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Merge pull request #5626 from espnet/tts2
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Discrete token-based TTS implementation
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sw005320 committed Apr 22, 2024
2 parents 6323cf3 + 2806671 commit b9ba189
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110 changes: 110 additions & 0 deletions egs2/TEMPLATE/tts2/cmd.sh
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# ====== About run.pl, queue.pl, slurm.pl, and ssh.pl ======
# Usage: <cmd>.pl [options] JOB=1:<nj> <log> <command...>
# e.g.
# run.pl --mem 4G JOB=1:10 echo.JOB.log echo JOB
#
# Options:
# --time <time>: Limit the maximum time to execute.
# --mem <mem>: Limit the maximum memory usage.
# -–max-jobs-run <njob>: Limit the number parallel jobs. This is ignored for non-array jobs.
# --num-threads <ngpu>: Specify the number of CPU core.
# --gpu <ngpu>: Specify the number of GPU devices.
# --config: Change the configuration file from default.
#
# "JOB=1:10" is used for "array jobs" and it can control the number of parallel jobs.
# The left string of "=", i.e. "JOB", is replaced by <N>(Nth job) in the command and the log file name,
# e.g. "echo JOB" is changed to "echo 3" for the 3rd job and "echo 8" for 8th job respectively.
# Note that the number must start with a positive number, so you can't use "JOB=0:10" for example.
#
# run.pl, queue.pl, slurm.pl, and ssh.pl have unified interface, not depending on its backend.
# These options are mapping to specific options for each backend and
# it is configured by "conf/queue.conf" and "conf/slurm.conf" by default.
# If jobs failed, your configuration might be wrong for your environment.
#
#
# The official documentation for run.pl, queue.pl, slurm.pl, and ssh.pl:
# "Parallelization in Kaldi": http://kaldi-asr.org/doc/queue.html
# =========================================================~


# Select the backend used by run.sh from "local", "stdout", "sge", "slurm", or "ssh"
cmd_backend='local'

# Local machine, without any Job scheduling system
if [ "${cmd_backend}" = local ]; then

# The other usage
export train_cmd="run.pl"
# Used for "*_train.py": "--gpu" is appended optionally by run.sh
export cuda_cmd="run.pl"
# Used for "*_recog.py"
export decode_cmd="run.pl"

# Local machine logging to stdout and log file, without any Job scheduling system
elif [ "${cmd_backend}" = stdout ]; then

# The other usage
export train_cmd="stdout.pl"
# Used for "*_train.py": "--gpu" is appended optionally by run.sh
export cuda_cmd="stdout.pl"
# Used for "*_recog.py"
export decode_cmd="stdout.pl"


# "qsub" (Sun Grid Engine, or derivation of it)
elif [ "${cmd_backend}" = sge ]; then
# The default setting is written in conf/queue.conf.
# You must change "-q g.q" for the "queue" for your environment.
# To know the "queue" names, type "qhost -q"
# Note that to use "--gpu *", you have to setup "complex_value" for the system scheduler.

export train_cmd="queue.pl"
export cuda_cmd="queue.pl"
export decode_cmd="queue.pl"


# "qsub" (Torque/PBS.)
elif [ "${cmd_backend}" = pbs ]; then
# The default setting is written in conf/pbs.conf.

export train_cmd="pbs.pl"
export cuda_cmd="pbs.pl"
export decode_cmd="pbs.pl"


# "sbatch" (Slurm)
elif [ "${cmd_backend}" = slurm ]; then
# The default setting is written in conf/slurm.conf.
# You must change "-p cpu" and "-p gpu" for the "partition" for your environment.
# To know the "partion" names, type "sinfo".
# You can use "--gpu * " by default for slurm and it is interpreted as "--gres gpu:*"
# The devices are allocated exclusively using "${CUDA_VISIBLE_DEVICES}".

export train_cmd="slurm.pl"
export cuda_cmd="slurm.pl"
export decode_cmd="slurm.pl"

elif [ "${cmd_backend}" = ssh ]; then
# You have to create ".queue/machines" to specify the host to execute jobs.
# e.g. .queue/machines
# host1
# host2
# host3
# Assuming you can login them without any password, i.e. You have to set ssh keys.

export train_cmd="ssh.pl"
export cuda_cmd="ssh.pl"
export decode_cmd="ssh.pl"

# This is an example of specifying several unique options in the JHU CLSP cluster setup.
# Users can modify/add their own command options according to their cluster environments.
elif [ "${cmd_backend}" = jhu ]; then

export train_cmd="queue.pl --mem 2G"
export cuda_cmd="queue-freegpu.pl --mem 2G --gpu 1 --config conf/queue.conf"
export decode_cmd="queue.pl --mem 4G"

else
echo "$0: Error: Unknown cmd_backend=${cmd_backend}" 1>&2
return 1
fi
7 changes: 7 additions & 0 deletions egs2/TEMPLATE/tts2/conf/mfcc.conf
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--sample-frequency=16000
--frame-length=25 # the default is 25
--low-freq=20 # the default.
--high-freq=7600 # the default is zero meaning use the Nyquist (8k in this case).
--num-mel-bins=30
--num-ceps=30
--snip-edges=false
11 changes: 11 additions & 0 deletions egs2/TEMPLATE/tts2/conf/pbs.conf
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# Default configuration
command qsub -V -v PATH -S /bin/bash
option name=* -N $0
option mem=* -l mem=$0
option mem=0 # Do not add anything to qsub_opts
option num_threads=* -l ncpus=$0
option num_threads=1 # Do not add anything to qsub_opts
option num_nodes=* -l nodes=$0:ppn=1
default gpu=0
option gpu=0
option gpu=* -l ngpus=$0
12 changes: 12 additions & 0 deletions egs2/TEMPLATE/tts2/conf/queue.conf
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# Default configuration
command qsub -v PATH -cwd -S /bin/bash -j y -l arch=*64*
option name=* -N $0
option mem=* -l mem_free=$0,ram_free=$0
option mem=0 # Do not add anything to qsub_opts
option num_threads=* -pe smp $0
option num_threads=1 # Do not add anything to qsub_opts
option max_jobs_run=* -tc $0
option num_nodes=* -pe mpi $0 # You must set this PE as allocation_rule=1
default gpu=0
option gpu=0
option gpu=* -l gpu=$0 -q g.q
14 changes: 14 additions & 0 deletions egs2/TEMPLATE/tts2/conf/slurm.conf
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# Default configuration
command sbatch --export=PATH
option name=* --job-name $0
option time=* --time $0
option mem=* --mem-per-cpu $0
option mem=0
option num_threads=* --cpus-per-task $0
option num_threads=1 --cpus-per-task 1
option num_nodes=* --nodes $0
default gpu=0
option gpu=0 -p cpu
option gpu=* -p gpu --gres=gpu:$0 -c $0 # Recommend allocating more CPU than, or equal to the number of GPU
# note: the --max-jobs-run option is supported as a special case
# by slurm.pl and you don't have to handle it in the config file.
4 changes: 4 additions & 0 deletions egs2/TEMPLATE/tts2/conf/vad.conf
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--vad-energy-threshold=5.5
--vad-energy-mean-scale=0.5
--vad-proportion-threshold=0.12
--vad-frames-context=2
1 change: 1 addition & 0 deletions egs2/TEMPLATE/tts2/db.sh
Empty file.
23 changes: 23 additions & 0 deletions egs2/TEMPLATE/tts2/path.sh
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MAIN_ROOT=$PWD/../../..

export PATH=$PWD/utils/:$PATH
export LC_ALL=C

if [ -f "${MAIN_ROOT}"/tools/activate_python.sh ]; then
. "${MAIN_ROOT}"/tools/activate_python.sh
else
echo "[INFO] "${MAIN_ROOT}"/tools/activate_python.sh is not present"
fi
. "${MAIN_ROOT}"/tools/extra_path.sh

export OMP_NUM_THREADS=1

# NOTE(kan-bayashi): Use UTF-8 in Python to avoid UnicodeDecodeError when LC_ALL=C
export PYTHONIOENCODING=UTF-8

# You need to change or unset NCCL_SOCKET_IFNAME according to your network environment
# https://docs.nvidia.com/deeplearning/sdk/nccl-developer-guide/docs/env.html#nccl-socket-ifname
export NCCL_SOCKET_IFNAME="^lo,docker,virbr,vmnet,vboxnet"

# NOTE(kamo): Source at the last to overwrite the setting
. local/path.sh
1 change: 1 addition & 0 deletions egs2/TEMPLATE/tts2/pyscripts
1 change: 1 addition & 0 deletions egs2/TEMPLATE/tts2/scripts
58 changes: 58 additions & 0 deletions egs2/TEMPLATE/tts2/setup.sh
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#!/usr/bin/env bash
# Set bash to 'debug' mode, it will exit on :
# -e 'error', -u 'undefined variable', -o ... 'error in pipeline', -x 'print commands',
set -e
set -u
set -o pipefail

log() {
local fname=${BASH_SOURCE[1]##*/}
echo -e "$(date '+%Y-%m-%dT%H:%M:%S') (${fname}:${BASH_LINENO[0]}:${FUNCNAME[1]}) $*"
}
help_message=$(cat << EOF
Usage: $0 <target-dir>
EOF
)


if [ $# -ne 1 ]; then
log "${help_message}"
log "Error: 1 positional argument is required."
exit 2
fi


dir=$1
mkdir -p "${dir}"

if [ ! -d "${dir}"/../../TEMPLATE ]; then
log "Error: ${dir}/../../TEMPLATE should exist. You may specify wrong directory."
exit 1
fi

targets=""

# Copy
for f in cmd.sh conf local; do
target="${dir}"/../../TEMPLATE/tts2/"${f}"
cp -r "${target}" "${dir}"
targets+="${dir}/${target} "
done


# Symlinks to TEMPLATE/tts2
for f in tts2.sh path.sh sid; do
target=../../TEMPLATE/tts2/"${f}"
ln -sf "${target}" "${dir}"
targets+="${dir}/${target} "
done


# Symlinks to TEMPLATE/asr1
for f in db.sh scripts pyscripts utils steps; do
target=../../TEMPLATE/asr1/"${f}"
ln -sf "${target}" "${dir}"
targets+="${dir}/${target} "
done

log "Created: ${targets}"
1 change: 1 addition & 0 deletions egs2/TEMPLATE/tts2/sid
1 change: 1 addition & 0 deletions egs2/TEMPLATE/tts2/steps

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