Question

Find the values of k for which the points are collinear (KK) (2, 3) and (4-1)​

Answer 1

Answer:

Answer

We know that,

Area of ΔABC=0

=

2

1

[x

1

(y

2

−y

3

)+x

2

(y

3

−y

1

)+x

3

(y

1

−y

2

)]=0

Here,

x

1

=k,y

1

=k

x

2

=2,y

2

=3

x

3

=4,y

3

=−1

Putting values,

=

2

1

[k(3−(−1))+2((−1)−k)+4(k−3)]=0

=

2

1

[3k+k−2−2k+4k−12]=0

=

2

1

[6k−14]=0

2

6k−14

=0

6k−14=0

6k=14

k=

6

14

=

3

7

k=

3

7

Hence, this is the answer.