Solve for p A = 1 2 p a A\ =\ \frac{1}{2}pa A = 2 1 p a

2 A a = p \frac{2A}{a}=p a 2 A = p

A − 1 2 a = p A-\frac{1}{2}a\ =\ p A − 2 1 a = p

A 2 a = p \frac{A}{2a}=p 2 a A = p

2 A − a = p 2A-a\ =\ p 2 A − a = p

Solve for d C = π d C\ =\ \pi d C = π d

C π = d \frac{C}{\pi}=d π C = d

C − π = d C\ -\ \pi=d C − π = d

C + π = d C\ +\ \pi=d C + π = d

Solve for p S A = h p + 2 B SA\ =hp\ +\ 2B S A = h p + 2 B

S A − 2 B h = p \frac{SA-2B}{h}=p h S A − 2 B = p

S A h − 2 B = p \frac{SA}{h}-2B=p h S A − 2 B = p

S A − h 2 B = p \frac{SA-h}{2B}=p 2 B S A − h = p

S A − 2 B − h = p SA-2B-h=p S A − 2 B − h = p

Solve for r: L A = 2 π r h LA\ =\ 2\pi rh L A = 2 π r h

L A 2 π h = r \frac{LA}{2\pi h}=\ r 2 π h L A = r

L A − 2 π h = r LA-2\pi h\ =\ r L A − 2 π h = r

L A 2 − π h = r \frac{LA}{2}-\pi h\ =\ r 2 L A − π h = r

2 L A π h = r \frac{2LA}{\pi h}=\ r π h 2 L A = r

Solve for p: S A = 1 2 l p + B SA\ =\ \frac{1}{2}lp\ +B S A = 2 1 l p + B

2 ( S A − B ) l = p \frac{2\left(SA-B\right)}{l}=p l 2 ( S A − B ) = p

2 S A − B l = p \frac{2SA-B}{l}=\ p l 2 S A − B = p

2 S A l − B = p \frac{2SA}{l}-B\ =\ p l 2 S A − B = p

S A − B 2 l = p \frac{SA-B}{2l}=p 2 l S A − B = p

Solve for x: m = x + y 2 m\ =\frac{x+y}{2} m = 2 x + y

2 m − y = x \ 2m-y=x 2 m − y = x

2 m y = x \frac{2m}{y}=x y 2 m = x

m − y 2 = x \frac{m-y}{2}=x 2 m − y = x

2 ( m − y ) = x 2\left(m-y\right)=x 2 ( m − y ) = x

Literal Equations

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Mathematics

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9th Grade

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Practice Problem

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Medium

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CCSS

HSA.CED.A.4

Standards-aligned

Rebecca Abbott

Used 1K+ times

FREE Resource

10 questions

Show all answers

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for p
$A\ =\ \frac{1}{2}pa$

$A-\frac{1}{2}a\ =\ p$

$\frac{2A}{a}=p$

$\frac{A}{2a}=p$

$2A-a\ =\ p$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for d
$C\ =\ \pi d$

$C\ -\ \pi=d$

$C\ +\ \pi=d$

$\pi C=d$

$\frac{C}{\pi}=d$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for p
$SA\ =hp\ +\ 2B$

$\frac{SA-2B}{h}=p$

$\frac{SA}{h}-2B=p$

$\frac{SA-h}{2B}=p$

$SA-2B-h=p$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for h
$V\ =\ lwh$

$V\ -l-w\ =\ h$

$V-lw\ =\ h$

$\frac{V}{lw}=\ h$

$V-\frac{l}{w}=h$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for r:
$LA\ =\ 2\pi rh$

$LA-2\pi h\ =\ r$

$\frac{LA}{2\pi h}=\ r$

$\frac{LA}{2}-\pi h\ =\ r$

$\frac{2LA}{\pi h}=\ r$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for h:
$V\ =\ \frac{1}{3}\pi r^2h$

$\frac{3V}{\pi r^2}=h$

$\frac{1}{3}V\ -\pi r^2=h$

$3V\ -\ \pi r^2=h$

$\frac{1}{3}V\pi r^2=h$

Tags

CCSS.HSA.CED.A.4

MULTIPLE CHOICE QUESTION

15 mins • 1 pt

Solve for h:
$SA\ =\ 2\pi r^2+2\pi rh$

$\frac{SA}{2\pi r^2+2\pi r}=h$

$\ \frac{SA-2\pi r}{2\pi r^2}=h$

$\frac{SA-2\pi r^2}{2\pi r}=h$

$SA\ -\ \frac{2\pi r^2}{2\pi r}=\ h$

Tags

CCSS.HSA.CED.A.4

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Literal Equations

10 questions

Solve for p
$A\ =\ \frac{1}{2}pa$

Solve for d
$C\ =\ \pi d$

Solve for p
$SA\ =hp\ +\ 2B$

Solve for h
$V\ =\ lwh$

Solve for r:
$LA\ =\ 2\pi rh$

Solve for h:
$V\ =\ \frac{1}{3}\pi r^2h$

Solve for h:
$SA\ =\ 2\pi r^2+2\pi rh$

Solve for c:
$ax^2+bx+c=0$

Solve for p:
$SA\ =\ \frac{1}{2}lp\ +B$

Solve for x:
$m\ =\frac{x+y}{2}$

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Literal Equations

10 questions

Solve for p A = 12paA\ =\ \frac{1}{2}paA = 21​pa

Solve for d C = πdC\ =\ \pi dC = πd

Solve for p SA =hp + 2BSA\ =hp\ +\ 2BSA =hp + 2B

Solve for h V = lwhV\ =\ lwhV = lwh

Solve for r: LA = 2πrhLA\ =\ 2\pi rhLA = 2πrh

Solve for h: V = 13πr2hV\ =\ \frac{1}{3}\pi r^2hV = 31​πr2h

Solve for h: SA = 2πr2+2πrhSA\ =\ 2\pi r^2+2\pi rhSA = 2πr2+2πrh

Solve for c: ax2+bx+c=0ax^2+bx+c=0ax2+bx+c=0

Solve for p: SA = 12lp +BSA\ =\ \frac{1}{2}lp\ +BSA = 21​lp +B

Solve for x: m =x+y2m\ =\frac{x+y}{2}m =2x+y​

Create a free account and access millions of resources

Similar Resources on Wayground

Popular Resources on Wayground

Discover more resources for Mathematics

Solve for p
$A\ =\ \frac{1}{2}pa$

Solve for d
$C\ =\ \pi d$

Solve for p
$SA\ =hp\ +\ 2B$

Solve for h
$V\ =\ lwh$

Solve for r:
$LA\ =\ 2\pi rh$

Solve for h:
$V\ =\ \frac{1}{3}\pi r^2h$

Solve for h:
$SA\ =\ 2\pi r^2+2\pi rh$

Solve for c:
$ax^2+bx+c=0$

Solve for p:
$SA\ =\ \frac{1}{2}lp\ +B$

Solve for x:
$m\ =\frac{x+y}{2}$