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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,3 @@ | ||
| # ruff: noqa: F401 | ||
| from appworld_experiments.code.gepa.gepa_agent import GEPAAgent | ||
| from appworld_experiments.code.gepa.gepa_react import GEPAReActAgent |
| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,80 @@ | ||
| from appworld import AppWorld | ||
| from appworld.common.constants import DEFAULT_EXPERIMENT_NAME | ||
| from appworld_experiments.code.ace.evaluation_agent import Agent, ExecutionIO | ||
|
|
||
| from appworld.evaluator import evaluate_task | ||
|
|
||
| class GEPAAgent(Agent): | ||
| def __init__( | ||
| self, | ||
| generator_model_config: dict, | ||
| appworld_config: dict | None = None, | ||
| logger_config: dict | None = None, | ||
| max_steps: int = 10, | ||
| max_cost_overall: float = 3000, | ||
| max_cost_per_task: float = 10, | ||
| log_lm_calls: bool = False, | ||
| ): | ||
| super().__init__( | ||
| generator_model_config=generator_model_config, | ||
| appworld_config=appworld_config, | ||
| logger_config=logger_config, | ||
| max_steps=max_steps, | ||
| max_cost_overall=max_cost_overall, | ||
| max_cost_per_task=max_cost_per_task, | ||
| log_lm_calls=log_lm_calls | ||
| ) | ||
|
|
||
| def solve_task(self, task_id: str, experiment_name: str | None = None): | ||
| experiment_name = experiment_name or DEFAULT_EXPERIMENT_NAME | ||
| self.cost_tracker.reset(task_id) | ||
|
|
||
| self.initial_code_idx = None | ||
| self.previous_code_idx = None | ||
| self.previous_error_idx = None | ||
| reflections = [] | ||
| test_tracker = None | ||
|
|
||
| with AppWorld( | ||
| task_id=task_id, experiment_name=experiment_name, **self.appworld_config | ||
| ) as world: | ||
| execution_outputs: list[ExecutionIO] = [] | ||
| self.initialize(world) | ||
|
|
||
| print("---Max steps---: ", self.max_steps) | ||
| for _ in range(self.max_steps): | ||
| self.step_number += 1 | ||
| execution_inputs, cost, reflection = self.next_execution_inputs_and_cost(execution_outputs, "") | ||
| if reflection: | ||
| reflections.append(reflection) | ||
|
|
||
| if len(execution_inputs) != 0: | ||
| execution_outputs = [ | ||
| ExecutionIO( | ||
| content=world.execute(execution_input.content), | ||
| metadata=execution_input.metadata, | ||
| ) | ||
| for execution_input in execution_inputs | ||
| ] | ||
|
|
||
| # Show execution results to user via logger | ||
| for i, output in enumerate(execution_outputs): | ||
| if output.content.strip(): # only show non-empty outputs | ||
| self.logger.show_message( | ||
| role="environment", | ||
| message=output.content, | ||
| step_number=self.step_number | ||
| ) | ||
|
|
||
| self.cost_tracker.add(task_id, cost) | ||
| self.log_cost() | ||
|
|
||
| if world.task_completed() or self.cost_tracker.exceeded(): | ||
| test_tracker, _ = evaluate_task(task_id, experiment_name) | ||
| break | ||
|
|
||
| if test_tracker is None: | ||
| test_tracker = [execution_output.content for execution_output in execution_outputs] | ||
|
|
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| self.logger.complete_task() | ||
| return test_tracker |
| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,203 @@ | ||
| import copy | ||
| import json | ||
| import os | ||
| import re | ||
| from typing import Any | ||
|
|
||
| from jinja2 import Template | ||
|
|
||
| from appworld import AppWorld | ||
| from appworld.common.utils import read_file | ||
| from appworld_experiments.code.ace.evaluation_agent import Agent, ExecutionIO | ||
| from appworld_experiments.code.gepa.gepa_agent import GEPAAgent | ||
|
|
||
| @GEPAAgent.register("gepa_react") | ||
| class GEPAReActAgent(GEPAAgent): | ||
| def __init__( | ||
| self, | ||
| generator_prompt_file_path: str | None = None, | ||
| trained_playbook_file_path: str | None = None, | ||
| ignore_multiple_calls: bool = True, | ||
| max_prompt_length: int | None = None, | ||
| max_output_length: int = 400000, | ||
| **kwargs: Any, | ||
| ): | ||
| super().__init__(**kwargs) | ||
| self.generator_prompt_template = read_file(generator_prompt_file_path.replace("/", os.sep)).lstrip() | ||
| self.trained_playbook_file_path = trained_playbook_file_path | ||
| self.max_prompt_length = max_prompt_length | ||
| self.max_output_length = max_output_length | ||
| self.ignore_multiple_calls = ignore_multiple_calls | ||
| self.partial_code_regex = r".*```python\n(.*)" | ||
| self.full_code_regex = r"```python\n(.*?)```" | ||
|
|
||
| self.playbook = None | ||
| self.gepa_prompt_replace = None | ||
|
|
||
| def initialize(self, world: AppWorld): | ||
| super().initialize(world) | ||
| template = Template(self.generator_prompt_template) | ||
| app_descriptions = json.dumps( | ||
| [{"name": k, "description": v} for (k, v) in world.task.app_descriptions.items()], | ||
| indent=1, | ||
| ) | ||
| template_params = { | ||
| "input_str": world.task.instruction, | ||
| "main_user": world.task.supervisor, | ||
| "app_descriptions": app_descriptions, | ||
| "relevant_apis": str(world.task.ground_truth.required_apis), | ||
| "playbook": self.playbook, | ||
| } | ||
| output_str = template.render(template_params) | ||
| output_str = self.truncate_input(output_str) + "\n\n" | ||
| self.messages = self.text_to_messages(output_str) | ||
| self.num_instruction_messages = len(self.messages) | ||
| assert self.gepa_prompt_replace is not None | ||
| self.messages[0]['content'] = self.gepa_prompt_replace + self.messages[0]['content'] | ||
|
|
||
| def next_execution_inputs_and_cost( | ||
| self, last_execution_outputs: list[ExecutionIO], world_gt_code: str = None | ||
| ) -> tuple[ExecutionIO, float, str | None]: | ||
| if last_execution_outputs: | ||
| assert ( | ||
| len(last_execution_outputs) == 1 | ||
| ), "React expects exactly one last_execution_output." | ||
| last_execution_output_content = last_execution_outputs[0].content | ||
| potential_new_line = "" | ||
| last_execution_output_content = ( | ||
| "Output:\n```\n" + self.truncate_output(last_execution_output_content) + potential_new_line + "```\n\n" | ||
| ) | ||
| self.messages.append({"role": "user", "content": last_execution_output_content}) | ||
| messages = self.trimmed_messages | ||
| output = self.language_model.generate(messages=messages) | ||
| code, fixed_output_content = self.extract_code_and_fix_content(output["content"]) | ||
| self.messages.append({"role": "assistant", "content": fixed_output_content + "\n\n"}) | ||
| self.logger.show_message( | ||
| role="agent", message=fixed_output_content, step_number=self.step_number | ||
| ) | ||
| return [ExecutionIO(content=code)], output["cost"], None | ||
|
|
||
| def extract_code_and_fix_content(self, text: str) -> tuple[str, str]: | ||
| if text is None: | ||
| return "", "" | ||
| original_text = text | ||
| output_code = "" | ||
| match_end = 0 | ||
| # Handle multiple calls | ||
| for re_match in re.finditer(self.full_code_regex, original_text, flags=re.DOTALL): | ||
| code = re_match.group(1).strip() | ||
| if self.ignore_multiple_calls: | ||
| text = original_text[: re_match.end()] | ||
| return code, text | ||
| output_code += code + "\n" | ||
| match_end = re_match.end() | ||
| # Check for partial code match at end (no terminating ```) following the last match | ||
| partial_match = re.match( | ||
| self.partial_code_regex, original_text[match_end:], flags=re.DOTALL | ||
| ) | ||
| if partial_match: | ||
| output_code += partial_match.group(1).strip() | ||
| # Terminated due to stop condition; add stop condition to output | ||
| if not text.endswith("\n"): | ||
| text = text + "\n" | ||
| text = text + "```" | ||
| if len(output_code) == 0: | ||
| return "", text | ||
| else: | ||
| return output_code, text | ||
|
|
||
| def truncate_input(self, input_str: str) -> str: | ||
| if self.max_prompt_length is None: | ||
| return input_str | ||
| max_prompt_length = self.max_prompt_length | ||
| goal_index = input_str.rfind("Task:") | ||
| if goal_index == -1: | ||
| raise ValueError(f"No goal found in input string:\n{input_str}") | ||
| next_new_line_index = input_str.find("\n", goal_index) + 1 | ||
| init_prompt = input_str[:next_new_line_index] | ||
| prompt = input_str[next_new_line_index:] | ||
| if len(init_prompt) > max_prompt_length: | ||
| raise ValueError("Input prompt longer than max allowed length") | ||
| if len(prompt) > max_prompt_length - len(init_prompt): | ||
| new_prompt = prompt[-(max_prompt_length - len(init_prompt)) :] | ||
| cmd_index = new_prompt.find("ASSISTANT:") if "ASSISTANT:" in new_prompt else 0 | ||
| prompt = "\n[TRIMMED HISTORY]\n\n" + new_prompt[cmd_index:] | ||
| return init_prompt + prompt | ||
|
|
||
| def truncate_output(self, execution_output_content: str) -> str: | ||
| if len(execution_output_content) > 20000: | ||
| execution_output_content = execution_output_content[:20000] + "\n[REST NOT SHOWN FOR BREVITY]" | ||
| return execution_output_content | ||
|
|
||
| def text_to_messages(self, input_str: str) -> list[dict]: | ||
| messages_json = [] | ||
| last_start = 0 | ||
| for m in re.finditer("(USER|ASSISTANT|SYSTEM):\n", input_str, flags=re.IGNORECASE): | ||
| last_end = m.span()[0] | ||
| if len(messages_json) == 0: | ||
| if last_end != 0: | ||
| raise ValueError( | ||
| f"Start of the prompt has no assigned role: {input_str[:last_end]}" | ||
| ) | ||
| else: | ||
| messages_json[-1]["content"] = input_str[last_start:last_end] | ||
| role = m.group(1).lower() | ||
| messages_json.append({"role": role, "content": None}) | ||
| last_start = m.span()[1] | ||
| messages_json[-1]["content"] = input_str[last_start:] | ||
| return messages_json | ||
|
|
||
| def messages_to_text(self, messages: list[dict]) -> str: | ||
| output_str = "" | ||
| for message in messages: | ||
| role = message["role"] | ||
| if role == "system": | ||
| output_str += "SYSTEM:\n" + message["content"] | ||
| if role == "assistant": | ||
| output_str += "ASSISTANT:\n" + message["content"] | ||
| elif role == "user": | ||
| output_str += "USER:\n" + message["content"] | ||
| else: | ||
| raise ValueError(f"Unknown message role {role} in: {message}") | ||
| return output_str | ||
|
|
||
| @property | ||
| def trimmed_messages(self) -> list[dict]: | ||
| messages = copy.deepcopy(self.messages) | ||
| pre_messages = messages[: self.num_instruction_messages - 1] | ||
| post_messages = messages[self.num_instruction_messages - 1 :] | ||
| output_str = self.messages_to_text(post_messages) | ||
| remove_prefix = output_str[: output_str.index("Task: ") + 6] | ||
| output_str = output_str.removeprefix( | ||
| remove_prefix | ||
| ) # not needed, it's only to match the original code | ||
| observation_index = 0 | ||
| while len(output_str) > self.max_output_length: | ||
| found_block = False | ||
| # Dont remove observations from the last 5 blocks | ||
| if observation_index < len(post_messages) - 5: | ||
| # Find the next observation block to remove | ||
| for message_index, message in enumerate(post_messages[observation_index:]): | ||
| # Only keep the code blocks and remove observations | ||
| if message["role"] == "user" and message["content"].startswith("Output:"): | ||
| message["content"] = "Output:\n```\n[NOT SHOWN FOR BREVITY]```\n\n" | ||
| found_block = True | ||
| observation_index += message_index + 1 | ||
| break | ||
| if not found_block: | ||
| observation_index = len(post_messages) | ||
| # If no observation block left to trim, we need to start removing complete history blocks | ||
| if not found_block and len(post_messages): | ||
| first_post_message = copy.deepcopy(post_messages[0]) | ||
| if not first_post_message["content"].endswith("[TRIMMED HISTORY]\n\n"): | ||
| first_post_message["content"] += "[TRIMMED HISTORY]\n\n" | ||
| post_messages = [first_post_message] + post_messages[2:] | ||
| found_block = True | ||
| if not found_block: | ||
| raise ValueError(f"No blocks found to be removed!\n{post_messages}") | ||
| output_str = self.messages_to_text( | ||
| post_messages | ||
| ) # not needed, it's only to match the original code | ||
| output_str = output_str.removeprefix(remove_prefix) | ||
| messages = pre_messages + post_messages | ||
| return messages | ||
| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,47 @@ | ||
| local project_home_path = std.extVar("APPWORLD_PROJECT_PATH"); | ||
| local experiment_prompts_path = project_home_path + "/experiments/prompts"; | ||
| local experiment_playbooks_path = project_home_path + "/experiments/playbooks"; | ||
| local experiment_configs_path = project_home_path + "/experiments/configs"; | ||
| local experiment_code_path = project_home_path + "/experiments/code"; | ||
|
|
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| local generator_model_config = { | ||
| "name": "DeepSeek-V3.1", | ||
| "provider": "sambanova", | ||
| "temperature": 0, | ||
| "seed": 100, | ||
| "stop": ["<|endoftext|>", "<|eot_id|>", "<|start_header_id|>"], | ||
| "logprobs": false, | ||
| "top_logprobs": null, | ||
| "frequency_penalty": 0, | ||
| "presence_penalty": 0, | ||
| "n": 1, | ||
| "response_format": {"type": "text"}, | ||
| "retry_after_n_seconds": 10, | ||
| "use_cache": true, | ||
| "max_retries": 50, | ||
| }; | ||
|
|
||
| { | ||
| "type": "gepa", | ||
| "config": { | ||
| "run_type": "gepa-adaptation", | ||
|
Collaborator
There was a problem hiding this comment. Choose a reason for hiding this commentThe reason will be displayed to describe this comment to others. Learn more. Is this jsonnet runnable using the appworld cli? It would require a run.py file that implements a run_experiment function?
Collaborator
Author
There was a problem hiding this comment. Choose a reason for hiding this commentThe reason will be displayed to describe this comment to others. Learn more. Currently no, this is mainly for the GEPA apps code to initialize the agent with |
||
| "agent": { | ||
| "type": "gepa_react", | ||
| "generator_model_config": generator_model_config, | ||
| "appworld_config": { | ||
| "random_seed": 123, | ||
| }, | ||
| "logger_config": { | ||
| "color": true, | ||
| "verbose": true, | ||
| }, | ||
| "generator_prompt_file_path": experiment_prompts_path + "/appworld_react_gepa_prompt.txt", | ||
| "ignore_multiple_calls": true, | ||
| "max_steps": 40, | ||
| "max_cost_overall": 1000, | ||
| "max_cost_per_task": 10, | ||
| "log_lm_calls": true, | ||
| }, | ||
| "dataset": "train", | ||
| } | ||
| } | ||
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