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Signal Energy expended from <math>t_1\!</math> to <math>t_2\!</math> for CT functions is given by the formula <math>E = \int_{t_1}^{t_2} \! |x(t)|^2\ dt</math> | Signal Energy expended from <math>t_1\!</math> to <math>t_2\!</math> for CT functions is given by the formula <math>E = \int_{t_1}^{t_2} \! |x(t)|^2\ dt</math> | ||
− | The total signal energy for a signal can be found by taking the limits for the integral <math>t_1\!</math> and <math>t_2\!</math> as <math>-\infty\!</math> and <math> | + | The total signal energy for a signal can be found by taking the limits for the integral <math>t_1\!</math> and <math>t_2\!</math> as <math>-\infty\!</math> and <math>\infty\!</math> respectively |
− | For DT signals, the total energy is given by the formula <math>E_{ | + | For DT signals, the total energy is given by the formula <math>E_{\infty} = \sum^{\infty}_{n=-\infty} |x[n]|^2 \!</math> |
== Signal Power == | == Signal Power == | ||
For CT functions, the power of a signal from <math>t_1\!</math> to <math>t_2\!</math> is given by the function <math>P_{avg}=\frac{1}{t_2-t_1} \int_{t_1}^{t_2} |x(t)|^2\ dt \!</math> | For CT functions, the power of a signal from <math>t_1\!</math> to <math>t_2\!</math> is given by the function <math>P_{avg}=\frac{1}{t_2-t_1} \int_{t_1}^{t_2} |x(t)|^2\ dt \!</math> | ||
− | The total signal power is given by the function <math>P_{ | + | The total signal power is given by the function <math>P_{\infty}=\lim_{t->\infty} \frac{1}{2t} \int_{-t}^{t} |x(t)|^2\ dt \!</math> |
− | + | Total signal power for DT signals is given by the formula <math>P_{\infty} = \lim_{N->\infty} \frac{1}{2N+1} \sum^{N}_{n=-N} |x[n]|^2\!</math> | |
− | + | ||
− | Total signal power for DT signals is given by the formula <math>P_{ | + |
Revision as of 04:16, 5 September 2008
Signal Energy
Signal Energy expended from $ t_1\! $ to $ t_2\! $ for CT functions is given by the formula $ E = \int_{t_1}^{t_2} \! |x(t)|^2\ dt $
The total signal energy for a signal can be found by taking the limits for the integral $ t_1\! $ and $ t_2\! $ as $ -\infty\! $ and $ \infty\! $ respectively
For DT signals, the total energy is given by the formula $ E_{\infty} = \sum^{\infty}_{n=-\infty} |x[n]|^2 \! $
Signal Power
For CT functions, the power of a signal from $ t_1\! $ to $ t_2\! $ is given by the function $ P_{avg}=\frac{1}{t_2-t_1} \int_{t_1}^{t_2} |x(t)|^2\ dt \! $
The total signal power is given by the function $ P_{\infty}=\lim_{t->\infty} \frac{1}{2t} \int_{-t}^{t} |x(t)|^2\ dt \! $
Total signal power for DT signals is given by the formula $ P_{\infty} = \lim_{N->\infty} \frac{1}{2N+1} \sum^{N}_{n=-N} |x[n]|^2\! $