Added code_eval.py for convenient evaluation with bigcode-evaluation-harness
Browse files- code_eval.py +149 -0
 
    	
        code_eval.py
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| 1 | 
         
            +
            import fnmatch
         
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| 2 | 
         
            +
            import torch
         
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| 3 | 
         
            +
            from dataclasses import dataclass, replace
         
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| 4 | 
         
            +
            from bigcode_eval.tasks import ALL_TASKS
         
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| 5 | 
         
            +
            from bigcode_eval.evaluator import Evaluator
         
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| 6 | 
         
            +
            from dmx.compressor import config_rules
         
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| 7 | 
         
            +
            from dmx.compressor.modeling import DmxModel
         
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| 8 | 
         
            +
            from transformers import ( AutoModelForCausalLM, AutoTokenizer )
         
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| 9 | 
         
            +
            import traceback
         
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| 10 | 
         
            +
             
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| 11 | 
         
            +
            @dataclass
         
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| 12 | 
         
            +
            class BigcodeEvalArguments:
         
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| 13 | 
         
            +
                prefix: str = ""
         
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| 14 | 
         
            +
                do_sample: bool = True
         
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| 15 | 
         
            +
                temperature: float = 0.8
         
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| 16 | 
         
            +
                top_k: int = 0
         
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| 17 | 
         
            +
                top_p: float = 0.95
         
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| 18 | 
         
            +
                n_samples: int = 10
         
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| 19 | 
         
            +
                eos: str = "<|endoftext|>"
         
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| 20 | 
         
            +
                seed: int = 0
         
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| 21 | 
         
            +
                modeltype: str = "causal"
         
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| 22 | 
         
            +
                instruction_tokens: str = None
         
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| 23 | 
         
            +
                batch_size: int = 2
         
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| 24 | 
         
            +
                max_length_generation: int = 1024
         
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| 25 | 
         
            +
                limit: int = None
         
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| 26 | 
         
            +
                limit_start: int = 0
         
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| 27 | 
         
            +
                metric_output_path: str = "evaluation_results.json"
         
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| 28 | 
         
            +
                save_every_k_tasks: int = -1
         
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| 29 | 
         
            +
                postprocess: bool = True
         
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| 30 | 
         
            +
                allow_code_execution: bool = True
         
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| 31 | 
         
            +
                generation_only: bool = False
         
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| 32 | 
         
            +
                load_generations_path: str = None
         
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| 33 | 
         
            +
                load_data_path: str = None
         
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| 34 | 
         
            +
                save_generations: bool = False
         
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| 35 | 
         
            +
                load_generations_intermediate_paths: str = None
         
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| 36 | 
         
            +
                save_generations_path: str = "generations.json"
         
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| 37 | 
         
            +
                save_references: bool = False
         
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| 38 | 
         
            +
                save_references_path: str = "references.json"
         
     | 
| 39 | 
         
            +
                prompt: str = "prompt"
         
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| 40 | 
         
            +
                max_memory_per_gpu: str = None
         
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| 41 | 
         
            +
                check_references: bool = False
         
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| 42 | 
         
            +
             
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| 43 | 
         
            +
            def code_eval(model, tokenizer, task, dmx_config, args=None, accelerator=None):
         
     | 
| 44 | 
         
            +
                """
         
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| 45 | 
         
            +
                Run code evaluation on the provided task using the specified model and tokenizer.
         
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| 46 | 
         
            +
             
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| 47 | 
         
            +
                Args:
         
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| 48 | 
         
            +
                    model: The model to use for evaluation.
         
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| 49 | 
         
            +
                    tokenizer: The tokenizer to use for evaluation.
         
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| 50 | 
         
            +
                    task: The task to evaluate.
         
     | 
| 51 | 
         
            +
                    accelerator: Optional Accelerator instance.
         
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| 52 | 
         
            +
                    args: Optional dictionary of arguments to override defaults in BigcodeEvalArguments.
         
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| 53 | 
         
            +
             
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| 54 | 
         
            +
                Returns:
         
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| 55 | 
         
            +
                    result: A dictionary containing metric and result.
         
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| 56 | 
         
            +
                """
         
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| 57 | 
         
            +
                
         
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| 58 | 
         
            +
                if accelerator is None:
         
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| 59 | 
         
            +
                    from accelerate import Accelerator
         
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| 60 | 
         
            +
                    accelerator = Accelerator()
         
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| 61 | 
         
            +
             
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| 62 | 
         
            +
                # Initialize evaluation arguments
         
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| 63 | 
         
            +
                eval_args = BigcodeEvalArguments()
         
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| 64 | 
         
            +
                if args is not None:
         
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| 65 | 
         
            +
                    eval_args = replace(eval_args, **args)
         
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| 66 | 
         
            +
             
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| 67 | 
         
            +
                # Validate task
         
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| 68 | 
         
            +
                if not fnmatch.filter(ALL_TASKS, task):
         
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| 69 | 
         
            +
                    raise ValueError(f"Invalid task: {task}")
         
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| 70 | 
         
            +
             
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| 71 | 
         
            +
                # Set up model
         
     | 
| 72 | 
         
            +
                if dmx_config is not None:
         
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| 73 | 
         
            +
                    model = DmxModel.from_torch(model).to("cuda")
         
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| 74 | 
         
            +
                    tensor = torch.randint(1, 100, (1, eval_args.max_length_generation)).to("cuda")
         
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| 75 | 
         
            +
                    model.transform(model.dmx_config, *eval(f"config_rules.{dmx_config}"))
         
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| 76 | 
         
            +
                    setup = model(tensor)
         
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| 77 | 
         
            +
                else:
         
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| 78 | 
         
            +
                    model = model.to("cuda")
         
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| 79 | 
         
            +
                    tensor = torch.randint(1, 100, (1, eval_args.max_length_generation)).to("cuda")
         
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| 80 | 
         
            +
                    setup = model(tensor)
         
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| 81 | 
         
            +
             
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| 82 | 
         
            +
                # Set up tokenizer
         
     | 
| 83 | 
         
            +
                if not tokenizer.eos_token:
         
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| 84 | 
         
            +
                    if tokenizer.bos_token:
         
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| 85 | 
         
            +
                        tokenizer.eos_token = tokenizer.bos_token
         
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| 86 | 
         
            +
                        print("bos_token used as eos_token")
         
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| 87 | 
         
            +
                    else:
         
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| 88 | 
         
            +
                        raise ValueError("No eos_token or bos_token found")
         
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| 89 | 
         
            +
                try:
         
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| 90 | 
         
            +
                    tokenizer.pad_token = tokenizer.eos_token
         
     | 
| 91 | 
         
            +
                except AttributeError:
         
     | 
| 92 | 
         
            +
                    print("Not setting pad_token to eos_token")
         
     | 
| 93 | 
         
            +
                    pass
         
     | 
| 94 | 
         
            +
             
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| 95 | 
         
            +
                evaluator = Evaluator(accelerator, model, tokenizer, eval_args)
         
     | 
| 96 | 
         
            +
             
     | 
| 97 | 
         
            +
                try:
         
     | 
| 98 | 
         
            +
                    unparsed_result = evaluator.evaluate(task)
         
     | 
| 99 | 
         
            +
                except Exception as e:
         
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| 100 | 
         
            +
                    print(f"Error evaluating task {task}: {e}")
         
     | 
| 101 | 
         
            +
             
     | 
| 102 | 
         
            +
                if eval_args.n_samples == 1:
         
     | 
| 103 | 
         
            +
                    result = {task: {"pass@1": unparsed_result["pass@1"]}}
         
     | 
| 104 | 
         
            +
                elif eval_args.n_samples == 10:
         
     | 
| 105 | 
         
            +
                    result = {task: {"pass@10": unparsed_result["pass@10"]}}
         
     | 
| 106 | 
         
            +
                else:
         
     | 
| 107 | 
         
            +
                    result = {task: unparsed_result}
         
     | 
| 108 | 
         
            +
             
     | 
| 109 | 
         
            +
                return result
         
     | 
| 110 | 
         
            +
             
     | 
| 111 | 
         
            +
            def evaluate_model(model_repo_name, revision_name="main", dmx_config="BASELINE", task_name="humaneval", pass_k=1):
         
     | 
| 112 | 
         
            +
                model_kwargs = {
         
     | 
| 113 | 
         
            +
                    "revision": revision_name,
         
     | 
| 114 | 
         
            +
                    "trust_remote_code": True,
         
     | 
| 115 | 
         
            +
                }
         
     | 
| 116 | 
         
            +
             
     | 
| 117 | 
         
            +
                if pass_k == 10:
         
     | 
| 118 | 
         
            +
                    eval_args = {
         
     | 
| 119 | 
         
            +
                        "max_length_generation": 1024,
         
     | 
| 120 | 
         
            +
                        "batch_size": 2,
         
     | 
| 121 | 
         
            +
                        "n_samples": 10,
         
     | 
| 122 | 
         
            +
                        "temperature": 0.8,
         
     | 
| 123 | 
         
            +
                        "top_p": 0.95,
         
     | 
| 124 | 
         
            +
                    }
         
     | 
| 125 | 
         
            +
                else:
         
     | 
| 126 | 
         
            +
                    eval_args = {
         
     | 
| 127 | 
         
            +
                        "max_length_generation": 1024,
         
     | 
| 128 | 
         
            +
                        "batch_size": 1,
         
     | 
| 129 | 
         
            +
                        "n_samples": 1,
         
     | 
| 130 | 
         
            +
                        "do_sample": False,
         
     | 
| 131 | 
         
            +
                        "temperature": None,
         
     | 
| 132 | 
         
            +
                        "top_p": None,
         
     | 
| 133 | 
         
            +
                        "top_k": None,
         
     | 
| 134 | 
         
            +
                    }
         
     | 
| 135 | 
         
            +
                
         
     | 
| 136 | 
         
            +
                model = AutoModelForCausalLM.from_pretrained(model_repo_name, **model_kwargs)
         
     | 
| 137 | 
         
            +
                tokenizer = AutoTokenizer.from_pretrained(
         
     | 
| 138 | 
         
            +
                    model_repo_name,
         
     | 
| 139 | 
         
            +
                    **model_kwargs,
         
     | 
| 140 | 
         
            +
                    padding_side="right",
         
     | 
| 141 | 
         
            +
                )
         
     | 
| 142 | 
         
            +
             
     | 
| 143 | 
         
            +
                try:
         
     | 
| 144 | 
         
            +
                    result = code_eval(model, tokenizer, task_name, dmx_config, args=eval_args)
         
     | 
| 145 | 
         
            +
                    return result, None
         
     | 
| 146 | 
         
            +
                except Exception as e:
         
     | 
| 147 | 
         
            +
                    error_message = f"Error during evaluation: {str(e)}\n\n{traceback.format_exc()}"
         
     | 
| 148 | 
         
            +
                    print(error_message)
         
     | 
| 149 | 
         
            +
                    return None, error_message
         
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