
Perform the same calculations as in Example 11.2, but for the symmetric system,
In addition to solving for the Cholesky decomposition, employ it to solve for the a's.

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Chapter 11 Solutions
EBK NUMERICAL METHODS FOR ENGINEERS
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- 30.6. Classify the zeros and singularities of the functions tanz (a). f(z)=sin(1-2-1), (b). f(2) = (c). f(z)= tanh .arrow_forward1. Locate the singularities of three of the following functions, and determine their type. (a) f(z)=2(z-sinz). (b) f(z) = (-) (c) f(z) = (z+2-22²)-1 (d) f(z) = sinzarrow_forwardQ 2/classify the zeros and poles of the function f(z) = tanz Zarrow_forward
- 30.1. Show that z = 0 is a removable singularity of the following functions. Furthermore, define f(0) such that these functions are analytic at z = 0. (a). f(z) = 2 sin z- z 1-12² - cos z (b). f(z) = (c). f(z) = sin 22arrow_forward3. Consider the polynomial equation 6-iz+7z² -iz³ +z = 0 for which the roots are 3i, -2i, -i, and i. (a) Verify the relations between this roots and the coefficients of the polynomial. (b) Find the annulus region in which the roots lie.arrow_forward30.3. Find and classify the isolated singularities of the following func- tions: (a). 23+1 22(2-1) (b). ²e¹/, (c). sin 3z (d). COS 2arrow_forward
- 3. Consider the polynomial equation 6-iz+7z2-iz³ +z = 0 for which the roots are 3i, -2i, -i, and i. (a) Verify the relations between this roots and the coefficients of the polynomial. (b) Find the annulus region in which the roots lie.arrow_forwardDetermine the set of odd primes p for which 23 is a quadratic residue.arrow_forwardQ/ Find and classify the singularities of the functions- = 52+3 (1-2) sin² Z a fcz) b f(z) = tanz Z © f(2)= [z (e²-1)]arrow_forward
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