There are 8 vertices, 3 can be selected in 8C3 ways which is 56. Number ways when it doesn't become a right angle is when we choose from the same plane so 2*4C2 so it is 8. Required is 56-8=48

Introduction:
In this problem, we are given a cube and we need to select three random points from its vertices such that they form a right-angled triangle. We need to determine the number of ways to select these points.

Approach:
To solve this problem, we can consider the different types of right-angled triangles that can be formed by selecting three points on the cube. We can then count the number of ways to select each type of triangle and add them up to get the total number of ways.

Types of right-angled triangles:
1. Triangular face: A right-angled triangle can be formed by selecting three vertices on one of the six triangular faces of the cube. There are six such faces, so the number of ways to select a triangle on a triangular face is 6.

2. Rectangular face: A right-angled triangle can also be formed by selecting two vertices on one of the twelve rectangular faces of the cube and one vertex on an adjacent rectangular face. There are twelve pairs of adjacent rectangular faces, so the number of ways to select a triangle on a rectangular face is 12.

3. Opposite vertices: A right-angled triangle can be formed by selecting two opposite vertices of the cube and one vertex on a face adjacent to one of the opposite vertices. There are eight pairs of opposite vertices, so the number of ways to select a triangle using opposite vertices is 8.

Calculating the total:
To calculate the total number of ways, we need to sum up the number of ways for each type of right-angled triangle:
Total number of ways = Number of ways on triangular faces + Number of ways on rectangular faces + Number of ways using opposite vertices
Total number of ways = 6 + 12 + 8 = 26

Answer:
Therefore, the total number of ways to select three points on the cube such that they form a right-angled triangle is 26.