QUESTION IMAGE
Question
factor completely.
$7q^{3}+7q^{2}-9q - 9$
Step1: Group terms into pairs
Group the first two and last two terms:
$(7q^3 + 7q^2) + (-9q - 9)$
Step2: Factor out GCF from each group
Factor $7q^2$ from first group, $-9$ from second:
$7q^2(q + 1) - 9(q + 1)$
Step3: Factor out common binomial
Factor $(q + 1)$ from both terms:
$(q + 1)(7q^2 - 9)$
Step4: Check for further factoring
$7q^2 - 9$ is a difference of squares: $7q^2 - 9 = (\sqrt{7}q)^2 - 3^2$, so factor it:
$(q + 1)(\sqrt{7}q - 3)(\sqrt{7}q + 3)$
(Note: If restricting to integer factors, stop at $(q + 1)(7q^2 - 9)$; full real factorization is above.)
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$(q + 1)(\sqrt{7}q - 3)(\sqrt{7}q + 3)$
Or for integer factorization: $(q + 1)(7q^2 - 9)$