tions, and we conclude that V1(r:) $1(r:) (4.336) Consequently, the solution to the system given by equation (4.329) is vk and Uk as expressed in equations (4.333) and (4.334), with the conditions between

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functions, and we conclude that /1(ri) -Ci. (4.336) 01(ri) Consequently, the solution to the system given by equation (4.329) is vk and Uk as expressed in equations (4.333) and (4.334), with the conditions between the coefficients given by equation (4.336). Thus, the solution contains only n arbitrary constants. 4.8.1 Example A Consider the equations (4E – 17)ur + (E – 4)vk = 0, (4.337) (2E – 1)uk + (E – 2)vk 0. Solving for v gives (E² – 8E + 15)vk = (E – 3)(E – 5)vk = 0, (4.338) LINEAR DIFFERENCE EQUATIONS 159 which has the solution Vk = c13k + c25k. (4.339) Using equation (4.336), we obtain 3 – 4 C1 - 17 C1 С1, 12 (4.340a) 1 -C2 = – 17 1 C2 20 3 Therefore, the solution for Uk is Uk 713k + ē25k = -1/sc,3* – 1/3c25*. (4.340b)