If -5tan x-tan x -2 -x- a ln -bsin x-dcos x- - k- then a is equal to -

I=∫5tan x dx/tan x 2 I=∫5sin xdx/sin x 2cos x I=∫[(sin x 2cos x)+2(cos x+2sin x)]dx/sin x 2cos x I=∫ dx + 2∫(cos x+2sin x)dx/sin x 2cos x I=x+2log|sin x 2c ...

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Standard XI

Mathematics

Integration by Partial Fractions

If ∫5tan x/ta...

Question

If $\int \frac{5 tan x}{tan x - 2} = x + a ln | b sin x - d cos x | + k$ , then $a$ is equal to :

-1

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-2

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Solution

The correct option is D 2
$I = \int \frac{5 tan x d x}{tan x - 2} I = \int \frac{5 sin x d x}{sin x - 2 cos x} I = \int \frac{[(sin x - 2 cos x) + 2 (cos x + 2 sin x)] d x}{sin x - 2 cos x} I = \int d x + 2 \int \frac{(cos x + 2 sin x) d x}{sin x - 2 cos x} I = x + 2 log | sin x - 2 cos x | + k ∴ a = 2$

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If ∫5tanxtanx−2=x+aln|bsinx−dcosx|+k, then a is equal to :

The correct option is D 2I=∫5tanxdxtanx−2I=∫5sinxdxsinx−2cosxI=∫[(sinx−2cosx)+2(cosx+2sinx)]dxsinx−2cosxI=∫dx+2∫(cosx+2sinx)dxsinx−2cosxI=x+2log|sinx−2cosx|+k∴a=2

If $\int \frac{5 tan x}{tan x - 2} = x + a ln | b sin x - d cos x | + k$ , then $a$ is equal to :