Answer:
Solution:
As per the question:
Initial frequency of the processor, f = 2.5 GHz = [tex]2.5\times 10^{9}\ Hz[/tex]
Final frequency attained by the processor, f' = [tex]3.0\times 10^{9}\ Hz[/tex]
Initial dynamic power, [tex]P_{dynamic} = 60\ W[/tex]
Leakage Power, [tex]P_{leakage} = 15\ W[/tex]
Now,
To calculate the Dynamic power, [tex]P'_{dynamic[/tex]and leakage power consumed by the processor:
We know that the dynamic power is in direct proportion to the frequency of the processor:
[tex]P_{dynamic}[/tex] ∝ frequency, f
Thus we can write:
[tex]\frac{P'_{dynamic}}{P_{dynamic}} = \frac{f'}{f}[/tex]
[tex]P'_{dynamic} = \frac{f'}{f}\times P_{dynamic[/tex]
Substituting the appropriate values in the above expression:
[tex]P'_{dynamic} = \frac{3.0\times 10^{9}}{2.5\times 10^{9}}\times 60 = 72.0\ W[/tex]
Now,
We know that the leakage power does not depend on the frequency of the processor and hence remains same.
Thus
[tex]P'_{leakage} = P_{leakage} =15\ W[/tex]
