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- import numpy as np
- import mne
- def upsample_events(events, upsample_interval=500):
- # Upsample events every 500 sample points
- events_new = []
- for e_ in events:
- for i in range(0, e_[1] - upsample_interval + 1, upsample_interval):
- events_new.append([e_[0] + i, 0, e_[-1]])
- return np.array(events_new)
- def extend_signal(raw, frequencies, freq_band):
- """ Extend a signal with filter bank using MNE """
- raw_ext = np.vstack([
- bandpass_filter(raw, l_freq=f - freq_band, h_freq=f + freq_band)
- for f in frequencies]
- )
- info = mne.create_info(
- ch_names=sum(
- list(map(lambda f: [ch + '-' + str(f) + 'Hz'
- for ch in raw.ch_names],
- frequencies)), []),
- ch_types=['ecog'] * len(raw.ch_names) * len(frequencies),
- sfreq=int(raw.info['sfreq'])
- )
- return mne.io.RawArray(raw_ext, info)
- def bandpass_filter(raw, l_freq, h_freq, method="iir", verbose=False):
- """ Band-pass filter a signal using MNE """
- return raw.copy().filter(
- l_freq=l_freq,
- h_freq=h_freq,
- method=method,
- verbose=verbose
- ).get_data()
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