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Factorise by Grouping in PairsFactorise by Grouping in Pairs
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Question 1 of 7
1. Question
Factor.`7(x+5)+x(x+5)`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`7(x+5)+x(x+5)``a=7``b=x``c=x``d=5`Substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{7}(\color{#9a00c7}{x}+\color{#9a00c7}{5})+\color{#00880A}{x}(\color{#9a00c7}{x}+\color{#9a00c7}{5})$$ `=` $$(\color{#00880A}{7}+\color{#00880A}{x})(\color{#9a00c7}{x}+\color{#9a00c7}{5})$$ `(7+x)(x+5)`Method TwoFirst, write the bracketed terms once.`7``(x+5)``+x``(x+5)``(x+5)`Then place the coefficients in a separate bracket.`7``(x+5)``+x``(x+5)``(7+x)``(x+5)``(7+x)(x+5)` -
Question 2 of 7
2. Question
Factor.`6a(m+2)-n(m+2)`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`6a(m+2)-n(m+2)``a=6a``b=-n``c=m``d=2`Substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{6a}(\color{#9a00c7}{m}+\color{#9a00c7}{2})\color{#00880A}{-n}(\color{#9a00c7}{m}+\color{#9a00c7}{2})$$ `=` $$[\color{#00880A}{6a}+(\color{#00880A}{-n})](\color{#9a00c7}{m}+\color{#9a00c7}{2})$$ `=` `(6a-n)(m+2)` `(6a-n)(m+2)`Method TwoFirst, write the bracketed terms once.`6a``(m+2)``-n``(m+2)``(m+2)`Then place the coefficients in a separate bracket.`6a``(m+2)``-n``(m+2)``(6a-n)``(m+2)``(6a-n)(m+2)` -
Question 3 of 7
3. Question
Factor.`ab+7a+3b+21`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, group the terms into pairs and factor them.First Pair$$ab+7a\color{#9E9E9E}{+3b+21}$$ `=` $$a(b+7)\color{#9E9E9E}{+3b+21}$$ `a(b+7)=ab+7a` Second Pair$$\color{#9E9E9E}{a(b+7)}+3b+21$$ `=` $$\color{#9E9E9E}{a(b+7)}+3(b+7)$$ `3(b+7)=3b+21` Next, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`a(b+7)+3(b+7)``a=a``b=3``c=b``d=7`Finally, substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{a}(\color{#9a00c7}{b}+\color{#9a00c7}{7})+\color{#00880A}{3}(\color{#9a00c7}{b}+\color{#9a00c7}{7})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{3})(\color{#9a00c7}{b}+\color{#9a00c7}{7})$$ `(a+3)(b+7)`Method TwoFirst, group the terms into pairs and factor them.First Pair$$ab+7a\color{#9E9E9E}{+3b+21}$$ `=` $$a(b+7)\color{#9E9E9E}{+3b+21}$$ `a(b+7)=ab+7a` Second Pair$$\color{#9E9E9E}{a(b+7)}+3b+21$$ `=` $$\color{#9E9E9E}{a(b+7)}+3(b+7)$$ `3(b+7)=3b+21` Next, write the bracketed terms once.`a``(b+7)``+3``(b+7)``(b+7)`Then place the coefficients in a separate bracket.`a``(b+7)``+3``(b+7)``(a+3)``(b+7)``(a+3)(b+7)` -
Question 4 of 7
4. Question
Factor.`3a+6b+8ca+16cb`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, group the terms into pairs and factor them.First Pair$$3a+6b\color{#9E9E9E}{+8ca+16cb}$$ `=` $$3(a+2b)\color{#9E9E9E}{+8ca+16cb}$$ `3(a+2b)=3a+6b` Second Pair$$\color{#9E9E9E}{3(a+2b)}+8ca+16cb$$ `=` $$\color{#9E9E9E}{a(a+2b)}+8c(a+2b)$$ `8c(a+2b)=8ca+16cb` Next, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`3(a+2b)+8c(a+2b)``a=3``b=8c``c=a``d=2b`Finally, substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{3}(\color{#9a00c7}{a}+\color{#9a00c7}{2b})+\color{#00880A}{8c}(\color{#9a00c7}{a}+\color{#9a00c7}{2b})$$ `=` $$(\color{#00880A}{3}+\color{#00880A}{8c})(\color{#9a00c7}{a}+\color{#9a00c7}{2b})$$ `(3+8c)(a+2b)`Method TwoFirst, group the terms into pairs and factor them.First Pair$$3a+6b\color{#9E9E9E}{+8ca+16cb}$$ `=` $$3(a+2b)\color{#9E9E9E}{+8ca+16cb}$$ `3(a+2b)=3a+6b` Second Pair$$\color{#9E9E9E}{3(a+2b)}+8ca+16cb$$ `=` $$\color{#9E9E9E}{a(a+2b)}+8c(a+2b)$$ `8c(a+2b)=8ca+16cb` Next, write the bracketed terms once.`3``(a+2b)``+8c``(a+2b)``(a+2b)`Then place the coefficients in a separate bracket.`3``(a+2b)``+8c``(a+2b)``(3+8c)``(a+2b)``(3+8c)(a+2b)` -
Question 5 of 7
5. Question
Factor.`x-7y+xz-7yz`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, group the terms into pairs and factor them.Pair terms with the same variables.First Pair$$x\color{#9E9E9E}{-7y}+xz\color{#9E9E9E}{-7yz}$$ `=` $$x(1+z)\color{#9E9E9E}{-7y-7yz}$$ `x(1+z)=x+xz` Second Pair$$\color{#9E9E9E}{x(1+z)}-7y-7yz$$ `=` $$\color{#9E9E9E}{x(1+z)}-7y(1+z)$$ `-7y(1+z)=-7y-7yz` Next, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`x(1+z)-7y(1+z)``a=x``b=-7y``c=1``d=z`Finally, substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{x}(\color{#9a00c7}{1}+\color{#9a00c7}{z})-\color{#00880A}{7y}(\color{#9a00c7}{1}+\color{#9a00c7}{z})$$ `=` $$[\color{#00880A}{x}+(\color{#00880A}{-7y})](\color{#9a00c7}{1}+\color{#9a00c7}{z})$$ `=` `(x-7y)(1+z)` `(x-7y)(1+z)`Method TwoFirst, group the terms into pairs and factor them.Pair terms with the same variables.First Pair$$x\color{#9E9E9E}{-7y}+xz\color{#9E9E9E}{-7yz}$$ `=` $$x(1+z)\color{#9E9E9E}{-7y-7yz}$$ `x(1+z)=x+xz` Second Pair$$\color{#9E9E9E}{x(1+z)}-7y-7yz$$ `=` $$\color{#9E9E9E}{x(1+z)}-7y(1+z)$$ `-7y(1+z)=-7y-7yz` Next, write the bracketed terms once.`x``(1+z)``-7y``(1+z)``(1+z)`Then place the coefficients in a separate bracket.`x``(1+z)``-7y``(1+z)``(x-7y)``(1+z)``(x-7y)(1+z)` -
Question 6 of 7
6. Question
Factor.`m^3+m^2+m+1`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$Method OneFirst, group the terms into pairs and factor them.First Pair$$m^3+m^2\color{#9E9E9E}{+m+1}$$ `=` $$m^2(m+1)\color{#9E9E9E}{+m+1}$$ `m^2(m+1)=m^3+m^2` Second Pair$$\color{#9E9E9E}{m^2(m+1)}+m+1$$ `=` $$\color{#9E9E9E}{m^2(m+1)}+1(m+1)$$ `1(m+1)=m+1` Next, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`m^2(m+1)+1(m+1)``a=m^2``b=1``c=m``d=1`Finally, substitute the values into the formula given for Factoring by Grouping in Pairs.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ $$\color{#00880A}{m^2}(\color{#9a00c7}{m}+\color{#9a00c7}{1})+\color{#00880A}{1}(\color{#9a00c7}{m}+\color{#9a00c7}{1})$$ `=` $$(\color{#00880A}{m^2}+\color{#00880A}{1})(\color{#9a00c7}{m}+\color{#9a00c7}{1})$$ `(m^2+1)(m+1)`Method TwoFirst, group the terms into pairs and factor them.First Pair$$m^3+m^2\color{#9E9E9E}{+m+1}$$ `=` $$m^2(m+1)\color{#9E9E9E}{+m+1}$$ `m^2(m+1)=m^3+m^2` Second Pair$$\color{#9E9E9E}{m^2(m+1)}+m+1$$ `=` $$\color{#9E9E9E}{m^2(m+1)}+1(m+1)$$ `1(m+1)=m+1` Next, write the bracketed terms once.`m^2``(m+1)``+1``(m+1)``(m+1)`Then place the coefficients in a separate bracket.`m^2``(m+1)``+1``(m+1)``(m^2+1)``(m+1)``(m^2+1)(m+1)` -
Question 7 of 7
7. Question
Factor.`-4x(y+7)-8x^2(y+7)`Hint
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Factoring by Grouping in Pairs
$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})=(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$A Greatest Common Factor is the factor of two terms with the highest value.Method OneFirst, label the values in the expression:$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$`-4x(y+7)-8x^2(y+7)``a=-4x``b=-8x^2``c=y``d=7`Substitute the values into the formula given for Factoring by Grouping in Pairs, then simplify.$$\color{#00880A}{a}(\color{#9a00c7}{c}+\color{#9a00c7}{d})+\color{#00880A}{b}(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `=` $$(\color{#00880A}{a}+\color{#00880A}{b})(\color{#9a00c7}{c}+\color{#9a00c7}{d})$$ `-4x(y+7)-8x^2(y+7)` `=` $$\left[\color{#00880A}{-4x}+\left(\color{#00880A}{-8x^2}\right)\right](\color{#9a00c7}{y}+\color{#9a00c7}{7})$$ `=` `(-4x-8x^2)(y+7)` Further factor the first bracket, `(-4x-8x^2)`, by using the Greatest Common Factor (HCF).Start by listing down their factors.Factors of `-4x`: `-1``times``4``times` `x`Factors of `-8x^2`: `-1``times2times``4``times` `x` `times x`Collect the common factors and multiply them all to get the HCF.HCF `=` `-1``times``4``times``x` `=` `-4x` Finally, factor by placing `-4x` outside a bracket.Also, place the given polynomial inside the bracket with each term divided by `-4x`, then simplify.`-4x[(-4xdiv-4x)+(-8x^2div-4x)]` `=` `-4x(1+2x)` Since this is only the factored first bracket, include the second bracket to get the final answer.`-4x(1+2x)(y+7)``-4x(1+2x)(y+7)`Method TwoFirst, write the bracketed terms once.`-4x``(y+7)``-8x^2``(y+7)``(y+7)`Then place the coefficients in a separate bracket.`-4x``(y+7)``-8x^2``(y+7)``(-4x-8x^2)``(y+7)`Further factor the first bracket, `(-4x-8x^2)`, by using the Greatest Common Factor (HCF).Start by listing down their factors.Factors of `-4x`: `-1``times``4``times` `x`Factors of `-8x^2`: `-1``times2times``4``times` `x` `times x`Collect the common factors and multiply them all to get the HCF.HCF `=` `-1``times``4``times``x` `=` `-4x` Finally, factor by placing `-4x` outside a bracket.Also, place the given polynomial inside the bracket with each term divided by `-4x`, then simplify.`-4x[(-4xdiv-4x)+(-8x^2div-4x)]` `=` `-4x(1+2x)` Since this is only the factored first bracket, include the second bracket to get the final answer.`-4x(1+2x)(y+7)``-4x(1+2x)(y+7)`
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