Chapter 7 Integrals 12/maths...Class XII Chapter 7 – Integrals Maths Page 2 of 216 Website: Email: [email protected] Mobile: 9999 249717 Head Office: 1/3-H-A-2, Street # 6,

Class XII Chapter 7 – Integrals Maths

Page 1 of 216

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Exercise 7.1

Question 1:

sin 2x

Answer

The anti derivative of sin 2x is a function of x whose derivative is sin 2x.It is known that,

Therefore, the anti derivative of

Question 2:

Cos 3x

Answer

The anti derivative of cos 3x is a function of x whose derivative is cos 3x.

It is known that,

Therefore, the anti derivative of .

Question 3:

e2x

Answer

The anti derivative of e2x is the function of x whose derivative is e2x.

It is known that,

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Question 4:

Answer

The anti derivative of is the function of x whose derivative is .

It is known that,


Question 5:

Answer

The anti derivative of is the function of x whose derivative is

.

It is known that,

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Therefore, the anti derivative of is .

Question 6:

Answer

Question 7:

Answer

Question 8:

Answer

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Question 9:

Answer

Question 10:

Answer

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Question 11:

Answer

Question 12:

Answer

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Question 13:

Answer

On dividing, we obtain

Question 14:

Answer

Question 15:

Answer

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Question 16:

Answer

Question 17:

Answer

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Question 18:

Answer

Question 19:

Answer

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Question 20:

Answer

Question 21:

The anti derivative of equals

(A) (B)

(C) (D)

Answer

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Hence, the correct Answer is C.

Question 22:

If such that f(2) = 0, then f(x) is

(A) (B)

(C) (D)

Answer

It is given that,

∴Anti derivative of

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∴

Also,

Hence, the correct Answer is A.

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Exercise 7.2

Question 1:

Answer

Let = t

∴2x dx = dt

Question 2:

Answer

Let log |x| = t

∴

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Question 3:

Answer

Let 1 + log x = t

∴

Question 4:

sin x ⋅ sin (cos x)

Answer

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sin x ⋅ sin (cos x)

Let cos x = t

∴ −sin x dx = dt

Question 5:

Answer

Let

∴ 2adx = dt

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Question 6:

Answer

Let ax + b = t

⇒ adx = dt

Question 7:

Answer

Let

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∴ dx = dt

Question 8:

Answer

Let 1 + 2x2 = t

∴ 4xdx = dt

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Question 9:

Answer

Let

∴ (2x + 1)dx = dt

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Question 10:

Answer

Let

∴

Question 11:

Answer

Let

∴ dx = dt

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Question 12:

Answer

Let

∴

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Question 13:

Answer

Let

∴ 9x2 dx = dt

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Question 14:

Answer

Let log x = t

∴

Question 15:

Answer

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Let

∴ −8x dx = dt

Question 16:

Answer

Let

∴ 2dx = dt

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Question 17:

Answer

Let

∴ 2xdx = dt

Question 18:

Answer

Let

∴

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Question 19:

Answer

Dividing numerator and denominator by ex, we obtain

Let

∴

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Question 20:

Answer

Let

∴

Question 21:

Answer

Let 2x − 3 = t

∴ 2dx = dt

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Question 22:

Answer

Let 7 − 4x = t

∴ −4dx = dt

Question 23:

Answer

Let

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∴

Question 24:

Answer

Let

∴

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Question 25:

Answer

Let

∴

Question 26:

Answer

Let

∴

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Question 27:

Answer

Let sin 2x = t

∴

Question 28:

Answer

Let

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∴ cos x dx = dt

Question 29:

cot x log sin x

Answer

Let log sin x = t

Question 30:

Answer

Let 1 + cos x = t

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Question 31:

Answer

Let 1 + cos x = t


Question 32:

Answer

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Let sin x + cos x = t ⇒ (cos x − sin x) dx = dt

Question 33:

Answer

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Put cos x − sin x = t ⇒ (−sin x − cos x) dx = dt

Question 34:

Answer

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Question 35:

Answer

Let 1 + log x = t

∴

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Question 36:

Answer

Let

∴

Question 37:

Answer

Let x4 = t

∴ 4x3 dx = dt

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Let

∴

From (1), we obtain

Question 38:

equals

Answer

Let

∴

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Hence, the correct Answer is D.

Question 39:

equals

A.

B.

C.

D.

Answer

Hence, the correct Answer is B.

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Exercise 7.3

Question 1:

Answer

Question 2:

Answer

It is known that,

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Question 3:

cos 2x cos 4x cos 6x

Answer

It is known that,

Question 4:

sin3 (2x + 1)

Answer

Let

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Question 5:

sin3 x cos3 x

Answer

Question 6:

sin x sin 2x sin 3x

Answer

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It is known that,

Question 7:

sin 4x sin 8x

Answer

It is known that,

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Question 8:

Answer

Question 9:

Answer

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Question 10:

sin4 x

Answer

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Question 11:

cos4 2x

Answer

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Question 12:

Answer

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Question 13:

Answer

Question 14:

Answer

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Question 15:

Answer

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Question 16:

tan4x

Answer

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From equation (1), we obtain

Question 17:

Answer

Question 18:

Answer

Question 19:

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Answer

Question 20:

Answer

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Question 21:

sin−1 (cos x)

Answer

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It is known that,

Substituting in equation (1), we obtain

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Question 22:

Answer

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Question 23:

is equal to

A. tan x + cot x + C

B. tan x + cosec x + C

C. − tan x + cot x + C

D. tan x + sec x + C

Answer


Question 24:

equals

A. − cot (exx) + C

B. tan (xex) + C

C. tan (ex) + C

D. cot (ex) + C

Answer

Let exx = t

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Exercise 7.4

Question 1:

Answer

Let x3 = t

∴ 3x2 dx = dt

Question 2:

Answer

Let 2x = t

∴ 2dx = dt

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Question 3:

Answer

Let 2 − x = t

⇒ −dx = dt

Question 4:

Answer

Let 5x = t

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∴ 5dx = dt

Question 5:

Answer

Question 6:

Answer

Let x3 = t

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∴ 3x2 dx = dt

Question 7:

Answer

From (1), we obtain

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Question 8:

Answer

Let x3 = t

⇒ 3x2 dx = dt

Question 9:

Answer

Let tan x = t

∴ sec2x dx = dt

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Question 10:

Answer

Question 11:

Answer

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Question 12:

Answer

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Question 13:

Answer

Question 14:

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Answer

Question 15:

Answer

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Question 16:

Answer

Equating the coefficients of x and constant term on both sides, we obtain

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4A = 4 ⇒ A = 1

A + B = 1 ⇒ B = 0

Let 2x2 + x − 3 = t

∴ (4x + 1) dx = dt

Question 17:

Answer


From (1), we obtain

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Question 18:

Answer

Equating the coefficient of x and constant term on both sides, we obtain

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Substituting equations (2) and (3) in equation (1), we obtain

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Question 19:

Answer

Equating the coefficients of x and constant term, we obtain

2A = 6 ⇒ A = 3

−9A + B = 7 ⇒ B = 34

∴ 6x + 7 = 3 (2x − 9) + 34

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Substituting equations (2) and (3) in (1), we obtain

Question 20:

Answer


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Using equations (2) and (3) in (1), we obtain

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Question 21:

Answer

Let x2 + 2x +3 = t

⇒ (2x + 2) dx =dt

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Question 22:

Answer


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Substituting (2) and (3) in (1), we obtain

Question 23:

Answer

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Question 24:

equals

A. x tan−1 (x + 1) + C

B. tan− 1 (x + 1) + C

C. (x + 1) tan−1 x + C

D. tan−1 x + C

Answer


Question 25:

equals

A.

B.

C.

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D.

Answer


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Exercise 7.5

Question 1:

Answer

Let


A + B = 1

2A + B = 0

On solving, we obtain

A = −1 and B = 2

Question 2:

Answer

Let

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A + B = 0

−3A + 3B = 1


Question 3:

Answer

Let

Substituting x = 1, 2, and 3 respectively in equation (1), we obtain

A = 1, B = −5, and C = 4

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Question 4:

Answer

Let

Substituting x = 1, 2, and 3 respectively in equation (1), we obtain

Question 5:

Answer

Let

Substituting x = −1 and −2 in equation (1), we obtain

A = −2 and B = 4

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Question 6:

Answer

It can be seen that the given integrand is not a proper fraction.

Therefore, on dividing (1 − x2) by x(1 − 2x), we obtain

Let

Substituting x = 0 and in equation (1), we obtain

A = 2 and B = 3

Substituting in equation (1), we obtain

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Question 7:

Answer

Let

Equating the coefficients of x2, x, and constant term, we obtain

A + C = 0

−A + B = 1

−B + C = 0

On solving these equations, we obtain


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Question 8:

Answer

Let

Substituting x = 1, we obtain

Equating the coefficients of x2 and constant term, we obtain

A + C = 0

−2A + 2B + C = 0


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Question 9:

Answer

Let

Substituting x = 1 in equation (1), we obtain

B = 4

Equating the coefficients of x2 and x, we obtain

A + C = 0

B − 2C = 3


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Question 10:

Answer

Let

Equating the coefficients of x2 and x, we obtain

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Question 11:

Answer

Let

Substituting x = −1, −2, and 2 respectively in equation (1), we obtain

Question 12:

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Answer

It can be seen that the given integrand is not a proper fraction.

Therefore, on dividing (x3 + x + 1) by x2 − 1, we obtain

Let

Substituting x = 1 and −1 in equation (1), we obtain

Question 13:

Answer

Equating the coefficient of x2, x, and constant term, we obtain

A − B = 0

B − C = 0

A + C = 2

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A = 1, B = 1, and C = 1

Question 14:

Answer

Equating the coefficient of x and constant term, we obtain

A = 3

2A + B = −1 ⇒ B = −7

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Question 15:

Answer

Equating the coefficient of x3, x2, x, and constant term, we obtain


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Question 16:

[Hint: multiply numerator and denominator by xn − 1 and put xn = t]

Answer

Multiplying numerator and denominator by xn − 1, we obtain

Substituting t = 0, −1 in equation (1), we obtain

A = 1 and B = −1

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Question 17:

[Hint: Put sin x = t]

Answer

Substituting t = 2 and then t = 1 in equation (1), we obtain

A = 1 and B = −1

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Question 18:

Answer

Equating the coefficients of x3, x2, x, and constant term, we obtain

A + C = 0

B + D = 4

4A + 3C = 0

4B + 3D = 10


A = 0, B = −2, C = 0, and D = 6

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Question 19:

Answer

Let x2 = t ⇒ 2x dx = dt

Substituting t = −3 and t = −1 in equation (1), we obtain

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Question 20:

Answer

Multiplying numerator and denominator by x3, we obtain

Let x4 = t ⇒ 4x3dx = dt

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Substituting t = 0 and 1 in (1), we obtain

A = −1 and B = 1

Question 21:

[Hint: Put ex = t]

Answer

Let ex = t ⇒ ex dx = dt

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Substituting t = 1 and t = 0 in equation (1), we obtain

A = −1 and B = 1

Question 22:

A.

B.

C.

D.

Answer

Substituting x = 1 and 2 in (1), we obtain

A = −1 and B = 2

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Question 23:

A.

B.

C.

D.

Answer


A + B = 0

C = 0

A = 1


A = 1, B = −1, and C = 0

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Exercise 7.6

Question 1:

x sin x

Answer

Let I =

Taking x as first function and sin x as second function and integrating by parts, we

obtain

Question 2:

Answer

Let I =

Taking x as first function and sin 3x as second function and integrating by parts, we

obtain

Question 3:

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Answer

Let

Taking x2 as first function and ex as second function and integrating by parts, we obtain

Again integrating by parts, we obtain

Question 4:

x logx

Answer

Let

Taking log x as first function and x as second function and integrating by parts, we

obtain

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Question 5:

x log 2x

Answer

Let

Taking log 2x as first function and x as second function and integrating by parts, we

obtain

Question 6:

x2 log x

Answer

Let

Taking log x as first function and x2 as second function and integrating by parts, we

obtain

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Question 7:

Answer

Let

Taking as first function and x as second function and integrating by parts, we

obtain

Question 8:

Answer

Let

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Taking as first function and x as second function and integrating by parts, we

obtain

Question 9:

Answer

Let

Taking cos−1 x as first function and x as second function and integrating by parts, we

obtain

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Question 10:

Answer

Let

Taking as first function and 1 as second function and integrating by parts, we

obtain

Question 11:

Answer

Let

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Taking as first function and as second function and integrating by parts,

we obtain

Question 12:

Answer

Let

Taking x as first function and sec2x as second function and integrating by parts, we

obtain

Question 13:

Answer

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Let


obtain

Question 14:

Answer


obtain


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Question 15:

Answer

Let

Let I = I1 + I2 … (1)

Where, and

Taking log x as first function and x2 as second function and integrating by parts, we

obtain

Taking log x as first function and 1 as second function and integrating by parts, we

obtain

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Question 16:

Answer

Let

Let

⇒

⇒

It is known that,

Question 17:

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Answer

Let

Let ⇒

It is known that,

Question 18:

Answer

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Let ⇒

It is known that,


Question 19:

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Answer

Also, let ⇒

It is known that,

Question 20:

Answer

Let ⇒

It is known that,

Question 21:

Answer

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Let

Integrating by parts, we obtain


Question 22:

Answer

Let ⇒

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= 2θ

⇒


Question 23:

equals

Answer

Let

Also, let ⇒

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Question 24:

equals

Answer

Let

Also, let ⇒

It is known that,


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Exercise 7.7

Question 1:

Answer

Question 2:

Answer

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Question 3:

Answer

Question 4:

Answer

Question 5:

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Answer

Question 6:

Answer

Question 7:

Answer

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Question 8:

Answer

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Question 9:

Answer

Question 10:

is equal to

A.

B.

C.

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D.

Answer


Question 11:

is equal to

A.

B.

C.

D.

Answer


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Exercise 7.8

Question 1:

Answer

It is known that,

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Question 2:

Answer

It is known that,

Question 3:

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Answer

It is known that,

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Question 4:

Answer

It is known that,

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From equations (2) and (3), we obtain

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Question 5:

Answer

It is known that,

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Question 6:

Answer

It is known that,

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Exercise 7.9

Question 1:

Answer

By second fundamental theorem of calculus, we obtain

Question 2:

Answer


Question 3:

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Answer


Question 4:

Answer


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Question 5:

Answer


Question 6:

Answer

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Question 7:

Answer


Question 8:

Answer

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Question 9:

Answer


Question 10:

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Answer


Question 11:

Answer


Question 12:

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Answer


Question 13:

Answer


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Question 14:

Answer


Question 15:

Answer

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Question 16:

Answer

Let

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A = 10 and B = −25

Substituting the value of I1 in (1), we obtain

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Question 17:

Answer


Question 18:

Answer

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Question 19:

Answer


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Question 20:

Answer


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Question 21:

equals

A.

B.

C.

D.

Answer



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Question 22:

equals

A.

B.

C.

D.

Answer


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Exercise 7.10

Question 1:

Answer

When x = 0, t = 1 and when x = 1, t = 2

Question 2:

Answer

Also, let

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Question 3:

Answer

Also, let x = tanθ ⇒ dx = sec2θ dθ

When x = 0, θ = 0 and when x = 1,

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Takingθas first function and sec2θ as second function and integrating by parts, we obtain

Question 4:

Answer

Let x + 2 = t2 ⇒ dx = 2tdt

When x = 0, and when x = 2, t = 2

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Question 5:

Answer

Let cos x = t ⇒ −sinx dx = dt

When x = 0, t = 1 and when

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Question 6:

Answer

Let ⇒ dx = dt

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Question 7:

Answer

Let x + 1 = t ⇒ dx = dt

When x = −1, t = 0 and when x = 1, t = 2

Question 8:

Answer

Let 2x = t ⇒ 2dx = dt

When x = 1, t = 2 and when x = 2, t = 4

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Question 9:

The value of the integral is

A. 6

B. 0

C. 3

D. 4

Answer

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Let cotθ = t ⇒ −cosec2θ dθ= dt

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Question 10:

If

A. cos x + x sin x

B. x sin x

C. x cos x

D. sin x + x cos x

Answer


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Exercise 7.11

Question 1:

Answer

Adding (1) and (2), we obtain

Question 2:

Answer

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Question 3:

Answer

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Question 4:

Answer

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Question 5:

Answer

It can be seen that (x + 2) ≤ 0 on [−5, −2] and (x + 2) ≥ 0 on [−2, 5].

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Question 6:

Answer

It can be seen that (x − 5) ≤ 0 on [2, 5] and (x − 5) ≥ 0 on [5, 8].

Question 7:

Answer

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Question 8:

Answer

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Question 9:

Answer

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Question 10:

Answer

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Question 11:

Answer

As sin2 (−x) = (sin (−x))2 = (−sin x)2 = sin2x, therefore, sin2x is an even function.

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It is known that if f(x) is an even function, then

Question 12:

Answer


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Question 13:

Answer

As sin7 (−x) = (sin (−x))7 = (−sin x)7 = −sin7x, therefore, sin2x is an odd function.

It is known that, if f(x) is an odd function, then

Question 14:

Answer

It is known that,

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Question 15:

Answer


Question 16:

Answer

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sin (π − x) = sin x


Let 2x = t ⇒ 2dx = dt

When x = 0, t = 0 and when

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Question 17:

Answer

It is known that,


Question 18:

Answer

It can be seen that, (x − 1) ≤ 0 when 0 ≤ x ≤ 1 and (x − 1) ≥ 0 when 1 ≤ x ≤ 4

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Question 19:

Show that if f and g are defined as and

Answer


Question 20:

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The value of is

A. 0

B. 2

C. π

D. 1

Answer

It is known that if f(x) is an even function, then and

if f(x) is an odd function, then


Question 21:

The value of is

A. 2

B.

C. 0

D.

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Answer



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Miscellaneous Solutions

Question 1:

Answer


−A + B − C = 0

B + C = 0

A = 1



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Question 2:

Answer

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Question 3:

[Hint: Put ]

Answer

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Question 4:

Answer

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Question 5:

Answer

On dividing, we obtain

Question 6:

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Answer


A + B = 0

B + C = 5

9A + C = 0



Question 7:

Answer

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Let x − a = t ⇒ dx = dt

Question 8:

Answer

Question 9:

Answer

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Let sin x = t ⇒ cos x dx = dt

Question 10:

Answer

Question 11:

Answer

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Question 12:

Answer

Let x4 = t ⇒ 4x3 dx = dt

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Question 13:

Answer

Let ex = t ⇒ ex dx = dt

Question 14:

Answer

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Equating the coefficients of x3, x2, x, and constant term, we obtain

A + C = 0

B + D = 0

4A + C = 0

4B + D = 1



Question 15:

Answer

= cos3 x × sin x

Let cos x = t ⇒ −sin x dx = dt

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Question 16:

Answer

Question 17:

Answer

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Question 18:

Answer

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Question 19:

Answer

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Question 20:

Answer

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Question 21:

Answer

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Question 22:

Answer

Equating the coefficients of x2, x,and constant term, we obtain

A + C = 1

3A + B + 2C = 1

2A + 2B + C = 1


A = −2, B = 1, and C = 3


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Question 23:

Answer

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Question 24:

Answer


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Question 25:

Answer

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Question 26:

Answer

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When x = 0, t = 0 and

Question 27:

Answer

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When and when

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Question 28:

Answer

When and when

As , therefore, is an even function.

It is known that if f(x) is an even function, then

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Question 29:

Answer

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Question 30:

Answer

Question 31:

Answer

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Question 32:

Answer

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Question 33:

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Answer

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From equations (1), (2), (3), and (4), we obtain

Question 34:

Answer


A + C = 0

A + B = 0

B = 1


A = −1, C = 1, and B = 1

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Hence, the given result is proved.

Question 35:

Answer


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Question 36:

Answer

Therefore, f (x) is an odd function.

It is known that if f(x) is an odd function, then


Question 37:

Answer

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Question 38:

Answer


Question 39:

Answer


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Let 1 − x2 = t ⇒ −2x dx = dt


Question 40:

Evaluate as a limit of a sum.

Answer

It is known that,

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Question 41:

is equal to

A.

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B.

C.

D.

Answer


Question 42:

is equal to

A.

B.

C.

D.

Answer

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Question 43:

If then is equal to

A.

B.

C.

D.

Answer

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Question 44:

The value of is

A. 1

B. 0

C. − 1

D.

Answer

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