Upload llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256
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llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/bench.slurm
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#!/bin/bash
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#SBATCH --job-name=bench_cluster
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#SBATCH --time=01:30:00
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#SBATCH --partition=hopper-prod
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#SBATCH --nodes=8
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#SBATCH --gres=gpu:8
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#SBATCH --qos=high
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#SBATCH --ntasks-per-node=1
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#SBATCH --cpus-per-task=96
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#SBATCH --exclusive
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#SBATCH --output=/fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out
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#SBATCH --error=/fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out
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# Function to update status based on squeue output
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update_status() {
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job_id=$1
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status_file=$2
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# For unknown reasons, it doenst update status for pending. It only works for running
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while true; do
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job_status=$(squeue --job $job_id --noheader --format=%T)
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echo "Job status: $job_status"
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if [ -z "$job_status" ]; then
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# Job has finished or is not found
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break
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elif [ "$job_status" = "RUNNING" ]; then
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printf "running" > $status_file
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break
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fi
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sleep 10
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done
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}
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# Misc initializations.
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echo "========================"
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echo "START TIME: $(date)"
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source /fsx/ferdinandmom/miniforge3/etc/profile.d/conda.sh
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conda activate /fsx/ferdinandmom/miniforge3/envs/env-bench-cluster
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echo python3 version = $(python3 --version)
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echo "========================"
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# Slurm stuff
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export HOSTNAMES=$(scontrol show hostnames "$SLURM_JOB_NODELIST")
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export MASTER_ADDR=$(scontrol show hostnames "$SLURM_JOB_NODELIST" | head -n 1)
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export MASTER_PORT=$((1024 + RANDOM % 64511))
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export TMPDIR=/scratch
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export HF_DATASETS_CACHE="/admin/home/ferdinand_mom/.cache"
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export CUBLAS_WORKSPACE_CONFIG=":4096:8"
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export CUDA_DEVICE_MAX_CONNECTIONS="1"
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huggingface-cli login --token $HUGGINGFACE_TOKEN
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NANOTRON_REPO="/fsx/ferdinandmom/ferdinand-hf/bench_cluster/nanotron"
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CMD="$NANOTRON_REPO/run_train.py --config-file /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/config.yaml"
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LAUNCHER="torchrun \
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--nproc_per_node 8 \
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--nnodes 8 \
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--rdzv_endpoint ${MASTER_ADDR}:${MASTER_PORT} \
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--rdzv_backend c10d \
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--max_restarts 0 \
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--tee 3 \
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--node_rank ${SLURM_PROCID}"
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# Checkout the bench_cluster branch
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cd $NANOTRON_REPO
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git checkout bench_cluster
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cd ..
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# Get the current job ID
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job_id=${SLURM_JOB_ID}
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# Update status to "pending" or "running" in the background
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update_status $job_id /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt &
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# Run the main command
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srun -u $LAUNCHER $CMD
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exit_status=$?
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# Update status based on the exit status of `srun`
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if [ $exit_status -eq 0 ]; then
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printf "completed" > /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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else
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if grep -q "OutOfMemoryError" /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out; then
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printf "oom" > /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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elif grep -q " CUDA error: an illegal memory access" /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out; then
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printf "oom" > /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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elif grep -q "Timeout at NCCL" /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out; then
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printf "timeout" > /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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else
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printf "fail" > /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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fi
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fi
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# Run the report script if the job completed successfully
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if [ $exit_status -eq 0 ]; then
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python /fsx/ferdinandmom/ferdinand-hf/bench_cluster/main.py report --inp_dir /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256 --is_logs
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python /fsx/ferdinandmom/ferdinand-hf/bench_cluster/main.py report --inp_dir /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256 --is_profiler
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fi
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# Push to hub the folder using huggingface_cli
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huggingface-cli upload nanotron/bench_cluster /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256 llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256 --commit-message "Upload llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256"
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# Verify the upload
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if [ $? -eq 0 ]; then
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echo "Uploading to Huggingface Hub successful"
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else
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echo "Failed to upload to Huggingface Hub"
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fi
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llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/config.yaml
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general:
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project: bench_cluster
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seed: 42
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model:
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ddp_bucket_cap_mb: 25
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dtype: bfloat16
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init_method:
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std: 0.025
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make_vocab_size_divisible_by: 1
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model_config:
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bos_token_id: 1
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eos_token_id: 2
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hidden_act: silu
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hidden_size: 2048
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initializer_range: 0.02
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intermediate_size: 4096
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is_llama_config: true
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max_position_embeddings: 4096
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num_attention_heads: 32
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num_hidden_layers: 24
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num_key_value_heads: 32
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pad_token_id: null
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pretraining_tp: 1
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rms_norm_eps: 1.0e-05
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rope_scaling: null
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rope_theta: 10000.0
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tie_word_embeddings: true
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use_cache: true
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vocab_size: 50257
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optimizer:
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accumulate_grad_in_fp32: true
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clip_grad: 1.0
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learning_rate_scheduler:
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learning_rate: 0.0001
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lr_decay_style: linear
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lr_warmup_style: linear
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lr_warmup_steps: 1
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min_decay_lr: 1.0e-05
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optimizer_factory:
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adam_beta1: 0.9
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adam_beta2: 0.95
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adam_eps: 1.0e-08
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name: adamW
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torch_adam_is_fused: true
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weight_decay: 0.01
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zero_stage: 1
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parallelism:
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dp: 2
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expert_parallel_size: 1
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pp: 2
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pp_engine: 1f1b
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tp: 16
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tp_linear_async_communication: false
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tp_mode: REDUCE_SCATTER
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profiler:
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profiler_export_path: /fsx/ferdinandmom/ferdinand-hf/bench_cluster/results/llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256
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tokenizer:
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tokenizer_max_length: null
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tokenizer_name_or_path: openai-community/gpt2
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tokenizer_revision: null
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data_stages:
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- name: Training Stage
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start_training_step: 1
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data:
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dataset:
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dataset_overwrite_cache: false
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dataset_processing_num_proc_per_process: 64
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hf_dataset_config_name: null
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hf_dataset_or_datasets: roneneldan/TinyStories
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hf_dataset_splits: train
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text_column_name: text
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num_loading_workers: 0
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seed: 42
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lighteval: null
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tokens:
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train_steps: 20
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val_check_interval: -1
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batch_accumulation_per_replica: 2
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limit_test_batches: 0
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limit_val_batches: 0
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micro_batch_size: 256
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sequence_length: 4096
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logging:
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iteration_step_info_interval: 1
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log_level: info
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log_level_replica: info
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checkpoints:
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checkpoint_interval: 100000
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checkpoints_path: /dev/null
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resume_checkpoint_path: null
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llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/log.out
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The diff for this file is too large to render.
See raw diff
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llama-1B/64_GPUS/dp-2_tp-16_pp-2_mbz-256/status.txt
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oom
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