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start [2025/04/08 13:38] – kkaragozstart [2025/12/08 14:51] (current) – kkaragoz
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   * Power Electronics & Microwave   * Power Electronics & Microwave
   * Most of the stuff related with electromagnetism   * Most of the stuff related with electromagnetism
 +
 +Here is my favorite formula 🌼🌷:
 +$$ \psi = kd \cos{\theta} $$
 +$$ AF = \sum_{m=0}^{N-1}e^{jm\psi} = 1 + e^{j\psi} + e^{j2\psi} + ... + e^{j\left(N-1\right)\psi} $$
 +The maximum value of AF occurs when $\psi=0$, resulting in $AF = N$. Therefore, disregarding the phase factor and normalizing we obtain. 
 +$$ f\left(\psi\right) = \frac{\sin{\frac{N\psi}{2}}}{N\sin{\frac{\psi}{2}}} $$
  
 {{:technology_revolution.png?400}} {{:technology_revolution.png?400}}
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 |SORA|2024|AI/ML| |SORA|2024|AI/ML|
  
-Test expression for mathematical formulas: 
- 
-$$ \psi = kd \cos{\theta} $$ 
-$$ AF = \sum_{m=0}^{N-1}e^{jm\psi} = 1 + e^{j\psi} + e^{j2\psi} + ... + e^{j\left(N-1\right)\psi} $$ 
-The maximum value of AF occurs when $\psi=0$, resulting in $AF = N$. Therefore, disregarding the phase factor and normalizing we obtain.  
-$$ f{\psi} = \frac{\sin{\frac{N\psi}{2}}}{N\sin{\frac{\psi}{2}}} $$ 
  
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