(a^2*c*x^2+c)^(1/2)/a/(a^2* 
x^2+1)^(1/2)-1/32*c*erfi(2^(1/2)*arcsinh(a*x)^(1/2))*2^(1/2)*Pi^(1/2)*(a^2 
*c*x^2+c)^(1/2)/a/(a^2*x^2+1)^(1/2)+1/256*c*erf(2*arcsinh(a*x)^(1/2))*Pi^( 
1/2)*(a^2*c*x^2+c)^(1/2)/a/(a^2*x^2+1)^(1/2)-1/256*c*erfi(2*arcsinh(a*x)^( 
1/2))*Pi^(1/2)*(a^2*c*x^2+c)^(1/2)/a/(a^2*x^2+1)^(1/2)+1/4*x*(a^2*c*x^2+c) 
^(3/2)*arcsinh(a*x)^(1/2)+3/8*c*x*(a^2*c*x^2+c)^(1/2)*arcsinh(a*x)^(1/2)
 
3.5.72.2 Mathematica [A] (verified)

Time = 0.18 (sec) , antiderivative size = 142, normalized size of antiderivative = 0.45 \[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\frac {c \sqrt {c+a^2 c x^2} \left (-\sqrt {-\text {arcsinh}(a x)} \Gamma \left (\frac {3}{2},-4 \text {arcsinh}(a x)\right )-8 \sqrt {2} \sqrt {-\text {arcsinh}(a x)} \Gamma \left (\frac {3}{2},-2 \text {arcsinh}(a x)\right )+\sqrt {\text {arcsinh}(a x)} \left (32 \text {arcsinh}(a x)^{3/2}-8 \sqrt {2} \Gamma \left (\frac {3}{2},2 \text {arcsinh}(a x)\right )-\Gamma \left (\frac {3}{2},4 \text {arcsinh}(a x)\right )\right )\right )}{128 a \sqrt {1+a^2 x^2} \sqrt {\text {arcsinh}(a x)}} \]

input
Integrate[(c + a^2*c*x^2)^(3/2)*Sqrt[ArcSinh[a*x]],x]
 
output
(c*Sqrt[c + a^2*c*x^2]*(-(Sqrt[-ArcSinh[a*x]]*Gamma[3/2, -4*ArcSinh[a*x]]) 
 - 8*Sqrt[2]*Sqrt[-ArcSinh[a*x]]*Gamma[3/2, -2*ArcSinh[a*x]] + Sqrt[ArcSin 
h[a*x]]*(32*ArcSinh[a*x]^(3/2) - 8*Sqrt[2]*Gamma[3/2, 2*ArcSinh[a*x]] - Ga 
mma[3/2, 4*ArcSinh[a*x]])))/(128*a*Sqrt[1 + a^2*x^2]*Sqrt[ArcSinh[a*x]])
 
3.5.72.3 Rubi [C] (verified)

Result contains complex when optimal does not.

Time = 2.02 (sec) , antiderivative size = 332, normalized size of antiderivative = 1.04, number of steps used = 16, number of rules used = 15, \(\frac {\text {number of rules}}{\text {integrand size}}\) = 0.652, Rules used = {6201, 6200, 6195, 5971, 27, 3042, 26, 3789, 2611, 2633, 2634, 6198, 6234, 5971, 2009}

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.

\(\displaystyle \int \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2} \, dx\)

\(\Big \downarrow \) 6201

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \int \sqrt {a^2 c x^2+c} \sqrt {\text {arcsinh}(a x)}dx+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 6200

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (-\frac {a \sqrt {a^2 c x^2+c} \int \frac {x}{\sqrt {\text {arcsinh}(a x)}}dx}{4 \sqrt {a^2 x^2+1}}+\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 6195

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (-\frac {\sqrt {a^2 c x^2+c} \int \frac {a x \sqrt {a^2 x^2+1}}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{4 a \sqrt {a^2 x^2+1}}+\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 5971

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}-\frac {\sqrt {a^2 c x^2+c} \int \frac {\sinh (2 \text {arcsinh}(a x))}{2 \sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{4 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 27

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}-\frac {\sqrt {a^2 c x^2+c} \int \frac {\sinh (2 \text {arcsinh}(a x))}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{8 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 3042

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}-\frac {\sqrt {a^2 c x^2+c} \int -\frac {i \sin (2 i \text {arcsinh}(a x))}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{8 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 26

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {i \sqrt {a^2 c x^2+c} \int \frac {\sin (2 i \text {arcsinh}(a x))}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{8 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 3789

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \int \frac {e^{2 \text {arcsinh}(a x)}}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)-\frac {1}{2} i \int \frac {e^{-2 \text {arcsinh}(a x)}}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 2611

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (i \int e^{2 \text {arcsinh}(a x)}d\sqrt {\text {arcsinh}(a x)}-i \int e^{-2 \text {arcsinh}(a x)}d\sqrt {\text {arcsinh}(a x)}\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 2633

\(\displaystyle \frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-i \int e^{-2 \text {arcsinh}(a x)}d\sqrt {\text {arcsinh}(a x)}\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )-\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 2634

\(\displaystyle \frac {3}{4} c \left (\frac {\sqrt {a^2 c x^2+c} \int \frac {\sqrt {\text {arcsinh}(a x)}}{\sqrt {a^2 x^2+1}}dx}{2 \sqrt {a^2 x^2+1}}+\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )-\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 6198

\(\displaystyle -\frac {a c \sqrt {a^2 c x^2+c} \int \frac {x \left (a^2 x^2+1\right )}{\sqrt {\text {arcsinh}(a x)}}dx}{8 \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\text {arcsinh}(a x)^{3/2} \sqrt {a^2 c x^2+c}}{3 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 6234

\(\displaystyle -\frac {c \sqrt {a^2 c x^2+c} \int \frac {a x \left (a^2 x^2+1\right )^{3/2}}{\sqrt {\text {arcsinh}(a x)}}d\text {arcsinh}(a x)}{8 a \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\text {arcsinh}(a x)^{3/2} \sqrt {a^2 c x^2+c}}{3 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 5971

\(\displaystyle -\frac {c \sqrt {a^2 c x^2+c} \int \left (\frac {\sinh (2 \text {arcsinh}(a x))}{4 \sqrt {\text {arcsinh}(a x)}}+\frac {\sinh (4 \text {arcsinh}(a x))}{8 \sqrt {\text {arcsinh}(a x)}}\right )d\text {arcsinh}(a x)}{8 a \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\text {arcsinh}(a x)^{3/2} \sqrt {a^2 c x^2+c}}{3 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

\(\Big \downarrow \) 2009

\(\displaystyle -\frac {c \sqrt {a^2 c x^2+c} \left (-\frac {1}{32} \sqrt {\pi } \text {erf}\left (2 \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{8} \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )+\frac {1}{32} \sqrt {\pi } \text {erfi}\left (2 \sqrt {\text {arcsinh}(a x)}\right )+\frac {1}{8} \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {3}{4} c \left (\frac {i \sqrt {a^2 c x^2+c} \left (\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erfi}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )-\frac {1}{2} i \sqrt {\frac {\pi }{2}} \text {erf}\left (\sqrt {2} \sqrt {\text {arcsinh}(a x)}\right )\right )}{8 a \sqrt {a^2 x^2+1}}+\frac {\text {arcsinh}(a x)^{3/2} \sqrt {a^2 c x^2+c}}{3 a \sqrt {a^2 x^2+1}}+\frac {1}{2} x \sqrt {\text {arcsinh}(a x)} \sqrt {a^2 c x^2+c}\right )+\frac {1}{4} x \sqrt {\text {arcsinh}(a x)} \left (a^2 c x^2+c\right )^{3/2}\)

input
Int[(c + a^2*c*x^2)^(3/2)*Sqrt[ArcSinh[a*x]],x]
 
output
(x*(c + a^2*c*x^2)^(3/2)*Sqrt[ArcSinh[a*x]])/4 - (c*Sqrt[c + a^2*c*x^2]*(- 
1/32*(Sqrt[Pi]*Erf[2*Sqrt[ArcSinh[a*x]]]) - (Sqrt[Pi/2]*Erf[Sqrt[2]*Sqrt[A 
rcSinh[a*x]]])/8 + (Sqrt[Pi]*Erfi[2*Sqrt[ArcSinh[a*x]]])/32 + (Sqrt[Pi/2]* 
Erfi[Sqrt[2]*Sqrt[ArcSinh[a*x]]])/8))/(8*a*Sqrt[1 + a^2*x^2]) + (3*c*((x*S 
qrt[c + a^2*c*x^2]*Sqrt[ArcSinh[a*x]])/2 + (Sqrt[c + a^2*c*x^2]*ArcSinh[a* 
x]^(3/2))/(3*a*Sqrt[1 + a^2*x^2]) + ((I/8)*Sqrt[c + a^2*c*x^2]*((-1/2*I)*S 
qrt[Pi/2]*Erf[Sqrt[2]*Sqrt[ArcSinh[a*x]]] + (I/2)*Sqrt[Pi/2]*Erfi[Sqrt[2]* 
Sqrt[ArcSinh[a*x]]]))/(a*Sqrt[1 + a^2*x^2])))/4
 

3.5.72.3.1 Defintions of rubi rules used

rule 26
Int[(Complex[0, a_])*(Fx_), x_Symbol] :> Simp[(Complex[Identity[0], a])   I 
nt[Fx, x], x] /; FreeQ[a, x] && EqQ[a^2, 1]
 

rule 27
Int[(a_)*(Fx_), x_Symbol] :> Simp[a   Int[Fx, x], x] /; FreeQ[a, x] &&  !Ma 
tchQ[Fx, (b_)*(Gx_) /; FreeQ[b, x]]
 

rule 2009
Int[u_, x_Symbol] :> Simp[IntSum[u, x], x] /; SumQ[u]
 

rule 2611
Int[(F_)^((g_.)*((e_.) + (f_.)*(x_)))/Sqrt[(c_.) + (d_.)*(x_)], x_Symbol] : 
> Simp[2/d   Subst[Int[F^(g*(e - c*(f/d)) + f*g*(x^2/d)), x], x, Sqrt[c + d 
*x]], x] /; FreeQ[{F, c, d, e, f, g}, x] &&  !TrueQ[$UseGamma]
 

rule 2633
Int[(F_)^((a_.) + (b_.)*((c_.) + (d_.)*(x_))^2), x_Symbol] :> Simp[F^a*Sqrt 
[Pi]*(Erfi[(c + d*x)*Rt[b*Log[F], 2]]/(2*d*Rt[b*Log[F], 2])), x] /; FreeQ[{ 
F, a, b, c, d}, x] && PosQ[b]
 

rule 2634
Int[(F_)^((a_.) + (b_.)*((c_.) + (d_.)*(x_))^2), x_Symbol] :> Simp[F^a*Sqrt 
[Pi]*(Erf[(c + d*x)*Rt[(-b)*Log[F], 2]]/(2*d*Rt[(-b)*Log[F], 2])), x] /; Fr 
eeQ[{F, a, b, c, d}, x] && NegQ[b]
 

rule 3042
Int[u_, x_Symbol] :> Int[DeactivateTrig[u, x], x] /; FunctionOfTrigOfLinear 
Q[u, x]
 

rule 3789
Int[((c_.) + (d_.)*(x_))^(m_.)*sin[(e_.) + (f_.)*(x_)], x_Symbol] :> Simp[I 
/2   Int[(c + d*x)^m/E^(I*(e + f*x)), x], x] - Simp[I/2   Int[(c + d*x)^m*E 
^(I*(e + f*x)), x], x] /; FreeQ[{c, d, e, f, m}, x]
 

rule 5971
Int[Cosh[(a_.) + (b_.)*(x_)]^(p_.)*((c_.) + (d_.)*(x_))^(m_.)*Sinh[(a_.) + 
(b_.)*(x_)]^(n_.), x_Symbol] :> Int[ExpandTrigReduce[(c + d*x)^m, Sinh[a + 
b*x]^n*Cosh[a + b*x]^p, x], x] /; FreeQ[{a, b, c, d, m}, x] && IGtQ[n, 0] & 
& IGtQ[p, 0]
 

rule 6195
Int[((a_.) + ArcSinh[(c_.)*(x_)]*(b_.))^(n_)*(x_)^(m_.), x_Symbol] :> Simp[ 
1/(b*c^(m + 1))   Subst[Int[x^n*Sinh[-a/b + x/b]^m*Cosh[-a/b + x/b], x], x, 
 a + b*ArcSinh[c*x]], x] /; FreeQ[{a, b, c, n}, x] && IGtQ[m, 0]
 

rule 6198
Int[((a_.) + ArcSinh[(c_.)*(x_)]*(b_.))^(n_.)/Sqrt[(d_) + (e_.)*(x_)^2], x_ 
Symbol] :> Simp[(1/(b*c*(n + 1)))*Simp[Sqrt[1 + c^2*x^2]/Sqrt[d + e*x^2]]*( 
a + b*ArcSinh[c*x])^(n + 1), x] /; FreeQ[{a, b, c, d, e, n}, x] && EqQ[e, c 
^2*d] && NeQ[n, -1]
 

rule 6200
Int[((a_.) + ArcSinh[(c_.)*(x_)]*(b_.))^(n_.)*Sqrt[(d_) + (e_.)*(x_)^2], x_ 
Symbol] :> Simp[x*Sqrt[d + e*x^2]*((a + b*ArcSinh[c*x])^n/2), x] + (Simp[(1 
/2)*Simp[Sqrt[d + e*x^2]/Sqrt[1 + c^2*x^2]]   Int[(a + b*ArcSinh[c*x])^n/Sq 
rt[1 + c^2*x^2], x], x] - Simp[b*c*(n/2)*Simp[Sqrt[d + e*x^2]/Sqrt[1 + c^2* 
x^2]]   Int[x*(a + b*ArcSinh[c*x])^(n - 1), x], x]) /; FreeQ[{a, b, c, d, e 
}, x] && EqQ[e, c^2*d] && GtQ[n, 0]
 

rule 6201
Int[((a_.) + ArcSinh[(c_.)*(x_)]*(b_.))^(n_.)*((d_) + (e_.)*(x_)^2)^(p_.), 
x_Symbol] :> Simp[x*(d + e*x^2)^p*((a + b*ArcSinh[c*x])^n/(2*p + 1)), x] + 
(Simp[2*d*(p/(2*p + 1))   Int[(d + e*x^2)^(p - 1)*(a + b*ArcSinh[c*x])^n, x 
], x] - Simp[b*c*(n/(2*p + 1))*Simp[(d + e*x^2)^p/(1 + c^2*x^2)^p]   Int[x* 
(1 + c^2*x^2)^(p - 1/2)*(a + b*ArcSinh[c*x])^(n - 1), x], x]) /; FreeQ[{a, 
b, c, d, e}, x] && EqQ[e, c^2*d] && GtQ[n, 0] && GtQ[p, 0]
 

rule 6234
Int[((a_.) + ArcSinh[(c_.)*(x_)]*(b_.))^(n_.)*(x_)^(m_.)*((d_) + (e_.)*(x_) 
^2)^(p_.), x_Symbol] :> Simp[(1/(b*c^(m + 1)))*Simp[(d + e*x^2)^p/(1 + c^2* 
x^2)^p]   Subst[Int[x^n*Sinh[-a/b + x/b]^m*Cosh[-a/b + x/b]^(2*p + 1), x], 
x, a + b*ArcSinh[c*x]], x] /; FreeQ[{a, b, c, d, e, n}, x] && EqQ[e, c^2*d] 
 && IGtQ[2*p + 2, 0] && IGtQ[m, 0]
 
3.5.72.4 Maple [F]

\[\int \left (a^{2} c \,x^{2}+c \right )^{\frac {3}{2}} \sqrt {\operatorname {arcsinh}\left (a x \right )}d x\]

input
int((a^2*c*x^2+c)^(3/2)*arcsinh(a*x)^(1/2),x)
 
output
int((a^2*c*x^2+c)^(3/2)*arcsinh(a*x)^(1/2),x)
 
3.5.72.5 Fricas [F(-2)]

Exception generated. \[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\text {Exception raised: TypeError} \]

input
integrate((a^2*c*x^2+c)^(3/2)*arcsinh(a*x)^(1/2),x, algorithm="fricas")
 
output
Exception raised: TypeError >>  Error detected within library code:   inte 
grate: implementation incomplete (constant residues)
 
3.5.72.6 Sympy [F]

\[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\int \left (c \left (a^{2} x^{2} + 1\right )\right )^{\frac {3}{2}} \sqrt {\operatorname {asinh}{\left (a x \right )}}\, dx \]

input
integrate((a**2*c*x**2+c)**(3/2)*asinh(a*x)**(1/2),x)
 
output
Integral((c*(a**2*x**2 + 1))**(3/2)*sqrt(asinh(a*x)), x)
 
3.5.72.7 Maxima [F]

\[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\int { {\left (a^{2} c x^{2} + c\right )}^{\frac {3}{2}} \sqrt {\operatorname {arsinh}\left (a x\right )} \,d x } \]

input
integrate((a^2*c*x^2+c)^(3/2)*arcsinh(a*x)^(1/2),x, algorithm="maxima")
 
output
integrate((a^2*c*x^2 + c)^(3/2)*sqrt(arcsinh(a*x)), x)
 
3.5.72.8 Giac [F(-2)]

Exception generated. \[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\text {Exception raised: TypeError} \]

input
integrate((a^2*c*x^2+c)^(3/2)*arcsinh(a*x)^(1/2),x, algorithm="giac")
 
output
Exception raised: TypeError >> an error occurred running a Giac command:IN 
PUT:sage2:=int(sage0,sageVARx):;OUTPUT:sym2poly/r2sym(const gen & e,const 
index_m & i,const vecteur & l) Error: Bad Argument Value
 
3.5.72.9 Mupad [F(-1)]

Timed out. \[ \int \left (c+a^2 c x^2\right )^{3/2} \sqrt {\text {arcsinh}(a x)} \, dx=\int \sqrt {\mathrm {asinh}\left (a\,x\right )}\,{\left (c\,a^2\,x^2+c\right )}^{3/2} \,d x \]

input
int(asinh(a*x)^(1/2)*(c + a^2*c*x^2)^(3/2),x)
 
output
int(asinh(a*x)^(1/2)*(c + a^2*c*x^2)^(3/2), x)