6.22.22 problem section 10.5, problem 22

Internal problem ID [2275]
Book : Elementary differential equations with boundary value problems. William F. Trench. Brooks/Cole 2001
Section : Chapter 10 Linear system of Differential equations. Section 10.5, constant coefficient homogeneous system II. Page 555
Problem number : section 10.5, problem 22
Date solved : Tuesday, September 30, 2025 at 05:25:42 AM
CAS classification : system_of_ODEs

\begin{align*} \frac {d}{d t}y_{1} \left (t \right )&=4 y_{1} \left (t \right )-8 y_{2} \left (t \right )-4 y_{3} \left (t \right )\\ \frac {d}{d t}y_{2} \left (t \right )&=-3 y_{1} \left (t \right )-y_{2} \left (t \right )-4 y_{3} \left (t \right )\\ \frac {d}{d t}y_{3} \left (t \right )&=y_{1} \left (t \right )-y_{2} \left (t \right )+9 y_{3} \left (t \right ) \end{align*}

With initial conditions

\begin{align*} y_{1} \left (0\right )&=-4 \\ y_{2} \left (0\right )&=1 \\ y_{3} \left (0\right )&=-3 \\ \end{align*}
Maple. Time used: 0.144 (sec). Leaf size: 61
ode:=[diff(y__1(t),t) = 4*y__1(t)-8*y__2(t)-4*y__3(t), diff(y__2(t),t) = -3*y__1(t)-y__2(t)-4*y__3(t), diff(y__3(t),t) = y__1(t)-y__2(t)+9*y__3(t)]; 
ic:=[y__1(0) = -4, y__2(0) = 1, y__3(0) = -3]; 
dsolve([ode,op(ic)]);
 
\begin{align*} y_{1} \left (t \right ) &= -\frac {50 \,{\mathrm e}^{7 t}}{11}-\frac {164 \,{\mathrm e}^{-4 t}}{143}+\frac {22 \,{\mathrm e}^{9 t}}{13} \\ y_{2} \left (t \right ) &= \frac {5 \,{\mathrm e}^{7 t}}{11}-\frac {164 \,{\mathrm e}^{-4 t}}{143}+\frac {22 \,{\mathrm e}^{9 t}}{13} \\ y_{3} \left (t \right ) &= \frac {5 \,{\mathrm e}^{7 t}}{2}-\frac {11 \,{\mathrm e}^{9 t}}{2} \\ \end{align*}
Mathematica. Time used: 0.005 (sec). Leaf size: 57
ode={D[ y1[t],t]==4*y1[t]-8*y2[t]-4*y3[t],D[ y2[t],t]==-3*y1[t]-1*y2[t]-3*y3[t],D[ y3[t],t]==1*y1[t]-1*y2[t]+9*y3[t]}; 
ic={y1[0]==-4,y2[0]==1,y3[0]==-3}; 
DSolve[{ode,ic},{y1[t],y2[t],y3[t]},t,IncludeSingularSolutions->True]
 
\begin{align*} \text {y1}(t)&\to e^{8 t} (8 t-3)-e^{-4 t}\\ \text {y2}(t)&\to 2 e^{8 t}-e^{-4 t}\\ \text {y3}(t)&\to -e^{8 t} (8 t+3) \end{align*}
Sympy. Time used: 0.092 (sec). Leaf size: 73
from sympy import * 
t = symbols("t") 
y__1 = Function("y__1") 
y__2 = Function("y__2") 
y__3 = Function("y__3") 
ode=[Eq(-4*y__1(t) + 8*y__2(t) + 4*y__3(t) + Derivative(y__1(t), t),0),Eq(3*y__1(t) + y__2(t) + 4*y__3(t) + Derivative(y__2(t), t),0),Eq(-y__1(t) + y__2(t) - 9*y__3(t) + Derivative(y__3(t), t),0)] 
ics = {} 
dsolve(ode,func=[y__1(t),y__2(t),y__3(t)],ics=ics)
 
\[ \left [ y^{1}{\left (t \right )} = C_{1} e^{- 4 t} - \frac {20 C_{2} e^{7 t}}{11} - \frac {4 C_{3} e^{9 t}}{13}, \ y^{2}{\left (t \right )} = C_{1} e^{- 4 t} + \frac {2 C_{2} e^{7 t}}{11} - \frac {4 C_{3} e^{9 t}}{13}, \ y^{3}{\left (t \right )} = C_{2} e^{7 t} + C_{3} e^{9 t}\right ] \]