The general solution of dydx - 1-3y-3x1-x-y is where -c- is constant of integration

Assuming x+y = t 1+dydx = dtdx Now, dtdx 1 = 1 3t1+t ⇒ nbsp;dtdx = 2(1 t)1+t ⇒∫ 2 dx = ∫1+t1 t dt ⇒ 2x+c_1 = nbsp;∫2 (1 t)1 t dt ⇒ 2x+c_1 = 2ln|1 t| t ∴ ...

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Standard XIII

Mathematics

Variable Separable Method

The general s...

Question

The general solution of $\frac{d y}{d x} = \frac{1 - 3 y - 3 x}{1 + x + y}$ is
(where $^{'} c^{'}$ is constant of integration)

x + 3 y + 2 ln | 1 + x + y | = c

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x + y + 2 ln | 1 - x - y | = c

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3 x + y + 2 ln | 1 + x + y | = c

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3 x + y + 2 ln | 1 - x - y | = c

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Solution

The correct option is D $3 x + y + 2 ln | 1 - x - y | = c$
Assuming $x + y = t$
$1 + \frac{d y}{d x} = \frac{d t}{d x}$
Now,
$\frac{d t}{d x} - 1 = \frac{1 - 3 t}{1 + t} \Rightarrow \frac{d t}{d x} = \frac{2 (1 - t)}{1 + t} \Rightarrow \int 2 d x = \int \frac{1 + t}{1 - t} d t \Rightarrow 2 x + c_{1} = \int \frac{2 - (1 - t)}{1 - t} d t \Rightarrow 2 x + c_{1} = - 2 ln | 1 - t | - t ∴ 3 x + y + 2 ln | 1 - x - y | = c$

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The general solution of dydx=1−3y−3x1+x+y is (where ′c′ is constant of integration)

The correct option is D 3x+y+2ln|1−x−y|=cAssuming x+y=t 1+dydx=dtdx Now, dtdx−1=1−3t1+t⇒dtdx=2(1−t)1+t⇒∫2 dx=∫1+t1−t dt⇒2x+c1=∫2−(1−t)1−t dt⇒2x+c1=−2ln|1−t|−t∴3x+y+2ln|1−x−y|=c

The general solution of $\frac{d y}{d x} = \frac{1 - 3 y - 3 x}{1 + x + y}$ is
(where $^{'} c^{'}$ is constant of integration)