Algebraic Expression

Review – Types of Equations , PEMDAS , Identity

An expression which presents constants, variables, mathematical operations (addition, subtraction, multiplication and division) is known as Algebraic Expression.

45x, 4x+9, (5/6)x² – 9 , a² + b ² all are algebraic expressions.

Let us understand with the following equation

6x² +4x² + 6y+ 11

Where;

x and y are variables

6x² , 4x² – are called as like terms because both are having common variable x²

11 – It is constant term as there is no variable with it.

6x² – The number written with variable is called as coefficient of a term

Equations

When the two algebraic expressions are equal , we solve it to find the values of variables.

Types of Equation

Linear Equation – With one variable

e.g. 10a + 4a – 6 = 15

Solve the following Equations

Ex.1 5x + 3 = 7 – (3x – 3)

Answer; 5x + 3 = 7 – 3x + 3

Transpose like terms on one side

5x + 3x = 10 – 3

8x = 7

x = 7/8

Let us check the equation by substituting the value of x = 7/8

5 x 7/8 + 3 =7 – 3×7/8 + 3

35/8 + 3 = 10 – 21/8

35 + 24 /8 = 80 -21 / 8

59/8 = 59/8

So, Left Hand Side = Right Hand Side , that means our answer is correct.

Ex.2 7 + 15 x = 30x – 5

Answer ,

As this is an equation we can rewrite this expression as follows

30x – 5 = 7 + 15x

Transpose like terms toghether

30x – 15x = 7 + 5

15x = 12

x = 12/15

Reduce the fraction to its lower term

x = 4/5

Now let us check by substituting the value of x in equation

7+ 15 x 4/5 = 30 x 4/5 – 5

7 + 12 =24 -5

19 = 19

So, LHS = RHS

Exercises

15 + x = 6 12a +6 =3a-9 3. 5b -90-6 = 24b +1-8b
-5 – 6x = -4 + 7x 5. 3a + 10 = -16 6. 2(x-1) + 6 = 12x

2. Linear Equation with two variables – Follow the link for more explanation

like ; 5b – 3a = 6 , where a, b are two varibles

3. Quadratic Equations with one variable

e.g. 50a² + 20a – 6 = 0

PEMDAS

To solve any equation we need to apply PEMDAS rule.

P – Parenthesis

E – Exponents

M – Multiplication

D – Division

A – Addition

S – Subtraction

Ex.3 Solve the equation 6(3a+9) –(-5 + 7a) = 2(12a – 5) + (6a – 7)

Answer

6 x 3a + 6 x9 + 5 – 7a = 2 x 12a – 2 x 5 + 6a – 7

18a + 54 + 5 -7a = 24a – 10 + 6a – 7

Transpose like terms together

18a – 7a – 24 a – 6a = -10 – 7 – 54 – 5

– 19 a = – 76

a = -76 /-19

a = 4

Identity

An identity is an equation between two algebraic expressions that is true for all variables.

Following are the standard Identities

x² – y ² = (x-y) (x+ y )
( x – y ) ² = x ² – 2xy + y²
( x + y) ² = x ² + 2xy + y²
( x – y) ³ = x³ – 3x²y + 3xy² – y³
( x + y ) ³ = x³ + 3x²y + 3xy² + y³
X³ – y ³ = (x- y) (x² +xy + y²)
X³ + y ³ = (x+ y) (x² – xy + y²)

Equations

Types of Equation

PEMDAS

Identity

x2 – y 2 = (x-y) (x+ y )

( x – y ) 2 = x 2 – 2xy + y2

( x + y) 2 = x 2 + 2xy + y2

( x – y) 3 = x3 – 3x2y + 3xy2 – y3

( x + y ) 3 = x3 + 3x2y + 3xy2 + y3

X3 – y 3 = (x- y) (x2 +xy + y2 )

X3 + y 3 = (x+ y) (x2 – xy + y2 )

x² – y ² = (x-y) (x+ y )

( x – y ) ² = x ² – 2xy + y²

( x + y) ² = x ² + 2xy + y²

( x – y) ³ = x³ – 3x²y + 3xy² – y³

( x + y ) ³ = x³ + 3x²y + 3xy² + y³

X³ – y ³ = (x- y) (x² +xy + y²)

X³ + y ³ = (x+ y) (x² – xy + y²)