JEE Exam > JEE Notes > Mathematics (Maths) Class 12 > Past Year Paper - Solutions, Mathematics (Set - 1, 2 and 3), Outside Delhi, 2016, Class 12, Maths
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Page 1
Strictly Confidential — (For Internal and Restricted Use Only)
Senior School Certificate Examination
March 2016
Marking Scheme — Mathematics 65/1/C, 65/2/C, 65/3/C
General Instructions:
1. The Marking Scheme provides general guidelines to reduce subjectivity in the marking. The answers
given in the Marking Scheme are suggested answers. The content is thus indicative. If a student has
given any other answer which is different from the one given in the Marking Scheme, but conveys
the meaning, such answers should be given full weightage
2. Evaluation is to be done as per instructions provided in the marking scheme. It should not be done
according to one’s own interpretation or any other consideration — Marking Scheme should be
strictly adhered to and religiously followed.
3. Alternative methods are accepted. Proportional marks are to be awarded.
4. In question (s) on differential equations, constant of integration has to be written.
5. If a candidate has attempted an extra question, marks obtained in the question attempted first should
be retained and the other answer should be scored out.
6. A full scale of marks - 0 to 100 has to be used. Please do not hesitate to award full marks if the
answer deserves it.
7. Separate Marking Scheme for all the three sets has been given.
8. As per orders of the Hon’ble Supreme Court. The candidates would now be permitted to obtain
photocopy of the Answer book on request on payment of the prescribed fee. All examiners/Head
Examiners are once again reminded that they must ensure that evaluation is carried out strictly as
per value points for each answer as given in the Marking Scheme.
Page 2
Strictly Confidential — (For Internal and Restricted Use Only)
Senior School Certificate Examination
March 2016
Marking Scheme — Mathematics 65/1/C, 65/2/C, 65/3/C
General Instructions:
1. The Marking Scheme provides general guidelines to reduce subjectivity in the marking. The answers
given in the Marking Scheme are suggested answers. The content is thus indicative. If a student has
given any other answer which is different from the one given in the Marking Scheme, but conveys
the meaning, such answers should be given full weightage
2. Evaluation is to be done as per instructions provided in the marking scheme. It should not be done
according to one’s own interpretation or any other consideration — Marking Scheme should be
strictly adhered to and religiously followed.
3. Alternative methods are accepted. Proportional marks are to be awarded.
4. In question (s) on differential equations, constant of integration has to be written.
5. If a candidate has attempted an extra question, marks obtained in the question attempted first should
be retained and the other answer should be scored out.
6. A full scale of marks - 0 to 100 has to be used. Please do not hesitate to award full marks if the
answer deserves it.
7. Separate Marking Scheme for all the three sets has been given.
8. As per orders of the Hon’ble Supreme Court. The candidates would now be permitted to obtain
photocopy of the Answer book on request on payment of the prescribed fee. All examiners/Head
Examiners are once again reminded that they must ensure that evaluation is carried out strictly as
per value points for each answer as given in the Marking Scheme.
QUESTION PAPER CODE 65/1/C
EXPECTED ANSWER/VALUE POINTS
SECTION A
1. (x + 3)2x – (–2) (–3x) = 8
1
2
x = 2
1
2
2.
2 5
2 4
? ?
? ?
? ?
=
3 1 1 2
2 0 1 1
? ?? ?
? ?? ?
- -
? ?? ?
1
2
+
1
2
3. No. of possible matrices = 3
4
1
or 81
4.
2 (2a 3b) 1(3a – 2b)
2 1
+ +
+
1
2
=
7 4
a b
3 3
+
(or enternal division may also be considered)
1
2
5. 2 1
6.
x y z
3 4 2
+ +
-
= 1
1
2
?
ˆ ˆ ˆ
r (4i 3j 6k) · - +
= 12 or
ˆ ˆ ˆ
i j k
r 1
3 4 2
? ?
· - + =
? ?
? ?
? ?
1
2
SECTION B
7. Equation of line through A(3, 4, 1) and B(5, 1, 6)
x 3
2
-
=
y 4 z 1
k(say)
3 5
- -
= =
-
1
General point on the line:
x = 2k + 3, y = – 3k + 4, z = 5k + 1
1
2
line crosses xz plane i.e. y = 0 if –3k + 4 = 0
? k =
4
3
1
Co-ordinate of required point
17 23
, 0,
3 3
? ?
? ?
? ?
1
2
Angle, which line makes with xz plane:
sin ? =
2 (0) ( 3) (1) 5(0) 3
4 9 25 1 38
+ - +
=
+ +
? ? =
1
3
sin
38
-
? ?
? ?
? ?
1
?
?
?
?
?
65/1/C (1)
65/1/C
Page 3
Strictly Confidential — (For Internal and Restricted Use Only)
Senior School Certificate Examination
March 2016
Marking Scheme — Mathematics 65/1/C, 65/2/C, 65/3/C
General Instructions:
1. The Marking Scheme provides general guidelines to reduce subjectivity in the marking. The answers
given in the Marking Scheme are suggested answers. The content is thus indicative. If a student has
given any other answer which is different from the one given in the Marking Scheme, but conveys
the meaning, such answers should be given full weightage
2. Evaluation is to be done as per instructions provided in the marking scheme. It should not be done
according to one’s own interpretation or any other consideration — Marking Scheme should be
strictly adhered to and religiously followed.
3. Alternative methods are accepted. Proportional marks are to be awarded.
4. In question (s) on differential equations, constant of integration has to be written.
5. If a candidate has attempted an extra question, marks obtained in the question attempted first should
be retained and the other answer should be scored out.
6. A full scale of marks - 0 to 100 has to be used. Please do not hesitate to award full marks if the
answer deserves it.
7. Separate Marking Scheme for all the three sets has been given.
8. As per orders of the Hon’ble Supreme Court. The candidates would now be permitted to obtain
photocopy of the Answer book on request on payment of the prescribed fee. All examiners/Head
Examiners are once again reminded that they must ensure that evaluation is carried out strictly as
per value points for each answer as given in the Marking Scheme.
QUESTION PAPER CODE 65/1/C
EXPECTED ANSWER/VALUE POINTS
SECTION A
1. (x + 3)2x – (–2) (–3x) = 8
1
2
x = 2
1
2
2.
2 5
2 4
? ?
? ?
? ?
=
3 1 1 2
2 0 1 1
? ?? ?
? ?? ?
- -
? ?? ?
1
2
+
1
2
3. No. of possible matrices = 3
4
1
or 81
4.
2 (2a 3b) 1(3a – 2b)
2 1
+ +
+
1
2
=
7 4
a b
3 3
+
(or enternal division may also be considered)
1
2
5. 2 1
6.
x y z
3 4 2
+ +
-
= 1
1
2
?
ˆ ˆ ˆ
r (4i 3j 6k) · - +
= 12 or
ˆ ˆ ˆ
i j k
r 1
3 4 2
? ?
· - + =
? ?
? ?
? ?
1
2
SECTION B
7. Equation of line through A(3, 4, 1) and B(5, 1, 6)
x 3
2
-
=
y 4 z 1
k(say)
3 5
- -
= =
-
1
General point on the line:
x = 2k + 3, y = – 3k + 4, z = 5k + 1
1
2
line crosses xz plane i.e. y = 0 if –3k + 4 = 0
? k =
4
3
1
Co-ordinate of required point
17 23
, 0,
3 3
? ?
? ?
? ?
1
2
Angle, which line makes with xz plane:
sin ? =
2 (0) ( 3) (1) 5(0) 3
4 9 25 1 38
+ - +
=
+ +
? ? =
1
3
sin
38
-
? ?
? ?
? ?
1
?
?
?
?
?
65/1/C (1)
65/1/C
8. let
1
d
&
2
d
be the two diagonal vectors:
?
1
d
=
ˆ ˆ ˆ
4i 2j 2k - -
,
2
d
=
ˆ ˆ
6j 8k - -
1 1
2 2
+
or
2
ˆ ˆ
d 6j 8k = +
Unit vectors parallel to the diagonals are:
1
ˆ
d =
2 1 1
ˆ ˆ ˆ
i j k
6 6 6
- -
1
2
2
ˆ
d
=
3 4
ˆ ˆ
j k
5 5
- -
2
3 4
ˆ ˆ ˆ
or d j k
5 5
? ?
= +
? ?
? ?
1
2
1 2
d d ×
=
ˆ ˆ ˆ
i j k
ˆ ˆ ˆ
4i 32j 24k
4 2 2
0 6 8
= + -
- -
- -
1
Area of parallelogram =
1 2
1
404 or 2 101 sq. units
d d
2
=
×
1
9. let X = Amount he wins then x = ` 5, 4, 3, – 3 1
P = Probability of getting a no. >4 =
1
3
, q =
2
1 p
3
- =
1
2
X: 5 4 3 –3
P(x)
1
3
2 1
3 3
·
=
2
9
2
1 2
3 3
? ?
·
? ?
? ?
=
4
27
3
2
3
? ?
? ?
? ?
=
8
27
2
Expected amount he wins =
5 8 12 24
XP(X)
3 9 27 27
S = + + -
=
19 1
or 2
9 9
` `
1
2
OR
E
1
= Event that all balls are white,
E
2
= Event that 3 balls are white and 1 ball is non white
E
3
= Event that 2 balls are white and 2 balls are non-white
1
A = Event that 2 balls drawn without replacement are white
P(E
1
) = P(E
2
) = P(E
3
) =
1
3
1
2
P(A/E
1
) = 1, P(A/E
2
) =
3 2 1
4 3 2
· =
, P(A/E
3
) =
2 1 1
4 3 6
· =
1
1
2
P(E
1
/A) =
1
3
1 1 1 1 1
3 3 2 3 6
1. 3
1 5
=
· + · + ·
1
?
?
?
?
?
?
?
65/1/C (2)
65/1/C
Page 4
Strictly Confidential — (For Internal and Restricted Use Only)
Senior School Certificate Examination
March 2016
Marking Scheme — Mathematics 65/1/C, 65/2/C, 65/3/C
General Instructions:
1. The Marking Scheme provides general guidelines to reduce subjectivity in the marking. The answers
given in the Marking Scheme are suggested answers. The content is thus indicative. If a student has
given any other answer which is different from the one given in the Marking Scheme, but conveys
the meaning, such answers should be given full weightage
2. Evaluation is to be done as per instructions provided in the marking scheme. It should not be done
according to one’s own interpretation or any other consideration — Marking Scheme should be
strictly adhered to and religiously followed.
3. Alternative methods are accepted. Proportional marks are to be awarded.
4. In question (s) on differential equations, constant of integration has to be written.
5. If a candidate has attempted an extra question, marks obtained in the question attempted first should
be retained and the other answer should be scored out.
6. A full scale of marks - 0 to 100 has to be used. Please do not hesitate to award full marks if the
answer deserves it.
7. Separate Marking Scheme for all the three sets has been given.
8. As per orders of the Hon’ble Supreme Court. The candidates would now be permitted to obtain
photocopy of the Answer book on request on payment of the prescribed fee. All examiners/Head
Examiners are once again reminded that they must ensure that evaluation is carried out strictly as
per value points for each answer as given in the Marking Scheme.
QUESTION PAPER CODE 65/1/C
EXPECTED ANSWER/VALUE POINTS
SECTION A
1. (x + 3)2x – (–2) (–3x) = 8
1
2
x = 2
1
2
2.
2 5
2 4
? ?
? ?
? ?
=
3 1 1 2
2 0 1 1
? ?? ?
? ?? ?
- -
? ?? ?
1
2
+
1
2
3. No. of possible matrices = 3
4
1
or 81
4.
2 (2a 3b) 1(3a – 2b)
2 1
+ +
+
1
2
=
7 4
a b
3 3
+
(or enternal division may also be considered)
1
2
5. 2 1
6.
x y z
3 4 2
+ +
-
= 1
1
2
?
ˆ ˆ ˆ
r (4i 3j 6k) · - +
= 12 or
ˆ ˆ ˆ
i j k
r 1
3 4 2
? ?
· - + =
? ?
? ?
? ?
1
2
SECTION B
7. Equation of line through A(3, 4, 1) and B(5, 1, 6)
x 3
2
-
=
y 4 z 1
k(say)
3 5
- -
= =
-
1
General point on the line:
x = 2k + 3, y = – 3k + 4, z = 5k + 1
1
2
line crosses xz plane i.e. y = 0 if –3k + 4 = 0
? k =
4
3
1
Co-ordinate of required point
17 23
, 0,
3 3
? ?
? ?
? ?
1
2
Angle, which line makes with xz plane:
sin ? =
2 (0) ( 3) (1) 5(0) 3
4 9 25 1 38
+ - +
=
+ +
? ? =
1
3
sin
38
-
? ?
? ?
? ?
1
?
?
?
?
?
65/1/C (1)
65/1/C
8. let
1
d
&
2
d
be the two diagonal vectors:
?
1
d
=
ˆ ˆ ˆ
4i 2j 2k - -
,
2
d
=
ˆ ˆ
6j 8k - -
1 1
2 2
+
or
2
ˆ ˆ
d 6j 8k = +
Unit vectors parallel to the diagonals are:
1
ˆ
d =
2 1 1
ˆ ˆ ˆ
i j k
6 6 6
- -
1
2
2
ˆ
d
=
3 4
ˆ ˆ
j k
5 5
- -
2
3 4
ˆ ˆ ˆ
or d j k
5 5
? ?
= +
? ?
? ?
1
2
1 2
d d ×
=
ˆ ˆ ˆ
i j k
ˆ ˆ ˆ
4i 32j 24k
4 2 2
0 6 8
= + -
- -
- -
1
Area of parallelogram =
1 2
1
404 or 2 101 sq. units
d d
2
=
×
1
9. let X = Amount he wins then x = ` 5, 4, 3, – 3 1
P = Probability of getting a no. >4 =
1
3
, q =
2
1 p
3
- =
1
2
X: 5 4 3 –3
P(x)
1
3
2 1
3 3
·
=
2
9
2
1 2
3 3
? ?
·
? ?
? ?
=
4
27
3
2
3
? ?
? ?
? ?
=
8
27
2
Expected amount he wins =
5 8 12 24
XP(X)
3 9 27 27
S = + + -
=
19 1
or 2
9 9
` `
1
2
OR
E
1
= Event that all balls are white,
E
2
= Event that 3 balls are white and 1 ball is non white
E
3
= Event that 2 balls are white and 2 balls are non-white
1
A = Event that 2 balls drawn without replacement are white
P(E
1
) = P(E
2
) = P(E
3
) =
1
3
1
2
P(A/E
1
) = 1, P(A/E
2
) =
3 2 1
4 3 2
· =
, P(A/E
3
) =
2 1 1
4 3 6
· =
1
1
2
P(E
1
/A) =
1
3
1 1 1 1 1
3 3 2 3 6
1. 3
1 5
=
· + · + ·
1
?
?
?
?
?
?
?
65/1/C (2)
65/1/C
10. let y = u + v, u = x
sin x
, v = (sin x)
cos x
log u = sin x.log x ?
sin x
du sin x
x cos x.log x
dx x
? ?
= · +
? ?
? ?
1
1
2
+
log v = cos x.log (sin x) ? { }
cos x
dv
(sin x) cos x cot x sin x log(sin x)
dx
= · · - ·
1
1
2
+
dy
dx
=
sin x cos x
du dv sin x
x cos x log x (sin x) {cos x cot x sin x log(sin x)}
dx dx x
? ?
+ = · · + + · - ·
? ?
? ?
1
2
+
1
2
OR
dy
dx
=
2 sin (log x) 3 cos (log x)
x x
-
+
1
? x
dy
dx
= –2 sin (log x) + 3 cos (log x), differentiate w.r.t ‘x’
1
2
?
2
2
d y dy
x
dx
dx
+
=
2cos (log x) 3 sin (log x)
x x
-
-
2
?
2
2
2
d y dy
x x
dx
dx
+
= – y ?
2
2
2
d y dy
x x y
dx
dx
+ +
= 0
1
2
11.
dx
dt
= 2a cos 2t (1 + cos 2t) – 2a sin 2t·sin 2t
1
1
2
dy
dt
= –2b sin 2t (1 – cos 2t) + 2b cos 2t·sin 2t 1
t
4
dy
dx
p
=
?
?
?
=
t
4
2b cos 2t sin 2t 2b sin 2t (1 cos 2t) b
2a cos 2t (1 cos 2t) 2a sin 2t sin 2t a
p
=
· - - ?
=
?
+ - ·
?
1
2
+ 1
12. y
2
= ax
3
+ b ?
dy
2y
dx
= 3ax
2
?
dy
dx
=
2
3a x
2 y
1
Slope of tangent at (2, 3) =
(2, 3)
3a 4 dy
2a
2 3 dx
?
= · =
?
?
1
Comparing with slope of tangent y = 4x – 5, we get, 2a = 4 ?
a 2 =
1
Also (2, 3) lies on the curve ? 9 = 8a + b, put a = 2, we get b = –
7 1
13. Let x
2
= t ?
2
4 2
x
x x 2 + -
=
2
2 2
x t A B
(t 1) (t 2) t 1 t 2
(x 1) (x 2)
= = +
- + - +
- +
1
Solving for A and B to get, A =
1 2
, B
3 3
=
1
2
4 2
x
dx
x x 2 + -
?
=
1
2 2
1 1 2 1 1 2 x x 1
dx dx log tan C
3 3 6 3 x 1 2 x 1 x 2
-
-
+ = + +
+ - +
? ?
1 + 1
65/1/C (3)
65/1/C
Page 5
Strictly Confidential — (For Internal and Restricted Use Only)
Senior School Certificate Examination
March 2016
Marking Scheme — Mathematics 65/1/C, 65/2/C, 65/3/C
General Instructions:
1. The Marking Scheme provides general guidelines to reduce subjectivity in the marking. The answers
given in the Marking Scheme are suggested answers. The content is thus indicative. If a student has
given any other answer which is different from the one given in the Marking Scheme, but conveys
the meaning, such answers should be given full weightage
2. Evaluation is to be done as per instructions provided in the marking scheme. It should not be done
according to one’s own interpretation or any other consideration — Marking Scheme should be
strictly adhered to and religiously followed.
3. Alternative methods are accepted. Proportional marks are to be awarded.
4. In question (s) on differential equations, constant of integration has to be written.
5. If a candidate has attempted an extra question, marks obtained in the question attempted first should
be retained and the other answer should be scored out.
6. A full scale of marks - 0 to 100 has to be used. Please do not hesitate to award full marks if the
answer deserves it.
7. Separate Marking Scheme for all the three sets has been given.
8. As per orders of the Hon’ble Supreme Court. The candidates would now be permitted to obtain
photocopy of the Answer book on request on payment of the prescribed fee. All examiners/Head
Examiners are once again reminded that they must ensure that evaluation is carried out strictly as
per value points for each answer as given in the Marking Scheme.
QUESTION PAPER CODE 65/1/C
EXPECTED ANSWER/VALUE POINTS
SECTION A
1. (x + 3)2x – (–2) (–3x) = 8
1
2
x = 2
1
2
2.
2 5
2 4
? ?
? ?
? ?
=
3 1 1 2
2 0 1 1
? ?? ?
? ?? ?
- -
? ?? ?
1
2
+
1
2
3. No. of possible matrices = 3
4
1
or 81
4.
2 (2a 3b) 1(3a – 2b)
2 1
+ +
+
1
2
=
7 4
a b
3 3
+
(or enternal division may also be considered)
1
2
5. 2 1
6.
x y z
3 4 2
+ +
-
= 1
1
2
?
ˆ ˆ ˆ
r (4i 3j 6k) · - +
= 12 or
ˆ ˆ ˆ
i j k
r 1
3 4 2
? ?
· - + =
? ?
? ?
? ?
1
2
SECTION B
7. Equation of line through A(3, 4, 1) and B(5, 1, 6)
x 3
2
-
=
y 4 z 1
k(say)
3 5
- -
= =
-
1
General point on the line:
x = 2k + 3, y = – 3k + 4, z = 5k + 1
1
2
line crosses xz plane i.e. y = 0 if –3k + 4 = 0
? k =
4
3
1
Co-ordinate of required point
17 23
, 0,
3 3
? ?
? ?
? ?
1
2
Angle, which line makes with xz plane:
sin ? =
2 (0) ( 3) (1) 5(0) 3
4 9 25 1 38
+ - +
=
+ +
? ? =
1
3
sin
38
-
? ?
? ?
? ?
1
?
?
?
?
?
65/1/C (1)
65/1/C
8. let
1
d
&
2
d
be the two diagonal vectors:
?
1
d
=
ˆ ˆ ˆ
4i 2j 2k - -
,
2
d
=
ˆ ˆ
6j 8k - -
1 1
2 2
+
or
2
ˆ ˆ
d 6j 8k = +
Unit vectors parallel to the diagonals are:
1
ˆ
d =
2 1 1
ˆ ˆ ˆ
i j k
6 6 6
- -
1
2
2
ˆ
d
=
3 4
ˆ ˆ
j k
5 5
- -
2
3 4
ˆ ˆ ˆ
or d j k
5 5
? ?
= +
? ?
? ?
1
2
1 2
d d ×
=
ˆ ˆ ˆ
i j k
ˆ ˆ ˆ
4i 32j 24k
4 2 2
0 6 8
= + -
- -
- -
1
Area of parallelogram =
1 2
1
404 or 2 101 sq. units
d d
2
=
×
1
9. let X = Amount he wins then x = ` 5, 4, 3, – 3 1
P = Probability of getting a no. >4 =
1
3
, q =
2
1 p
3
- =
1
2
X: 5 4 3 –3
P(x)
1
3
2 1
3 3
·
=
2
9
2
1 2
3 3
? ?
·
? ?
? ?
=
4
27
3
2
3
? ?
? ?
? ?
=
8
27
2
Expected amount he wins =
5 8 12 24
XP(X)
3 9 27 27
S = + + -
=
19 1
or 2
9 9
` `
1
2
OR
E
1
= Event that all balls are white,
E
2
= Event that 3 balls are white and 1 ball is non white
E
3
= Event that 2 balls are white and 2 balls are non-white
1
A = Event that 2 balls drawn without replacement are white
P(E
1
) = P(E
2
) = P(E
3
) =
1
3
1
2
P(A/E
1
) = 1, P(A/E
2
) =
3 2 1
4 3 2
· =
, P(A/E
3
) =
2 1 1
4 3 6
· =
1
1
2
P(E
1
/A) =
1
3
1 1 1 1 1
3 3 2 3 6
1. 3
1 5
=
· + · + ·
1
?
?
?
?
?
?
?
65/1/C (2)
65/1/C
10. let y = u + v, u = x
sin x
, v = (sin x)
cos x
log u = sin x.log x ?
sin x
du sin x
x cos x.log x
dx x
? ?
= · +
? ?
? ?
1
1
2
+
log v = cos x.log (sin x) ? { }
cos x
dv
(sin x) cos x cot x sin x log(sin x)
dx
= · · - ·
1
1
2
+
dy
dx
=
sin x cos x
du dv sin x
x cos x log x (sin x) {cos x cot x sin x log(sin x)}
dx dx x
? ?
+ = · · + + · - ·
? ?
? ?
1
2
+
1
2
OR
dy
dx
=
2 sin (log x) 3 cos (log x)
x x
-
+
1
? x
dy
dx
= –2 sin (log x) + 3 cos (log x), differentiate w.r.t ‘x’
1
2
?
2
2
d y dy
x
dx
dx
+
=
2cos (log x) 3 sin (log x)
x x
-
-
2
?
2
2
2
d y dy
x x
dx
dx
+
= – y ?
2
2
2
d y dy
x x y
dx
dx
+ +
= 0
1
2
11.
dx
dt
= 2a cos 2t (1 + cos 2t) – 2a sin 2t·sin 2t
1
1
2
dy
dt
= –2b sin 2t (1 – cos 2t) + 2b cos 2t·sin 2t 1
t
4
dy
dx
p
=
?
?
?
=
t
4
2b cos 2t sin 2t 2b sin 2t (1 cos 2t) b
2a cos 2t (1 cos 2t) 2a sin 2t sin 2t a
p
=
· - - ?
=
?
+ - ·
?
1
2
+ 1
12. y
2
= ax
3
+ b ?
dy
2y
dx
= 3ax
2
?
dy
dx
=
2
3a x
2 y
1
Slope of tangent at (2, 3) =
(2, 3)
3a 4 dy
2a
2 3 dx
?
= · =
?
?
1
Comparing with slope of tangent y = 4x – 5, we get, 2a = 4 ?
a 2 =
1
Also (2, 3) lies on the curve ? 9 = 8a + b, put a = 2, we get b = –
7 1
13. Let x
2
= t ?
2
4 2
x
x x 2 + -
=
2
2 2
x t A B
(t 1) (t 2) t 1 t 2
(x 1) (x 2)
= = +
- + - +
- +
1
Solving for A and B to get, A =
1 2
, B
3 3
=
1
2
4 2
x
dx
x x 2 + -
?
=
1
2 2
1 1 2 1 1 2 x x 1
dx dx log tan C
3 3 6 3 x 1 2 x 1 x 2
-
-
+ = + +
+ - +
? ?
1 + 1
65/1/C (3)
65/1/C
14. Let I =
2 2 2
2
2 2
0 0 0
sin x
sin x cos x
2
dx, Also I dx dx
sin x cos x cos x sin x
sin cos x x
2 2
p p p
p ? ?
-
? ?
? ?
= =
p p + ? ? ? ? +
+ - -
? ? ? ?
? ? ? ?
? ? ?
1
Adding to get, 2I =
2 2
4
0 0
1 1 1
dx dx
sin x cos x cos (x ) 2
p p
p
=
+ -
? ?
1
1
2
+
? 2I =
2
2
4
0
1 1
sec (x ) dx log sec tan x x
4 4 2 2
p
p
p
p p ? ? ? ?
- = + - -
? ? ? ?
? ? ? ?
?
0 1
? 2I = { }
1
log log
2 1 2 1
2
-
+ -
? I =
1 1
2 1
log log or log
2 1 2 1
2 2 2 2
2 1
?
? +
-
+ - ?
- ?
?
1
2
OR
3/2
0
| x cos x | dx p
?
=
1/2 3/2
0 1/2
x cos x dx x cos x dx p - p
? ?
1
1
2
=
1/2 3/2
2 2
0 1/2
x sin x cos x x sin x cos x p p p p ? ? ? ?
+ - +
? ? ? ?
p p
p p ? ? ? ?
1
1
2
=
2 2
1 1 5 1 3 1
2 2 2 2
? ?
- - = - - -
? ?
p p p p ? ? p p
1
15.
2
(3x 1) 4 3x 2x dx + - -
?
=
2 2
3 5
( 4x 3) 4 3x 2x dx 4 3x 2x dx
4 4
- - - - - - - -
? ?
1
=
3
2
2
2
2
1 5 3
41
(4 3x 2x ) 2 dx x
2 4 4
4
? ?
? ?
- - - - - +
? ?
? ?
? ?
? ?
?
1 + 1
3
2
3
2
2
2 1
2 2 1
4x 3 1 5 4x 3 41 41 3
(4 3 2x ) 2 sin C x
2 4 8 16 32 4 41
4x 3 1 5 4x 3 41 2
(4 3x 2x ) 4 3x 2x sin C
2 4 8 32 41
-
-
? ? ?
+ + ? ? ? ? ? ?
?
= - - - - - + · + +
? ? ? ? ? ?
? ? ? ? ?
? ? ?
? ?
?
?
? ?
+ + ? ? ? ?
= - - - - - - + · +
? ? ?
? ?
? ? ? ? ? ? ? ?
1
16. The differential equation can be re-written as:
dy
dx
=
x y dy dv
, put y vx, v x
x y dx dx
-
= = +
+
1
2
+
1
2
?
dv
v x
dx
+
=
2
1 v 1 v 1
dv dx
1 v x
1 2v v
- +
? =
+
- -
1
integrating we get
?
2
1 2V 2
dv
2
V 2V 1
+
+ -
?
= –
2
1 1
dx log | V 2V 1| log x log C
x 2
= + - = - +
?
1
1
2
? Solution of the differential equation is:
2
2
1
y 2y
log
1
2
x
x
+ -
=
2 2 2
log C log x or, y 2xy x C - + - =
1
2
65/1/C (4)
65/1/C
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FAQs on Past Year Paper - Solutions, Mathematics (Set - 1, 2 and 3), Outside Delhi, 2016, Class 12, Maths - Mathematics (Maths) Class 12 - JEE
| 1. What are the important topics covered in the Mathematics (Set - 1, 2 and 3) exam for Class 12, Outside Delhi, 2016? |  |
Ans. The important topics covered in the Mathematics (Set - 1, 2 and 3) exam for Class 12, Outside Delhi, 2016 include:
- Relations and Functions
- Algebra
- Calculus
- Vectors and Three-Dimensional Geometry
- Linear Programming
- Probability
| 2. How can I prepare effectively for the Mathematics exam for Class 12, Outside Delhi, 2016? | |
Ans. To prepare effectively for the Mathematics exam for Class 12, Outside Delhi, 2016, you can follow these tips:
- Understand the syllabus and exam pattern thoroughly.
- Create a study schedule and allocate dedicated time for each topic.
- Practice solving previous year papers and sample papers to understand the question patterns.
- Seek help from teachers or join coaching classes if needed.
- Focus on understanding the concepts rather than rote memorization.
- Regularly revise the topics and solve as many numerical problems as possible.
| 3. Are there any important formulas or theorems that I should remember for the Mathematics exam for Class 12, Outside Delhi, 2016? | |
Ans. Yes, there are several important formulas and theorems that you should remember for the Mathematics exam for Class 12, Outside Delhi, 2016. Some of them include:
- Quadratic Formula: x = (-b ± √(b^2 - 4ac))/(2a)
- Binomial Theorem: (a + b)^n = nC0 * a^n * b^0 + nC1 * a^(n-1) * b^1 + ... + nCn * a^0 * b^n
- Fundamental Theorem of Calculus: ∫[a, b] f(x) dx = F(b) - F(a), where F(x) is the antiderivative of f(x)
- Law of Sines: (sin A)/a = (sin B)/b = (sin C)/c, where A, B, C are angles and a, b, c are opposite sides
- Law of Cosines: c^2 = a^2 + b^2 - 2ab * cos C, where C is the angle opposite side c
- Bayes' Theorem: P(A|B) = (P(B|A) * P(A))/(P(B))
| 4. How can I manage my time effectively during the Mathematics exam for Class 12, Outside Delhi, 2016? | |
Ans. Managing time effectively during the Mathematics exam for Class 12, Outside Delhi, 2016 is crucial to ensure that you can attempt all the questions within the given time limit. Here are some tips to manage your time effectively:
- Read the question paper carefully and prioritize the questions based on difficulty level.
- Allocate specific time slots for each section or topic, depending on your strengths and weaknesses.
- Start with the easier questions to build confidence and save time for the more challenging ones.
- If you get stuck on a particular question, move on to the next one and come back to it later if time permits.
- Keep track of the time using a watch or clock in the examination hall.
- Avoid spending too much time on a single question; if you're unsure, make an educated guess and move forward.
- Reserve some time at the end to review your answers and make any necessary corrections.
| 5. Are there any online resources or study materials available for the Mathematics exam for Class 12, Outside Delhi, 2016? | |
Ans. Yes, there are several online resources and study materials available for the Mathematics exam for Class 12, Outside Delhi, 2016. Some of them include:
- NCERT textbooks and solutions available on the official NCERT website.
- Online platforms and websites offering free or paid video lectures, tutorials, and practice questions.
- Mobile applications specifically designed for Class 12 Mathematics, offering interactive learning and practice sessions.
- Online forums and communities where you can ask doubts and discuss concepts with fellow students and experts.
- YouTube channels and educational websites providing comprehensive explanations and solved examples for each topic.
- Online mock tests and quizzes to assess your preparation level and identify areas for improvement.
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Document Description: Past Year Paper - Solutions, Mathematics (Set - 1, 2 and 3), Outside Delhi, 2016, Class 12, Maths for JEE 2024 is part of Mathematics (Maths) Class 12 preparation.
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