In how many ways, two different natural numbers can be selected, which less than or equal to 100 and differ by almost 10.

Number of ways in which two numbers can be selected from 100 integers is `.^(100)C_(2)`.
Let us find the number of ways by selecting two numbers, if their difference is more than 10.
Let the two integers selected be P and Q.
P Q
x y z
Here, x,y,z are number of integers before P, between P and Q, and after Q respectively. Therefore, x+y+z=98.
Now, we have to find number of integral solution for `x,z ge 0` and `y ge 10`.
`therefore x+y_(1)+z=88, " where" y_(1)ge 0`
Then, number of solutions of above equations is
`.^(88+3-1)C_(3-1)= .^(90)C_(2)`.
Hence, the number of ways where two different natural numbers can be selected, which differ by almost 10 is `. ^(100)C_(2)- .^(90)C_(2)`.