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NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes PDF Download

Exercise 9.3

Question 1. Carry out the multiplication of the expressions in each of the following pairs.

(i) 4p, q + r (ii) ab, a – b (iii) a + b, 7a2b2 (iv) a2 – 9, 4a (v) pq + qr + rp, 0

Solution:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Question 2. Complete the table.

 

First expression

Second expression

Product

(i)

a

b + c + d

 ....

(ii)

x + y - 5

5xy

 ....

(iii)

p

6p2 - 7p + 5

 ....

(iv)

4p2q2

p2 - q2

 ....

(v)

a + b + c

abc

 ....

 

Solution: We have:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Question 3. Find the product.

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP ClassesNCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Solution: 

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

(iv)  x*x2*x3*x4 = (1*1*1*1)*x*x2*x3*x4

= (1)*x10 = x10

Question 4. (a) Simplify 3x(4x – 5) + 3 and find its values for (i) x = 3 and (ii) x = 1/2 (b) Simplify a(a2 + a + 1) + 5 and find its value for (i) a = 0, (ii) a = 1 and (iii) a = –1. 

Solution:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Question 5. 

(a) Add: p(p – q), q(q – r) and r(r – p)

(b) Add: 2x(z – x – y) and 2y(z – y – x)

(c) Subtract: 3l(l – 4m + 5n) from 41(10n + 3m + 2l)

(d) Subtract: 3a(a + b + c) – 2b(a – b + c) from 4c(–a + b + c)

Solution:

(a) ∵ p(p – q) = p* p – p* q = p2 – pq

q(q – r) = q* q – q* r = q2 – qr

and r(r – p) = r* r – r* p = r2 – rp

∴ Adding the above products, we have

(p2 – pq) + (q2 – qr) + (r2 – rp) = p2 – pq + q2 – qr + r2 – rp

= p2 + q2 + r2 – pq – qr – rp

= p2 + q2 + r2 – (pq + qr + rp)

(b) ∵ 2x(z – x – y) = 2x *z – 2x *x – 2x *y = 2xz – 2x2 – 2xy

and 2y(z – y – x) = 2y *z – 2y *y – 2y *x = 2yz – 2y2 – 2yx

∴  Adding the above products, we have

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

(c) ∵ 3l(l – 4m + 5n) = 3l * l – 3l * 4m + 3l * 5n

= 3l2 – 12lm + 15ln

and 4l(10n – 3m + 2l)= 4l * 10n – 4l * 3m + 4l * 2l

= 40ln – 12lm + 8l2

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Multiplying a Polynomial by a Polynomial

Remember

In multiplication of polynomials with polynomials, we always look for like terms, if any, and combine them.

Exercise 9.4

Question 1. Multiply the binomials.

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP ClassesNCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Solution:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Question 2. Find the product:

(i) (5 – 2x) (3 + x)  (ii) (x + 7y) (7x – y) 
(iii) (a2 + b) (a + b2)  (iv) (p2 – q2)(2p + q)

Solution:

 (i) (5 – 2x) * (x + 3) = 5(x + 3) – 2x(x + 3)

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Question 3. Simplify:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Solution:

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes

Identities

We have studied equations earlier and we know that equations are true for certain values of the contained variables. That is the values of two sides (LHS and RHS) are equal only for certain values of variables, but it is not true for all values of the variable. If an equation is true for every value of the variable in it, then it is called an identity.

Standard Identities

Following equations are called the standard identities.

  1. (a + b)2 = a2 + 2ab + b2
  2. (a – b)2 = a2 – 2ab + b2
  3. (a + b)(a – b) = a2 – b2
  4. (x + a)(x + b) = x2 + (a + b)x + ab

Question 1. Verify Identity (IV), for a = 2, b = 3, x = 5 

Solution: We have

(x + a)(x + b) = x2 + (a + b)x + ab

Putting a = 2, b = 3 and x = 5 in the identity:

LHS = (x + a)(x + b)

= (5 + 2)(5 + 3)

= 7 * 8 = 56

RHS = x2 + (a + b)x + ab

= (5)2 + (2 + 3) * 5 + (2 * 3)

= 25 + (5) * 5 + 6

= 25 + 25 + 6 = 56

∴ LHS = RHS

∴ The given identity is true for the given values.

Question 2. Consider the special case of Identity (IV) with a = b, what do you get? Is it related to Identity (I)?

Solution: When a = b (each = y)

(x + a)(x + b) = x2 + (a + b)x + ab becomes

(x + y)(x + y) = x2 + (y + y)x + (y* y)

= x2 + (2y)x + y2

= x2 + 2xy + y2

= Yes, it is the same as Identity I.

Question 3. Consider, the special case of Identity (IV) with a = –c and b = –c. What do you get? Is it related to Identity (II)?

Solution: Identity IV is given by

(x + a)(x + b) = x2 + (a + b)x + ab

Replacing ‘a’ by (–c) and ‘b’ by (–c), we have

(x – c)(x – c) = x2 + [(–c) + (–c)] x + [(–c) * (–c)]

= x2 + [–2c]x + (c2)

= x2 – 2cx + c2

Which is same as Identity II.

Question 4. Consider the special case of Identity (IV) with b = –a. What do you get? It is related to Identity (III).

Solution: The Identity IV is given by

(x + a)(x + b) = x2 + (a + b)x + ab

Replacing ‘b’ by (–a), we have:

(x + a)(x – a) = x2 + [a + (–a)]x + [a * (–a)]

= x2 + [0]x + [–a2]

= x+ 0 + (–a2) = x2 – a2

Which is same as the Identity III.

The document NCERT Solutions (Part- 3)- Algebraic Expressions and Identities | Class 8 Mathematics by VP Classes is a part of the Class 8 Course Class 8 Mathematics by VP Classes.
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FAQs on NCERT Solutions (Part- 3)- Algebraic Expressions and Identities - Class 8 Mathematics by VP Classes

1. What are algebraic expressions and identities?
Ans. Algebraic expressions are mathematical expressions that contain variables, constants, and mathematical operations like addition, subtraction, multiplication, and division. Identities, on the other hand, are equations that are true for all values of the variables involved. They represent a relationship between different algebraic expressions.
2. How do we simplify algebraic expressions?
Ans. To simplify an algebraic expression, we combine like terms, remove parentheses, and apply the order of operations. We can also simplify expressions by using the distributive property or by factoring out common factors.
3. What are the different types of algebraic identities?
Ans. Some common algebraic identities include the distributive property, commutative property, associative property, additive identity, multiplicative identity, and the identity property of equality.
4. How can algebraic expressions and identities be useful in solving real-life problems?
Ans. Algebraic expressions and identities are used in various real-life scenarios such as calculating distances, areas, volumes, and solving problems related to finance, engineering, and physics. They help in representing real-life situations mathematically and finding solutions efficiently.
5. Can you provide an example of an algebraic identity and how it can be used in problem-solving?
Ans. One example of an algebraic identity is the distributive property, which states that for any real numbers a, b, and c: a(b + c) = ab + ac. This identity can be used in problem-solving to expand and simplify expressions, factorize expressions, and solve equations involving multiplication and addition.
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