1.Number System

14
- Lecture1.1
  
  Numbers and its Classification, Rational Number and its Representation on the Number Line 50 min
- Lecture1.2
  
  Decimal Representation of Rational Number and Conversion of Decimal Number into Rational Number 01 hour
- Lecture1.3
  
  Representation of Decimal Number on Number Line, Finding Irrational Numbers Between Given Two Numbers 46 min
- Lecture1.4
  
  Representing Irrational Number on the Number Line 41 min
- Lecture1.5
  
  Rationalisation 54 min
- Lecture1.6
  
  Introduction to Exponents, Laws of Exponents, BODMAS Rule 41 min
- Lecture1.7
  
  Integral Exponents of Real Numbers 57 min
- Lecture1.8
  
  Integral Exponents of Real Numbers and Solving Equation for x 01 hour
- Lecture1.9
  
  Rational Exponents of Real Numbers 52 min
- Lecture1.10
  
  Examples Based on Rational Exponents of Real Numbers 30 min
- Lecture1.11
  
  Chapter Notes – Number System
- Lecture1.12
  
  NCERT Solutions – Number System Exercise 1.1 – 1.6
- Lecture1.13
  
  R D Sharma Solutions Number System
- Lecture1.14
  
  Revision Notes – Number System
2.Polynomials

10
- Lecture2.1
  
  Introduction to Polynomials and Some Basics Questions 58 min
- Lecture2.2
  
  Value of Polynomial, Zeroes of Polynomial and Relationship between Zeroes and Coefficient of Linear Equation 01 hour
- Lecture2.3
  
  Division of Polynomials and Division Algorithm and Remainder Theorem 51 min
- Lecture2.4
  
  Factorising by Spliting Method 01 hour
- Lecture2.5
  
  Factorisation By Different Methods and Factor Theorem 27 min
- Lecture2.6
  
  Factorisation of Polynomial by Using Algebric Identities 01 hour
- Lecture2.7
  
  Chapter Notes – Polynomials
- Lecture2.8
  
  NCERT Solutions – Polynomials Exercise 2.1 – 2.5
- Lecture2.9
  
  R S Aggarwal Solutions Polynomials
- Lecture2.10
  
  Revision Notes Polynomials
3.Coordinate Geometry

8
- Lecture3.1
  
  Representation of Position on Number Line, Finding the location by Using the Axis 01 hour
- Lecture3.2
  
  Quadrant, Coordinates of Point on Axis, Distance from Axis 01 hour
- Lecture3.3
  
  Finding the Area of Triangle and Rectangle and Mirror Image of Point On Axis 57 min
- Lecture3.4
  
  Chapter Notes – Coordinate Geometry
- Lecture3.5
  
  NCERT Solutions – Coordinate Geometry Exercise 3.1 – 3.3
- Lecture3.6
  
  R D Sharma Solutions Coordinate Geometry
- Lecture3.7
  
  R S Aggarwal Solutions Coordinate Geometry
- Lecture3.8
  
  Revision Notes Coordinate Geometry
4.Linear Equations

8
- Lecture4.1
  
  Introduction of Linear Equation in Two Variables and Graphical Representation 01 hour
- Lecture4.2
  
  Example to find the value of Constant and Graph of Linear Equation in Two Variables 57 min
- Lecture4.3
  
  Equations of lines Parallel to the x-axis and y-axis 46 min
- Lecture4.4
  
  Chapter Notes – Linear Equations
- Lecture4.5
  
  NCERT Solutions – Linear Equations Exercise 4.1 – 4.4
- Lecture4.6
  
  R D Sharma Solutions Linear Equations
- Lecture4.7
  
  R S Aggarwal Solutions Linear Equations
- Lecture4.8
  
  Revision Notes Linear Equations
5.Euclid's Geometry

7
- Lecture5.1
  
  Euclid’s Definitions and Euclid’s Axioms 32 min
- Lecture5.2
  
  Eulcid’s Postulates and Playfair’s Axiom 37 min
- Lecture5.3
  
  Chapter Notes – Euclid’s Geometry
- Lecture5.4
  
  NCERT Solutions – Euclid’s Geometry Exercise 5.1 5.2
- Lecture5.5
  
  R D Sharma Solutions Euclid’s Geometry
- Lecture5.6
  
  R S Aggarwal Solutions Euclid’s Geometry
- Lecture5.7
  
  Revision Notes Euclid’s Geometry
6.Lines and Angles

10
- Lecture6.1
  
  Introduction to Lines and Angles, Types of Angle and Axioms 01 hour
- Lecture6.2
  
  Vertically opposite Angles and Angle bisector 46 min
- Lecture6.3
  
  Angle made by a transversal with two Lines and Parallel Lines 01 hour
- Lecture6.4
  
  Lines Parallel to same Line; Exterior angle of a triangle; Angle Sum property of a Triangle 52 min
- Lecture6.5
  
  Angle Sum Property of Triangle Including Interior and Exterior Angles 01 hour
- Lecture6.6
  
  Chapter Notes – Lines and Angles
- Lecture6.7
  
  NCERT Solutions – Lines and Angles Exercise 6.1 – 6.3
- Lecture6.8
  
  R D Sharma Solutions Lines and Angles
- Lecture6.9
  
  R S Aggarwal Solutions Lines and Angles
- Lecture6.10
  
  Revision Notes Lines and Angles
7.Triangles

11
- Lecture7.1
  
  Introduction, Types of Triangle, Altitude & Median of Triangle, Congruences, SAS criterion of Congruence 42 min
- Lecture7.2
  
  Questions Based on SAS Criterion 01 hour
- Lecture7.3
  
  ASA Criterion of Congruence and Its based Questions 42 min
- Lecture7.4
  
  Questions Based on AAS and SSS Criterion 29 min
- Lecture7.5
  
  RHS Criterion of Congruence and Its based Questions, Questions Based on Multiple Criterion 01 hour
- Lecture7.6
  
  Inequalities of Triangle 42 min
- Lecture7.7
  
  Inequalities of Triangle cont., Distance Between a line and The Point, Miscellaneous Questions 48 min
- Lecture7.8
  
  Chapter Notes – Triangles
- Lecture7.9
  
  NCERT Solutions – Triangles Exercise 7.1 – 7.5
- Lecture7.10
  
  R D Sharma Solutions Triangles
- Lecture7.11
  
  Revision Notes Triangles
8.Quadrilaterals

13
- Lecture8.1
  
  Congruence of Triangles- SAS Congruence Criteria, ASA Congruence Criteria, SSS Congruence Criteria, RHS Congruence Criteria; Types of Quadrilateral- Parallelogram, Rectangle, Rhombus, Square, Trapezium, Kite 01 hour
- Lecture8.2
  
  Theorem 1; Properties of parallelogram- Theorem 2, Theorem 3; 01 hour
- Lecture8.3
  
  Theorem 4; Theorem 5; 24 min
- Lecture8.4
  
  Conditions for a Quadrilateral to be a parallelogram- Theorem 6 01 hour
- Lecture8.5
  
  Theorem 8 01 hour
- Lecture8.6
  
  Theorem 9 51 min
- Lecture8.7
  
  Theorem 9(Mid-point Theorem); 01 hour
- Lecture8.8
  
  Theorem 10 27 min
- Lecture8.9
  
  Chapter Notes – Quadrilaterals
- Lecture8.10
  
  NCERT Solutions – Quadrilaterals Exercise 8.1 8.2
- Lecture8.11
  
  R D Sharma Solutions Quadrilaterals
- Lecture8.12
  
  R S Aggarwal Solutions Quadrilaterals
- Lecture8.13
  
  Revision Notes Quadrilaterals
9.Area of Parallelogram

11
- Lecture9.1
  
  Parallelograms on the Same Base and between the Same Parallels; A Diagonal of a parallelogram divides it into two triangles of Equal Area 57 min
- Lecture9.2
  
  Questions based on parallelogram and Triangle are on same base & parallel lines and Area of Triangle 01 hour
- Lecture9.3
  
  Triangles on the same Base and between the same Parallels 56 min
- Lecture9.4
  
  Miscellaneous Questions Based on Triangles on the same Base and between the same Parallels 54 min
- Lecture9.5
  
  Sums Based on Median of a Triangle 52 min
- Lecture9.6
  
  Two Triangles on the same Base and equal Area lie b/w the same parallel 01 hour
- Lecture9.7
  
  Summary of All Concepts and Miscellaneous Questions 56 min
- Lecture9.8
  
  Chapter Notes – Area of Parallelogram
- Lecture9.9
  
  NCERT Solutions – Area of Parallelogram Exercise 9.1 – 9.4
- Lecture9.10
  
  R D Sharma Solutions Area of Parallelogram
- Lecture9.11
  
  Revision Notes Area of Parallelogram
10.Constructions

7
- Lecture10.1
  
  Construction of Perpendicular Bisector of a Line Segment, Different Angles and Angle bisector 42 min
- Lecture10.2
  
  Construction of Different types of Triangle 43 min
- Lecture10.3
  
  Chapter Notes – Constructions
- Lecture10.4
  
  NCERT Solutions – Constructions Exercise
- Lecture10.5
  
  R D Sharma Solutions Constructions
- Lecture10.6
  
  R S Aggarwal Solutions Constructions
- Lecture10.7
  
  Revision Notes Constructions
11.Circles

11
- Lecture11.1
  
  Introduction, Important Terms related to circle, Theorem-1, 2, 3 and 4 01 hour
- Lecture11.2
  
  Problems Solving 48 min
- Lecture11.3
  
  Problems Based on Parallel Chords, Common Chord of Circles 01 hour
- Lecture11.4
  
  Problems Based on Concentric Circles, Triangle in Circle 41 min
- Lecture11.5
  
  Equal Chords and Their Distance, Theorem-5, 6, 7, 8 01 hour
- Lecture11.6
  
  Circle Through Points, Theorem-9, Arc of a Circle, Theorem-10 01 hour
- Lecture11.7
  
  Chapter Notes – Circles
- Lecture11.8
  
  NCERT Solutions – Circles Exercise
- Lecture11.9
  
  R D Sharma Solutions Circles
- Lecture11.10
  
  R S Aggarwal Solutions Circles
- Lecture11.11
  
  Revision Notes Circles
12.Heron's Formula

8
- Lecture12.1
  
  Introduction of Heron’s Formula; Area of Different Triangles 01 hour
- Lecture12.2
  
  Area of Triangles Using Heron’s Formula (Type-1 level-1 and 2) 53 min
- Lecture12.3
  
  Area of Quadrilaterals Using Heron’s Formula (Type-2 level-1) 32 min
- Lecture12.4
  
  Area of Quadrilaterals Using Heron’s Formula (Type-2 level-2) 38 min
- Lecture12.5
  
  Chapter Notes – Heron’s Formula
- Lecture12.6
  
  NCERT Solutions – Heron’s Formula Exercise 12.1 12.2
- Lecture12.7
  
  R D Sharma Solutions Heron’s Formula
- Lecture12.8
  
  Revision Notes Heron’s Formula
13.Surface Area and Volume

16
- Lecture13.1
  
  Introduction, Surface Area of Cube, Cuboid, Cylinder, Hollow cylinder, Cone, Sphere 40 min
- Lecture13.2
  
  Type-1: Surface Area and Volume of Cube and Cuboid 27 min
- Lecture13.3
  
  Level-2, Question based on Cube and Cuboid, Level-1 Questions based on Cylinder 28 min
- Lecture13.4
  
  Level-2 Questions based on Cylinder, Type-3 Surface Area and Volume of Right Circular Cone (Level-1) 25 min
- Lecture13.5
  
  Level-2 Questions based on Right Circular Cone, Level-1& 2 Questions Based on Sphere & Hemisphere 27 min
- Lecture13.6
  
  Type-5 Short Answer Types Questions, 12 min
- Lecture13.7
  
  Chapter Notes – Surface Area and Volume of a Cuboid and Cube
- Lecture13.8
  
  Chapter Notes – Surface Area and Volume of A Right Circular Cylinder
- Lecture13.9
  
  Chapter Notes – Surface Area ad Volume of A Right Circular Cone
- Lecture13.10
  
  Chapter Notes – Surface Area ad Volume of A Sphere
- Lecture13.11
  
  NCERT Solutions – Surface Area and Volume Exercise 13.1 – 13.9
- Lecture13.12
  
  R D Sharma Solutions Surface Areas And Volumes of A cuboid and A cube
- Lecture13.13
  
  R D Sharma Solutions Surface Areas And Volumes of A Right Circular Cylinder
- Lecture13.14
  
  R D Sharma Solutions Surface Areas And Volumes of A Right Circular Cone
- Lecture13.15
  
  R D Sharma Solutions Surface Areas And Volumes of A Sphere
- Lecture13.16
  
  Revision Notes Surface Areas And Volumes
14.Statistics

15
- Lecture14.1
  
  Data; Presentation of Data; Understanding Basic terms; 01 hour
- Lecture14.2
  
  Questions; 52 min
- Lecture14.3
  
  Bar Graph, Histogram, Frequency Polygon; 01 hour
- Lecture14.4
  
  Histogram for Grouped Frequency Distribution (Class interval in Inclusive form), Frequency Polygon, Measures of Central Tendency, 01 hour
- Lecture14.5
  
  Examples Based on Mean of Ungrouped Data 56 min
- Lecture14.6
  
  Direct Method of Finding Mean of Ungrouped Data, Median of Cont. Freq. Distribution (Grouped Data) 01 hour
- Lecture14.7
  
  Mean; Mean for an ungrouped freq. Dist. Table 25 min
- Lecture14.8
  
  Chapter Notes – Statistics – Tabular Representation of Statistical Data
- Lecture14.9
  
  Chapter Notes – Statistics – Graphical Representation of Statistical Data
- Lecture14.10
  
  Chapter Notes – Statistics – Measures of Central Tendency
- Lecture14.11
  
  NCERT Solutions – Statistics Exercise 14.1 – 14.4
- Lecture14.12
  
  R D Sharma Solutions Tabular Representation of Statistical Data
- Lecture14.13
  
  R D Sharma Solutions Graphical Representation of Statistical Data
- Lecture14.14
  
  R S Aggarwal Solutions Statistics
- Lecture14.15
  
  Revision Notes Statistics
15.Probability

8
- Lecture15.1
  
  Activities; Understanding term Probability; Experiments; 44 min
- Lecture15.2
  
  Event; Probability; Empirical Probability- Tossing a coin; 31 min
- Lecture15.3
  
  Rolling a dice; Miscellaneous Example; 27 min
- Lecture15.4
  
  Chapter Notes – Probability
- Lecture15.5
  
  NCERT Solutions – Probability Exercise 15.1
- Lecture15.6
  
  R D Sharma Solutions Probability
- Lecture15.7
  
  R S Aggarwal Solutions Probability
- Lecture15.8
  
  Revision Notes Probability

Chapter Notes – Statistics – Measures of Central Tendency

(1) Arithmetic mean (AM), Geometric mean(GM), Harmonic mean(HM), Median and Mode are various measures of central tendency.
(i) Arithmetic mean:
For Example: Find the mean of 994, 996, 998, 1002 and 1000.
Given, No. of values n = 5
We know, mean ( $\overline{x}$ ) = $\frac{x_{1}+x_{2}+...........+x_{n}}{n}$
So, mean = $\frac{994+996+998+1002+1000}{5}$
= $\frac{4990}{5}$
= 998
Hence, mean of the given numbers is 998

(ii) Geometric mean:
If we have a series of n positive values such as x1,x2,x3,.....,xk are repeated f1,f2,f3,.....,fk times respectively then geometric mean will become:
G.M of X= X¯¯¯¯= xf11.xf22.xf33.....xfkk−−−−−−−−−−−−−−−√n (For Grouped Data)
Where n= f1+f2+f3+...fk
Example: Find the Geometric mean of the values 10, 5, 15, 8, 12
Solution: Here x1=10, x2=5, x3=15, x4=8, x5=12 and n=5
G.M of X= X¯¯¯¯ = 10×5×15×8×12−−−−−−−−−−−−−−−−−√5
X¯¯¯¯ = 72000−−−−−√5 = 9.36

(iii) Harmonic mean: Harmonic mean is quotient of “number of the given values” and “sum of the reciprocals of the given values”.
Harmonic mean in mathematical terms is defined as follows:Example: Calculate the harmonic mean of the numbers: 13.5, 14.5, 14.8, 15.2 and 16.1
Solution: The harmonic mean is calculated as below:H.M of X = X¯¯¯¯ = n∑(1x)
H.M of X = X¯¯¯¯ = 50.3417 = 14.63

(iv) Median:
For Example: Find the median of this data: 83,37,70,29,45,63,41,70,34,54
Solution: Arrange the data in ascending order, we get-
29, 34, 37, 41, 45, 54, 63, 70, 70, 83
Here, the number of observation n = 10 (even)
Now, medians is-
$\Rightarrow \frac{value of the (\frac{n}{2})^{th}observation + value of (\frac{n}{2}+1)^{th} observation)}{2}$
$\Rightarrow \frac{value of the (\frac{10}{2})^{th}observation + value of (\frac{10}{2}+1)^{th} observation)}{2}$
$\Rightarrow \frac{value of the (5)^{th}observation + value of (6)^{th} observation)}{2}$
$\Rightarrow \frac{45 + 54}{2}$
$\Rightarrow \frac{99}{2}$
49.5
Hence the value of median is 49.5.

(v) Mode:
For Example: Find out the mode of the following marks obtained by 15 students in class:
Marks: 4,6,5,7,9,8,10,4,7,6,5,9,8,7,7.
Solution:Arrange the data in the form of a frequency table-Since. the value of 7 occurs maximum number of times i.e 4.
Hence, the mode value is 7

(2) (i) If x1,x2,x3,.....,xn are n values of a variable X, then the arithmetic mean of these values is given by X¯=x1+x2+x3+.....+xnn or, X¯=∑i=1nx1n
For Example: Find the mean of 994, 996, 998,1002 and 1000.
Solution: No. of values n = 5
We know, mean ( $\overline{x}$ ) = $\frac{x_{1}+x_{2}+...........+x_{n}}{n}$
So, mean = $\frac{994+996+998+1002+1000}{5}$
= $\frac{4990}{5}$
= 998
Hence, mean of the given numbers is 998

(ii) If a variate X take values x1,x2,x3,.....,xn with corresponding frequencies f1,f2,f3,.....,fn respectively, then the arithmetic mean of these values is given by X¯=f1x1+f2x2+.....+fnxnf1+f2+.....+fn or, X¯=∑i=1nfixiN, where N=∑i=1nfi
For Example: Calculate the mean for the following distributionSolution: Calculation of the Arithmetic mean-Now, mean = $\Sigma \frac{f_{i}x_{i}}{f_{1}}$ = $\frac{281}{40}$ = 7.025
Hence, value of mean is 7.025

(3) If X¯ is the mean of n observations x1,x2,....xn, then
(i) The algebraic sum of the deviations about X¯ is 0, i.e. ∑i=1n(xi−X¯)=0
For Example: Duration of sunshine (in hours) in Amritsar for first 10 days of August 1997 as reported by the Meteorological Department are given below:
9.6,5.2,3.5,1.5,1.6,2.4,2.6,8.4,10.3,10.9
Verify that ∑i=110(xi−X¯)=0
Solution:We have to verify that $\sum_{i=1}^{10}(x_{i}-\overline{x})=0$
Taking LHS,
$\Rightarrow$ $\sum_{i=1}^{10}(x_{i}-\overline{x})$
$\Rightarrow$ $\sum_{i=1}^{10}x_{i}-\sum_{i=1}^{10}\overline{x}$
$\Rightarrow$ (9.6+ 5.2+3.5+1.5+1.6+2.4+2.6+8.4+10.3+10.9) – 10 x $\overline{x}$
$\Rightarrow$ 56 – 10 x 5.6
$\Rightarrow$ 56 – 56
$\Rightarrow$ 0 = RHS Hence Proved

(ii) Prove that the mean of the observationsx1±a,x2±a,.....,xn±a is X¯±a
Given, x¯=x1+x2+......+xnn …..(i)
The observation are (x1+a),(x2+a),......,(xn+a).
Mean =(x1+a)+(x2+a)+......+(xn+a)n
=x1+x2+......+xn+n×an
=x1+x2+......+xnn+n×an
From Equation (1); we get
Mean =(x¯+a)
So that given statement is true.

(iii) Prove that the mean of the observations ax1,ax2,....,axn is aX¯
For Example: Mean of x1,x2,.....,xn=x1+x2+......+xnn
But mean =x¯ (given)
x¯=x1+x2+......+xnn ……..(1)
The observation are ax1,ax2,.....,axn
Mean =ax1+ax2+......+axnn
=a(x1+x2+......+xn)n
=ax¯
Thus, the given statement is true.

(iv) Prove that the mean of the observations x1a,x2a,....,xna is x¯n
Proof: We have, X¯=1n(∑i=1nxi)
Let X¯′ be the mean of x1a,x2a,.....,xna. Then,
X¯′=1n(x1a+x2a+.....+xna)
X¯′=1n(x1+x2+.....+xna)
X¯′=1a(x1+x2+.....+xnn)
X¯′=1a[1n(∑i=1nxi)]=1a(X¯)
X¯′=X¯a

(4) Media of a distribution is the value of the variable which divides the distribution into two equal parts.
For Example: Find the coordinates of the points which divide the line segment A(-2, 2) & B(2, 8) into four equal parts.
Solution: From the figure, it can be observed that points P, Q, R are dividing the line segment in a ratio 1:3, 1:1, 3:1 respectively.
Coordinates of P =(1×2+3+(−2)1+3,1×8+3×21+3)
=(−1,72)
Coordinates of Q =(2+(−2)2,2+82)
=(0,5)
Coordinates of R =(3×2+1×(−2)3+1,3×8+1×23+1)
=(1,132)

(5) lf x1,x2,....,xn are n values of a variable arranged in ascending or descending order, then
Median = value of (n+12)th observation, if n is odd
Median = (value of (n2)th observation + value of (n2+1)th observation)/2, if n is even

For Example:
(i) Find the median of this data : 83,37,70,29,45,63,41,70,34,54
Solution:Arrange the data in ascending order, we get-
29, 34, 37, 41, 45, 54, 63, 70, 70, 83
Here, the number of observation n = 10 (even)
Now, medians is-
$\Rightarrow \frac{value of the (\frac{n}{2})^{th}observation + value of (\frac{n}{2}+1)^{th} observation)}{2}$
$\Rightarrow \frac{value of the (\frac{10}{2})^{th}observation + value of (\frac{10}{2}+1)^{th} observation)}{2}$
$\Rightarrow \frac{value of the (5)^{th}observation + value of (6)^{th} observation)}{2}$
$\Rightarrow \frac{45 + 54}{2}$
$\Rightarrow \frac{99}{2}$
49.5
Hence the value of median is 49.5.

(ii) Find the median of this data : 15,6,16,8,22,21,9,18,,25
Solution: Arrange the data in the ascending order, we get-
6, 8, 9, 15, 16, 18, 21, 22, 25

Here, the number of observation n=9 (odd)
Now, median = $Value of (\frac{n+1}{2})^{th} observation$
= $Value of (\frac{9+1}{2})^{th} observation$
= $Value of (\frac{10}{2})^{th} observation$
= $Value of (5)^{th} observation$
= 16
Hence, value of median is 16.

Prev Chapter Notes – Statistics – Graphical Representation of Statistical Data

Next NCERT Solutions – Statistics Exercise 14.1 – 14.4

Class 9 Maths

1.Number System

2.Polynomials

3.Coordinate Geometry

4.Linear Equations

5.Euclid's Geometry

6.Lines and Angles

7.Triangles

8.Quadrilaterals

9.Area of Parallelogram

10.Constructions

11.Circles

12.Heron's Formula

13.Surface Area and Volume

14.Statistics

15.Probability

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