more accurate state initialization
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d1df8fdf97
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@ -7,22 +7,25 @@ def goertzel_sinusoid(freq, duration, sample_rate, amplitude):
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omega = (2.0 * math.pi * freq) / sample_rate
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coeff = 2.0 * math.cos(omega)
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# Initialize state variables
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q1 = 1.0 # previous sample in sinusoid (1.0 for sample 1)
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q2 = 1.0 # previous previous sample (approximately 1.0 for sample 1)
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result = []
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# Initialize state variables for cos wave
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# You can use 1.0 for q1 and q2 for a cos wave with slightly larger amplitude and a phase shift of 1/2 a sample
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# q1 previous sample in sinusoid
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q1 = math.cos(omega * (n - 1)) # use math.sin(omega * (n-1)) for sin wave
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# q2 previous previous sample
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q2 = math.cos(omega * (n - 2)) # use math.sin(omega * (n-2)) for sin wave
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result = np.zeros(n)
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for i in range(n):
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sample = coeff * q1 - q2
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q2 = q1
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q1 = sample
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result.append(sample * amplitude)
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result[i] = sample * amplitude
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return result
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def sinusoid(n, cycles=1):
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def sinusoid(n, cycles=1, phase=0):
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result = []
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for i in range(1, n+1):
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for i in range(phase, n+phase):
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sample = math.cos(2.0 * cycles * math.pi * (i/n))
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result.append(sample)
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return result
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@ -34,12 +37,13 @@ def main():
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signal = goertzel_sinusoid(1, cycles, samp_per_cycle, 1)
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reference = np.array(sinusoid(len, cycles))
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error = reference - signal
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print("max amplitude:", signal.max())
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print("max error:", error.max())
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x = np.array(range(0, len))
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plt.plot(x, signal)
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plt.plot(x, reference)
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plt.plot(x, error)
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#plt.plot(x, error*100)
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#plt.plot(x, error*100000000000)
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plt.show()
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if __name__ == "__main__":
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