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import os, sys, platform |
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import pkg_resources as pr |
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import time |
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import math |
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import numpy as np |
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from datetime import datetime, timedelta |
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import rsudp.raspberryshake as rs |
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from rsudp import printM, printW, printE, get_scap_dir, helpers |
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from rsudp.test import TEST |
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import linecache |
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sender = 'plot.py' |
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QT = False |
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QtGui = False |
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PhotoImage = False |
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try: # test for matplotlib and exit if import fails |
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from matplotlib import use |
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try: # no way to know what machines can handle what software, but Tk is more universal |
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use('Qt5Agg') # try for Qt because it's better and has less threatening errors |
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from PyQt5 import QtGui |
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QT = True |
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except Exception as e: |
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printW('Qt import failed. Trying Tk...') |
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printW('detail: %s' % e, spaces=True) |
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try: # fail over to the more reliable Tk |
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use('TkAgg') |
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from tkinter import PhotoImage |
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except Exception as e: |
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printE('Could not import either Qt or Tk, and the plot module requires at least one of them to run.', sender) |
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printE('Please make sure either PyQt5 or Tkinter is installed.', sender, spaces=True) |
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printE('detail: %s'% e, sender, spaces=True) |
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raise ImportError('Could not import either Qt or Tk, and the plot module requires at least one of them to run') |
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import matplotlib.pyplot as plt |
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import matplotlib.dates as mdates |
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import matplotlib.image as mpimg |
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from matplotlib import rcParams |
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from matplotlib.ticker import EngFormatter |
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rcParams['toolbar'] = 'None' |
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plt.ion() |
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MPL = True |
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# avoiding a matplotlib user warning |
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import warnings |
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warnings.filterwarnings('ignore', category=UserWarning, module='rsudp') |
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except Exception as e: |
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printE('Could not import matplotlib, plotting will not be available.', sender) |
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printE('detail: %s' % e, sender, spaces=True) |
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MPL = False |
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ICON = 'icon.ico' |
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ICON2 = 'icon.png' |
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class Plot: |
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''' |
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.. role:: json(code) |
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:language: json |
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GUI plotting algorithm, compatible with both Qt5 and TkAgg backends (see :py:func:`matplotlib.use`). |
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This module can plot seismogram data from a list of 1-4 Shake channels, and calculate and display a spectrogram beneath each. |
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By default the plotted :json:`"duration"` in seconds is :json:`30`. |
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The plot will refresh at most once per second, but slower processors may take longer. |
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The longer the duration, the more processor power it will take to refresh the plot, |
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especially when the spectrogram is enabled. |
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To disable the spectrogram, set :json:`"spectrogram"` to :json:`false` in the settings file. |
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To put the plot into fullscreen window mode, set :json:`"fullscreen"` to :json:`true`. |
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To put the plot into kiosk mode, set :json:`"kiosk"` to :json:`true`. |
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:param cha: channels to plot. Defaults to "all" but can be passed a list of channel names as strings. |
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:type cha: str or list |
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:param int seconds: number of seconds to plot. Defaults to 30. |
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:param bool spectrogram: whether to plot the spectrogram. Defaults to True. |
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:param bool fullscreen: whether to plot in a fullscreen window. Defaults to False. |
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:param bool kiosk: whether to plot in kiosk mode (true fullscreen). Defaults to False. |
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:param deconv: whether to deconvolve the signal. Defaults to False. |
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:type deconv: str or bool |
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:param bool screencap: whether or not to save screenshots of events. Defaults to False. |
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:param bool alert: whether to draw the number of events at startup. Defaults to True. |
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:param queue.Queue q: queue of data and messages sent by :class:`rsudp.c_consumer.Consumer` |
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:raise ImportError: if the module cannot import either of the Matplotlib Qt5 or TkAgg backends |
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''' |
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def _set_deconv(self, deconv): |
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''' |
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This function sets the deconvolution units. Allowed values are as follows: |
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.. |ms2| replace:: m/s\ :sup:`2`\ |
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- ``'VEL'`` - velocity (m/s) |
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- ``'ACC'`` - acceleration (|ms2|) |
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- ``'GRAV'`` - fraction of acceleration due to gravity (g, or 9.81 |ms2|) |
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- ``'DISP'`` - displacement (m) |
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- ``'CHAN'`` - channel-specific unit calculation, i.e. ``'VEL'`` for geophone channels and ``'ACC'`` for accelerometer channels |
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:param str deconv: ``'VEL'``, ``'ACC'``, ``'GRAV'``, ``'DISP'``, or ``'CHAN'`` |
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''' |
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self.deconv = deconv if (deconv in rs.UNITS) else False |
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if self.deconv and rs.inv: |
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deconv = deconv.upper() |
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if self.deconv in rs.UNITS: |
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self.units = rs.UNITS[self.deconv][0] |
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self.unit = rs.UNITS[self.deconv][1] |
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printM('Signal deconvolution set to %s' % (self.deconv), self.sender) |
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else: |
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self.units = rs.UNITS['CHAN'][0] |
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self.unit = rs.UNITS['CHAN'][1] |
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self.deconv = False |
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printM('Seismogram units are %s' % (self.units), self.sender) |
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def __init__(self, q, cha='all', |
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seconds=30, spectrogram=True, |
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fullscreen=False, kiosk=False, |
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deconv=False, screencap=False, |
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alert=True, testing=False): |
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""" |
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Initialize the plot process. |
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""" |
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super().__init__() |
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self.sender = 'Plot' |
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self.alive = True |
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self.testing = testing |
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self.alarm = False # don't touch this |
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self.alarm_reset = False # don't touch this |
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if MPL == False: |
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sys.stdout.flush() |
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sys.exit() |
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if QT == False: |
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printW('Running on %s machine, using Tk instead of Qt' % (platform.machine()), self.sender) |
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self.queue = q |
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self.master_queue = None # careful with this, this goes directly to the master consumer. gets set by main thread. |
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self.stream = rs.Stream() |
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self.raw = rs.Stream() |
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self.stn = rs.stn |
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self.net = rs.net |
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self.chans = [] |
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helpers.set_channels(self, cha) |
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printM('Plotting %s channels: %s' % (len(self.chans), self.chans), self.sender) |
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self.totchns = rs.numchns |
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self.seconds = seconds |
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self.pkts_in_period = rs.tr * rs.numchns * self.seconds # theoretical number of packets received in self.seconds |
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self.spectrogram = spectrogram |
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self._set_deconv(deconv) |
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self.per_lap = 0.9 |
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self.fullscreen = fullscreen |
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self.kiosk = kiosk |
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self.num_chans = len(self.chans) |
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self.delay = rs.tr if (self.spectrogram) else 1 |
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self.delay = 0.5 if (self.chans == ['SHZ']) else self.delay |
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self.screencap = screencap |
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self.save_timer = 0 |
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self.save_pct = 0.7 |
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self.save = [] |
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self.events = 0 |
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self.event_text = ' - detected events: 0' if alert else '' |
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self.last_event = [] |
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self.last_event_str = False |
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# plot stuff |
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self.bgcolor = '#202530' # background |
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self.fgcolor = '0.8' # axis and label color |
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self.linecolor = '#c28285' # seismogram color |
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printM('Starting.', self.sender) |
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def deconvolve(self): |
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''' |
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Send the streams to the central library deconvolve function. |
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''' |
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helpers.deconvolve(self) |
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def getq(self): |
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''' |
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Get data from the queue and test for whether it has certain strings. |
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ALARM and TERM both trigger specific behavior. |
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ALARM messages cause the event counter to increment, and if |
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:py:data:`screencap==True` then aplot image will be saved when the |
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event is :py:data:`self.save_pct` of the way across the plot. |
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''' |
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d = self.queue.get() |
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self.queue.task_done() |
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if 'TERM' in str(d): |
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plt.close() |
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if 'SELF' in str(d): |
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printM('Plot has been closed, plot thread will exit.', self.sender) |
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self.alive = False |
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rs.producer = False |
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elif 'ALARM' in str(d): |
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self.events += 1 # add event to count |
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self.save_timer -= 1 # don't push the save time forward if there are a large number of alarm events |
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event = [self.save_timer + int(self.save_pct*self.pkts_in_period), |
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helpers.fsec(helpers.get_msg_time(d))] # event = [save after count, datetime] |
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self.last_event_str = '%s UTC' % (event[1].strftime('%Y-%m-%d %H:%M:%S.%f')[:22]) |
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printM('Event time: %s' % (self.last_event_str), sender=self.sender) # show event time in the logs |
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if self.screencap: |
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printM('Saving png in about %i seconds' % (self.save_pct * (self.seconds)), self.sender) |
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self.save.append(event) # append |
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self.fig.suptitle('%s.%s live output - detected events: %s' # title |
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% (self.net, self.stn, self.events), |
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fontsize=14, color=self.fgcolor, x=0.52) |
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self.fig.canvas.set_window_title('(%s) %s.%s - Raspberry Shake Monitor' % (self.events, self.net, self.stn)) |
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if rs.getCHN(d) in self.chans: |
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self.raw = rs.update_stream( |
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stream=self.raw, d=d, fill_value='latest') |
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return True |
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else: |
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return False |
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def set_sps(self): |
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''' |
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Get samples per second from the main library. |
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''' |
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self.sps = rs.sps |
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# from https://docs.obspy.org/_modules/obspy/imaging/spectrogram.html#_nearest_pow_2: |
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def _nearest_pow_2(self, x): |
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""" |
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Find power of two nearest to x |
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>>> _nearest_pow_2(3) |
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2.0 |
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>>> _nearest_pow_2(15) |
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16.0 |
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:type x: float |
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:param x: Number |
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:rtype: Int |
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:return: Nearest power of 2 to x |
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Adapted from the `obspy <https://obspy.org>`_ library |
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""" |
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a = math.pow(2, math.ceil(np.log2(x))) |
242
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b = math.pow(2, math.floor(np.log2(x))) |
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if abs(a - x) < abs(b - x): |
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return a |
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else: |
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return b |
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def handle_close(self, evt): |
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''' |
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Handles a plot close event. |
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This will trigger a full shutdown of all other processes related to rsudp. |
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''' |
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self.master_queue.put(helpers.msg_term()) |
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255
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def handle_resize(self, evt=False): |
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''' |
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Handles a plot window resize event. |
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This will allow the plot to resize dynamically. |
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''' |
260
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if evt: |
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h = evt.height |
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else: |
263
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h = self.fig.get_size_inches()[1]*self.fig.dpi |
264
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plt.tight_layout(pad=0, h_pad=0.1, w_pad=0, |
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rect=[0.02, 0.01, 0.98, 0.90 + 0.045*(h/1080)]) # [left, bottom, right, top] |
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def _eventsave(self): |
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''' |
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This function takes the next event in line and pops it out of the list, |
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so that it can be saved and others preserved. |
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Then, it sets the title to something having to do with the event, |
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then calls the save figure function, and finally resets the title. |
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''' |
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self.save.reverse() |
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event = self.save.pop() |
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self.save.reverse() |
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event_time_str = event[1].strftime('%Y-%m-%d-%H%M%S') # event time for filename |
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title_time_str = event[1].strftime('%Y-%m-%d %H:%M:%S.%f')[:22] # pretty event time for plot |
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# change title (just for a moment) |
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self.fig.suptitle('%s.%s detected event - %s UTC' # title |
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% (self.net, self.stn, title_time_str), |
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fontsize=14, color=self.fgcolor, x=0.52) |
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# save figure |
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self.savefig(event_time=event[1], event_time_str=event_time_str) |
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# reset title |
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self._set_fig_title() |
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293
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def savefig(self, event_time=rs.UTCDateTime.now(), |
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event_time_str=rs.UTCDateTime.now().strftime('%Y-%m-%d-%H%M%S')): |
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''' |
296
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Saves the figure and puts an IMGPATH message on the master queue. |
297
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This message can be used to upload the image to various services. |
298
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299
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:param obspy.core.utcdatetime.UTCDateTime event_time: Event time as an obspy UTCDateTime object. Defaults to ``UTCDateTime.now()``. |
300
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:param str event_time_str: Event time as a string, in the format ``'%Y-%m-%d-%H%M%S'``. This is used to set the filename. |
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''' |
302
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figname = os.path.join(get_scap_dir(), '%s-%s.png' % (self.stn, event_time_str)) |
303
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elapsed = rs.UTCDateTime.now() - event_time |
304
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if int(elapsed) > 0: |
305
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printM('Saving png %i seconds after alarm' % (elapsed), sender=self.sender) |
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plt.savefig(figname, facecolor=self.fig.get_facecolor(), edgecolor='none') |
307
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printM('Saved %s' % (figname), sender=self.sender) |
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printM('%s thread has saved an image, sending IMGPATH message to queues' % self.sender, sender=self.sender) |
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# imgpath requires a UTCDateTime and a string figure path |
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self.master_queue.put(helpers.msg_imgpath(event_time, figname)) |
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313
|
1 |
|
def _set_fig_title(self): |
314
|
|
|
''' |
315
|
|
|
Sets the figure title back to something that makes sense for the live viewer. |
316
|
|
|
''' |
317
|
1 |
|
self.fig.suptitle('%s.%s live output - detected events: %s' # title |
318
|
|
|
% (self.net, self.stn, self.events), |
319
|
|
|
fontsize=14, color=self.fgcolor, x=0.52) |
320
|
|
|
|
321
|
|
|
|
322
|
1 |
|
def _init_plot(self): |
323
|
|
|
''' |
324
|
|
|
Initialize plot elements and calculate parameters. |
325
|
|
|
''' |
326
|
1 |
|
self.fig = plt.figure(figsize=(11,3*self.num_chans)) |
327
|
1 |
|
self.fig.canvas.mpl_connect('close_event', self.handle_close) |
328
|
1 |
|
self.fig.canvas.mpl_connect('resize_event', self.handle_resize) |
329
|
|
|
|
330
|
1 |
|
if QT: |
331
|
|
|
self.fig.canvas.window().statusBar().setVisible(False) # remove bottom bar |
332
|
1 |
|
self.fig.canvas.set_window_title('%s.%s - Raspberry Shake Monitor' % (self.net, self.stn)) |
333
|
1 |
|
self.fig.patch.set_facecolor(self.bgcolor) # background color |
334
|
1 |
|
self.fig.suptitle('%s.%s live output%s' # title |
335
|
|
|
% (self.net, self.stn, self.event_text), |
336
|
|
|
fontsize=14, color=self.fgcolor,x=0.52) |
337
|
1 |
|
self.ax, self.lines = [], [] # list for subplot axes and lines artists |
338
|
1 |
|
self.mult = 1 # spectrogram selection multiplier |
339
|
1 |
|
if self.spectrogram: |
340
|
1 |
|
self.mult = 2 # 2 if user wants a spectrogram else 1 |
341
|
1 |
|
if self.seconds > 60: |
342
|
|
|
self.per_lap = 0.9 # if axis is long, spectrogram overlap can be shorter |
343
|
|
|
else: |
344
|
1 |
|
self.per_lap = 0.975 # if axis is short, increase resolution |
345
|
|
|
# set spectrogram parameters |
346
|
1 |
|
self.nfft1 = self._nearest_pow_2(self.sps) |
347
|
1 |
|
self.nlap1 = self.nfft1 * self.per_lap |
348
|
|
|
|
349
|
|
|
|
350
|
1 |
|
def _init_axes(self, i): |
351
|
|
|
''' |
352
|
|
|
Initialize plot axes. |
353
|
|
|
''' |
354
|
1 |
|
if i == 0: |
355
|
|
|
# set up first axes (axes added later will share these x axis limits) |
356
|
1 |
|
self.ax.append(self.fig.add_subplot(self.num_chans*self.mult, |
357
|
|
|
1, 1, label=str(1))) |
358
|
1 |
|
self.ax[0].set_facecolor(self.bgcolor) |
359
|
1 |
|
self.ax[0].tick_params(colors=self.fgcolor, labelcolor=self.fgcolor) |
360
|
1 |
|
self.ax[0].xaxis.set_major_formatter(mdates.DateFormatter('%H:%M:%S')) |
361
|
1 |
|
self.ax[0].yaxis.set_major_formatter(EngFormatter(unit='%s' % self.unit.lower())) |
362
|
1 |
|
if self.spectrogram: |
363
|
1 |
|
self.ax.append(self.fig.add_subplot(self.num_chans*self.mult, |
364
|
|
|
1, 2, label=str(2)))#, sharex=ax[0])) |
365
|
1 |
|
self.ax[1].set_facecolor(self.bgcolor) |
366
|
1 |
|
self.ax[1].tick_params(colors=self.fgcolor, labelcolor=self.fgcolor) |
367
|
|
|
else: |
368
|
|
|
# add axes that share either lines or spectrogram axis limits |
369
|
1 |
|
s = i * self.mult # plot selector |
370
|
|
|
# add a subplot then set colors |
371
|
1 |
|
self.ax.append(self.fig.add_subplot(self.num_chans*self.mult, |
372
|
|
|
1, s+1, sharex=self.ax[0], label=str(s+1))) |
373
|
1 |
|
self.ax[s].set_facecolor(self.bgcolor) |
374
|
1 |
|
self.ax[s].tick_params(colors=self.fgcolor, labelcolor=self.fgcolor) |
375
|
1 |
|
self.ax[s].xaxis.set_major_formatter(mdates.DateFormatter('%H:%M:%S')) |
376
|
1 |
|
self.ax[s].yaxis.set_major_formatter(EngFormatter(unit='%s' % self.unit.lower())) |
377
|
1 |
|
if self.spectrogram: |
378
|
|
|
# add a spectrogram and set colors |
379
|
1 |
|
self.ax.append(self.fig.add_subplot(self.num_chans*self.mult, |
380
|
|
|
1, s+2, sharex=self.ax[1], label=str(s+2))) |
381
|
1 |
|
self.ax[s+1].set_facecolor(self.bgcolor) |
382
|
1 |
|
self.ax[s+1].tick_params(colors=self.fgcolor, labelcolor=self.fgcolor) |
383
|
|
|
|
384
|
|
|
|
385
|
1 |
|
def _set_icon(self): |
386
|
|
|
''' |
387
|
|
|
Set RS plot icons. |
388
|
|
|
''' |
389
|
1 |
|
mgr = plt.get_current_fig_manager() |
390
|
1 |
|
ico = pr.resource_filename('rsudp', os.path.join('img', ICON)) |
391
|
1 |
|
if QT: |
392
|
|
|
mgr.window.setWindowIcon(QtGui.QIcon(ico)) |
393
|
|
|
else: |
394
|
1 |
|
try: |
395
|
1 |
|
ico = PhotoImage(file=ico) |
396
|
|
|
mgr.window.tk.call('wm', 'iconphoto', mgr.window._w, ico) |
397
|
1 |
|
except: |
398
|
1 |
|
printW('Failed to set PNG icon image, trying .ico instead', sender=self.sender) |
399
|
1 |
|
try: |
400
|
1 |
|
ico = pr.resource_filename('rsudp', os.path.join('img', ICON2)) |
401
|
1 |
|
ico = PhotoImage(file=ico) |
402
|
1 |
|
mgr.window.tk.call('wm', 'iconphoto', mgr.window._w, ico) |
403
|
|
|
except: |
404
|
|
|
printE('Failed to set window icon.') |
405
|
|
|
|
406
|
|
|
|
407
|
1 |
|
def _format_axes(self): |
408
|
|
|
''' |
409
|
|
|
Setting up axes and artists. |
410
|
|
|
''' |
411
|
|
|
# calculate times |
412
|
1 |
|
start = np.datetime64(self.stream[0].stats.endtime |
413
|
|
|
)-np.timedelta64(self.seconds, 's') # numpy time |
414
|
1 |
|
end = np.datetime64(self.stream[0].stats.endtime) # numpy time |
415
|
|
|
|
416
|
1 |
|
im = mpimg.imread(pr.resource_filename('rsudp', os.path.join('img', 'version1-01-small.png'))) |
417
|
1 |
|
self.imax = self.fig.add_axes([0.015, 0.944, 0.2, 0.056], anchor='NW') # [left, bottom, right, top] |
418
|
1 |
|
self.imax.imshow(im, aspect='equal', interpolation='sinc') |
419
|
1 |
|
self.imax.axis('off') |
420
|
|
|
# set up axes and artists |
421
|
1 |
|
for i in range(self.num_chans): # create lines objects and modify axes |
422
|
1 |
|
if len(self.stream[i].data) < int(self.sps*(1/self.per_lap)): |
423
|
1 |
|
comp = 0 # spectrogram offset compensation factor |
424
|
|
|
else: |
425
|
|
|
comp = (1/self.per_lap)**2 # spectrogram offset compensation factor |
426
|
1 |
|
r = np.arange(start, end, np.timedelta64(int(1000/self.sps), 'ms'))[-len( |
427
|
|
|
self.stream[i].data[int(-self.sps*(self.seconds-(comp/2))):-int(self.sps*(comp/2))]):] |
428
|
1 |
|
mean = int(round(np.mean(self.stream[i].data))) |
429
|
|
|
# add artist to lines list |
430
|
1 |
|
self.lines.append(self.ax[i*self.mult].plot(r, |
431
|
|
|
np.nan*(np.zeros(len(r))), |
432
|
|
|
label=self.stream[i].stats.channel, color=self.linecolor, |
433
|
|
|
lw=0.45)[0]) |
434
|
|
|
# set axis limits |
435
|
1 |
|
self.ax[i*self.mult].set_xlim(left=start.astype(datetime), |
436
|
|
|
right=end.astype(datetime)) |
437
|
1 |
|
self.ax[i*self.mult].set_ylim(bottom=np.min(self.stream[i].data-mean) |
438
|
|
|
-np.ptp(self.stream[i].data-mean)*0.1, |
439
|
|
|
top=np.max(self.stream[i].data-mean) |
440
|
|
|
+np.ptp(self.stream[i].data-mean)*0.1) |
441
|
|
|
# we can set line plot labels here, but not imshow labels |
442
|
1 |
|
ylabel = self.stream[i].stats.units.strip().capitalize() if (' ' in self.stream[i].stats.units) else self.stream[i].stats.units |
443
|
1 |
|
self.ax[i*self.mult].set_ylabel(ylabel, color=self.fgcolor) |
444
|
1 |
|
self.ax[i*self.mult].legend(loc='upper left') # legend and location |
445
|
1 |
|
if self.spectrogram: # if the user wants a spectrogram, plot it |
446
|
|
|
# add spectrogram to axes list |
447
|
1 |
|
sg = self.ax[1].specgram(self.stream[i].data, NFFT=8, pad_to=8, |
448
|
|
|
Fs=self.sps, noverlap=7, cmap='inferno', |
449
|
|
|
xextent=(self.seconds-0.5, self.seconds))[0] |
450
|
1 |
|
self.ax[1].set_xlim(0,self.seconds) |
451
|
1 |
|
self.ax[i*self.mult+1].set_ylim(0,int(self.sps/2)) |
452
|
1 |
|
self.ax[i*self.mult+1].imshow(np.flipud(sg**(1/float(10))), cmap='inferno', |
453
|
|
|
extent=(self.seconds-(1/(self.sps/float(len(self.stream[i].data)))), |
454
|
|
|
self.seconds,0,self.sps/2), aspect='auto') |
455
|
|
|
|
456
|
|
|
|
457
|
1 |
|
def _setup_fig_manager(self): |
458
|
|
|
''' |
459
|
|
|
Setting up figure manager and |
460
|
|
|
''' |
461
|
|
|
# update canvas and draw |
462
|
1 |
|
figManager = plt.get_current_fig_manager() |
463
|
1 |
|
if self.kiosk: |
464
|
|
|
figManager.full_screen_toggle() |
465
|
|
|
else: |
466
|
1 |
|
if self.fullscreen: # set fullscreen |
467
|
|
|
if QT: # maximizing in Qt |
468
|
|
|
figManager.window.showMaximized() |
469
|
|
|
else: # maximizing in Tk |
470
|
|
|
figManager.resize(*figManager.window.maxsize()) |
471
|
|
|
|
472
|
|
|
|
473
|
1 |
|
def setup_plot(self): |
474
|
|
|
""" |
475
|
|
|
Sets up the plot. Quite a lot of stuff happens in this function. |
476
|
|
|
Matplotlib backends are not threadsafe, so things are a little weird. |
477
|
|
|
See code comments for details. |
478
|
|
|
""" |
479
|
|
|
# instantiate a figure and set basic params |
480
|
1 |
|
self._init_plot() |
481
|
|
|
|
482
|
1 |
|
for i in range(self.num_chans): |
483
|
1 |
|
self._init_axes(i) |
484
|
|
|
|
485
|
1 |
|
for axis in self.ax: |
486
|
|
|
# set the rest of plot colors |
487
|
1 |
|
plt.setp(axis.spines.values(), color=self.fgcolor) |
488
|
1 |
|
plt.setp([axis.get_xticklines(), axis.get_yticklines()], color=self.fgcolor) |
489
|
|
|
|
490
|
|
|
# rs logos |
491
|
1 |
|
self._set_icon() |
492
|
|
|
|
493
|
|
|
# draw axes |
494
|
1 |
|
self._format_axes() |
495
|
|
|
|
496
|
1 |
|
self.handle_resize() |
497
|
|
|
|
498
|
|
|
# setup figure manager |
499
|
1 |
|
self._setup_fig_manager() |
500
|
|
|
|
501
|
|
|
# draw plot, loop, and resize the plot |
502
|
1 |
|
plt.draw() # draw the canvas |
503
|
1 |
|
self.fig.canvas.start_event_loop(0.005) # wait for canvas to update |
504
|
1 |
|
self.handle_resize() |
505
|
|
|
|
506
|
|
|
|
507
|
1 |
|
def _set_ch_specific_label(self, i): |
508
|
|
|
''' |
509
|
|
|
Set the formatter units if the deconvolution is channel-specific. |
510
|
|
|
''' |
511
|
1 |
|
if self.deconv: |
512
|
1 |
|
if (self.deconv in 'CHAN'): |
513
|
1 |
|
ch = self.stream[i].stats.channel |
514
|
1 |
|
if ('HZ' in ch) or ('HN' in ch) or ('HE' in ch): |
515
|
1 |
|
unit = rs.UNITS['VEL'][1] |
516
|
1 |
|
elif ('EN' in ch): |
517
|
1 |
|
unit = rs.UNITS['ACC'][1] |
518
|
|
|
else: |
519
|
|
|
unit = rs.UNITS['CHAN'][1] |
520
|
1 |
|
self.ax[i*self.mult].yaxis.set_major_formatter(EngFormatter(unit='%s' % unit.lower())) |
521
|
|
|
|
522
|
|
|
|
523
|
1 |
|
def _draw_lines(self, i, start, end, mean): |
524
|
|
|
''' |
525
|
|
|
Updates the line data in the plot. |
526
|
|
|
|
527
|
|
|
:param int i: the trace number |
528
|
|
|
:param numpy.datetime64 start: start time of the trace |
529
|
|
|
:param numpy.datetime64 end: end time of the trace |
530
|
|
|
:param float mean: the mean of data in the trace |
531
|
|
|
''' |
532
|
1 |
|
comp = 1/self.per_lap # spectrogram offset compensation factor |
533
|
1 |
|
r = np.arange(start, end, np.timedelta64(int(1000/self.sps), 'ms'))[-len( |
534
|
|
|
self.stream[i].data[int(-self.sps*(self.seconds-(comp/2))):-int(self.sps*(comp/2))]):] |
535
|
1 |
|
self.lines[i].set_ydata(self.stream[i].data[int(-self.sps*(self.seconds-(comp/2))):-int(self.sps*(comp/2))]-mean) |
536
|
1 |
|
self.lines[i].set_xdata(r) # (1/self.per_lap)/2 |
537
|
1 |
|
self.ax[i*self.mult].set_xlim(left=start.astype(datetime)+timedelta(seconds=comp*1.5), |
538
|
|
|
right=end.astype(datetime)) |
539
|
1 |
|
self.ax[i*self.mult].set_ylim(bottom=np.min(self.stream[i].data-mean) |
540
|
|
|
-np.ptp(self.stream[i].data-mean)*0.1, |
541
|
|
|
top=np.max(self.stream[i].data-mean) |
542
|
|
|
+np.ptp(self.stream[i].data-mean)*0.1) |
543
|
|
|
|
544
|
|
|
|
545
|
1 |
|
def _update_specgram(self, i, mean): |
546
|
|
|
''' |
547
|
|
|
Updates the spectrogram and its labels. |
548
|
|
|
|
549
|
|
|
:param int i: the trace number |
550
|
|
|
:param float mean: the mean of data in the trace |
551
|
|
|
''' |
552
|
1 |
|
self.nfft1 = self._nearest_pow_2(self.sps) # FFTs run much faster if the number of transforms is a power of 2 |
553
|
1 |
|
self.nlap1 = self.nfft1 * self.per_lap |
554
|
1 |
|
if len(self.stream[i].data) < self.nfft1: # when the number of data points is low, we just need to kind of fake it for a few fractions of a second |
555
|
|
|
self.nfft1 = 8 |
556
|
|
|
self.nlap1 = 6 |
557
|
1 |
|
sg = self.ax[i*self.mult+1].specgram(self.stream[i].data-mean, |
558
|
|
|
NFFT=self.nfft1, pad_to=int(self.nfft1*4), # previously self.sps*4), |
559
|
|
|
Fs=self.sps, noverlap=self.nlap1)[0] # meat & potatoes |
560
|
1 |
|
self.ax[i*self.mult+1].clear() # incredibly important, otherwise continues to draw over old images (gets exponentially slower) |
561
|
|
|
# cloogy way to shift the spectrogram to line up with the seismogram |
562
|
1 |
|
self.ax[i*self.mult+1].set_xlim(0.25,self.seconds-0.25) |
563
|
1 |
|
self.ax[i*self.mult+1].set_ylim(0,int(self.sps/2)) |
564
|
|
|
# imshow to update the spectrogram |
565
|
1 |
|
self.ax[i*self.mult+1].imshow(np.flipud(sg**(1/float(10))), cmap='inferno', |
566
|
|
|
extent=(self.seconds-(1/(self.sps/float(len(self.stream[i].data)))), |
567
|
|
|
self.seconds,0,self.sps/2), aspect='auto') |
568
|
|
|
# some things that unfortunately can't be in the setup function: |
569
|
1 |
|
self.ax[i*self.mult+1].tick_params(axis='x', which='both', |
570
|
|
|
bottom=False, top=False, labelbottom=False) |
571
|
1 |
|
self.ax[i*self.mult+1].set_ylabel('Frequency (Hz)', color=self.fgcolor) |
572
|
1 |
|
self.ax[i*self.mult+1].set_xlabel('Time (UTC)', color=self.fgcolor) |
573
|
|
|
|
574
|
|
|
|
575
|
1 |
|
def update_plot(self): |
576
|
|
|
''' |
577
|
|
|
Redraw the plot with new data. |
578
|
|
|
Called on every nth loop after the plot is set up, where n is |
579
|
|
|
the number of channels times the data packet arrival rate in Hz. |
580
|
|
|
This has the effect of making the plot update once per second. |
581
|
|
|
''' |
582
|
1 |
|
obstart = self.stream[0].stats.endtime - timedelta(seconds=self.seconds) # obspy time |
583
|
1 |
|
start = np.datetime64(self.stream[0].stats.endtime |
584
|
|
|
)-np.timedelta64(self.seconds, 's') # numpy time |
585
|
1 |
|
end = np.datetime64(self.stream[0].stats.endtime) # numpy time |
586
|
1 |
|
self.raw = self.raw.slice(starttime=obstart) # slice the stream to the specified length (seconds variable) |
587
|
1 |
|
self.stream = self.stream.slice(starttime=obstart) # slice the stream to the specified length (seconds variable) |
588
|
1 |
|
i = 0 |
589
|
1 |
|
for i in range(self.num_chans): # for each channel, update the plots |
590
|
1 |
|
mean = int(round(np.mean(self.stream[i].data))) |
591
|
1 |
|
self._draw_lines(i, start, end, mean) |
592
|
1 |
|
self._set_ch_specific_label(i) |
593
|
1 |
|
if self.spectrogram: |
594
|
1 |
|
self._update_specgram(i, mean) |
595
|
|
|
else: |
596
|
|
|
# also can't be in the setup function |
597
|
|
|
self.ax[i*self.mult].set_xlabel('Time (UTC)', color=self.fgcolor) |
598
|
|
|
|
599
|
|
|
|
600
|
1 |
|
def figloop(self): |
601
|
|
|
""" |
602
|
|
|
Let some time elapse in order for the plot canvas to draw properly. |
603
|
|
|
Must be separate from :py:func:`update_plot()` to avoid a broadcast error early in plotting. |
604
|
|
|
""" |
605
|
1 |
|
self.fig.canvas.start_event_loop(0.005) |
606
|
|
|
|
607
|
|
|
|
608
|
1 |
|
def mainloop(self, i, u): |
609
|
|
|
''' |
610
|
|
|
The main loop in the :py:func:`rsudp.c_plot.Plot.run`. |
611
|
|
|
|
612
|
|
|
:param int i: number of plot events without clearing the linecache |
613
|
|
|
:param int u: queue blocking counter |
614
|
|
|
:return: number of plot events without clearing the linecache and queue blocking counter |
615
|
|
|
:rtype: int, int |
616
|
|
|
''' |
617
|
1 |
|
if i > 10: |
618
|
1 |
|
linecache.clearcache() |
619
|
1 |
|
i = 0 |
620
|
|
|
else: |
621
|
1 |
|
i += 1 |
622
|
1 |
|
self.stream = rs.copy(self.stream) # essential, otherwise the stream has a memory leak |
623
|
1 |
|
self.raw = rs.copy(self.raw) # and could eventually crash the machine |
624
|
1 |
|
self.deconvolve() |
625
|
1 |
|
self.update_plot() |
626
|
1 |
|
if u >= 0: # avoiding a matplotlib broadcast error |
627
|
1 |
|
self.figloop() |
628
|
|
|
|
629
|
1 |
|
if self.save: |
630
|
|
|
# save the plot |
631
|
1 |
|
if (self.save_timer > self.save[0][0]): |
632
|
1 |
|
self._eventsave() |
633
|
1 |
|
u = 0 |
634
|
1 |
|
time.sleep(0.005) # wait a ms to see if another packet will arrive |
635
|
1 |
|
sys.stdout.flush() |
636
|
1 |
|
return i, u |
637
|
|
|
|
638
|
1 |
|
def qu(self, u): |
639
|
|
|
''' |
640
|
|
|
Get a queue object and increment the queue counter. |
641
|
|
|
This is a way to figure out how many channels have arrived in the queue. |
642
|
|
|
|
643
|
|
|
:param int u: queue blocking counter |
644
|
|
|
:return: queue blocking counter |
645
|
|
|
:rtype: int |
646
|
|
|
''' |
647
|
1 |
|
u += 1 if self.getq() else 0 |
648
|
1 |
|
return u |
649
|
|
|
|
650
|
|
|
|
651
|
1 |
|
def run(self): |
652
|
|
|
""" |
653
|
|
|
The heart of the plotting routine. |
654
|
|
|
|
655
|
|
|
Begins by updating the queue to populate a :py:class:`obspy.core.stream.Stream` object, then setting up the main plot. |
656
|
|
|
The first time through the main loop, the plot is not drawn. After that, the plot is drawn every time all channels are updated. |
657
|
|
|
Any plots containing a spectrogram and more than 1 channel are drawn at most every second (1000 ms). |
658
|
|
|
All other plots are drawn at most every quarter second (250 ms). |
659
|
|
|
""" |
660
|
1 |
|
self.getq() # block until data is flowing from the consumer |
661
|
1 |
|
for i in range((self.totchns)*2): # fill up a stream object |
662
|
1 |
|
self.getq() |
663
|
1 |
|
self.set_sps() |
664
|
1 |
|
self.deconvolve() |
665
|
1 |
|
self.setup_plot() |
666
|
|
|
|
667
|
1 |
|
n = 0 # number of iterations without plotting |
668
|
1 |
|
i = 0 # number of plot events without clearing the linecache |
669
|
1 |
|
u = -1 # number of blocked queue calls (must be -1 at startup) |
670
|
1 |
|
while True: # main loop |
671
|
1 |
|
while True: # sub loop |
672
|
1 |
|
if self.alive == False: # break if the user has closed the plot |
673
|
1 |
|
break |
674
|
1 |
|
n += 1 |
675
|
1 |
|
self.save_timer += 1 |
676
|
1 |
|
if self.queue.qsize() > 0: |
677
|
1 |
|
self.getq() |
678
|
1 |
|
time.sleep(0.009) # wait a ms to see if another packet will arrive |
679
|
|
|
else: |
680
|
1 |
|
u = self.qu(u) |
681
|
1 |
|
if n > (self.delay * rs.numchns): |
682
|
1 |
|
n = 0 |
683
|
1 |
|
break |
684
|
1 |
|
if self.alive == False: # break if the user has closed the plot |
685
|
1 |
|
printM('Exiting.', self.sender) |
686
|
1 |
|
break |
687
|
1 |
|
i, u = self.mainloop(i, u) |
688
|
1 |
|
if self.testing: |
689
|
1 |
|
TEST['c_plot'][1] = True |
690
|
|
|
return |
691
|
|
|
|