Decide What Values of the Variable Cannot Possibly Be Solutions$$\frac { 3 } { x + 5 } + \frac { 8 } { x + 2 } = \frac { 10 } { x ^ { 2 } + 7 x + 10 }$$

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The Answer of Decide What Values of the Variable Cannot Possibly Be Solutions$$\frac { 3 } { x + 5 } + \frac { 8 } { x + 2 } = \frac { 10 } { x ^ { 2 } + 7 x + 10 }$$

Decide What Values of the Variable Cannot Possibly Be Solutions $\frac { 3 } { x + 5 } + \frac { 8 } { x + 2 } = \frac { 10 } { x ^ { 2 } + 7 x + 10 }$

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Decide What Values of the Variable Cannot Possibly Be Solutions 3x+5+8x+2=10x2+7x+10\frac { 3 } { x + 5 } + \frac { 8 } { x + 2 } = \frac { 10 } { x ^ { 2 } + 7 x + 10 }x+53​+x+28​=x2+7x+1010​

Definitions:

Decide What Values of the Variable Cannot Possibly Be Solutions $\frac { 3 } { x + 5 } + \frac { 8 } { x + 2 } = \frac { 10 } { x ^ { 2 } + 7 x + 10 }$