The points (1,0 ),(0,1),(0,0) and (2k,3k...

The points (1,0 ),(0,1),(0,0) and (2k,3k), k `ne` 0 are concyclic if k =

A

`5/13`

B

`(-5)/13`

C

`-1/5`

D

`1/5`

Verified by Experts

The correct Answer is:

A

CIRCLES AND SYSTEMS OF CIRCLES
MODERN PUBLICATION|Exercise AIEEE/JEE Examination|9 Videos
CARTESIAN SYSTEM OF RECTANGULAR CO-ORDINATES AND STRAIGHT LINES
MODERN PUBLICATION|Exercise Recent Competitive Questions (Questions from Karnataka CET & COMED)|8 Videos
COMPLEX NUMBERS
MODERN PUBLICATION|Exercise Questions from karnataka CET & COMED|15 Videos

Similar Questions

Explore conceptually related problems

The points (1,0),(0,1),(0,0) and (2k,3k),k!=0 are concyclic if k =

The four distinct points (0,0),(2,0),(0,-2) and (k,-2) are conclyic if k=

The points (0,0),(1,0),(0,1) and (t, t) are concyclic then t=

The four distinct points (2, 3), (0, 2), (4, 5) and (0, k) are concyclic if the value of k is:

Prove that the points (2,0), (-2,0),(-1,3) and (1,-1) are concyclic.

If three points ( h,0 ) ,( a,b) and ( o,k) lie on a line,show that (a)/( h) +( b)/( k) =1

If area of the triangle with vertices (-2, 0), (0, 4) and (0, k) is 4 square units, find the value of 'k' using determinants.

If the area of the triangle with vertices (-2, 0), (0, 4) and (0, k) is 4 square units, find the values of k u"sin"g determinants.

The area of a triangle with vertices (-3,0),(3,0) and (0,k) is 9 sq. units . The value of k will be :