NCERT Notes for Class 10 Maths Chapter 7 Coordinate Geometry

NCERT Notes for Class 10 Maths Chapter 7 Coordinate Geometry

Class 10 Maths Chapter 7 Coordinate Geometry Notes

Chapter Name

Coordinate Geometry Notes

Class

CBSE Class 10

Textbook Name

NCERT Mathematics Class 10

Related Readings

  • Notes for Class 10
  • Notes for Class 10 Maths
  • Revision Notes for Coordinate Geometry 

Cartesian Coordinate System

In the Cartesian coordinate system, there is a Cartesian plane which is made up of two number lines which are perpendicular to each other, i.e. x –axis (horizontal) and y –axis (vertical) which represents the two variables. These two perpendicular lines are called the coordinate axis.

  • The intersection point of these two lines is known as the center or the origin of the coordinate plane. Its coordinates are (0, 0).
  • Any point on this coordinate plane is represented by the ordered pair of numbers. Let (a, b) is an ordered pair then a is the x-coordinate and b is the y-coordinate.
  • The distance of any point from the y-axis is called its x-coordinate or abscissa and the distance of any point from the x-axis is called its y-coordinate or ordinate.
  • The Cartesian plane is divided into four quadrants I, II, III and IV.

Equation of a Straight Line

An equation of line is used to plot the graph of the line on the cartesian plane.

The equation of a line is written in slope intercept form as

y = mx +b

where m is the slope of the line and b is the y intercept.

To find the slope of the line first we need to convert the equation in the slope intercept form then we can get the slope and y intercept easily.


Distance formula

The distance between any two points A(x1,y1) and B(x2,y2) is calculated by

Example: Find the distance between the points D and E, in the given figure.

Solution


This shows that this is same as Pythagoras theorem. As in Pythagoras theorem


Distance from Origin

If we have to find the distance of any point from the origin then, one point is P(x,y) and the other point is the origin itself, which is O(0,0). So according to the above distance formula, it will be


Section formula

If P(x, y) is any point on the line segment AB, which divides AB in the ratio of m: n, then the coordinates of the point P(x, y) will be


Mid-point formula

If P(x, y) is the mid – point of the line segment AB, which divides AB in the ratio of 1:1, then the coordinates of the point P(x, y) will be

Here ABC is a triangle with vertices A(x1, y1), B(x2, y2) and C(x3, y3). To find the area of the triangle we need to draw AP, BQ and CR perpendiculars from A, B and C, respectively, to the x-axis. Now we can see that ABQP, APRC and BQRC are all trapeziums.

Area of triangle ABC = Area of trapezium ABQP + Area of trapezium APRC – Area of trapezium BQRC.

Therefore,

Remark: If the area of the triangle is zero then the given three points must be collinear.


Example: Let’s see how to find the area of quadrilateral ABCD whose vertices are A (-4,-2), B (-3,-5), C (3,-2) and D (2, 3).

If ABCD is a quadrilateral then we get the two triangles by joining A and C. To find the area of Quadrilateral ABCD we can find the area of ∆ ABC and ∆ ADC and then add them.






Area of a Polygon

Like the triangle, we can easily find the area of any polygon if we know the coordinates of all the vertices of the polygon.

If we have a polygon with n number of vertices, then the formula for the area will be

Where x1 is the x coordinate of vertex 1 and yn is the y coordinate of the nth vertex etc.


Example: Find the area of the given quadrilateral.

Solution

To find the area of the given quadrilateral-

  • Make a table of x and y coordinates of each vertex. Do it clockwise or anti-clockwise.
  • Simplify the first two rows by:
  • Multiplying the first row x by the second row y. (red)
  • Multiplying the first row y by the second row x (blue)
  • Subtract the second product form the first.
  • Repeat this for all the other rows.
  • Now add these results.

The area of the quadrilateral is 45.5 as area will always be in positive.


Centroid of a Triangle

Centroid of a triangle is the point where all the three medians of the triangle meet with each other.

Here ABC is a triangle with vertices A(x1, y1), B(x2, y2) and C(x3, y3). The centroid of the triangle is the point with the coordinates (x, y).

The coordinates of the centroid will be calculated as

Remarks

In coordinate geometry, polygons are formed by x and y coordinates of its vertices. So in order to prove that the given figure is a:

No.

Figures made of four points

Prove

1.        

Square

Its four sides are equal and the diagonals are also equal.

2.        

Rhombus

Its four sides are equal.

3.        

Rhombus but not square

Four sides are equal and the diagonals are not equal.

4.        

Rectangle

Its opposite sides are equal and the diagonals are equal.

5.        

Parallelogram

Its opposite sides are equal.

6.        

Parallelogram but not a rectangle

Its opposite sides are equal but the diagonals are not equal.


No.

Figures made of three points

Prove

1.        

A scalene triangle

If none of its sides are equal.

2.        

An Isosceles triangle

If any two sides are equal.

3.        

Equilateral triangle

If it’s all the three sides are equal.

4.        

Right triangle

If the sum of the squares of any two sides is equal to the square of the third side.


Example: If the coordinates of the centroid of a triangle are (1, 3) and two of its vertices are (- 7, 6) and (8, 5), then what will be the third vertex of the triangle?

Solution

Let the third vertex of the triangle be P(x, y)

Since the centroid of the triangle is (1, 3)

Therefore,

Hence, the coordinate of the third vertex are (2, – 2).

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