Class 9 Exam > Class 9 Notes > Mathematics (Maths) Class 9 > RD Sharma Solutions: Algebraic Identities- 1
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Page 1
Q u e s t i o n : 1
Evaluate each of the following using identities:
i
2x -
1
x
2
ii
(2x + y) (2x - y)
iii
(a
2
b - b
2
a)
2
iv
(a - 0.1) (a + 0.1)
v
(1.5x
2
- 0.3y
2
) (1.5x
2
+ 0.3y
2
)
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We shall use the identity
By applying identity we get
Hence the value of is
ii We have been given
We shall use the identity
Here, ,
By applying identity we get
Hence the value of is
( )
Page 2
Q u e s t i o n : 1
Evaluate each of the following using identities:
i
2x -
1
x
2
ii
(2x + y) (2x - y)
iii
(a
2
b - b
2
a)
2
iv
(a - 0.1) (a + 0.1)
v
(1.5x
2
- 0.3y
2
) (1.5x
2
+ 0.3y
2
)
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We shall use the identity
By applying identity we get
Hence the value of is
ii We have been given
We shall use the identity
Here, ,
By applying identity we get
Hence the value of is
( )
iii The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
iv The given expression is
(a +0. 1)(a -0. 1)
We shall use the identity
Here
By applying identity we get
(a +0. 1)(a -0. 1) = (a)
2
-(0. 1)
2
= (a ×a)-(0. 1 ×0. 1) = a
2
-0. 01
Hence the value of(a +0. 1)(a -0. 1)
is
v The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
Q u e s t i o n : 2
Evaluate each of the following using identities:
i
399
2
ii
0.98
2
iii
991 ? 1009
Page 3
Q u e s t i o n : 1
Evaluate each of the following using identities:
i
2x -
1
x
2
ii
(2x + y) (2x - y)
iii
(a
2
b - b
2
a)
2
iv
(a - 0.1) (a + 0.1)
v
(1.5x
2
- 0.3y
2
) (1.5x
2
+ 0.3y
2
)
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We shall use the identity
By applying identity we get
Hence the value of is
ii We have been given
We shall use the identity
Here, ,
By applying identity we get
Hence the value of is
( )
iii The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
iv The given expression is
(a +0. 1)(a -0. 1)
We shall use the identity
Here
By applying identity we get
(a +0. 1)(a -0. 1) = (a)
2
-(0. 1)
2
= (a ×a)-(0. 1 ×0. 1) = a
2
-0. 01
Hence the value of(a +0. 1)(a -0. 1)
is
v The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
Q u e s t i o n : 2
Evaluate each of the following using identities:
i
399
2
ii
0.98
2
iii
991 ? 1009
iv
117 ? 83
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We can write as
We shall use the Identity
Where ,
By applying in identity we get
(400 -1)
2
= (400)
2
-2 ×400 ×1 +(1)
2
= 400 ×400 -800 +1 = 160000 -800 +1 = 159201
Hence the value of is
ii We have been given
We can write as
We shall use the identity
Where ,
By applying in identity we get
Hence the value of is
iii The given expression is
We have
So we can express and in the terms of as
We shall use the identity
(x -y)(x +y) = x
2
-y
2
Here
By applying in identity we get
Hence the value of is
iv The given expression is
Page 4
Q u e s t i o n : 1
Evaluate each of the following using identities:
i
2x -
1
x
2
ii
(2x + y) (2x - y)
iii
(a
2
b - b
2
a)
2
iv
(a - 0.1) (a + 0.1)
v
(1.5x
2
- 0.3y
2
) (1.5x
2
+ 0.3y
2
)
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We shall use the identity
By applying identity we get
Hence the value of is
ii We have been given
We shall use the identity
Here, ,
By applying identity we get
Hence the value of is
( )
iii The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
iv The given expression is
(a +0. 1)(a -0. 1)
We shall use the identity
Here
By applying identity we get
(a +0. 1)(a -0. 1) = (a)
2
-(0. 1)
2
= (a ×a)-(0. 1 ×0. 1) = a
2
-0. 01
Hence the value of(a +0. 1)(a -0. 1)
is
v The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
Q u e s t i o n : 2
Evaluate each of the following using identities:
i
399
2
ii
0.98
2
iii
991 ? 1009
iv
117 ? 83
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We can write as
We shall use the Identity
Where ,
By applying in identity we get
(400 -1)
2
= (400)
2
-2 ×400 ×1 +(1)
2
= 400 ×400 -800 +1 = 160000 -800 +1 = 159201
Hence the value of is
ii We have been given
We can write as
We shall use the identity
Where ,
By applying in identity we get
Hence the value of is
iii The given expression is
We have
So we can express and in the terms of as
We shall use the identity
(x -y)(x +y) = x
2
-y
2
Here
By applying in identity we get
Hence the value of is
iv The given expression is
We have
So we can express and in the terms of 100 as
We shall use the identity (x -y)(x +y) = x
2
-y
2
Here
By applying in identity we get
Hence the value of is
Q u e s t i o n : 3
Simplify each of the following:
i
175 × 175 + 2 × 175 × 25 + 25 × 25
ii
322 × 322 - 2 × 322 × 22 + 22 × 22
iii
0.76 × 0.76 + 2 × 0.76 × 0.24 + 0.24 × × 0.24
iv
7.83 ×7.83-1.17×1.17
6.66
S o l u t i o n :
In the given problem, we have to simplify expressions
i Given
Put
Hence the equation becomes ,
That is
Hence the value of is
Page 5
Q u e s t i o n : 1
Evaluate each of the following using identities:
i
2x -
1
x
2
ii
(2x + y) (2x - y)
iii
(a
2
b - b
2
a)
2
iv
(a - 0.1) (a + 0.1)
v
(1.5x
2
- 0.3y
2
) (1.5x
2
+ 0.3y
2
)
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We shall use the identity
By applying identity we get
Hence the value of is
ii We have been given
We shall use the identity
Here, ,
By applying identity we get
Hence the value of is
( )
iii The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
iv The given expression is
(a +0. 1)(a -0. 1)
We shall use the identity
Here
By applying identity we get
(a +0. 1)(a -0. 1) = (a)
2
-(0. 1)
2
= (a ×a)-(0. 1 ×0. 1) = a
2
-0. 01
Hence the value of(a +0. 1)(a -0. 1)
is
v The given expression is
We shall use the identity
Here
By applying identity we get
Hence the value of is
Q u e s t i o n : 2
Evaluate each of the following using identities:
i
399
2
ii
0.98
2
iii
991 ? 1009
iv
117 ? 83
S o l u t i o n :
In the given problem, we have to evaluate expressions by using identities.
i Given
We can write as
We shall use the Identity
Where ,
By applying in identity we get
(400 -1)
2
= (400)
2
-2 ×400 ×1 +(1)
2
= 400 ×400 -800 +1 = 160000 -800 +1 = 159201
Hence the value of is
ii We have been given
We can write as
We shall use the identity
Where ,
By applying in identity we get
Hence the value of is
iii The given expression is
We have
So we can express and in the terms of as
We shall use the identity
(x -y)(x +y) = x
2
-y
2
Here
By applying in identity we get
Hence the value of is
iv The given expression is
We have
So we can express and in the terms of 100 as
We shall use the identity (x -y)(x +y) = x
2
-y
2
Here
By applying in identity we get
Hence the value of is
Q u e s t i o n : 3
Simplify each of the following:
i
175 × 175 + 2 × 175 × 25 + 25 × 25
ii
322 × 322 - 2 × 322 × 22 + 22 × 22
iii
0.76 × 0.76 + 2 × 0.76 × 0.24 + 0.24 × × 0.24
iv
7.83 ×7.83-1.17×1.17
6.66
S o l u t i o n :
In the given problem, we have to simplify expressions
i Given
Put
Hence the equation becomes ,
That is
Hence the value of is
ii We have been given
Put
Hence the equation becomes
That is
Hence the value of is
iii Given
Put
Hence the equation becomes
That is
Hence the value of is
iv We have been given
Put
Hence the equation becomes
Hence the value of is
Q u e s t i o n : 4
If x +
1
x
= 11,
find the value of x
2
+
1
x
2
.
S o l u t i o n :
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