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NexQuant/rdagent/components/coder/factor_coder/factor.py
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from __future__ import annotations
import pickle
import subprocess
import uuid
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from pathlib import Path
from typing import Tuple, Union
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import pandas as pd
from filelock import FileLock
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from rdagent.components.coder.factor_coder.config import FACTOR_IMPLEMENT_SETTINGS
from rdagent.core.exception import CodeFormatError, CustomRuntimeError, NoOutputError
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from rdagent.core.experiment import Experiment, FBWorkspace, Task
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from rdagent.log import rdagent_logger as logger
from rdagent.oai.llm_utils import md5_hash
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class FactorTask(Task):
# TODO: generalized the attributes into the Task
# - factor_* -> *
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def __init__(
self,
factor_name,
factor_description,
factor_formulation,
variables: dict = {},
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resource: str = None,
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) -> None:
self.factor_name = factor_name
self.factor_description = factor_description
self.factor_formulation = factor_formulation
self.variables = variables
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self.factor_resources = resource
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def get_task_information(self):
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return f"""factor_name: {self.factor_name}
factor_description: {self.factor_description}
factor_formulation: {self.factor_formulation}
variables: {str(self.variables)}"""
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@staticmethod
def from_dict(dict):
return FactorTask(**dict)
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def __repr__(self) -> str:
return f"<{self.__class__.__name__}[{self.factor_name}]>"
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class FactorFBWorkspace(FBWorkspace):
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"""
This class is used to implement a factor by writing the code to a file.
Input data and output factor value are also written to files.
"""
# TODO: (Xiao) think raising errors may get better information for processing
FB_FROM_CACHE = "The factor value has been executed and stored in the instance variable."
FB_EXEC_SUCCESS = "Execution succeeded without error."
FB_CODE_NOT_SET = "code is not set."
FB_EXECUTION_SUCCEEDED = "Execution succeeded without error."
FB_OUTPUT_FILE_NOT_FOUND = "\nExpected output file not found."
FB_OUTPUT_FILE_FOUND = "\nExpected output file found."
def __init__(
self,
*args,
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executed_factor_value_dataframe=None,
raise_exception=False,
**kwargs,
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) -> None:
super().__init__(*args, **kwargs)
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self.executed_factor_value_dataframe = executed_factor_value_dataframe
self.raise_exception = raise_exception
@staticmethod
def link_data_to_workspace(data_path: Path, workspace_path: Path):
data_path = Path(data_path)
workspace_path = Path(workspace_path)
for data_file_path in data_path.iterdir():
workspace_data_file_path = workspace_path / data_file_path.name
if workspace_data_file_path.exists():
workspace_data_file_path.unlink()
subprocess.run(
["ln", "-s", data_file_path, workspace_data_file_path],
check=False,
)
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def execute(self, store_result: bool = False, data_type: str = "Debug") -> Tuple[str, pd.DataFrame]:
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"""
execute the implementation and get the factor value by the following steps:
1. make the directory in workspace path
2. write the code to the file in the workspace path
3. link all the source data to the workspace path folder
4. execute the code
5. read the factor value from the output file in the workspace path folder
returns the execution feedback as a string and the factor value as a pandas dataframe
parameters:
store_result: if True, store the factor value in the instance variable, this feature is to be used in the gt implementation to avoid multiple execution on the same gt implementation
"""
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super().execute()
if self.code_dict is None or "factor.py" not in self.code_dict:
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if self.raise_exception:
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raise CodeFormatError(self.FB_CODE_NOT_SET)
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else:
return self.FB_CODE_NOT_SET, None
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with FileLock(self.workspace_path / "execution.lock"):
if FACTOR_IMPLEMENT_SETTINGS.enable_execution_cache:
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# NOTE: cache the result for the same code and same data type
target_file_name = md5_hash(data_type + self.code_dict["factor.py"])
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cache_file_path = Path(FACTOR_IMPLEMENT_SETTINGS.cache_location) / f"{target_file_name}.pkl"
Path(FACTOR_IMPLEMENT_SETTINGS.cache_location).mkdir(exist_ok=True, parents=True)
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if cache_file_path.exists() and not self.raise_exception:
cached_res = pickle.load(open(cache_file_path, "rb"))
if store_result and cached_res[1] is not None:
self.executed_factor_value_dataframe = cached_res[1]
return cached_res
if self.executed_factor_value_dataframe is not None:
return self.FB_FROM_CACHE, self.executed_factor_value_dataframe
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source_data_path = (
Path(
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FACTOR_IMPLEMENT_SETTINGS.data_folder_debug,
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)
if data_type == "Debug"
else Path(
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FACTOR_IMPLEMENT_SETTINGS.data_folder,
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)
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)
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source_data_path.mkdir(exist_ok=True, parents=True)
code_path = self.workspace_path / f"factor.py"
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self.link_data_to_workspace(source_data_path, self.workspace_path)
execution_feedback = self.FB_EXECUTION_SUCCEEDED
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execution_success = False
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try:
subprocess.check_output(
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f"{FACTOR_IMPLEMENT_SETTINGS.python_bin} {code_path}",
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shell=True,
cwd=self.workspace_path,
stderr=subprocess.STDOUT,
timeout=FACTOR_IMPLEMENT_SETTINGS.file_based_execution_timeout,
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)
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execution_success = True
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except subprocess.CalledProcessError as e:
import site
execution_feedback = (
e.output.decode()
.replace(str(code_path.parent.absolute()), r"/path/to")
.replace(str(site.getsitepackages()[0]), r"/path/to/site-packages")
)
if len(execution_feedback) > 2000:
execution_feedback = (
execution_feedback[:1000] + "....hidden long error message...." + execution_feedback[-1000:]
)
if self.raise_exception:
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raise CustomRuntimeError(execution_feedback)
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except subprocess.TimeoutExpired:
execution_feedback += f"Execution timeout error and the timeout is set to {FACTOR_IMPLEMENT_SETTINGS.file_based_execution_timeout} seconds."
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if self.raise_exception:
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raise CustomRuntimeError(execution_feedback)
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workspace_output_file_path = self.workspace_path / "result.h5"
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if workspace_output_file_path.exists() and execution_success:
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try:
executed_factor_value_dataframe = pd.read_hdf(workspace_output_file_path)
execution_feedback += self.FB_OUTPUT_FILE_FOUND
except Exception as e:
execution_feedback += f"Error found when reading hdf file: {e}"[:1000]
executed_factor_value_dataframe = None
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else:
execution_feedback += self.FB_OUTPUT_FILE_NOT_FOUND
executed_factor_value_dataframe = None
if self.raise_exception:
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raise NoOutputError(execution_feedback)
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if store_result and executed_factor_value_dataframe is not None:
self.executed_factor_value_dataframe = executed_factor_value_dataframe
if FACTOR_IMPLEMENT_SETTINGS.enable_execution_cache:
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pickle.dump(
(execution_feedback, executed_factor_value_dataframe),
open(cache_file_path, "wb"),
)
return execution_feedback, executed_factor_value_dataframe
def __str__(self) -> str:
# NOTE:
# If the code cache works, the workspace will be None.
return f"File Factor[{self.target_task.factor_name}]: {self.workspace_path}"
def __repr__(self) -> str:
return self.__str__()
@staticmethod
def from_folder(task: FactorTask, path: Union[str, Path], **kwargs):
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path = Path(path)
code_dict = {}
for file_path in path.iterdir():
if file_path.suffix == ".py":
code_dict[file_path.name] = file_path.read_text()
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return FactorFBWorkspace(target_task=task, code_dict=code_dict, **kwargs)
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FactorExperiment = Experiment