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* merge upstream * add SURT model and training * add libricss decoding * add chunk width randomization * decode SURT with libricss * initial commit for zipformer_ctc * remove unwanted changes * remove changes to other recipe * fix zipformer softlink * fix for JIT export * add missing file * fix symbolic links * update results * clean commit for SURT recipe * training libricss surt model * remove unwanted files * remove unwanted changes * remove changes in librispeech * change some files to symlinks * remove unwanted changes in utils * add export script * add README * minor fix in README * add assets for README * replace some files with symlinks * remove unused decoding methods * fix symlink * address comments from @csukuangfj
106 lines
3.6 KiB
Python
Executable File
106 lines
3.6 KiB
Python
Executable File
#!/usr/bin/env python3
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# Copyright 2022 Johns Hopkins University (authors: Desh Raj)
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#
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# See ../../../../LICENSE for clarification regarding multiple authors
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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"""
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This file computes fbank features of the LibriCSS dataset.
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It looks for manifests in the directory data/manifests.
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The generated fbank features are saved in data/fbank.
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"""
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import logging
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from pathlib import Path
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import pyloudnorm as pyln
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import torch
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import torch.multiprocessing
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from lhotse import LilcomChunkyWriter, load_manifest_lazy
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from lhotse.features.kaldifeat import (
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KaldifeatFbank,
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KaldifeatFbankConfig,
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KaldifeatFrameOptions,
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KaldifeatMelOptions,
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)
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# Torch's multithreaded behavior needs to be disabled or
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# it wastes a lot of CPU and slow things down.
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# Do this outside of main() in case it needs to take effect
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# even when we are not invoking the main (e.g. when spawning subprocesses).
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torch.set_num_threads(1)
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torch.set_num_interop_threads(1)
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torch.multiprocessing.set_sharing_strategy("file_system")
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def compute_fbank_libricss():
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src_dir = Path("data/manifests")
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output_dir = Path("data/fbank")
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sampling_rate = 16000
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num_mel_bins = 80
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extractor = KaldifeatFbank(
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KaldifeatFbankConfig(
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frame_opts=KaldifeatFrameOptions(sampling_rate=sampling_rate),
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mel_opts=KaldifeatMelOptions(num_bins=num_mel_bins),
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device="cuda",
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)
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)
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logging.info("Reading manifests")
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cuts_ihm_mix = load_manifest_lazy(
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src_dir / "libricss-ihm-mix_segments_all.jsonl.gz"
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)
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cuts_sdm = load_manifest_lazy(src_dir / "libricss-sdm_segments_all.jsonl.gz")
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for name, cuts in [("ihm-mix", cuts_ihm_mix), ("sdm", cuts_sdm)]:
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dev_cuts = cuts.filter(lambda c: "session0" in c.id)
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test_cuts = cuts.filter(lambda c: "session0" not in c.id)
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# If SDM cuts, apply loudness normalization
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if name == "sdm":
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dev_cuts = dev_cuts.normalize_loudness(target=-23.0)
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test_cuts = test_cuts.normalize_loudness(target=-23.0)
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logging.info(f"Extracting fbank features for {name} dev cuts")
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_ = dev_cuts.compute_and_store_features_batch(
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extractor=extractor,
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storage_path=output_dir / f"libricss-{name}_feats_dev",
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manifest_path=src_dir / f"cuts_dev_libricss-{name}.jsonl.gz",
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batch_duration=500,
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num_workers=2,
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storage_type=LilcomChunkyWriter,
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overwrite=True,
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)
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logging.info(f"Extracting fbank features for {name} test cuts")
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_ = test_cuts.compute_and_store_features_batch(
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extractor=extractor,
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storage_path=output_dir / f"libricss-{name}_feats_test",
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manifest_path=src_dir / f"cuts_test_libricss-{name}.jsonl.gz",
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batch_duration=2000,
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num_workers=4,
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storage_type=LilcomChunkyWriter,
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overwrite=True,
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)
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if __name__ == "__main__":
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formatter = "%(asctime)s %(levelname)s [%(filename)s:%(lineno)d] %(message)s"
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logging.basicConfig(format=formatter, level=logging.INFO)
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compute_fbank_libricss()
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