Integrand size = 101, antiderivative size = 24 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=\log \left (\frac {e^{2 x}}{(-4+x)^2}-4 \left (x-\frac {x}{\log (16)}\right )\right ) \]
Leaf count is larger than twice the leaf count of optimal. \(52\) vs. \(2(24)=48\).
Time = 0.08 (sec) , antiderivative size = 52, normalized size of antiderivative = 2.17 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=-2 \log (4-x)+\log \left (-64 x+32 x^2-4 x^3-e^{2 x} \log (16)+64 x \log (16)-32 x^2 \log (16)+4 x^3 \log (16)\right ) \]
Integrate[(-256 + 192*x - 48*x^2 + 4*x^3 + E^(2*x)*(-10 + 2*x)*Log[16] + ( 256 - 192*x + 48*x^2 - 4*x^3)*Log[16])/(-256*x + 192*x^2 - 48*x^3 + 4*x^4 + E^(2*x)*(-4 + x)*Log[16] + (256*x - 192*x^2 + 48*x^3 - 4*x^4)*Log[16]),x ]
-2*Log[4 - x] + Log[-64*x + 32*x^2 - 4*x^3 - E^(2*x)*Log[16] + 64*x*Log[16 ] - 32*x^2*Log[16] + 4*x^3*Log[16]]
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.
\(\displaystyle \int \frac {4 x^3-48 x^2+\left (-4 x^3+48 x^2-192 x+256\right ) \log (16)+192 x+e^{2 x} (2 x-10) \log (16)-256}{4 x^4-48 x^3+192 x^2+\left (-4 x^4+48 x^3-192 x^2+256 x\right ) \log (16)-256 x+e^{2 x} (x-4) \log (16)} \, dx\) |
\(\Big \downarrow \) 7292 |
\(\displaystyle \int \frac {-4 x^3+48 x^2-\left (-4 x^3+48 x^2-192 x+256\right ) \log (16)-192 x-e^{2 x} (2 x-10) \log (16)+256}{(4-x) \left (4 x^3 (1-\log (16))-32 x^2 (1-\log (16))+64 x (1-\log (16))+e^{2 x} \log (16)\right )}dx\) |
\(\Big \downarrow \) 7293 |
\(\displaystyle \int \left (\frac {4 \left (-2 x^3+19 x^2-48 x+16\right ) (1-\log (16))}{4 x^3 (1-\log (16))-32 x^2 (1-\log (16))+64 x (1-\log (16))+e^{2 x} \log (16)}+\frac {2 (x-5)}{x-4}\right )dx\) |
\(\Big \downarrow \) 2009 |
\(\displaystyle 192 (1-\log (16)) \int \frac {x}{-4 (1-\log (16)) x^3+32 (1-\log (16)) x^2-64 (1-\log (16)) x-e^{2 x} \log (16)}dx+8 (1-\log (16)) \int \frac {x^3}{-4 (1-\log (16)) x^3+32 (1-\log (16)) x^2-64 (1-\log (16)) x-e^{2 x} \log (16)}dx+64 (1-\log (16)) \int \frac {1}{4 (1-\log (16)) x^3-32 (1-\log (16)) x^2+64 (1-\log (16)) x+e^{2 x} \log (16)}dx+76 (1-\log (16)) \int \frac {x^2}{4 (1-\log (16)) x^3-32 (1-\log (16)) x^2+64 (1-\log (16)) x+e^{2 x} \log (16)}dx+2 x-2 \log (4-x)\) |
Int[(-256 + 192*x - 48*x^2 + 4*x^3 + E^(2*x)*(-10 + 2*x)*Log[16] + (256 - 192*x + 48*x^2 - 4*x^3)*Log[16])/(-256*x + 192*x^2 - 48*x^3 + 4*x^4 + E^(2 *x)*(-4 + x)*Log[16] + (256*x - 192*x^2 + 48*x^3 - 4*x^4)*Log[16]),x]
3.20.44.3.1 Defintions of rubi rules used
Leaf count of result is larger than twice the leaf count of optimal. \(46\) vs. \(2(21)=42\).
Time = 0.40 (sec) , antiderivative size = 47, normalized size of antiderivative = 1.96
method | result | size |
risch | \(-2 \ln \left (x -4\right )+\ln \left ({\mathrm e}^{2 x}-\frac {x \left (4 x^{2} \ln \left (2\right )-32 x \ln \left (2\right )-x^{2}+64 \ln \left (2\right )+8 x -16\right )}{\ln \left (2\right )}\right )\) | \(47\) |
norman | \(-2 \ln \left (x -4\right )+\ln \left (4 x^{3} \ln \left (2\right )-32 x^{2} \ln \left (2\right )-\ln \left (2\right ) {\mathrm e}^{2 x}-x^{3}+64 x \ln \left (2\right )+8 x^{2}-16 x \right )\) | \(50\) |
parallelrisch | \(\ln \left (\frac {4 x^{3} \ln \left (2\right )-32 x^{2} \ln \left (2\right )-\ln \left (2\right ) {\mathrm e}^{2 x}-x^{3}+64 x \ln \left (2\right )+8 x^{2}-16 x}{4 \ln \left (2\right )-1}\right )-2 \ln \left (x -4\right )\) | \(59\) |
int((4*(2*x-10)*ln(2)*exp(x)^2+4*(-4*x^3+48*x^2-192*x+256)*ln(2)+4*x^3-48* x^2+192*x-256)/(4*(x-4)*ln(2)*exp(x)^2+4*(-4*x^4+48*x^3-192*x^2+256*x)*ln( 2)+4*x^4-48*x^3+192*x^2-256*x),x,method=_RETURNVERBOSE)
Leaf count of result is larger than twice the leaf count of optimal. 43 vs. \(2 (21) = 42\).
Time = 0.26 (sec) , antiderivative size = 43, normalized size of antiderivative = 1.79 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=\log \left (x^{3} - 8 \, x^{2} - 4 \, {\left (x^{3} - 8 \, x^{2} + 16 \, x\right )} \log \left (2\right ) + e^{\left (2 \, x\right )} \log \left (2\right ) + 16 \, x\right ) - 2 \, \log \left (x - 4\right ) \]
integrate((4*(2*x-10)*log(2)*exp(x)^2+4*(-4*x^3+48*x^2-192*x+256)*log(2)+4 *x^3-48*x^2+192*x-256)/(4*(x-4)*log(2)*exp(x)^2+4*(-4*x^4+48*x^3-192*x^2+2 56*x)*log(2)+4*x^4-48*x^3+192*x^2-256*x),x, algorithm=\
Leaf count of result is larger than twice the leaf count of optimal. 51 vs. \(2 (19) = 38\).
Time = 0.16 (sec) , antiderivative size = 51, normalized size of antiderivative = 2.12 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=- 2 \log {\left (x - 4 \right )} + \log {\left (\frac {- 4 x^{3} \log {\left (2 \right )} + x^{3} - 8 x^{2} + 32 x^{2} \log {\left (2 \right )} - 64 x \log {\left (2 \right )} + 16 x}{\log {\left (2 \right )}} + e^{2 x} \right )} \]
integrate((4*(2*x-10)*ln(2)*exp(x)**2+4*(-4*x**3+48*x**2-192*x+256)*ln(2)+ 4*x**3-48*x**2+192*x-256)/(4*(x-4)*ln(2)*exp(x)**2+4*(-4*x**4+48*x**3-192* x**2+256*x)*ln(2)+4*x**4-48*x**3+192*x**2-256*x),x)
-2*log(x - 4) + log((-4*x**3*log(2) + x**3 - 8*x**2 + 32*x**2*log(2) - 64* x*log(2) + 16*x)/log(2) + exp(2*x))
Leaf count of result is larger than twice the leaf count of optimal. 53 vs. \(2 (21) = 42\).
Time = 0.31 (sec) , antiderivative size = 53, normalized size of antiderivative = 2.21 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=-2 \, \log \left (x - 4\right ) + \log \left (-\frac {x^{3} {\left (4 \, \log \left (2\right ) - 1\right )} - 8 \, x^{2} {\left (4 \, \log \left (2\right ) - 1\right )} + 16 \, x {\left (4 \, \log \left (2\right ) - 1\right )} - e^{\left (2 \, x\right )} \log \left (2\right )}{\log \left (2\right )}\right ) \]
integrate((4*(2*x-10)*log(2)*exp(x)^2+4*(-4*x^3+48*x^2-192*x+256)*log(2)+4 *x^3-48*x^2+192*x-256)/(4*(x-4)*log(2)*exp(x)^2+4*(-4*x^4+48*x^3-192*x^2+2 56*x)*log(2)+4*x^4-48*x^3+192*x^2-256*x),x, algorithm=\
-2*log(x - 4) + log(-(x^3*(4*log(2) - 1) - 8*x^2*(4*log(2) - 1) + 16*x*(4* log(2) - 1) - e^(2*x)*log(2))/log(2))
Leaf count of result is larger than twice the leaf count of optimal. 46 vs. \(2 (21) = 42\).
Time = 0.29 (sec) , antiderivative size = 46, normalized size of antiderivative = 1.92 \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=\log \left (-4 \, x^{3} \log \left (2\right ) + x^{3} + 32 \, x^{2} \log \left (2\right ) - 8 \, x^{2} - 64 \, x \log \left (2\right ) + e^{\left (2 \, x\right )} \log \left (2\right ) + 16 \, x\right ) - 2 \, \log \left (x - 4\right ) \]
integrate((4*(2*x-10)*log(2)*exp(x)^2+4*(-4*x^3+48*x^2-192*x+256)*log(2)+4 *x^3-48*x^2+192*x-256)/(4*(x-4)*log(2)*exp(x)^2+4*(-4*x^4+48*x^3-192*x^2+2 56*x)*log(2)+4*x^4-48*x^3+192*x^2-256*x),x, algorithm=\
log(-4*x^3*log(2) + x^3 + 32*x^2*log(2) - 8*x^2 - 64*x*log(2) + e^(2*x)*lo g(2) + 16*x) - 2*log(x - 4)
Timed out. \[ \int \frac {-256+192 x-48 x^2+4 x^3+e^{2 x} (-10+2 x) \log (16)+\left (256-192 x+48 x^2-4 x^3\right ) \log (16)}{-256 x+192 x^2-48 x^3+4 x^4+e^{2 x} (-4+x) \log (16)+\left (256 x-192 x^2+48 x^3-4 x^4\right ) \log (16)} \, dx=\int \frac {192\,x-4\,\ln \left (2\right )\,\left (4\,x^3-48\,x^2+192\,x-256\right )-48\,x^2+4\,x^3+4\,{\mathrm {e}}^{2\,x}\,\ln \left (2\right )\,\left (2\,x-10\right )-256}{4\,\ln \left (2\right )\,\left (-4\,x^4+48\,x^3-192\,x^2+256\,x\right )-256\,x+192\,x^2-48\,x^3+4\,x^4+4\,{\mathrm {e}}^{2\,x}\,\ln \left (2\right )\,\left (x-4\right )} \,d x \]
int((192*x - 4*log(2)*(192*x - 48*x^2 + 4*x^3 - 256) - 48*x^2 + 4*x^3 + 4* exp(2*x)*log(2)*(2*x - 10) - 256)/(4*log(2)*(256*x - 192*x^2 + 48*x^3 - 4* x^4) - 256*x + 192*x^2 - 48*x^3 + 4*x^4 + 4*exp(2*x)*log(2)*(x - 4)),x)