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# SPDX-License-Identifier: MPL-2.0
# Copyright (c) 2022 Philipp Le <philipp@philipple.de>.
# This Source Code Form is subject to the terms of the Mozilla Public
# License, v. 2.0. If a copy of the MPL was not distributed with this
# file, You can obtain one at https://mozilla.org/MPL/2.0/.
from __future__ import annotations
from tkinter import ttk, LEFT, BOTH, BOTTOM
from pydantic import confloat
from dcs.config import default_store, ConfigObject, ui_create, ConfigControlFrame
import numpy as np
import scipy.signal
from dcs.frames.base import BaseFrame, Window
from dcs.frames.groups import Ch05Group
from dcs.utils import swap_freq
from typing import List
from enum import Enum
import matplotlib
matplotlib.use('TkAgg')
from matplotlib.figure import Figure
from matplotlib.backends.backend_tkagg import FigureCanvasTkAgg, NavigationToolbar2Tk
SAMPLE_LEN = 512
FFT_OVERSAMPLING = 64
@ui_create
class Function(ConfigObject):
freq: confloat(ge=-SAMPLE_LEN/4, lt=SAMPLE_LEN/4, multiple_of=(4.0/FFT_OVERSAMPLING)) = 1.0
amplitude: confloat(ge=0.0, lt=10.0, multiple_of=0.01) = 5.0
phase: confloat(ge=-180.0, le=180.0, multiple_of=0.1) = 0.0
offset: confloat(ge=-5.0, lt=5.0, multiple_of=0.01) = 0.0
def make_config_widget(self, parent: ttk.Widget) -> ConfigControlFrame:
frm = ConfigControlFrame(parent)
ttk.Label(frm, text='Frequency:').grid(row=0, column=0)
w = self.ui_create_freq(frm)
frm.add_widget(w)
w.grid(row=0, column=1)
ttk.Label(frm, text='Amplitude:').grid(row=1, column=0)
w = self.ui_create_amplitude(frm)
frm.add_widget(w)
w.grid(row=1, column=1)
ttk.Label(frm, text='Phase:').grid(row=2, column=0)
w = self.ui_create_phase(frm)
frm.add_widget(w)
w.grid(row=2, column=1)
ttk.Label(frm, text='°').grid(row=2, column=2)
ttk.Label(frm, text='Offset:').grid(row=3, column=0)
w = self.ui_create_offset(frm)
frm.add_widget(w)
w.grid(row=3, column=1)
return frm
def calc_signal(self, t: np.ndarray) -> np.ndarray:
phasor = self.amplitude * np.exp(1j * self.phase * np.pi / 180)
phi = np.exp(1j * 2 * np.pi * self.freq * t)
return self.offset + (phasor * phi)
def make_title(self):
return f'n={self.freq}, {self.amplitude}, {self.phase}°'
class Direction(str, Enum):
DOWN = 'Down Conversion'
UP = 'Up Conversion'
class DisplayMode(str, Enum):
FULL = 'Full (I, Q, I+jQ)'
IQ = 'IQ Channels (I, Q)'
CMPLX = 'Complex (I+jQ)'
BASEBAND = 'Baseband only'
CARRIER = 'Carrier only'
HF = 'HF only'
@ui_create
class ConfigCh05Iq(ConfigObject):
_KEY = 'ch05_iq'
hf_funcs: List[Function] = [
Function(freq=-1.0, amplitude=1.0, phase=90.0),
Function(freq=2.0, amplitude=1.0, phase=0.0),
]
baseband_funcs: List[Function] = [
Function(freq=18.0, amplitude=1.0, phase=0.0),
Function(freq=21.0, amplitude=1.0, phase=90.0),
]
direction: Direction = Direction.DOWN
carrier: Function = Function(freq=20.0, amplitude=1.0)
lp_cutoff_freq: confloat(ge=0, lt=SAMPLE_LEN/4, multiple_of=(4.0/FFT_OVERSAMPLING)) = 0.0
display: DisplayMode = DisplayMode.FULL
def make_config_widget(self, parent: ttk.Widget) -> ConfigControlFrame:
frm = ConfigControlFrame(parent, borderwidth=1, relief='raised')
ttk.Label(frm, text='HF Functions (for Down Conversion):').pack()
w = self.ui_create_hf_funcs_list(frm, lambda e: e.make_title())
frm.add_widget(w)
w.pack()
ttk.Label(frm, text='Baseband Functions (for Up Conversion):').pack()
w = self.ui_create_baseband_funcs_list(frm, lambda e: e.make_title())
frm.add_widget(w)
w.pack()
frm1 = ttk.Frame(frm)
frm1.pack()
ttk.Label(frm1, text='Conversion Direction:').grid(row=0, column=0)
w = self.ui_create_direction_dropdown(frm1)
frm.add_widget(w)
w.grid(row=0, column=1)
frm2 = ttk.Frame(frm, borderwidth=1, relief='raised')
frm2.pack()
ttk.Label(frm2, text='Carrier:').pack()
carrier_frm = self.carrier.make_config_widget(frm2)
for w in carrier_frm.ctrl_widgets:
frm.add_widget(w)
carrier_frm.pack()
frm3 = ttk.Frame(frm)
frm3.pack()
ttk.Label(frm3, text='Down Conv. Baseband Low Pass Cut-off:').grid(row=0, column=0)
ttk.Label(frm3, text='(0 = disable):').grid(row=1, column=1)
w = self.ui_create_lp_cutoff_freq(frm3)
frm.add_widget(w)
w.grid(row=0, column=1)
ttk.Label(frm3, text='Display Mode:').grid(row=2, column=0)
w = self.ui_create_display_dropdown(frm3)
frm.add_widget(w)
w.grid(row=2, column=1)
return frm
def calc_carrier_signal(self, t: np.ndarray) -> np.ndarray:
return self.carrier.calc_signal(t)
def calc_baseband_signal(self, t: np.ndarray) -> np.ndarray:
if self.direction == Direction.UP:
x = np.zeros((len(self.baseband_funcs), len(t)), dtype='complex128')
for index, func in enumerate(self.baseband_funcs):
x[index, :] = func.calc_signal(t)
return np.sum(x, axis=0)
elif self.direction == Direction.DOWN:
i_mixed = self.calc_hf_signal(t) * np.real(self.calc_carrier_signal(t))
q_mixed = self.calc_hf_signal(t) * np.imag(self.calc_carrier_signal(t))
base = i_mixed - (1j * q_mixed)
if self.lp_cutoff_freq == 0:
return base
else:
b, a = scipy.signal.butter(5, self.lp_cutoff_freq, btype='low', fs=SAMPLE_LEN)
zi = scipy.signal.lfilter_zi(b, a)
z, _ = scipy.signal.lfilter(b, a, base, zi=zi*base[0])
return z
else:
raise Exception('Invalid direction')
def calc_hf_signal(self, t: np.ndarray) -> np.ndarray:
if self.direction == Direction.DOWN:
x = np.zeros((len(self.hf_funcs), len(t)), dtype='float128')
for index, func in enumerate(self.hf_funcs):
x[index, :] = np.real(func.calc_signal(t))
return np.sum(x, axis=0)
elif self.direction == Direction.UP:
i_mixed = np.real(self.calc_baseband_signal(t)) * np.real(self.calc_carrier_signal(t))
q_mixed = np.imag(self.calc_baseband_signal(t)) * np.imag(self.calc_carrier_signal(t))
return i_mixed - q_mixed
else:
raise Exception('Invalid direction')
class Ch05IqFrame(BaseFrame):
def __init__(self, *args, **kwargs):
super().__init__(*args, **kwargs)
self._config: ConfigCh05Iq = default_store().get_config(ConfigCh05Iq)
ctrl_frm = self._create_control()
ctrl_frm.pack(side=LEFT)
signal_frm = self._create_signal_tabs()
signal_frm.pack(expand=True, fill=BOTH)
def _create_control(self) -> ConfigControlFrame:
frm = self._config.make_config_widget(self)
frm.widgets_on_change(self._on_change)
return frm
def _on_change(self, _, __, ___):
default_store().save()
self.draw_input()
self.draw_fft()
self.draw_output()
def _create_signal_tabs(self) -> ttk.Widget:
tabs = ttk.Notebook(self)
in_frm = ttk.Frame(tabs)
tabs.add(in_frm, text='Input Signals')
self._in_fig = Figure(figsize=(12, 6), dpi=100)
self._in_canvas = FigureCanvasTkAgg(self._in_fig, in_frm)
self._in_canvas.get_tk_widget().pack(expand=True, fill=BOTH)
fft_frm = ttk.Frame(tabs)
tabs.add(fft_frm, text='Frequency Domain')
self._fft_fig = Figure(figsize=(12, 6), dpi=100)
self._fft_canvas = FigureCanvasTkAgg(self._fft_fig, fft_frm)
self._fft_canvas.get_tk_widget().pack(expand=True, fill=BOTH)
fft_tb = NavigationToolbar2Tk(self._fft_canvas, fft_frm, pack_toolbar=False)
fft_tb.pack(side=BOTTOM)
out_frm = ttk.Frame(tabs)
tabs.add(out_frm, text='Output Signals')
self._out_fig = Figure(figsize=(12, 6), dpi=100)
self._out_canvas = FigureCanvasTkAgg(self._out_fig, out_frm)
self._out_canvas.get_tk_widget().pack(expand=True, fill=BOTH)
self.draw_input()
self.draw_fft()
self.draw_output()
return tabs
def draw_input(self):
self._in_fig.clear()
ax_inp = self._in_fig.add_subplot(3, 1, 1)
ax_inp.set_xlim(0.0, 1.0)
ax_inp.set_xlabel('time')
ax_inp.set_ylabel('value')
ax_inp.set_title('Baseband Signal' if self._config.direction == Direction.UP else 'HF Signal')
ax_carr = self._in_fig.add_subplot(3, 1, 2)
ax_carr.set_xlim(0.0, 1.0)
ax_carr.set_xlabel('time')
ax_carr.set_ylabel('value')
ax_carr.set_title('Carrier Signal')
ax_3d = self._in_fig.add_subplot(3, 1, 3, projection='3d')
ax_3d.set_xlabel('real')
ax_3d.set_ylabel('imaginary')
ax_3d.set_zlabel('time')
t = np.arange(0, SAMPLE_LEN, 1) / SAMPLE_LEN
if self._config.direction == Direction.UP:
x_base = self._config.calc_baseband_signal(t)
ax_inp.plot(t, np.real(x_base), label='Baseband I', linestyle='solid', color='blue', linewidth=1)
ax_inp.plot(t, np.imag(x_base), label='Baseband Q', linestyle='solid', color='red', linewidth=1)
ax_3d.plot(np.real(x_base), np.imag(x_base), t, label='Baseband', linestyle='solid', color='purple', linewidth=1)
elif self._config.direction == Direction.DOWN:
x_hf = self._config.calc_hf_signal(t)
ax_inp.plot(t, x_hf, label='HF', linestyle='solid', color='brown', linewidth=1)
ax_3d.plot(x_hf, np.zeros(len(x_hf)), t, label='HF', linestyle='solid', color='brown', linewidth=1)
else:
raise Exception('Invalid direction')
ax_inp.legend()
x_carr = self._config.calc_carrier_signal(t)
ax_carr.plot(t, np.real(x_carr), label='Carrier I', linestyle='solid', color='green', linewidth=1)
ax_carr.plot(t, np.imag(x_carr), label='Carrier Q', linestyle='solid', color='orange', linewidth=1)
ax_carr.legend()
ax_3d.plot(np.real(x_carr), np.imag(x_carr), t, label='Carrier', linestyle='solid', color='yellow', linewidth=1)
ax_3d.legend()
self._in_fig.tight_layout()
self._in_canvas.draw()
@classmethod
def _log_real(cls, x: np.ndarray) -> np.ndarray:
return np.real(x)
@classmethod
def _log_imag(cls, x: np.ndarray) -> np.ndarray:
return np.imag(x)
@classmethod
def _log_abs(cls, x: np.ndarray) -> np.ndarray:
return np.abs(x)
def draw_fft(self):
self._fft_fig.clear()
# ax_3d = self._fft_fig.add_subplot(3, 1, 1, projection='3d')
# ax_3d.set_zlim(-int(SAMPLE_LEN/4), int(SAMPLE_LEN/4))
# ax_3d.set_xlabel('real')
# ax_3d.set_ylabel('imag')
# ax_3d.set_zlabel('frequency')
#ax_real = self._fft_fig.add_subplot(3, 1, 2)
ax_real = self._fft_fig.add_subplot(2, 1, 1)
ax_real.set_xlim(-int(SAMPLE_LEN/4), int(SAMPLE_LEN/4))
ax_real.set_xlabel('frequency')
ax_real.set_ylabel('value')
ax_real.set_title('Real(FFT)')
#ax_imag = self._fft_fig.add_subplot(3, 1, 3)
ax_imag = self._fft_fig.add_subplot(2, 1, 2)
ax_imag.set_xlim(-int(SAMPLE_LEN/4), int(SAMPLE_LEN/4))
ax_imag.set_xlabel('frequency')
ax_imag.set_ylabel('value')
ax_imag.set_title('Imag(FFT)')
t_ovs = np.arange(0, (SAMPLE_LEN * FFT_OVERSAMPLING), 1) / SAMPLE_LEN
f_ovs = swap_freq(np.fft.fftfreq(t_ovs.shape[-1], 1.0/SAMPLE_LEN))
x_base = self._config.calc_baseband_signal(t_ovs)
X_base_i = swap_freq(np.fft.fft(np.real(x_base))) / len(t_ovs)
X_base_q = swap_freq(np.fft.fft(np.imag(x_base))) / len(t_ovs)
X_base_cmplx = swap_freq(np.fft.fft(x_base)) / len(t_ovs)
if (self._config.display == DisplayMode.FULL) or (self._config.display == DisplayMode.IQ) or (self._config.display == DisplayMode.BASEBAND):
ax_real.plot(f_ovs, np.real(X_base_i), label='Baseband I', linestyle='solid', color='blue', marker='x', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_base_i), label='Baseband I', linestyle='solid', color='blue', marker='x', linewidth=1)
#ax_3d.plot(np.real(X_base_i), np.imag(X_base_i), f_ovs, label='Baseband I', linestyle='solid', color='blue', marker='x', linewidth=1)
ax_real.plot(f_ovs, np.real(X_base_q), label='Baseband Q', linestyle='solid', color='red', marker='o', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_base_q), label='Baseband Q', linestyle='solid', color='red', marker='o', linewidth=1)
#ax_3d.plot(np.real(X_base_q), np.imag(X_base_q), f_ovs, label='Baseband Q', linestyle='solid', color='red', marker='o', linewidth=1)
if (self._config.display == DisplayMode.FULL) or (self._config.display == DisplayMode.CMPLX) or (self._config.display == DisplayMode.BASEBAND):
ax_real.plot(f_ovs, np.real(X_base_cmplx), label='Baseband I + j*Q', linestyle='solid', color='purple', marker='^', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_base_cmplx), label='Baseband I + j*Q', linestyle='solid', color='purple', marker='^', linewidth=1)
#ax_3d.plot(np.real(X_base_cmplx), np.imag(X_base_cmplx), f_ovs, label='Baseband I + j*Q', linestyle='solid', color='purple', marker='^', linewidth=1)
x_carr = self._config.calc_carrier_signal(t_ovs)
X_carr_i = swap_freq(np.fft.fft(np.real(x_carr))) / len(t_ovs)
X_carr_q = swap_freq(np.fft.fft(np.imag(x_carr))) / len(t_ovs)
X_carr_cmplx = swap_freq(np.fft.fft(x_carr)) / len(t_ovs)
if (self._config.display == DisplayMode.FULL) or (self._config.display == DisplayMode.IQ) or (self._config.display == DisplayMode.CARRIER):
ax_real.plot(f_ovs, np.real(X_carr_i), label='Carrier I', linestyle='solid', color='green', marker='x', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_carr_i), label='Carrier I', linestyle='solid', color='green', marker='x', linewidth=1)
#ax_3d.plot(np.real(X_carr_i), np.imag(X_carr_i), f_ovs, label='Baseband I', linestyle='solid', color='green', marker='x', linewidth=1)
ax_real.plot(f_ovs, np.real(X_carr_q), label='Carrier Q', linestyle='solid', color='orange', marker='o', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_carr_q), label='Carrier Q', linestyle='solid', color='orange', marker='o', linewidth=1)
#ax_3d.plot(np.real(X_carr_q), np.imag(X_carr_q), f_ovs, label='Baseband Q', linestyle='solid', color='orange', marker='o', linewidth=1)
if (self._config.display == DisplayMode.FULL) or (self._config.display == DisplayMode.CMPLX) or (self._config.display == DisplayMode.CARRIER):
ax_real.plot(f_ovs, np.real(X_carr_cmplx), label='Carrier I + j*Q', linestyle='solid', color='yellow', marker='^', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_carr_cmplx), label='Carrier I + j*Q', linestyle='solid', color='yellow', marker='^', linewidth=1)
#ax_3d.plot(np.real(X_carr_cmplx), np.imag(X_carr_cmplx), f_ovs, label='Carrier I + j*Q', linestyle='solid', color='yellow', marker='^', linewidth=1)
x_hf = self._config.calc_hf_signal(t_ovs)
X_hf_cmplx = swap_freq(np.fft.fft(x_hf)) / len(t_ovs)
if (self._config.display != DisplayMode.BASEBAND) and (self._config.display != DisplayMode.CARRIER):
ax_real.plot(f_ovs, np.real(X_hf_cmplx), label='HF', linestyle='solid', color='brown', marker='^', linewidth=1)
ax_imag.plot(f_ovs, np.imag(X_hf_cmplx), label='HF', linestyle='solid', color='brown', marker='^', linewidth=1)
#ax_3d.plot(np.real(X_hf_cmplx), np.imag(X_hf_cmplx), f_ovs, label='HF', linestyle='solid', color='brown', linewidth=1)
#ax_3d.legend()
ax_real.legend()
ax_imag.legend()
self._fft_fig.tight_layout()
self._fft_canvas.draw()
def draw_output(self):
self._out_fig.clear()
ax_outp = self._out_fig.add_subplot(2, 1, 1)
ax_outp.set_xlim(0.0, 1.0)
ax_outp.set_xlabel('time')
ax_outp.set_ylabel('value')
ax_outp.set_title('HF Signal' if self._config.direction == Direction.UP else 'Baseband Signal')
ax_3d = self._out_fig.add_subplot(2, 1, 2, projection='3d')
ax_3d.set_xlabel('real')
ax_3d.set_ylabel('imaginary')
ax_3d.set_zlabel('time')
t = np.arange(0, SAMPLE_LEN, 1) / SAMPLE_LEN
if self._config.direction == Direction.UP:
x_hf = self._config.calc_hf_signal(t)
ax_outp.plot(t, x_hf, label='HF', linestyle='solid', color='brown', linewidth=1)
ax_3d.plot(x_hf, np.zeros(len(x_hf)), t, label='HF', linestyle='solid', color='brown', linewidth=1)
elif self._config.direction == Direction.DOWN:
x_base = self._config.calc_baseband_signal(t)
ax_outp.plot(t, np.real(x_base), label='Baseband I', linestyle='solid', color='blue', linewidth=1)
ax_outp.plot(t, np.imag(x_base), label='Baseband Q', linestyle='solid', color='red', linewidth=1)
ax_3d.plot(np.real(x_base), np.imag(x_base), t, label='Baseband', linestyle='solid', color='purple', linewidth=1)
else:
raise Exception('Invalid direction')
ax_outp.legend()
ax_3d.legend()
self._out_fig.tight_layout()
self._out_canvas.draw()
class Ch05IqWindow(Window):
GROUP = Ch05Group
TITLE = 'IQ Mixer'
FRAME = Ch05IqFrame
if __name__ == '__main__':
Ch05IqWindow.main()