Files
brewpi/client/brewpi_gui.py
T
jensandClaude Sonnet 4.6 84b1607c78 Forecast a Sud schedule through its confirm steps, not just up to the first one
A user_wait_for_continue step used to stop SudForecastEstimator.estimate()
dead, so the GUI's forecast plot only ever showed the first segment on Load.
Model the wait as a zero-delay auto-confirm instead, so the whole schedule's
projected curve is visible right away; correct that assumption piecewise as
real confirmations actually happen, anchored at the real elapsed time and
temperature.

Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01DkkuG48uHFCGKe6dPSERFk
2026-06-22 17:12:19 +02:00

887 lines
36 KiB
Python
Executable File

#!/usr/bin/env python3
from main_window import Ui_MainWindow
from PyQt5 import QtWidgets, QtGui, QtCore
import json
import sys
import threading
import time
from pathlib import Path
import matplotlib
matplotlib.use("Qt5Agg")
from matplotlib.backends.backend_qt5agg import FigureCanvasQTAgg
from matplotlib.figure import Figure
from matplotlib.ticker import AutoMinorLocator
from components.sud import Sud
from ws.client.ws_client import WsClient
from ws.message import MessageDispatcherSync
from queue import Queue
import asyncio
from user_config import UserConfig
# str(SudState.X) values (as sent in the 'State' message) that count as
# "running" for enabling/disabling the Start/Pause/Stop toolbar actions.
SUD_RUNNING_STATES = {"SudState.RAMPING", "SudState.HOLDING", "SudState.WAIT_USER"}
SUD_WAIT_USER_STATE = "SudState.WAIT_USER"
SUD_PAUSED_STATE = "SudState.PAUSED"
def _style_axis(ax):
ax.set_facecolor('white')
ax.spines['top'].set_visible(False)
ax.spines['right'].set_visible(False)
ax.xaxis.set_minor_locator(AutoMinorLocator())
ax.yaxis.set_minor_locator(AutoMinorLocator())
ax.tick_params(which='major', direction='out', labelsize='small')
ax.tick_params(which='minor', direction='out', length=2)
ax.grid(which='major', linestyle='-', linewidth=0.5, alpha=0.3)
ax.grid(which='minor', linestyle=':', linewidth=0.5, alpha=0.15)
class RealtimePlot(FigureCanvasQTAgg):
"""Live theta/heatrate/heater-power strip charts, mirroring figure 1 of
scripts/demos/sud/demo_sud.py but fed from the websocket connection
instead of an offline simulation run."""
def __init__(self):
figure = Figure(facecolor='white')
FigureCanvasQTAgg.__init__(self, figure)
self.ax_temp, self.ax_rate, self.ax_power = figure.subplots(3, 1, sharex=True)
self.line_temp_ist, = self.ax_temp.plot([], [], '-b', linewidth=1, label="theta_ist")
self.line_temp_soll, = self.ax_temp.plot([], [], '-r', linewidth=1, label="theta_soll")
self.ax_temp.set_ylabel("Temp [°C]")
self.ax_temp.legend(loc='upper left', fontsize='small')
self.line_rate_ist, = self.ax_rate.plot([], [], '-b', linewidth=1, label="heatrate_ist")
self.line_rate_soll, = self.ax_rate.plot([], [], '-r', linewidth=1, label="heatrate_soll")
self.ax_rate.set_ylabel("Rate [K/min]")
self.ax_rate.legend(loc='upper left', fontsize='small')
self.line_power_set, = self.ax_power.plot([], [], '-r', linewidth=1, label="power_set")
self.line_power_eff, = self.ax_power.plot([], [], '-b', linewidth=1, label="power_eff")
self.ax_power.set_ylabel("Power [W]")
self.ax_power.set_xlabel("t [s]")
self.ax_power.legend(loc='upper left', fontsize='small')
for ax in (self.ax_temp, self.ax_rate, self.ax_power):
_style_axis(ax)
# Only the bottom subplot needs x tick labels - sharex keeps the
# others in sync without repeating them.
self.ax_temp.label_outer()
self.ax_rate.label_outer()
figure.tight_layout()
self.reset()
def reset(self):
self.t0 = time.monotonic()
self.t = []
self.temp_ist = []
self.temp_soll = []
self.rate_ist = []
self.rate_soll = []
self.power_set = []
self.power_eff = []
def sample(self, temp_ist, temp_soll, rate_ist, rate_soll, power_set, power_eff):
self.t.append(time.monotonic() - self.t0)
self.temp_ist.append(temp_ist)
self.temp_soll.append(temp_soll)
self.rate_ist.append(rate_ist)
self.rate_soll.append(rate_soll)
self.power_set.append(power_set)
self.power_eff.append(power_eff)
self.line_temp_ist.set_data(self.t, self.temp_ist)
self.line_temp_soll.set_data(self.t, self.temp_soll)
self.line_rate_ist.set_data(self.t, self.rate_ist)
self.line_rate_soll.set_data(self.t, self.rate_soll)
self.line_power_set.set_data(self.t, self.power_set)
self.line_power_eff.set_data(self.t, self.power_eff)
for ax in (self.ax_temp, self.ax_rate, self.ax_power):
ax.relim()
ax.autoscale_view()
self.draw_idle()
class SudForecastPlot(FigureCanvasQTAgg):
"""Compares a Sud schedule's actual control behavior (line, solid)
against a simulation-based forecast (line_projected, dashed) - the
same plant/controller model the real run uses
(components/sud_forecast.py's SudForecastEstimator - see
show_computing()/show_forecast()). The forecast covers the whole
schedule from the very first Load, including through any step
requiring user confirmation - a human's response time genuinely
can't be forecast, so it's modeled as a zero-delay auto-confirm
there instead of stopping. That assumption gets corrected once the
real confirmation actually happens (anchored at the real elapsed
time and temperature) - see tasks/sud.py's SudTask.
_continue_forecast_after_confirm() - at which point show_forecast()
is called again with the corrected curve, replacing the optimistic
guess outright rather than the GUI patching it up itself."""
def __init__(self):
figure = Figure(facecolor='white')
FigureCanvasQTAgg.__init__(self, figure)
self.ax = figure.subplots(1, 1)
self.line, = self.ax.plot([], [], '-b', linewidth=1.5, zorder=2)
self.line_projected, = self.ax.plot([], [], '--b', linewidth=1.5, alpha=0.5, zorder=2)
self.progress_line = self.ax.axvline(0, color='g', linewidth=1.5, visible=False, zorder=2)
# Current temperature - drawn behind (lower zorder than) the
# forecast/progress lines so it never covers them.
self.current_temp_line = self.ax.axhline(0, color='r', linewidth=1.5, visible=False, zorder=1)
self.ax.set_xlabel("t [min]")
self.ax.set_ylabel("Temp [°C]")
_style_axis(self.ax)
figure.tight_layout()
def show_computing(self, name):
"""Shown right after a schedule loads, while the first
simulation-based forecast segment is still being computed
server-side (see Window.on_sud_forecast_received()) - typically
resolved within a second. Deliberately shows nothing rather than
an approximate placeholder; leaves the axes' current view alone
(there's nothing meaningful to fit yet), so whatever was on
screen before just stays frozen underneath the title change
until show_forecast() replaces it."""
self.line.set_data([], [])
self.line_projected.set_data([], [])
self.ax.set_title("{} - computing forecast...".format(name), fontsize='small')
self.figure.tight_layout()
self.draw_idle()
def show_forecast(self, t_min, theta, name, finished):
"""The forecast curve (dashed) - computed by the server simulating
the schedule with its real plant/controller
(components/sud_forecast.py) - see Window.on_sud_forecast_
received(). Called again, with a corrected t_min/theta, each time
a real user confirmation replaces a zero-delay guess with one
anchored at the real elapsed time and temperature; finished is
False only in the pathological case of a step whose target can
never be reached (components/sud_forecast.py's MAX_TICKS). Locks
the axes to fit the forecast alone, regardless of whatever the
actual trace (line) is currently doing."""
self.line_projected.set_data(t_min, theta)
self._set_fixed_limits(t_min, theta)
total = t_min[-1] if t_min else 0.0
suffix = "" if finished else " so far"
self.ax.set_title("{} - {:.0f} min{} total".format(name, total, suffix), fontsize='small')
self.figure.tight_layout()
self.draw_idle()
def _set_fixed_limits(self, t_list, theta_list):
"""Explicitly sets (and, unlike relim()+autoscale_view(), locks)
the axes' view to fit exactly the given data, with matplotlib's
usual ~5% margin. Locking matters here: relim()+autoscale_view()
leaves autoscaling switched on, so a later, unrelated redraw -
e.g. set_current_temp()'s continuous updates, which keep that
indicator live regardless of whether a forecast is even showing -
can silently re-autoscale and stretch the view back out to fit it
instead, squashing the actual forecast curve down to nothing."""
if not t_list or not theta_list:
return
t_lo, t_hi = min(t_list), max(t_list)
th_lo, th_hi = min(theta_list), max(theta_list)
t_pad = (t_hi - t_lo) * 0.05 or 1.0
th_pad = (th_hi - th_lo) * 0.05 or 1.0
self.ax.set_xlim(t_lo - t_pad, t_hi + t_pad)
self.ax.set_ylim(th_lo - th_pad, th_hi + th_pad)
def show_dynamic(self, history):
"""Updates the actual measured trace (solid) only - the forecast
(dashed) is left exactly as show_forecast() last drew it (that's
the whole point: an honest, unmoving baseline - see this class's
docstring), and the axes stay locked to whatever it set, so
divergence between the two is visible rather than auto-hidden by
the view rescaling to chase whichever line is currently
drawing."""
hist_t = [t for t, _ in history]
hist_theta = [theta for _, theta in history]
self.line.set_data(hist_t, hist_theta)
self.draw_idle()
def show_no_schedule(self):
self.line.set_data([], [])
self.line_projected.set_data([], [])
self.clear_progress()
self.ax.relim()
self.ax.autoscale_view()
self.ax.set_title("No sud loaded", fontsize='small')
self.figure.tight_layout()
self.draw_idle()
def set_progress(self, t_min):
self.progress_line.set_xdata([t_min, t_min])
self.progress_line.set_visible(True)
self.draw_idle()
def clear_progress(self):
self.progress_line.set_visible(False)
self.draw_idle()
def set_current_temp(self, theta):
self.current_temp_line.set_ydata([theta, theta])
self.current_temp_line.set_visible(True)
self.draw_idle()
def clear_current_temp(self):
self.current_temp_line.set_visible(False)
self.draw_idle()
class Window(QtWidgets.QMainWindow, Ui_MainWindow):
# on_*_changed()/on_ws_connect_changed() are invoked straight from the
# websocket client's background thread (WsClient.bg_thread), but Qt
# widgets may only be touched from the GUI thread. A signal/slot crosses
# that boundary safely (Qt auto-queues the slot call onto the receiver's
# thread when sender and receiver differ) - recv_signal carries the
# handler itself plus its one argument, so every channel can share it
# instead of needing one signal per handler.
recv_signal = QtCore.pyqtSignal(object, object)
def __init__(self):
QtWidgets.QMainWindow.__init__(self)
self.setWindowIcon(QtGui.QIcon('res/beer.png'))
self.recv_signal.connect(self._dispatch_recv)
self.user_config = UserConfig()
loop = asyncio.new_event_loop()
asyncio.set_event_loop(loop)
self.msg_dispatch = MessageDispatcherSync(auto_subscribe=True)
self.msg_dispatch.on_connect_changed = lambda connected: self.recv_signal.emit(self.on_ws_connect_changed, connected)
self.ws_client = WsClient(listener=self.msg_dispatch, loop=loop)
self.connected = False
self.sud_loaded = False
# Whether the loaded schedule has zero steps (e.g. just after "New
# Sud") - distinct from sud_loaded, which just means a Sud is
# configured server-side at all. Defaults True so Start/Pause/Stop
# stay disabled until a non-empty schedule is actually confirmed.
self.sud_empty = True
self.sud_state = None
self.sud_user_message = None
# Mirrors the server's TempController.enabled - gates the
# temp/heatrate setpoint controls (see on_tempctrl_changed()).
self.tc_enabled = False
# Global, not Sud-specific - from the 'System' channel's one-time
# startup message. warp_factor defaults to 1.0 (no scaling) until
# that arrives, or for a server that doesn't send it at all.
self.ambient_temp = None
self.warp_factor = 1.0
# Elapsed simulated seconds of the current run, as reported by the
# server (Sud's own tick-counted 'elapsed' - see components/sud.py) -
# None while not running. Used to position the forecast plot's
# progress line; ground truth, not reconstructed from wall-clock
# time, since the server's actual achieved speedup runs measurably
# below its nominal configured warp factor under real scheduling
# load, which used to make the live trace visibly drift from the
# forecast.
self.sud_elapsed_seconds = None
self.sud_name = ''
self.sud_schedule = []
self.sud_step_index = None
self.sud_step_descr = None
self.sud_step_type = None
self.sud_hold_remaining = 0.0
# [(t_min, theta), ...] actually measured since the current run
# started - the "actual" half of the forecast-vs-actual
# comparison (SudForecastPlot.show_dynamic()).
self.forecast_history = []
self.msg_pot = self.msg_dispatch.msgio_get('Pot')
self.msg_sensor = self.msg_dispatch.msgio_get('Sensor')
self.msg_heater = self.msg_dispatch.msgio_get('Heater')
self.msg_stirrer = self.msg_dispatch.msgio_get('Stirrer')
self.msg_tempctrl = self.msg_dispatch.msgio_get('TempCtrl')
self.msg_sud = self.msg_dispatch.msgio_get('Sud')
self.msg_system = self.msg_dispatch.msgio_get('System')
# set_recv_handler's callback runs on WsClient's background thread -
# route each through recv_signal instead of wiring the real handler
# directly, so its body always runs on the GUI thread.
self.msg_pot.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_pot_changed, msg))
self.msg_sensor.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_sensor_changed, msg))
self.msg_heater.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_heater_changed, msg))
self.msg_stirrer.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_stirrer_changed, msg))
self.msg_tempctrl.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_tempctrl_changed, msg))
self.msg_sud.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_sud_changed, msg))
self.msg_system.set_recv_handler(lambda msg: self.recv_signal.emit(self.on_system_changed, msg))
self.setupUi(self)
# Matches tc_enabled's default (False) until the server says otherwise.
self.Slider_temp_soll.setEnabled(False)
self.doubleSpinBox_heatrate_soll.setEnabled(False)
# Permanent (right-aligned, not cleared by showMessage()/clearMessage())
# label for static environment info - distinct from the status bar's
# transient step/schedule messages.
self.status_label_env = QtWidgets.QLabel()
self.statusBar().addPermanentWidget(self.status_label_env)
self.update_status_env_label()
# Blinking indicator for the temperature controller's own COOL
# state (target below the current temperature - the heater is
# forced off server-side and we just wait for ambient loss to
# catch up).
self.tc_cooling = False
self.status_label_cooling = QtWidgets.QLabel("Cool down")
self.status_label_cooling.setStyleSheet("color: blue; font-weight: bold;")
self.status_label_cooling.setVisible(False)
self.statusBar().addPermanentWidget(self.status_label_cooling)
self.cooling_blink_timer = QtCore.QTimer(self)
self.cooling_blink_timer.timeout.connect(self.on_cooling_blink)
self.update_sud_actions()
self.btn_connect.clicked.connect(self.on_btn_connect_clicked)
self.actionStart.triggered.connect(self.on_action_sud_start)
self.actionPause.triggered.connect(self.on_action_sud_pause)
self.actionStop.triggered.connect(self.on_action_sud_stop)
self.actionSudNew.triggered.connect(self.on_action_sud_new)
self.actionSudSave.triggered.connect(self.on_action_sud_save)
self.actionSudLoad.triggered.connect(self.on_action_sud_load)
self.Slider_pwr_soll.valueChanged.connect(self.on_slider_pwr_soll_changed)
self.Slider_temp_soll.valueChanged.connect(self.on_slider_temp_soll_changed)
self.Slider_speed_soll.valueChanged.connect(self.on_slider_stirrer_speed_soll_changed)
self.doubleSpinBox_heatrate_soll.valueChanged.connect(self.on_heatrate_soll_changed)
self.checkbox_heater_activate.stateChanged.connect(self.on_checkbox_changed)
self.checkbox_stirrer_activate.stateChanged.connect(self.on_checkbox_stirrer_activate_changed)
self.checkbox_tc_enable.stateChanged.connect(self.on_checkbox_tc_enable_changed)
self.lineEdit_ambient.returnPressed.connect(self.on_ambient_entry_changed)
self.btn_pot_reset.clicked.connect(self.on_action_pot_reset)
# Only meaningful (and only shown) once the server confirms its Pot
# is simulated - see on_system_changed()'s "PlantSim" handling.
self.btn_pot_reset.setVisible(False)
self.send_data = Queue()
self.slider_pwr_initial_update = True
self.slider_temp_soll_initial_update = True
self.slider_speed_initial_update = True
self.checkbox_heater_activate_initial_update = True
self.checkbox_stirrer_activate_initial_update = True
self.heatrate_soll_initial_update = True
self.sud_save_path = None
# Latest values sampled by the plot timer - written from the
# websocket recv thread, read from the GUI thread; plain floats so
# no locking, consistent with how the rest of the GUI is wired.
self.plot_temp_ist = 0.0
self.plot_temp_soll = 0.0
self.plot_rate_ist = 0.0
self.plot_rate_soll = 0.0
self.plot_power_set = 0.0
self.plot_power_eff = 0.0
self.plot = RealtimePlot()
plot_layout = QtWidgets.QVBoxLayout(self.widget_plot)
plot_layout.setContentsMargins(0, 0, 0, 0)
plot_layout.addWidget(self.plot)
self.plot_timer = QtCore.QTimer(self)
self.plot_timer.timeout.connect(self.on_plot_timer)
self.plot_timer.start(1000)
self.forecast_plot = SudForecastPlot()
forecast_layout = QtWidgets.QVBoxLayout(self.widget_plot_forecast)
forecast_layout.setContentsMargins(0, 0, 0, 0)
forecast_layout.addWidget(self.forecast_plot)
def _dispatch_recv(self, handler, msg):
"""recv_signal's slot - runs on the GUI thread regardless of which
thread emitted the signal, so handler(msg) can touch Qt widgets
safely."""
handler(msg)
def connect(self):
self.slider_pwr_initial_update = True
self.slider_temp_soll_initial_update = True
self.slider_speed_initial_update = True
self.checkbox_heater_activate_initial_update = True
self.checkbox_stirrer_activate_initial_update = True
self.heatrate_soll_initial_update = True
self.plot.reset()
self.ws_client.connect(uri=self.plainTextUri.toPlainText())
# Fetch the schedule for the Automatic tab's forecast preview - not
# a user-initiated save, so sud_save_path stays None and
# on_sud_changed() routes the reply to update_sud_forecast() instead
# of a save dialog.
self.msg_sud.send({'Save': True})
# Re-apply the last ambient temperature we set, in case the server
# restarted since (and so fell back to its own config.json default).
remembered_ambient = self.user_config.get('ambient_temperature')
if remembered_ambient is not None:
self.msg_system.send({'AmbientTemp': remembered_ambient})
def _elapsed_min(self):
"""Simulated-schedule minutes elapsed since the run started, or
None if no run is in progress - straight from the server's own
tick-counted Sud.elapsed (see on_sud_changed()'s 'Elapsed'
handling), already frozen while PAUSED there."""
if self.sud_elapsed_seconds is None:
return None
return self.sud_elapsed_seconds / 60.0
def on_plot_timer(self):
self.plot.sample(
self.plot_temp_ist, self.plot_temp_soll,
self.plot_rate_ist, self.plot_rate_soll,
self.plot_power_set, self.plot_power_eff)
elapsed_min = self._elapsed_min()
if elapsed_min is not None:
self.forecast_plot.set_progress(elapsed_min)
# Frozen while PAUSED (elapsed_min isn't advancing either, and
# the paused phase - ramp or hold - isn't visible to the client
# to resume the trace from correctly) - just leave the last
# draw up.
if self.sud_state != SUD_PAUSED_STATE and self.plot_temp_ist:
self.forecast_history.append((elapsed_min, self.plot_temp_ist))
self.forecast_plot.show_dynamic(self.forecast_history)
else:
self.forecast_plot.clear_progress()
if self.plot_temp_ist:
self.forecast_plot.set_current_temp(self.plot_temp_ist)
else:
self.forecast_plot.clear_current_temp()
def disconnect(self):
# ws_client.disconnect() blocks until the websocket's close handshake
# completes (or times out, ~10s if the server doesn't ack promptly),
# joining the connection's background thread - run it off a throwaway
# thread so that wait doesn't freeze the GUI. on_ws_connect_changed()
# still flips the button once the disconnect actually finishes.
threading.Thread(target=self.ws_client.disconnect, daemon=True).start()
def on_btn_connect_clicked(self):
if self.connected:
self.disconnect()
else:
self.connect()
def on_ws_connect_changed(self, connected):
self.connected = connected
self.btn_connect.setText("Disconnect" if connected else "Connect")
if not connected:
# Nothing reported over a dead connection can be trusted anymore.
self.sud_loaded = False
self.sud_empty = True
self.sud_state = None
self.sud_user_message = None
self.tc_enabled = False
self.checkbox_tc_enable.blockSignals(True)
self.checkbox_tc_enable.setChecked(False)
self.checkbox_tc_enable.blockSignals(False)
self.Slider_temp_soll.setEnabled(False)
self.doubleSpinBox_heatrate_soll.setEnabled(False)
self.ambient_temp = None
self.lineEdit_ambient.clear()
self.btn_pot_reset.setVisible(False)
self.warp_factor = 1.0
self.sud_elapsed_seconds = None
self.sud_name = ''
self.sud_schedule = []
self.sud_step_index = None
self.sud_step_descr = None
self.sud_step_type = None
self.sud_hold_remaining = 0.0
self.forecast_history = []
self.set_tc_cooling(False)
self.update_sud_actions()
self.update_status_env_label()
self.setWindowTitle("BrewPi")
def update_sud_actions(self):
can_run = self.sud_loaded and not self.sud_empty
running = can_run and self.sud_state in SUD_RUNNING_STATES
paused = can_run and self.sud_state == SUD_PAUSED_STATE
# Start also doubles as Resume while paused; Stop can still abort a
# paused run, but there's nothing left to Pause once already paused.
self.actionStart.setEnabled(can_run and not running)
self.actionPause.setEnabled(running)
self.actionStop.setEnabled(running or paused)
def on_system_changed(self, msg):
print("on_system_changed {}".format(msg))
for key in msg:
if "AmbientTemp" in key:
self.ambient_temp = msg['AmbientTemp']
# Only sync the entry's text while the user isn't actively
# editing it, so a server echo doesn't clobber in-progress
# typing.
if not self.lineEdit_ambient.hasFocus():
self.lineEdit_ambient.setText("{:.1f}".format(self.ambient_temp))
elif "WarpFactor" in key:
self.warp_factor = msg['WarpFactor']
elif "PlantSim" in key:
self.btn_pot_reset.setVisible(msg['PlantSim'])
self.update_status_env_label()
def on_action_pot_reset(self):
self.msg_pot.send({'Reset': True})
def on_ambient_entry_changed(self):
try:
value = float(self.lineEdit_ambient.text())
except ValueError:
return
self.user_config.set('ambient_temperature', value)
self.msg_system.send({'AmbientTemp': value})
def update_status_env_label(self):
ambient = "{:.1f}°C".format(self.ambient_temp) if self.ambient_temp is not None else "-"
self.status_label_env.setText("Ambient: {} Warp: {:.1f}x".format(ambient, self.warp_factor))
@staticmethod
def _make_window_title(name, description):
title = "BrewPi"
if name:
title += " - {}".format(name)
if description:
title += " - {}".format(description)
return title
def set_tc_cooling(self, cooling):
if cooling == self.tc_cooling:
return
self.tc_cooling = cooling
if cooling:
self.status_label_cooling.setVisible(True)
self.cooling_blink_timer.start(500)
else:
self.cooling_blink_timer.stop()
self.status_label_cooling.setVisible(False)
def on_cooling_blink(self):
self.status_label_cooling.setVisible(not self.status_label_cooling.isVisible())
def on_slider_temp_soll_changed(self, value):
print("on_slider_temp_soll_changed {}".format(value))
self.msg_tempctrl.send({'Soll': {'Temp': value}})
def on_heatrate_soll_changed(self, value):
value = round(value, 1)
print("on_textbox_heatrate_soll_changed {}".format(value))
self.msg_tempctrl.send({'Soll': {'Rate': value}})
def on_slider_pwr_soll_changed(self, value):
print("on_slider_pwr_soll_changed {}".format(value))
self.msg_heater.send({'Power': value})
def on_checkbox_changed(self, value):
print("on_checkbox_changed {}".format(value))
self.msg_heater.send({'Activate': int(value == 2)})
def on_slider_stirrer_speed_soll_changed(self, value):
print("on_slider_stirrer_speed_soll_changed {}".format(value))
self.msg_stirrer.send({'Speed': value})
def on_checkbox_stirrer_activate_changed(self, value):
print("on_checkbox_stirrer_activate_changed {}".format(value))
self.msg_stirrer.send({'Activate': int(value == 2)})
def on_checkbox_tc_enable_changed(self, value):
print("on_checkbox_tc_enable_changed {}".format(value))
self.msg_tempctrl.send({'Enable': value == 2})
def on_action_sud_start(self):
self.msg_sud.send({'Start': True})
def on_action_sud_pause(self):
self.msg_sud.send({'Pause': True})
def on_action_sud_stop(self):
self.msg_sud.send({'Stop': True})
def show_user_message(self, message):
# on_sud_changed() already runs on the GUI thread (via recv_signal),
# so this can show the dialog directly. The Sud is already blocked
# in WAIT_USER server-side; closing this dialog is what unblocks it.
QtWidgets.QMessageBox.information(self, "Sud", message)
self.msg_sud.send({'Confirm': True})
def on_action_sud_new(self):
# Sends an empty schedule via the same Load path Load Sud uses, with
# a built-in empty document instead of a file dialog - the server
# itself refuses this (like any Load) while a run is in progress,
# surfacing an error (see on_sud_changed()'s 'Error' handling)
# rather than the GUI trying to guess that here.
self.msg_sud.send({'Load': {'Name': '', 'Description': '', 'pot_mass': 0, 'pot_material': None, 'steps': []}})
def on_action_sud_save(self):
# Pick the destination up front, on the GUI thread - the actual
# write happens in on_sud_changed(), which runs off a worker thread
# and must not touch Qt (e.g. open a file dialog) itself.
start_dir = self.user_config.get('sud_dir', '')
path, _ = QtWidgets.QFileDialog.getSaveFileName(self, "Save Sud", start_dir, filter="JSON files (*.json)")
if not path:
return
self.user_config.set('sud_dir', str(Path(path).parent))
self.sud_save_path = path
self.msg_sud.send({'Save': True})
def on_action_sud_load(self):
start_dir = self.user_config.get('sud_dir', '')
path, _ = QtWidgets.QFileDialog.getOpenFileName(self, "Load Sud", start_dir, filter="JSON files (*.json)")
if not path:
return
self.user_config.set('sud_dir', str(Path(path).parent))
with open(path) as f:
data = json.load(f)
self.msg_sud.send({'Load': data})
def on_pot_changed(self, msg):
print("on_pot_changed {}".format(msg))
for key in msg:
if "Power" in key:
self.lcdNumber_power_pot.display(msg['Power'])
def on_sensor_changed(self, msg):
print("on_sensor_changed {}".format(msg))
def on_tempctrl_changed(self, msg):
print("on_tempctrl_changed {}".format(msg))
for key in msg:
if 'State' in key:
self.label_state.setText(msg['State'])
self.set_tc_cooling(msg['State'] == 'States.COOL')
elif "Soll" in key:
submsg = msg['Soll']
if 'Temp' in submsg:
self.plot_temp_soll = submsg['Temp']
self.lcdNumber_temp_soll.display(str(submsg['Temp']))
if self.slider_temp_soll_initial_update:
# blockSignals: setValue() here is just syncing the
# slider's display to the server's current value, not
# a user edit - without this it would also fire
# valueChanged and echo the value straight back as a
# command.
self.Slider_temp_soll.blockSignals(True)
self.Slider_temp_soll.setValue(int(round(submsg['Temp'])))
self.Slider_temp_soll.blockSignals(False)
self.slider_temp_soll_initial_update = False
if 'Rate' in submsg:
subsubmsg = submsg['Rate']
for subkey in subsubmsg:
if "Current" in subkey:
self.plot_rate_soll = subsubmsg['Current']
self.lcdNumber_heatrate_soll.display(str(subsubmsg['Current']))
if "Set" in subkey:
if self.heatrate_soll_initial_update:
self.heatrate_soll_initial_update = False
self.doubleSpinBox_heatrate_soll.blockSignals(True)
self.doubleSpinBox_heatrate_soll.setValue(subsubmsg['Set'])
self.doubleSpinBox_heatrate_soll.blockSignals(False)
elif "Enabled" in key:
self.tc_enabled = msg['Enabled']
self.checkbox_tc_enable.blockSignals(True)
self.checkbox_tc_enable.setChecked(self.tc_enabled)
self.checkbox_tc_enable.blockSignals(False)
self.Slider_temp_soll.setEnabled(self.tc_enabled)
self.doubleSpinBox_heatrate_soll.setEnabled(self.tc_enabled)
if "Ist" in key:
submsg = msg['Ist']
if 'Temp' in submsg:
self.plot_temp_ist = submsg['Temp']
self.lcdNumber_temp_ist.display(str(submsg['Temp']))
if 'Rate' in submsg:
self.plot_rate_ist = submsg['Rate']
self.lcdNumber_heatrate_ist.display(str(submsg['Rate']))
def on_heater_changed(self, msg):
print("on_heater_changed {}".format(msg))
for key in msg:
if "Activate" in key:
if self.checkbox_heater_activate_initial_update:
self.checkbox_heater_activate.blockSignals(True)
self.checkbox_heater_activate.setCheckState(2 if msg['Activate'] == 1 else 0)
self.checkbox_heater_activate.blockSignals(False)
self.checkbox_heater_activate_initial_update = False
elif "PowerSet" in key:
self.plot_power_set = msg['PowerSet']
elif "Power" in key:
self.plot_power_eff = msg['Power']
self.lcdNumber_power_heater.display(msg['Power'])
if self.slider_pwr_initial_update:
# blockSignals: this is a display-only sync of the
# slider to the heater's current power, not a manual
# override - letting valueChanged fire here would echo
# it back as {'Power': ...}, which tasks/heater.py's
# power_soll = max(power_soll, power_actor) latches as a
# floor that never goes back down on its own. That's the
# "stale power > 0 after reconnect" bug.
self.Slider_pwr_soll.blockSignals(True)
self.Slider_pwr_soll.setValue(int(round(msg['Power'])))
self.Slider_pwr_soll.blockSignals(False)
self.slider_pwr_initial_update = False
elif "Capabilities" in key:
submsg = msg['Capabilities']
if "Power" in submsg:
submsg = submsg['Power']
self.Slider_pwr_soll.setMinimum(int(submsg['Min']))
self.Slider_pwr_soll.setMaximum(int(submsg['Max']))
def on_stirrer_changed(self, msg):
print("on_stirrer_changed {}".format(msg))
for key in msg:
if "Activate" in key:
if self.checkbox_stirrer_activate_initial_update:
self.checkbox_stirrer_activate.blockSignals(True)
self.checkbox_stirrer_activate.setCheckState(2 if msg['Activate'] == 1 else 0)
self.checkbox_stirrer_activate.blockSignals(False)
self.checkbox_stirrer_activate_initial_update = False
elif "Speed" in key:
if self.slider_speed_initial_update:
self.Slider_speed_soll.blockSignals(True)
self.Slider_speed_soll.setValue(int(round(msg['Speed'])))
self.Slider_speed_soll.blockSignals(False)
self.slider_speed_initial_update = False
elif "Capabilities" in key:
submsg = msg['Capabilities']
if "Power" in submsg:
submsg = submsg['Power']
self.Slider_speed_soll.setMinimum(int(submsg['Min']))
self.Slider_speed_soll.setMaximum(int(submsg['Max']))
def on_sud_changed(self, msg):
print("on_sud_changed {}".format(msg))
# Receiving anything at all on this channel means a Sud is loaded
# server-side - the schedule it's running may still be coming.
self.sud_loaded = True
for key in msg:
if "Json" in key:
if self.sud_save_path:
with open(self.sud_save_path, 'w') as f:
json.dump(msg['Json'], f, indent='\t')
self.sud_save_path = None
else:
self.update_sud_forecast(msg['Json'])
elif "Name" in key:
self.statusBar().showMessage("Sud schedule updated: {}".format(msg['Name']), 5000)
self.setWindowTitle(self._make_window_title(msg.get('Name', ''), msg.get('Description', '')))
elif "State" in key:
prev_state = self.sud_state
self.sud_state = msg['State']
if self.sud_state in SUD_RUNNING_STATES and self.sud_elapsed_seconds is None:
self.sud_elapsed_seconds = 0.0
# Start the dynamic forecast's measured-history trace
# fresh for this run.
self.forecast_history = []
elif self.sud_state not in SUD_RUNNING_STATES and self.sud_state != SUD_PAUSED_STATE:
was_running = self.sud_elapsed_seconds is not None
self.sud_elapsed_seconds = None
# on_plot_timer() only redraws the dynamic forecast while
# sud_elapsed_seconds is set.
if was_running:
# A run just finished or was stopped - leave the
# dynamic view's last frame (the actual measured
# history) up rather than recomputing a "static"
# plan from here, which would walk the *whole*
# original schedule again starting from wherever
# the brew happens to have ended up (e.g. close to
# the last step's target), producing a nonsensical
# total.
pass
elif self.sud_schedule:
# Fresh load (or reconnecting to an already-idle
# server) - no run has happened yet, so the upfront
# plan is exactly right; on_sud_forecast_received()
# fills it in once the simulated forecast arrives
# (a fresh Save request goes out on every connect,
# so this resolves shortly either way).
self.forecast_plot.show_computing(self.sud_name)
if self.sud_state == SUD_WAIT_USER_STATE and prev_state != SUD_WAIT_USER_STATE and self.sud_user_message:
self.show_user_message(self.sud_user_message)
elif "UserMessage" in key:
self.sud_user_message = msg['UserMessage']
elif "Step" in key:
step = msg['Step']
self.sud_step_index = step.get('Index')
self.sud_step_descr = step.get('Descr')
self.sud_step_type = step.get('Type')
self.update_status_step_label()
elif "HoldRemaining" in key:
self.sud_hold_remaining = msg['HoldRemaining']
self.update_status_step_label()
elif "Elapsed" in key:
# Sud.elapsed resets to 0 on every fresh Load too (not just
# on an actual run start - see components/sud.py's
# _reset_run_state()) and broadcasts unconditionally - only
# apply it once the State handling above has already put
# this client into dynamic-view mode (sud_elapsed_seconds
# not None), so a mere Load while idle can't masquerade as
# a run starting.
if self.sud_elapsed_seconds is not None:
self.sud_elapsed_seconds = msg['Elapsed']
elif "Forecast" in key:
self.on_sud_forecast_received(msg['Forecast'])
elif "Error" in key:
# The server clears this back to None right after sending
# it (see tasks/sud.py's recv()) so it doesn't linger in
# global_state and get replayed as stale to a client
# connecting later - the clearing message itself must be
# a no-op here, not an empty dialog.
if msg['Error']:
QtWidgets.QMessageBox.warning(self, "Sud", msg['Error'])
self.update_sud_actions()
def on_sud_forecast_received(self, forecast):
# Computed asynchronously server-side and can arrive slightly
# after the schedule itself - applies regardless of whether a
# run is in progress, since this can also be a later piecewise
# segment appended after a real user confirmation (see
# tasks/sud.py's SudTask._continue_forecast_after_confirm()), not
# just the initial one computed at Load.
if self.sud_empty:
return
t_min = [seconds / 60.0 for seconds in forecast['T']]
self.forecast_plot.show_forecast(t_min, forecast['Theta'], self.sud_name, forecast['Finished'])
def update_status_step_label(self):
if not self.sud_step_descr:
self.statusBar().clearMessage()
return
text = "Step {}: {}".format(self.sud_step_index, self.sud_step_descr)
if self.sud_step_type == 'hold':
remaining = max(self.sud_hold_remaining, 0.0)
text += " ({:.0f}:{:02.0f} remaining)".format(remaining // 60, remaining % 60)
self.statusBar().showMessage(text)
def update_sud_forecast(self, doc):
try:
name, _, schedule, _, _ = Sud._parse_data(doc)
except (KeyError, TypeError):
return
self.sud_name = name
self.sud_schedule = schedule
self.sud_empty = len(schedule) == 0
self.update_sud_actions()
if self.sud_empty:
self.forecast_plot.show_no_schedule()
return
# on_sud_forecast_received() fills this in once the simulated
# forecast arrives. If a run is already in progress (e.g.
# reconnecting mid-brew), the next on_plot_timer() tick switches
# this over to the dynamic view instead.
self.forecast_plot.show_computing(name)
def closeEvent(self, event):
print("Exitting gracefully!")
self.ws_client.disconnect()
if __name__ == '__main__':
app = QtWidgets.QApplication(sys.argv)
win = Window()
win.show()
sys.exit(app.exec_())
print ("End of program.")