(a) (i) Prove by induction that, for any n, the sum of the first n natural numbers is \( \frac{n(n+1)}{2} \) - Leaving Cert Mathematics - Question 2 - 2012

To find the sum of the natural numbers from 51 to 100, we can use the formula for the sum of the first( n ) natural numbers:

[ S_n = \frac{n(n+1)}{2} ]

First, calculate the total sum up to 100: [ S_{100} = \frac{100(101)}{2} = 5050 ]

Next, calculate the sum of the first 50 natural numbers: [ S_{50} = \frac{50(51)}{2} = 1275 ]

To find the sum from 51 to 100, subtract the sum of the first 50 from the sum up to 100: [ 51 + 52 + ... + 100 = S_{100} - S_{50} = 5050 - 1275 = 3775 ]

Therefore, the sum of all natural numbers from 51 to 100 is 3775.

We start with: [ \log_e \sqrt{x} = \log_e x^{1/2} = \frac{1}{2} \log_e x = \frac{1}{2} p ]

Next, for ( \log_e (cx) ): [ \log_e (cx) = \log_e c + \log_e x ]

Using the fact that ( \log_e x = p ), we have: [ \log_e (cx) = \log_e c + p ]

Now, combining both results: [ \log_e \sqrt{x} + \log_e (cx) = \frac{1}{2} p + \log_e c + p = \frac{3}{2} p + \log_e c ]

Therefore, the expression in terms of p is:\n[ \log_e \sqrt{x} + \log_e (cx) = \frac{3}{2} p + \log_e c ]