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Date: 21-5-2018
1170
Date: 13-6-2018
714
Date: 12-6-2018
366
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(1) |
for . The Chebyshev differential equation has regular singular points at , 1, and . It can be solved by series solution using the expansions
(2) |
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(3) |
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(4) |
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(5) |
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(6) |
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(7) |
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(8) |
Now, plug equations (6) and (8) into the original equation (◇) to obtain
(9) |
(10) |
(11) |
(12) |
(13) |
so
(14) |
(15) |
and by induction,
(16) |
for , 3, ....
Since (14) and (15) are special cases of (16), the general recurrence relation can be written
(17) |
for , 1, .... From this, we obtain for the even coefficients
(18) |
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(19) |
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(20) |
and for the odd coefficients
(21) |
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(22) |
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(23) |
The even coefficients can be given in closed form as
(24) |
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(25) |
and the odd coefficients as
(26) |
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(27) |
The general solution is then given by summing over all indices,
(28) |
which can be done in closed form as
(29) |
Performing a change of variables gives the equivalent form of the solution
(30) |
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(31) |
where is a Chebyshev polynomial of the first kind and is a Chebyshev polynomial of the second kind. Another equivalent form of the solution is given by
(32 |
REFERENCES:
Arfken, G. Mathematical Methods for Physicists, 3rd ed. Orlando, FL: Academic Press, p. 735, 1985.
Boyce, W. E. and DiPrima, R. C. Elementary Differential Equations and Boundary Value Problems, 4th ed. New York: Wiley, pp. 232 and 252, 1986.
Zwillinger, D. Handbook of Differential Equations, 3rd ed. Boston, MA: Academic Press, p. 127, 1997.
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دراسة يابانية لتقليل مخاطر أمراض المواليد منخفضي الوزن
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اكتشاف أكبر مرجان في العالم قبالة سواحل جزر سليمان
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اتحاد كليات الطب الملكية البريطانية يشيد بالمستوى العلمي لطلبة جامعة العميد وبيئتها التعليمية
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