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add CI test
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.github/scripts/run-librispeech-zipformer-ctc-2023-06-14.sh
vendored
Executable file
115
.github/scripts/run-librispeech-zipformer-ctc-2023-06-14.sh
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#!/usr/bin/env bash
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set -e
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log() {
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# This function is from espnet
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local fname=${BASH_SOURCE[1]##*/}
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echo -e "$(date '+%Y-%m-%d %H:%M:%S') (${fname}:${BASH_LINENO[0]}:${FUNCNAME[1]}) $*"
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}
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cd egs/librispeech/ASR
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repo_url=https://huggingface.co/Zengwei/icefall-asr-librispeech-zipformer-transducer-ctc-2023-06-13
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log "Downloading pre-trained model from $repo_url"
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git lfs install
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GIT_LFS_SKIP_SMUDGE=1 git clone $repo_url
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repo=$(basename $repo_url)
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log "Display test files"
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tree $repo/
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ls -lh $repo/test_wavs/*.wav
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pushd $repo/exp
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git lfs pull --include "data/lang_bpe_500/bpe.model"
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git lfs pull --include "data/lang_bpe_500/HLG.pt"
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git lfs pull --include "data/lang_bpe_500/L.pt"
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git lfs pull --include "data/lang_bpe_500/LG.pt"
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git lfs pull --include "data/lang_bpe_500/Linv.pt"
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git lfs pull --include "data/lm/G_4_gram.pt"
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git lfs pull --include "exp/jit_script.pt"
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git lfs pull --include "exp/pretrained.pt"
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ln -s pretrained.pt epoch-99.pt
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ls -lh *.pt
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popd
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log "Export to torchscript model"
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./zipformer/export.py \
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--exp-dir $repo/exp \
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--use-transducer 1 \
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--use-ctc 1 \
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--use-averaged-model false \
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--bpe-model $repo/data/lang_bpe_500/bpe.model \
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--epoch 99 \
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--avg 1 \
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--jit 1
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ls -lh $repo/exp/*.pt
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log "Decode with models exported by torch.jit.script()"
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for method in ctc-decoding 1best; do
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./zipformer/jit_pretrained_ctc.py \
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--bpe-model $repo/data/lang_bpe_500/bpe.model \
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--model-filename $repo/exp/jit_script.pt \
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--HLG $repo/data/lang_bpe_500/HLG.pt \
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--words-file $repo/data/lang_bpe_500/words.txt \
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--G $repo/data/lm/G_4_gram.pt \
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--method $method \
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--sample-rate 16000 \
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$repo/test_wavs/1089-134686-0001.wav \
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$repo/test_wavs/1221-135766-0001.wav \
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$repo/test_wavs/1221-135766-0002.wav
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done
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for method in ctc-decoding 1best; do
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log "$method"
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./zipformer/pretrained_ctc.py \
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--method $method \
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--checkpoint $repo/exp/pretrained.pt \
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--bpe-model $repo/data/lang_bpe_500/bpe.model \
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--words-file $repo/data/lang_bpe_500/words.txt \
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--HLG $repo/data/lang_bpe_500/HLG.pt \
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--G $repo/data/lm/G_4_gram.pt \
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--words-file $repo/data/lang_bpe_500/words.txt \
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--sample-rate 16000 \
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$repo/test_wavs/1089-134686-0001.wav \
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$repo/test_wavs/1221-135766-0001.wav \
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$repo/test_wavs/1221-135766-0002.wav
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done
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echo "GITHUB_EVENT_NAME: ${GITHUB_EVENT_NAME}"
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echo "GITHUB_EVENT_LABEL_NAME: ${GITHUB_EVENT_LABEL_NAME}"
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if [[ x"${GITHUB_EVENT_NAME}" == x"schedule" || x"${GITHUB_EVENT_LABEL_NAME}" == x"run-decode" ]]; then
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mkdir -p zipformer/exp
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ln -s $PWD/$repo/exp/pretrained.pt zipformer/exp/epoch-999.pt
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ln -s $PWD/$repo/data/lang_bpe_500 data/
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ls -lh data
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ls -lh zipformer/exp
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log "Decoding test-clean and test-other"
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# use a small value for decoding with CPU
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max_duration=100
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for method in ctc-decoding 1best; do
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log "Decoding with $method"
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./zipformer/ctc_decode.py \
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--use-transducer 1 \
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--use-ctc 1 \
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--decoding-method $method \
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--nbest-scale 1.0 \
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--hlg-scale 0.6 \
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--epoch 999 \
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--avg 1 \
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--use-averaged-model 0 \
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--max-duration $max_duration \
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--exp-dir zipformer/exp
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done
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rm zipformer/exp/*.pt
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fi
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155
.github/workflows/run-librispeech-zipformer-ctc-2023-06-14.yml
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155
.github/workflows/run-librispeech-zipformer-ctc-2023-06-14.yml
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# Copyright 2022 Fangjun Kuang (csukuangfj@gmail.com)
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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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name: run-librispeech-zipformer-ctc-2023-06-14
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# zipformer
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on:
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push:
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branches:
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- master
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pull_request:
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types: [labeled]
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schedule:
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# minute (0-59)
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# hour (0-23)
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# day of the month (1-31)
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# month (1-12)
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# day of the week (0-6)
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# nightly build at 15:50 UTC time every day
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- cron: "50 15 * * *"
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concurrency:
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group: run_librispeech_2023_06_14_zipformer-ctc-${{ github.ref }}
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cancel-in-progress: true
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jobs:
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run_librispeech_2023_05_18_zipformer:
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if: github.event.label.name == 'zipformer' ||github.event.label.name == 'ready' || github.event.label.name == 'run-decode' || github.event_name == 'push' || github.event_name == 'schedule'
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runs-on: ${{ matrix.os }}
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strategy:
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matrix:
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os: [ubuntu-latest]
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python-version: [3.8]
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fail-fast: false
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steps:
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- uses: actions/checkout@v2
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with:
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fetch-depth: 0
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- name: Setup Python ${{ matrix.python-version }}
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uses: actions/setup-python@v2
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with:
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python-version: ${{ matrix.python-version }}
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cache: 'pip'
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cache-dependency-path: '**/requirements-ci.txt'
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- name: Install Python dependencies
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run: |
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grep -v '^#' ./requirements-ci.txt | xargs -n 1 -L 1 pip install
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pip uninstall -y protobuf
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pip install --no-binary protobuf protobuf==3.20.*
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- name: Cache kaldifeat
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id: my-cache
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uses: actions/cache@v2
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with:
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path: |
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~/tmp/kaldifeat
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key: cache-tmp-${{ matrix.python-version }}-2023-05-22
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- name: Install kaldifeat
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if: steps.my-cache.outputs.cache-hit != 'true'
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shell: bash
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run: |
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.github/scripts/install-kaldifeat.sh
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- name: Cache LibriSpeech test-clean and test-other datasets
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id: libri-test-clean-and-test-other-data
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uses: actions/cache@v2
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with:
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path: |
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~/tmp/download
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key: cache-libri-test-clean-and-test-other
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- name: Download LibriSpeech test-clean and test-other
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if: steps.libri-test-clean-and-test-other-data.outputs.cache-hit != 'true'
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shell: bash
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run: |
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.github/scripts/download-librispeech-test-clean-and-test-other-dataset.sh
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- name: Prepare manifests for LibriSpeech test-clean and test-other
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shell: bash
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run: |
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.github/scripts/prepare-librispeech-test-clean-and-test-other-manifests.sh
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- name: Cache LibriSpeech test-clean and test-other fbank features
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id: libri-test-clean-and-test-other-fbank
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uses: actions/cache@v2
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with:
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path: |
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~/tmp/fbank-libri
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key: cache-libri-fbank-test-clean-and-test-other-v2
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- name: Compute fbank for LibriSpeech test-clean and test-other
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if: steps.libri-test-clean-and-test-other-fbank.outputs.cache-hit != 'true'
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shell: bash
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run: |
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.github/scripts/compute-fbank-librispeech-test-clean-and-test-other.sh
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- name: Inference with pre-trained model
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shell: bash
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env:
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GITHUB_EVENT_NAME: ${{ github.event_name }}
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GITHUB_EVENT_LABEL_NAME: ${{ github.event.label.name }}
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run: |
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mkdir -p egs/librispeech/ASR/data
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ln -sfv ~/tmp/fbank-libri egs/librispeech/ASR/data/fbank
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ls -lh egs/librispeech/ASR/data/*
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sudo apt-get -qq install git-lfs tree
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export PYTHONPATH=$PWD:$PYTHONPATH
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export PYTHONPATH=~/tmp/kaldifeat/kaldifeat/python:$PYTHONPATH
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export PYTHONPATH=~/tmp/kaldifeat/build/lib:$PYTHONPATH
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.github/scripts/run-librispeech-zipformer-ctc-2023-06-14.sh
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- name: Display decoding results for librispeech zipformer
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if: github.event_name == 'schedule' || github.event.label.name == 'run-decode'
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shell: bash
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run: |
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cd egs/librispeech/ASR/
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tree ./zipformer/exp
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cd zipformer
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echo "results for zipformer"
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echo "===ctc-decoding==="
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find exp/ctc-decoding -name "log-*" -exec grep -n --color "best for test-clean" {} + | sort -n -k2
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find exp/ctc-decoding -name "log-*" -exec grep -n --color "best for test-other" {} + | sort -n -k2
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echo "===1best==="
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find exp/1best -name "log-*" -exec grep -n --color "best for test-clean" {} + | sort -n -k2
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find exp/1best -name "log-*" -exec grep -n --color "best for test-other" {} + | sort -n -k2
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- name: Upload decoding results for librispeech zipformer
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uses: actions/upload-artifact@v2
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if: github.event_name == 'schedule' || github.event.label.name == 'run-decode'
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with:
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name: torch-${{ matrix.torch }}-python-${{ matrix.python-version }}-ubuntu-18.04-cpu-zipformer-2022-11-11
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path: egs/librispeech/ASR/zipformer/exp/
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@ -76,7 +76,7 @@ import torch.nn as nn
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from decoder import Decoder
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from onnxruntime.quantization import QuantType, quantize_dynamic
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from scaling_converter import convert_scaled_to_non_scaled
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from train import add_model_arguments, get_params, get_transducer_model
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from train import add_model_arguments, get_params, get_model
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from zipformer import Zipformer2
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from icefall.checkpoint import (
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@ -595,7 +595,7 @@ def main():
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logging.info(params)
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logging.info("About to create model")
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model = get_transducer_model(params)
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model = get_model(params)
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model.to(device)
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@ -74,7 +74,7 @@ import torch.nn as nn
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from decoder import Decoder
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from onnxruntime.quantization import QuantType, quantize_dynamic
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from scaling_converter import convert_scaled_to_non_scaled
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from train import add_model_arguments, get_params, get_transducer_model
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from train import add_model_arguments, get_params, get_model
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from zipformer import Zipformer2
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from icefall.checkpoint import (
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@ -444,7 +444,7 @@ def main():
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logging.info(params)
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logging.info("About to create model")
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model = get_transducer_model(params)
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model = get_model(params)
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model.to(device)
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