I am currently enrolled for a precalculus class and I got stuck with this problem. It would be helpful if I got any help; so far I tried doing it but I'm stuck! $$by-d=ay+c,\quad\text{solve for }y.$$
Solving for the Indicated Variable
0
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algebra-precalculus
2 Answers
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First, move all the terms with $y$ to one side and all terms without to the other:
$by-ay=c+d$
Factor out the $y$
$(b-a)y=c+d$
Assuming $a \ne b$, divide (typo corrected)
$y=\frac{c+d}{b-a}$
If $a=b$ and $c=-d$, $y$ can be anything ( $0y = 0$ is true for any $y$). However, if $a=b$ and $c \neq -d$, there are no solutions for $y$ as the left side is 0, but the right side is not ($0y \neq 5$, or 3, or anything).
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1+1. Since the OP seems to be a beginner, I think it might be a good idea to explain what happens if $a = b$... – 2011-09-02
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0Thanks a lot for your help but i am wondering how is it you got (b-a)y =c+d ? I understand how you had to subtract the ay but by-ay= c+d did you factor it to get (b-a)y=c+d? – 2011-09-02
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0@Liz: That's the distributive law at work. – 2011-09-02
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0@Liz, yes. $by-ay$ can be factored as $(b-a)y$. This is called "distributive law", since the multiplication operation *distributes* over the subtraction. – 2011-09-02
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0@J.M I see now what he did!!! thanks J.M if im correct he did this: y(b)-y(a)=c+d so its like (b-a)y !!! thanks J.M you too Srivatsan Narayanan!!!! – 2011-09-02
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0@Liz: yes, there was a typo. And as suggested by Srivatsan Narayanan, I have added what happens if a=b. Hope this helps – 2011-09-02
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0@Liz Be sure to note that the final step of dividing by $a-b$ is allowed only if $a-b \neq 0$, or equivalently, $a=b$. – 2011-09-02
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1@Srivatsan Narayanan: In your last comment, I think you want $a \ne b$. I said that in the original response. – 2011-09-02
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0Ross, Yes, I just wanted to say it once more, I guess :) (@Liz, Sorry about the typo.) – 2011-09-02
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0@Liz, if you're already happy with Ross's answer, you might want to click the green checkmark on the left of his answer. – 2011-09-02
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Try gathering the terms with $y$ on the same side, $$ by-d=ay+c\implies by-ay=d+c $$ by subtracting $ay$ from both sides and adding $d$ to both sides of the equation. Try using the distributive law to now solve for $y$, assuming $a\neq b$.