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run_benchmark.sh
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#!/bin/bash
set -x
function main {
init_params "$@"
run_benchmark
}
# init params
function init_params {
topology="pegasus_samsum_dynamic"
iters=100
batch_size=16
tuned_checkpoint=saved_results
for var in "$@"
do
case $var in
--topology=*)
topology=$(echo $var |cut -f2 -d=)
;;
--dataset_location=*)
dataset_location=$(echo $var |cut -f2 -d=)
;;
--input_model=*)
input_model=$(echo $var |cut -f2 -d=)
;;
--mode=*)
mode=$(echo $var |cut -f2 -d=)
;;
--batch_size=*)
batch_size=$(echo $var |cut -f2 -d=)
;;
--iters=*)
iters=$(echo ${var} |cut -f2 -d=)
;;
--int8=*)
int8=$(echo ${var} |cut -f2 -d=)
;;
--config=*)
tuned_checkpoint=$(echo $var |cut -f2 -d=)
;;
*)
echo "Error: No such parameter: ${var}"
exit 1
;;
esac
done
}
# run_benchmark
function run_benchmark {
extra_cmd=''
if [[ ${mode} == "accuracy" ]]; then
mode_cmd=" --accuracy_only"
elif [[ ${mode} == "benchmark" ]]; then
mode_cmd=" --benchmark --max_eval_samples 100"
elif [[ ${mode} == "benchmark_only" ]]; then
mode_cmd=" --benchmark_only --max_eval_samples 100"
else
echo "Error: No such mode: ${mode}"
exit 1
fi
if [ "${topology}" == "pegasus_samsum_dynamic" ]; then
DATASET_NAME="samsum"
model_name_or_path="lvwerra/pegasus-samsum"
elif [ "${topology}" == "t5_base_cnn_dynamic" ]; then
DATASET_NAME="cnn_dailymail"
model_name_or_path="flax-community/t5-base-cnn-dm"
elif [ "${topology}" == "t5_large_cnn_dynamic" ]; then
DATASET_NAME="cnn_dailymail"
model_name_or_path="sysresearch101/t5-large-finetuned-xsum-cnn"
elif [ "${topology}" == "flan_t5_large_samsum_dynamic" ]; then
DATASET_NAME="samsum"
model_name_or_path="stacked-summaries/flan-t5-large-stacked-samsum-1024"
approach="PostTrainingDynamic"
elif [ "${topology}" == "flan_t5_large_samsum_static" ]; then
DATASET_NAME="samsum"
model_name_or_path="stacked-summaries/flan-t5-large-stacked-samsum-1024"
approach="PostTrainingStatic"
else
echo "unsupport topology: ${topology}"
exit 1
fi
if [[ ${int8} == "true" ]]; then
extra_cmd=$extra_cmd" --int8"
model_name_or_path=${tuned_checkpoint}
fi
echo $extra_cmd
if [ "${DATASET_NAME}" == "cnn_dailymail" ]; then
python -u ./run_summarization.py \
--model_name_or_path ${model_name_or_path} \
--dataset_name ${DATASET_NAME} \
--dataset_config "3.0.0" \
--source_prefix "summarize: " \
--do_eval \
--per_device_eval_batch_size ${batch_size} \
--output_dir ${tuned_checkpoint} \
--no_cuda \
--overwrite_output_dir \
--overwrite_cache \
--predict_with_generate \
${mode_cmd} \
${extra_cmd}
else
python -u ./run_summarization.py \
--model_name_or_path ${model_name_or_path} \
--dataset_name ${DATASET_NAME} \
--do_eval \
--per_device_eval_batch_size ${batch_size} \
--output_dir ${tuned_checkpoint} \
--no_cuda \
--overwrite_output_dir \
--overwrite_cache \
--predict_with_generate \
${mode_cmd} \
${extra_cmd}
fi
}
main "$@"