Factor polynomial $$ 4x^{2}-14x+12 $$

$$ 4x^{2}-14x+12 = 2( x-2 )( 2x-3 ) $$

Step 1 :

After factoring out $ 2 $ we have:

$$ 4x^{2}-14x+12 = 2 ( 2x^{2}-7x+6 ) $$

Step 2 :

Step 2: Identify constants $ a $ , $ b $ and $ c $.
$ a $ is a number in front of the $ x^2 $ term $ b $ is a number in front of the $ x $ term and $ c $ is a constant. In this case:

$$ a = 2 , b = -7 ~ \text{ and } ~ c = 6 $$

Step 3: Multiply the leading coefficient $\color{blue}{ a = 2 }$ by the constant term $\color{blue}{c = 6} $.

$$ a \cdot c = 12 $$

Step 4: Find out two numbers that multiply to $ a \cdot c = 12 $ and add to $ b = -7 $.

Step 5: All pairs of numbers with a product of $ 12 $ are:

PRODUCT = 12
1     12	-1     -12
2     6	-2     -6
3     4	-3     -4

Step 6: Find out which factor pair sums up to $\color{blue}{ b = -7 }$

PRODUCT = 12 and SUM = -7
1     12	-1     -12
2     6	-2     -6
3     4	-3     -4

Step 7: Replace middle term $ -7 x $ with $ -3x-4x $:

$$ 2x^{2}-7x+6 = 2x^{2}-3x-4x+6 $$

Step 8: Apply factoring by grouping. Factor $ x $ out of the first two terms and $ -2 $ out of the last two terms.

$$ 2x^{2}-3x-4x+6 = x\left(2x-3\right) -2\left(2x-3\right) = \left(x-2\right) \left(2x-3\right) $$

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