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			254 lines
		
	
	
		
			8.5 KiB
		
	
	
	
		
			Bash
		
	
	
		
			Executable File
		
	
	
	
	
			
		
		
	
	
			254 lines
		
	
	
		
			8.5 KiB
		
	
	
	
		
			Bash
		
	
	
		
			Executable File
		
	
	
	
	
| #!/bin/bash
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| 
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| set -e
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| 
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| # Parse beaker-specific arguments
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| SKIP_DOCKER_BUILD=false
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| PREEMPTIBLE=false
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| EXP_NAME=""
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| 
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| # Store all arguments to pass to python command
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| PYTHON_ARGS=()
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| 
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| while [[ $# -gt 0 ]]; do
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|     case $1 in
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|         --skip-docker-build)
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|             SKIP_DOCKER_BUILD=true
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|             shift
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|             ;;
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|         --preemptible)
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|             PREEMPTIBLE=true
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|             shift
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|             ;;
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|         --name)
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|             EXP_NAME="$2"
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|             shift 2
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|             ;;
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|         --help|-h)
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|             echo "Usage: $0 [beaker-options] [grpo-training-options]"
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|             echo ""
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|             echo "Beaker-specific options:"
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|             echo "  --skip-docker-build            Skip Docker build"
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|             echo "  --preemptible                  Use preemptible instances"
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|             echo "  --name NAME                    Experiment name (used in output directory)"
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|             echo ""
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|             echo "All other arguments are forwarded to python -m olmocr.train.grpo_train"
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|             echo "Run 'python -m olmocr.train.grpo_train --help' to see available training options"
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|             exit 0
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|             ;;
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|         *)
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|             # Store all other arguments to pass to python command
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|             PYTHON_ARGS+=("$1")
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|             shift
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|             ;;
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|     esac
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| done
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| 
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| echo "Preemptible: $PREEMPTIBLE"
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| echo "Skip Docker Build: $SKIP_DOCKER_BUILD"
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| echo "Arguments to forward: ${PYTHON_ARGS[@]}"
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| 
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| # Use conda environment Python if available, otherwise use system Python
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| if [ -n "$CONDA_PREFIX" ]; then
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|     PYTHON="$CONDA_PREFIX/bin/python"
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|     echo "Using conda Python from: $CONDA_PREFIX"
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| else
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|     PYTHON="python"
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|     echo "Warning: No conda environment detected, using system Python"
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| fi
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| 
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| # Get version from version.py
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| VERSION=$($PYTHON -c 'import olmocr.version; print(olmocr.version.VERSION)')
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| echo "OlmOCR version: $VERSION"
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| 
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| # Get first 10 characters of git hash
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| GIT_HASH=$(git rev-parse HEAD | cut -c1-10)
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| echo "Git hash: $GIT_HASH"
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| 
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| # Get current git branch name
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| GIT_BRANCH=$(git rev-parse --abbrev-ref HEAD)
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| echo "Git branch: $GIT_BRANCH"
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| 
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| # Create full image tag
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| IMAGE_TAG="olmocr-grpo-${VERSION}-${GIT_HASH}"
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| echo "Building Docker image with tag: $IMAGE_TAG"
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| 
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| # Build and push Docker image if not skipping
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| if [ "$SKIP_DOCKER_BUILD" = false ]; then
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|     echo "Building Docker image..."
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|     docker build --platform linux/amd64 -f ./Dockerfile -t $IMAGE_TAG .
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|     
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|     # Push image to beaker
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|     echo "Trying to push image to Beaker..."
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|     if ! beaker image create --workspace ai2/oe-data-pdf --name $IMAGE_TAG $IMAGE_TAG 2>/dev/null; then
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|         echo "Warning: Beaker image with tag $IMAGE_TAG already exists. Using existing image."
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|     fi
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| else
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|     echo "Skipping Docker build as requested"
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| fi
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| 
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| # Get Beaker username
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| BEAKER_USER=$(beaker account whoami --format json | jq -r '.[0].name')
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| echo "Beaker user: $BEAKER_USER"
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| 
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| # Create Python script to run beaker experiment
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| cat << 'EOF' > /tmp/run_grpo_experiment.py
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| import sys
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| import shlex
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| import os
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| from beaker import Beaker, ExperimentSpec, TaskSpec, TaskContext, ResultSpec, TaskResources, ImageSource, Priority, Constraints, EnvVar, DataMount
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| 
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| # Get parameters from command line
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| image_tag = sys.argv[1]
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| beaker_user = sys.argv[2]
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| git_branch = sys.argv[3]
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| git_hash = sys.argv[4]
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| preemptible = sys.argv[5] == "true"
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| exp_name = sys.argv[6]  # Empty string if not provided
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| # All remaining arguments are the python command arguments
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| python_args = sys.argv[7:]
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| 
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| # Initialize Beaker client
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| b = Beaker.from_env(default_workspace="ai2/olmocr")
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| 
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| # Build the training command
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| commands = [
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|     # Install dependencies
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|     "pip install .[train]",
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|     "pip install trl==0.22.2 wandb",
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|     "pip install transformers==4.55.2",  # Updated for GRPO compatibility
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|     "pip install flash-attn==2.8.0.post2 --no-build-isolation",
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|     "pip install vllm==v0.10.1.1",
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|     "pip install s5cmd",
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|     
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|     # Sync the bench data from S3
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|     "echo 'Syncing bench data from S3...'",
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|     "mkdir -p /data/olmOCR-bench",
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|     "s5cmd sync 's3://ai2-oe-data/jakep/olmocr/olmOCR-bench-snapshot-082225/*' /data/olmOCR-bench/",
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|     "s5cmd sync 's3://ai2-oe-data/jakep/grpo_data_mixes/*' /data/jakep/grpo_data_mixes/",
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|     
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|     # Build GRPO training command
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|     "echo 'Starting GRPO training...'",
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| ]
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| 
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| # Check if model_name is an S3 path and handle it
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| model_sync_commands = []
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| modified_args = list(python_args)
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| for i in range(len(modified_args)):
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|     if modified_args[i] == "--model_name" and i + 1 < len(modified_args):
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|         model_path = modified_args[i + 1].rstrip('/')
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|         if model_path.startswith("s3://"):
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|             # Extract checkpoint name from S3 path (last part of path)
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|             checkpoint_name = model_path.split('/')[-1]
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|             local_model_path = f"/data/models/{checkpoint_name}"
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|             
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|             # Create sync commands
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|             model_sync_commands = [
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|                 f"echo 'Syncing model from S3: {model_path}'",
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|                 "mkdir -p /data/models",
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|                 f"s5cmd sync '{model_path}/*' '{local_model_path}/'",
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|             ]
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|             
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|             # Replace S3 path with local path in arguments
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|             modified_args[i + 1] = local_model_path
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|         break
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| 
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| # Add model sync commands if needed
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| commands.extend(model_sync_commands)
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| 
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| # Build the python command with forwarded arguments
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| # Add default paths if not provided in arguments
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| grpo_cmd = ["python -m olmocr.train.grpo_train"]
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| 
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| # Check if certain required arguments are in the provided args, add defaults if not
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| arg_str = " ".join(modified_args)
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| if "--train_bench_data_folder" not in arg_str:
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|     grpo_cmd.append("--train_bench_data_folder /data/olmOCR-bench/bench_data")
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| if "--eval_bench_data_folder" not in arg_str:
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|     grpo_cmd.append("--eval_bench_data_folder /data/olmOCR-bench/bench_data")
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| if "--output_dir" not in arg_str:
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|     output_dir = "/weka/oe-training-default/jakep/olmocr-grpo-checkpoints"
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|     # Build subdirectory based on exp_name and BEAKER_WORKLOAD_ID
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|     beaker_workload_id = os.environ.get("BEAKER_WORKLOAD_ID")
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|     if exp_name and beaker_workload_id:
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|         output_dir = f"{output_dir}/{exp_name}-{beaker_workload_id}"
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|     elif beaker_workload_id:
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|         output_dir = f"{output_dir}/{beaker_workload_id}"
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|     elif exp_name:
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|         output_dir = f"{output_dir}/{exp_name}"
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|     grpo_cmd.append(f"--output_dir {output_dir}")
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| 
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| # Add all the (possibly modified) arguments
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| grpo_cmd.extend(modified_args)
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| 
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| # Add the GRPO command to the commands list
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| commands.append(" ".join(grpo_cmd))
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| 
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| # Extract model name from arguments if provided (for description)
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| model_name = "Unknown"
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| for i, arg in enumerate(modified_args):
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|     if arg in ["--model_name", "--model"]:
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|         if i + 1 < len(modified_args):
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|             model_name = modified_args[i + 1]
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|             break
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| 
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| # Build task spec
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| task_spec = TaskSpec(
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|     name="olmocr-grpo-training",
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|     image=ImageSource(beaker=f"{beaker_user}/{image_tag}"),
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|     command=[
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|         "bash", "-c",
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|         " && ".join(commands)
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|     ],
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|     context=TaskContext(
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|         priority=Priority.normal,
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|         preemptible=preemptible,
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|     ),
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|     resources=TaskResources(
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|         gpu_count=1,
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|         shared_memory="10GiB"
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|     ),
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|     constraints=Constraints(cluster=["ai2/titan-cirrascale"]),
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|     result=ResultSpec(path="/noop-results"),
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|     env_vars=[
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|         EnvVar(name="LOG_FILTER_TYPE", value="local_rank0_only"),
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|         EnvVar(name="OMP_NUM_THREADS", value="8"),
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|         EnvVar(name="BEAKER_USER_ID", value=beaker_user),
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|         EnvVar(name="AWS_ACCESS_KEY_ID", secret="ALLENNLP_AWS_ACCESS_KEY_ID"),
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|         EnvVar(name="AWS_SECRET_ACCESS_KEY", secret="ALLENNLP_AWS_SECRET_ACCESS_KEY"),
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|         EnvVar(name="WANDB_API_KEY", secret="JAKE_WANDB_API_KEY"),
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|     ],
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|     datasets=[
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|         DataMount.new(mount_path="/weka/oe-data-default", weka="oe-data-default"),
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|         DataMount.new(mount_path="/weka/oe-training-default", weka="oe-training-default"),
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|     ]
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| )
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| 
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| # Create experiment spec
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| experiment_spec = ExperimentSpec(
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|     description=f"OlmOCR GRPO Training - Model: {model_name}, Branch: {git_branch}, Commit: {git_hash}",
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|     budget="ai2/oe-base",
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|     tasks=[task_spec],
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| )
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| 
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| # Create the experiment
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| experiment = b.experiment.create(spec=experiment_spec, workspace="ai2/olmocr")
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| print(f"Created GRPO training experiment: {experiment.id}")
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| print(f"View at: https://beaker.org/ex/{experiment.id}")
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| EOF
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| 
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| # Run the Python script to create the experiment
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| echo "Creating Beaker GRPO experiment..."
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| $PYTHON /tmp/run_grpo_experiment.py \
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|     "$IMAGE_TAG" \
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|     "$BEAKER_USER" \
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|     "$GIT_BRANCH" \
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|     "$GIT_HASH" \
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|     "$PREEMPTIBLE" \
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|     "$EXP_NAME" \
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|     "${PYTHON_ARGS[@]}"
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| 
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| # Clean up temporary file
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| rm /tmp/run_grpo_experiment.py
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| 
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| echo "GRPO training experiment submitted successfully!" | 
