bootshorn recording
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5 changed files with 278 additions and 0 deletions
160
bundles/bootshorn/files/process
Executable file
160
bundles/bootshorn/files/process
Executable file
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#!/usr/bin/env python3
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import os
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import datetime
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import numpy as np
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import matplotlib.pyplot as plt
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import soundfile as sf
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from scipy.fft import rfft, rfftfreq
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import shutil
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import traceback
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RECORDINGS_DIR = "recordings"
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PROCESSED_RECORDINGS_DIR = "recordings/processed"
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DETECTIONS_DIR = "events"
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DETECT_FREQUENCY = 211 # Hz
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DETECT_FREQUENCY_TOLERANCE = 2 # Hz
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ADJACENCY_FACTOR = 2 # area to look for the frequency (e.g. 2 means 100Hz to 400Hz for 200Hz detection)
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BLOCK_SECONDS = 3 # seconds (longer means more frequency resolution, but less time resolution)
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DETECTION_DISTANCE_SECONDS = 30 # seconds (minimum time between detections)
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BLOCK_OVERLAP_FACTOR = 0.9 # overlap between blocks (0.2 means 20% overlap)
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MIN_SIGNAL_QUALITY = 1000.0 # maximum noise level (relative DB) to consider a detection valid
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PLOT_PADDING_START_SECONDS = 2 # seconds (padding before and after the event in the plot)
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PLOT_PADDING_END_SECONDS = 3 # seconds (padding before and after the event in the plot)
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DETECTION_DISTANCE_BLOCKS = DETECTION_DISTANCE_SECONDS // BLOCK_SECONDS # number of blocks to skip after a detection
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DETECT_FREQUENCY_FROM = DETECT_FREQUENCY - DETECT_FREQUENCY_TOLERANCE # Hz
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DETECT_FREQUENCY_TO = DETECT_FREQUENCY + DETECT_FREQUENCY_TOLERANCE # Hz
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def process_recording(filename):
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print('processing', filename)
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# get ISO 8601 nanosecond recording date from filename
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date_string_from_filename = os.path.splitext(filename)[0]
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recording_date = datetime.datetime.strptime(date_string_from_filename, "%Y-%m-%d_%H-%M-%S.%f%z")
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# get data and metadata from recording
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path = os.path.join(RECORDINGS_DIR, filename)
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soundfile = sf.SoundFile(path)
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samplerate = soundfile.samplerate
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samples_per_block = int(BLOCK_SECONDS * samplerate)
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overlapping_samples = int(samples_per_block * BLOCK_OVERLAP_FACTOR)
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sample_num = 0
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current_event = None
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while sample_num < len(soundfile):
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soundfile.seek(sample_num)
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block = soundfile.read(frames=samples_per_block, dtype='float32', always_2d=False)
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if len(block) == 0:
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break
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# calculate FFT
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labels = rfftfreq(len(block), d=1/samplerate)
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complex_amplitudes = rfft(block)
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amplitudes = np.abs(complex_amplitudes)
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# get the frequency with the highest amplitude within the search range
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search_amplitudes = amplitudes[(labels >= DETECT_FREQUENCY_FROM/ADJACENCY_FACTOR) & (labels <= DETECT_FREQUENCY_TO*ADJACENCY_FACTOR)]
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search_labels = labels[(labels >= DETECT_FREQUENCY_FROM/ADJACENCY_FACTOR) & (labels <= DETECT_FREQUENCY_TO*ADJACENCY_FACTOR)]
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max_amplitude = max(search_amplitudes)
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max_amplitude_index = np.argmax(search_amplitudes)
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max_freq = search_labels[max_amplitude_index]
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max_freq_detected = DETECT_FREQUENCY_FROM <= max_freq <= DETECT_FREQUENCY_TO
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# calculate signal quality
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adjacent_amplitudes = amplitudes[(labels < DETECT_FREQUENCY_FROM) | (labels > DETECT_FREQUENCY_TO)]
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signal_quality = max_amplitude/np.mean(adjacent_amplitudes)
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good_signal_quality = signal_quality > MIN_SIGNAL_QUALITY
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# conclude detection
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if (
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max_freq_detected and
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good_signal_quality
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):
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block_date = recording_date + datetime.timedelta(seconds=sample_num / samplerate)
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# detecting an event
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if not current_event:
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current_event = {
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'start_at': block_date,
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'end_at': block_date,
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'start_sample': sample_num,
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'end_sample': sample_num + samples_per_block,
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'start_freq': max_freq,
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'end_freq': max_freq,
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'max_amplitude': max_amplitude,
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}
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else:
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current_event.update({
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'end_at': block_date,
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'end_freq': max_freq,
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'end_sample': sample_num + samples_per_block,
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'max_amplitude': max(max_amplitude, current_event['max_amplitude']),
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})
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print(f'- {block_date.strftime('%Y-%m-%d %H:%M:%S')}: {max_amplitude:.1f}rDB @ {max_freq:.1f}Hz (signal {signal_quality:.3f}x)')
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else:
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# not detecting an event
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if current_event:
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duration = (current_event['end_at'] - current_event['start_at']).total_seconds()
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current_event['duration'] = duration
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print(f'🔊 {current_event['start_at'].strftime('%Y-%m-%d %H:%M:%S')} ({duration:.1f}s): {current_event['start_freq']:.1f}Hz->{current_event['end_freq']:.1f}Hz @{current_event['max_amplitude']:.0f}rDB')
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# read full audio clip again for writing
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write_event(current_event=current_event, soundfile=soundfile, samplerate=samplerate)
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current_event = None
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sample_num += DETECTION_DISTANCE_BLOCKS * samples_per_block
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sample_num += samples_per_block - overlapping_samples
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# write a spectrogram using the sound from start to end of the event
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def write_event(current_event, soundfile, samplerate):
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# date and filename
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event_date = current_event['start_at'] - datetime.timedelta(seconds=PLOT_PADDING_START_SECONDS)
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filename_prefix = event_date.strftime('%Y-%m-%d_%H-%M-%S.%f%z')
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# event clip
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event_start_sample = current_event['start_sample'] - samplerate * PLOT_PADDING_START_SECONDS
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event_end_sample = current_event['end_sample'] + samplerate * PLOT_PADDING_END_SECONDS
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total_samples = event_end_sample - event_start_sample
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soundfile.seek(event_start_sample)
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event_clip = soundfile.read(frames=total_samples, dtype='float32', always_2d=False)
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# write flac
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flac_path = os.path.join(DETECTIONS_DIR, f"{filename_prefix}.flac")
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sf.write(flac_path, event_clip, samplerate, format='FLAC')
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# write spectrogram
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plt.figure(figsize=(8, 6))
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plt.specgram(event_clip, Fs=samplerate, NFFT=samplerate, noverlap=samplerate//2, cmap='inferno', vmin=-100, vmax=-10)
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plt.title(f"Bootshorn @{event_date.strftime('%Y-%m-%d %H:%M:%S%z')}")
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plt.xlabel(f"Time {current_event['duration']:.1f}s")
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plt.ylabel(f"Frequency {current_event['start_freq']:.1f}Hz -> {current_event['end_freq']:.1f}Hz")
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plt.colorbar(label="Intensity (rDB)")
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plt.ylim(50, 1000)
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plt.savefig(os.path.join(DETECTIONS_DIR, f"{filename_prefix}.png"))
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plt.close()
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def main():
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os.makedirs(RECORDINGS_DIR, exist_ok=True)
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os.makedirs(PROCESSED_RECORDINGS_DIR, exist_ok=True)
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for filename in sorted(os.listdir(RECORDINGS_DIR)):
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if filename.endswith(".flac"):
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try:
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process_recording(filename)
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except Exception as e:
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print(f"Error processing {filename}: {e}")
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# print stacktrace
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traceback.print_exc()
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if __name__ == "__main__":
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main()
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23
bundles/bootshorn/files/record
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23
bundles/bootshorn/files/record
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#!/bin/sh
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mkdir -p recordings
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while true
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do
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# get date in ISO 8601 format with nanoseconds
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PROGRAMM=$(test $(uname) = "Darwin" && echo "gdate" || echo "date")
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DATE=$($PROGRAMM "+%Y-%m-%d_%H-%M-%S.%6N%z")
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# record audio using ffmpeg
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ffmpeg \
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-y \
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-f pulse \
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-i "alsa_input.usb-HANMUS_USB_AUDIO_24BIT_2I2O_1612310-00.analog-stereo" \
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-ac 1 \
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-ar 96000 \
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-sample_fmt s32 \
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-t "3600" \
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-c:a flac \
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-compression_level 12 \
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"recordings/$DATE.flac"
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done
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47
bundles/bootshorn/items.py
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47
bundles/bootshorn/items.py
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# nano /etc/selinux/config
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# SELINUX=disabled
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# reboot
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directories = {
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'/opt/bootshorn': {
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'owner': 'ckn',
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'group': 'ckn',
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},
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'/opt/bootshorn/recordings': {
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'owner': 'ckn',
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'group': 'ckn',
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},
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'/opt/bootshorn/recordings': {
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'owner': 'ckn',
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'group': 'ckn',
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},
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'/opt/bootshorn/recordings/processed': {
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'owner': 'ckn',
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'group': 'ckn',
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},
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'/opt/bootshorn/events': {
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'owner': 'ckn',
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'group': 'ckn',
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},
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}
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files = {
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'/opt/bootshorn/record': {
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'owner': 'ckn',
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'group': 'ckn',
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'mode': '755',
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},
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'/opt/bootshorn/process': {
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'owner': 'ckn',
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'group': 'ckn',
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'mode': '755',
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},
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}
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svc_systemd = {
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'bootshorn-record.service': {
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'needs': {
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'file:/opt/bootshorn/record',
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},
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},
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}
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37
bundles/bootshorn/metadata.py
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37
bundles/bootshorn/metadata.py
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defaults = {
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'systemd': {
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'units': {
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'bootshorn-record.service': {
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'Unit': {
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'Description': 'Bootshorn Recorder',
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'After': 'network.target',
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},
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'Service': {
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'User': 'ckn',
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'Group': 'ckn',
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'Type': 'simple',
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'WorkingDirectory': '/opt/bootshorn',
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'ExecStart': '/opt/bootshorn/record',
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'Restart': 'always',
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'RestartSec': 5,
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'Environment': {
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"XDG_RUNTIME_DIR": "/run/user/1000",
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"PULSE_SERVER": "unix:/run/user/1000/pulse/native",
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},
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},
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},
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},
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},
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'systemd-timers': {
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'bootshorn-process': {
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'command': '/opt/bootshorn/process',
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'when': 'minutely',
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'working_dir': '/opt/bootshorn',
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'user': 'ckn',
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'group': 'ckn',
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'after': {
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'bootshorn-process.service',
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},
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},
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},
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}
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11
nodes/home.bootshorn-laptop.py
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11
nodes/home.bootshorn-laptop.py
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{
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'hostname': '10.0.0.162',
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'bundles': [
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'bootshorn',
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'systemd',
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'systemd-timers',
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],
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'metadata': {
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'id': '25c6f3fd-0d32-42c3-aeb3-0147bc3937c7',
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},
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}
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