mirror of
https://github.com/OpenHands/OpenHands.git
synced 2025-12-26 05:48:36 +08:00
* add draft dockerfile for build all * add rsync for build * add all-in-one docker * update prepare scripts * Update swe_env_box.py * Add swe_entry.sh (buggy now) * Parse the test command in swe_entry.sh * Update README for instance eval in sandbox * revert specialized config * replace run_as_devin as an init arg * set container & run_as_root via args * update swe entry script * update env * remove mounting * allow error after swe_entry * update swe_env_box * move file * update gitignore * get swe_env_box a working demo * support faking user response & provide sandox ahead of time; also return state for controller * tweak main to support adding controller kwargs * add module * initialize plugin for provided sandbox * add pip cache to plugin & fix jupyter kernel waiting * better print Observation output * add run infer scripts * update readme * add utility for getting diff patch * use get_diff_patch in infer * update readme * support cost tracking for codeact * add swe agent edit hack * disable color in git diff * fix git diff cmd * fix state return * support limit eval * increase t imeout and export pip cache * add eval limit config * return state when hit turn limit * save log to file; allow agent to give up * run eval with max 50 turns * add outputs to gitignore * save swe_instance & instruction * add uuid to swebench * add streamlit dep * fix save series * fix the issue where session id might be duplicated * allow setting temperature for llm (use 0 for eval) * Get report from agent running log * support evaluating task success right after inference. * remove extra log * comment out prompt for baseline * add visualizer for eval * use plaintext for instruction * reduce timeout for all; only increase timeout for init * reduce timeout for all; only increase timeout for init * ignore sid for swe env * close sandbox in each eval loop * update visualizer instruction * increase max chars * add finish action to history too * show test result in metrics * add sidebars for visualizer * also visualize swe_instance * cleanup browser when agent controller finish runinng * do not mount workspace for swe-eval to avoid accidentally overwrite files * Revert "do not mount workspace for swe-eval to avoid accidentally overwrite files" This reverts commit 8ef77390543e562e6f0a5a9992418014d8b3010c. * Revert "Revert "do not mount workspace for swe-eval to avoid accidentally overwrite files"" This reverts commit 016cfbb9f0475f32bacbad5822996b4eaff24a5e. * run jupyter command via copy to, instead of cp to mount * only print mixin output when failed * change ssh box logging * add visualizer for pass rate * add instance id to sandbox name * only remove container we created * use opendevin logger in main * support multi-processing infer * add back metadata, support keyboard interrupt * remove container with startswith * make pbar behave correctly * update instruction w/ multi-processing * show resolved rate by repo * rename tmp dir name * attempt to fix racing for copy to ssh_box * fix script * bump swe-bench-all version * fix ipython with self-contained commands * add jupyter demo to swe_env_box * make resolved count two column * increase height * do not add glob to url params * analyze obs length * print instance id prior to removal handler * add gold patch in visualizer * fix interactive git by adding a git --no-pager as alias * increase max_char to 10k to cover 98% of swe-bench obs cases * allow parsing note * prompt v2 * add iteration reminder * adjust user response * adjust order * fix return eval * fix typo * add reminder before logging * remove other resolve rate * re adjust to new folder structure * support adding eval note * fix eval note path * make sure first log of each instance is printed * add eval note * fix the display for visualizer * tweak visualizer for better git patch reading * exclude empty patch * add retry mechanism for swe_env_box start * fix ssh timeout issue * add stat field for apply test patch success * add visualization for fine-grained report * attempt to support monologue agent by constraining it to single thread * also log error msg when stopeed * save error as well * override WORKSPACE_MOUNT_PATH and WORKSPACE_BASE for monologue to work in mp * add retry mechanism for sshbox * remove retry for swe env box * try to handle loop state stopped * Add get report scripts * Add script to convert agent output to swe-bench format * Merge fine grained report for visualizer * Update eval readme * Update README.md * Add CodeAct gpt4-1106 output and eval logs on swe-bench-lite * Update the script to get model report * Update get_model_report.sh * Update get_agent_report.sh * Update report merge script * Add agent output conversion script * Update swe_lite_env_setup.sh * Add example swe-bench output files * Update eval readme * Remove redundant scripts * set iteration count down to false by default * fix: Issue where CodeAct agent was trying to log cost on local llm and throwing Undefined Model execption out of litellm (#1666) * fix: Issue where CodeAct agent was trying to log cost on local llm and throwing Undefined Model execption out of litellm * Review Feedback * Missing None Check * Review feedback and improved error handling --------- Co-authored-by: Robert Brennan <accounts@rbren.io> * fix prepare_swe_util scripts * update builder images * update setup script * remove swe-bench build workflow * update lock * remove experiments since they are moved to hf * remove visualizer (since it is moved to hf repo) * simply jupyter execution via heredoc * update ssh_box * add initial docker readme * add pkg-config as dependency * add script for swe_bench all-in-one docker * add rsync to builder * rename var * update commit * update readme * update lock * support specify timeout for long running tasks * fix path * separate building of all deps and files * support returning states at the end of controller * remove return None * support specify timeout for long running tasks * add timeout for all existing sandbox impl * fix swe_env_box for new codebase * update llm config in config.py * support pass sandbox in * remove force set * update eval script * fix issue of overriding final state * change default eval output to hf demo * change default eval output to hf demo * fix config * only close it when it is NOT external sandbox * add scripts * tweak config * only put in hostory when state has history attr * fix agent controller on the case of run out interaction budget * always assume state is always not none * remove print of final state * catch all exception when cannot compute completion cost * Update README.md * save source into json * fix path * update docker path * return the final state on close * merge AgentState with State * fix integration test * merge AgentState with State * fix integration test * add ChangeAgentStateAction to history in attempt to fix integration * add back set agent state * update tests * update tests * move scripts for setup * update script and readme for infer * do not reset logger when n processes == 1 * update eval_infer scripts and readme * simplify readme * copy over dir after eval * copy over dir after eval * directly return get state * update lock * fix output saving of infer * replace print with logger * update eval_infer script * add back the missing .close * increase timeout * copy all swe_bench_format file * attempt to fix output parsing * log git commit id as metadata * fix eval script * update lock * update unit tests * fix argparser unit test * fix lock * the deps are now lightweight enough to be incude in make build * add spaces for tests * add eval outputs to gitignore * remove git submodule * readme * tweak git email * update upload instruction * bump codeact version for eval --------- Co-authored-by: Bowen Li <libowen.ne@gmail.com> Co-authored-by: huybery <huybery@gmail.com> Co-authored-by: Bart Shappee <bshappee@gmail.com> Co-authored-by: Robert Brennan <accounts@rbren.io>
289 lines
11 KiB
Python
289 lines
11 KiB
Python
import re
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from agenthub.codeact_agent.prompt import (
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COMMAND_DOCS,
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EXAMPLES,
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GITHUB_MESSAGE,
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SYSTEM_PREFIX,
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SYSTEM_SUFFIX,
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)
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from opendevin.controller.agent import Agent
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from opendevin.controller.state.state import State
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from opendevin.core.logger import opendevin_logger as logger
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from opendevin.events.action import (
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Action,
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AgentFinishAction,
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BrowseInteractiveAction,
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CmdRunAction,
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IPythonRunCellAction,
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MessageAction,
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)
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from opendevin.events.observation import (
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BrowserOutputObservation,
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CmdOutputObservation,
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IPythonRunCellObservation,
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)
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from opendevin.llm.llm import LLM
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from opendevin.runtime.plugins import (
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JupyterRequirement,
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PluginRequirement,
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SWEAgentCommandsRequirement,
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)
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ENABLE_GITHUB = True
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def parse_response(response) -> str:
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action = response.choices[0].message.content
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for lang in ['bash', 'ipython', 'browse']:
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if f'<execute_{lang}>' in action and f'</execute_{lang}>' not in action:
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action += f'</execute_{lang}>'
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return action
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def truncate_observation(observation: str, max_chars: int = 10_000) -> str:
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"""
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Truncate the middle of the observation if it is too long.
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"""
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if len(observation) <= max_chars:
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return observation
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half = max_chars // 2
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return (
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observation[:half]
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+ '\n[... Observation truncated due to length ...]\n'
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+ observation[-half:]
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)
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def swe_agent_edit_hack(bash_command: str) -> str:
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"""
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Hack to handle the SWE-agent edit command. The vanilla edit command will hang the SSHBox.
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REPLACE THIS:
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edit 683:693
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try:
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return list(urlsplit(url))
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except ValueError:
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raise ValidationError(self.error_messages['invalid'], code='invalid')
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end_of_edit
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WITH THIS:
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edit 683:693 <<EOF
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try:
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return list(urlsplit(url))
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except ValueError:
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raise ValidationError(self.error_messages['invalid'], code='invalid')
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EOF
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"""
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if 'edit' in bash_command:
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# edit\s(\d+):(\d+)([\s\S]*)end_of_edit
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# replace
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bash_command = re.sub(
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r'edit\s(\d+):(\d+)([\s\S]*?)end_of_edit',
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r'edit \1:\2 <<EOF\3EOF',
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bash_command,
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)
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return bash_command
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class CodeActAgent(Agent):
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VERSION = '1.3'
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"""
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The Code Act Agent is a minimalist agent.
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The agent works by passing the model a list of action-observation pairs and prompting the model to take the next step.
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### Overview
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This agent implements the CodeAct idea ([paper](https://arxiv.org/abs/2402.13463), [tweet](https://twitter.com/xingyaow_/status/1754556835703751087)) that consolidates LLM agents’ **act**ions into a unified **code** action space for both *simplicity* and *performance* (see paper for more details).
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The conceptual idea is illustrated below. At each turn, the agent can:
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1. **Converse**: Communicate with humans in natural language to ask for clarification, confirmation, etc.
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2. **CodeAct**: Choose to perform the task by executing code
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- Execute any valid Linux `bash` command
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- Execute any valid `Python` code with [an interactive Python interpreter](https://ipython.org/). This is simulated through `bash` command, see plugin system below for more details.
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### Plugin System
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To make the CodeAct agent more powerful with only access to `bash` action space, CodeAct agent leverages OpenDevin's plugin system:
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- [Jupyter plugin](https://github.com/OpenDevin/OpenDevin/tree/main/opendevin/runtime/plugins/jupyter): for IPython execution via bash command
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- [SWE-agent tool plugin](https://github.com/OpenDevin/OpenDevin/tree/main/opendevin/runtime/plugins/swe_agent_commands): Powerful bash command line tools for software development tasks introduced by [swe-agent](https://github.com/princeton-nlp/swe-agent).
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### Demo
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https://github.com/OpenDevin/OpenDevin/assets/38853559/f592a192-e86c-4f48-ad31-d69282d5f6ac
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*Example of CodeActAgent with `gpt-4-turbo-2024-04-09` performing a data science task (linear regression)*
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### Work-in-progress & Next step
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[] Support web-browsing
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[] Complete the workflow for CodeAct agent to submit Github PRs
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"""
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sandbox_plugins: list[PluginRequirement] = [
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JupyterRequirement(),
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SWEAgentCommandsRequirement(),
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]
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system_message: str = (
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f'{SYSTEM_PREFIX}\n{GITHUB_MESSAGE}\n\n{COMMAND_DOCS}\n\n{SYSTEM_SUFFIX}'
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if ENABLE_GITHUB
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else f'{SYSTEM_PREFIX}\n\n{COMMAND_DOCS}\n\n{SYSTEM_SUFFIX}'
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)
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def __init__(
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self,
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llm: LLM,
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) -> None:
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"""
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Initializes a new instance of the CodeActAgent class.
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Parameters:
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- llm (LLM): The llm to be used by this agent
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"""
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super().__init__(llm)
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self.reset()
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def reset(self) -> None:
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"""
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Resets the CodeAct Agent.
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"""
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super().reset()
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self.messages: list[dict[str, str]] = [
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{'role': 'system', 'content': self.system_message},
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{
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'role': 'user',
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'content': f"Here is an example of how you can interact with the environment for task solving:\n{EXAMPLES}\n\nNOW, LET'S START!",
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},
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]
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self.cost_accumulator = 0
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def step(self, state: State) -> Action:
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"""
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Performs one step using the CodeAct Agent.
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This includes gathering info on previous steps and prompting the model to make a command to execute.
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Parameters:
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- state (State): used to get updated info and background commands
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Returns:
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- CmdRunAction(command) - bash command to run
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- IPythonRunCellAction(code) - IPython code to run
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- BrowseInteractiveAction(browsergym_command) - BrowserGym commands to run
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- MessageAction(content) - Message action to run (e.g. ask for clarification)
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- AgentFinishAction() - end the interaction
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"""
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updated_info = state.updated_info
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if updated_info:
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for prev_action, obs in updated_info:
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if (
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isinstance(prev_action, MessageAction)
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and prev_action.source == 'user'
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):
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self.messages.append(
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{'role': 'user', 'content': prev_action.content}
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)
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if prev_action.content.strip() == '/exit':
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# User wants to exit
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return AgentFinishAction()
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if isinstance(obs, CmdOutputObservation):
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content = 'OBSERVATION:\n' + truncate_observation(obs.content)
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content += f'\n[Command {obs.command_id} finished with exit code {obs.exit_code}]]'
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self.messages.append({'role': 'user', 'content': content})
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elif isinstance(obs, IPythonRunCellObservation):
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content = 'OBSERVATION:\n' + obs.content
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# replace base64 images with a placeholder
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splitted = content.split('\n')
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for i, line in enumerate(splitted):
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if ' already displayed to user'
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)
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content = '\n'.join(splitted)
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content = truncate_observation(content)
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self.messages.append({'role': 'user', 'content': content})
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elif isinstance(obs, BrowserOutputObservation):
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content = 'OBSERVATION:\n' + truncate_observation(obs.content)
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self.messages.append({'role': 'user', 'content': content})
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latest_user_message = [m for m in self.messages if m['role'] == 'user'][-1]
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if latest_user_message:
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latest_user_message['content'] += (
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f'\n\nENVIRONMENT REMINDER: You have {state.max_iterations - state.iteration} turns left to complete the task.'
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)
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response = self.llm.completion(
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messages=self.messages,
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stop=[
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'</execute_ipython>',
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'</execute_bash>',
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'</execute_browse>',
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],
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temperature=0.0,
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)
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self.log_cost(response)
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action_str: str = parse_response(response)
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state.num_of_chars += sum(
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len(message['content']) for message in self.messages
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) + len(action_str)
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self.messages.append({'role': 'assistant', 'content': action_str})
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if finish_command := re.search(r'<finish>.*</finish>', action_str, re.DOTALL):
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thought = action_str.replace(finish_command.group(0), '').strip()
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return AgentFinishAction(thought=thought)
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if bash_command := re.search(
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r'<execute_bash>(.*)</execute_bash>', action_str, re.DOTALL
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):
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# remove the command from the action string to get thought
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thought = action_str.replace(bash_command.group(0), '').strip()
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# a command was found
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command_group = bash_command.group(1).strip()
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command_group = swe_agent_edit_hack(command_group)
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if command_group.strip() == 'exit':
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return AgentFinishAction()
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return CmdRunAction(command=command_group, thought=thought)
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elif python_code := re.search(
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r'<execute_ipython>(.*)</execute_ipython>', action_str, re.DOTALL
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):
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# a code block was found
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code_group = python_code.group(1).strip()
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thought = action_str.replace(python_code.group(0), '').strip()
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return IPythonRunCellAction(code=code_group, thought=thought)
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elif browse_command := re.search(
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r'<execute_browse>(.*)</execute_browse>', action_str, re.DOTALL
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):
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# BrowserGym actions was found
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browse_actions = browse_command.group(1).strip()
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thought = action_str.replace(browse_command.group(0), '').strip()
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return BrowseInteractiveAction(
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browser_actions=browse_actions, thought=thought
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)
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else:
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# We assume the LLM is GOOD enough that when it returns pure natural language
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# it want to talk to the user
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return MessageAction(content=action_str, wait_for_response=True)
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def search_memory(self, query: str) -> list[str]:
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raise NotImplementedError('Implement this abstract method')
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def log_cost(self, response):
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try:
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cur_cost = self.llm.completion_cost(response)
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except Exception:
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cur_cost = 0
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self.cost_accumulator += cur_cost
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logger.info(
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'Cost: %.2f USD | Accumulated Cost: %.2f USD',
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cur_cost,
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self.cost_accumulator,
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)
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