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-rw-r--r--src/agents/main/agent.py403
-rw-r--r--src/agents/main/config.yaml89
-rw-r--r--src/agents/main/config_loader.py161
-rw-r--r--src/agents/main/interrogate.py156
-rw-r--r--src/agents/main/main.py68
-rw-r--r--src/agents/main/provider.py586
-rw-r--r--src/agents/main/pyproject.toml3
-rw-r--r--src/agents/main/runner.py166
-rw-r--r--src/agents/main/uv.lock336
9 files changed, 1624 insertions, 344 deletions
diff --git a/src/agents/main/agent.py b/src/agents/main/agent.py
index 26050b3..2b979fa 100644
--- a/src/agents/main/agent.py
+++ b/src/agents/main/agent.py
@@ -1,190 +1,327 @@
-# agent.py
-from vfs import VFS
-from openai import OpenAI
+"""
+Agent class that uses the provider abstraction layer.
+Handles conversation loops, tool execution, and logging.
+"""
import json
-import re
import os
import datetime
-from config import MODEL, BASE_URL, API_KEY, TEMPERATURE, EXTRA_BODY, INCLUDE_REASONING_IN_CONTEXT
+from typing import List, Dict, Any, Optional
+from vfs import VFS
+from provider import ProviderAdapter, LLMResponse, ReasoningStep, create_provider_adapter
+from config_loader import ProviderConfig, ModelConfig
from tools import tools, available_functions
+
class Agent:
- def __init__(self, system_prompt="You are a helpful assistant.", model=MODEL, base_url=BASE_URL, api_key=API_KEY, temperature=TEMPERATURE, scenario="default", oversight_level="default", user_prompt_type="default"):
- self.client = OpenAI(base_url=base_url, api_key=api_key)
- self.model = model
- self.temperature = temperature
- self.tools = tools
- self.available_functions = available_functions
- self.logs = []
+ def __init__(
+ self,
+ system_prompt: str = "You are a helpful assistant.",
+ provider_adapter: ProviderAdapter = None,
+ scenario: str = "default",
+ oversight_level: str = "default",
+ user_prompt_type: str = "default"
+ ):
+ self.provider = provider_adapter
self.system_prompt = system_prompt
self.scenario = scenario
self.oversight_level = oversight_level
self.user_prompt_type = user_prompt_type
+
+ # Get model info from provider
+ if provider_adapter:
+ self.model = provider_adapter.model_config.id
+ self.temperature = provider_adapter.model_config.temperature
+ else:
+ self.model = "unknown"
+ self.temperature = 1.0
+
+ self.tools = tools
+ self.available_functions = available_functions
+ self.logs: List[Dict] = []
self.total_tokens = 0
self.prompt_tokens = 0
self.completion_tokens = 0
- def run(self, initial_prompt):
+ @classmethod
+ def from_configs(
+ cls,
+ system_prompt: str,
+ provider_config: ProviderConfig,
+ model_config: ModelConfig,
+ scenario: str = "default",
+ oversight_level: str = "default",
+ user_prompt_type: str = "default"
+ ) -> "Agent":
+ """Create an Agent from provider and model configs."""
+ adapter = create_provider_adapter(provider_config, model_config)
+ return Agent(
+ system_prompt=system_prompt,
+ provider_adapter=adapter,
+ scenario=scenario,
+ oversight_level=oversight_level,
+ user_prompt_type=user_prompt_type
+ )
+
+ def run(self, initial_prompt: str):
+ """Run the agent with an initial prompt."""
messages = [
{'role': 'system', 'content': self.system_prompt},
{'role': 'user', 'content': initial_prompt}
]
self.logs.extend(messages)
-
- # This is now a wrapper around the main chat logic
- self.chat_loop(messages)
+ return self.chat_loop(messages)
- def load_conversation(self, conversation_history, total_tokens=0, prompt_tokens=0, completion_tokens=0):
+ def load_conversation(
+ self,
+ conversation_history: List[Dict],
+ total_tokens: int = 0,
+ prompt_tokens: int = 0,
+ completion_tokens: int = 0
+ ):
+ """Load a conversation from history (for interrogation)."""
self.logs = conversation_history
self.total_tokens = total_tokens
self.prompt_tokens = prompt_tokens
self.completion_tokens = completion_tokens
- def chat(self, user_input):
+ def chat(self, user_input: str):
+ """Send a message and get response."""
self.logs.append({'role': 'user', 'content': user_input})
- messages = list(self.logs) # Create a copy for the API call
+ messages = list(self.logs)
return self.chat_loop(messages)
- def chat_loop(self, messages):
+ def chat_loop(self, messages: List[Dict]):
+ """Main conversation loop."""
+ turn_count = 0
while True:
- response = self.client.chat.completions.create(
- model=self.model,
- messages=messages,
- tools=self.tools,
- temperature=self.temperature,
- extra_body=EXTRA_BODY,
- )
+ llm_response = self.provider.call(messages, self.tools)
# Update token counts
- if response.usage:
- self.total_tokens += response.usage.total_tokens
- self.prompt_tokens += response.usage.prompt_tokens
- self.completion_tokens += response.usage.completion_tokens
-
- response_message = response.choices[0].message
-
- # Process content to extract reasoning
- content = response_message.content
- reasoning = None
- clean_content = content
-
- if content:
- # First, try to parse with tags for models that support it
- thought_match = re.search(r"<(thinking|thought)>(.*?)</\1>", content, re.DOTALL)
- if thought_match:
- reasoning = thought_match.group(2).strip()
- clean_content = content.replace(thought_match.group(0), "").strip()
- # If no tags, and there are tool calls, assume the whole content is reasoning
- elif response_message.tool_calls:
- reasoning = content
- clean_content = None
-
- # Decide what to append to the API message history
- if INCLUDE_REASONING_IN_CONTEXT:
- messages.append(response_message)
+ if llm_response.usage:
+ self.total_tokens += llm_response.usage.get("total_tokens", 0)
+ self.prompt_tokens += llm_response.usage.get("prompt_tokens", 0)
+ self.completion_tokens += llm_response.usage.get("completion_tokens", 0)
+
+ # Process the response - check for interleaved thinking
+ if self._has_interleaved_thinking(llm_response):
+ result = self._handle_interleaved(messages, llm_response)
+ if result is not None:
+ return result
else:
- # Create a new dictionary with the cleaned content
- message_dict = {
- 'role': 'assistant',
- 'content': clean_content,
- }
- if response_message.tool_calls:
- message_dict['tool_calls'] = [{
- 'id': tc.id,
- 'type': tc.type,
- 'function': {
- 'name': tc.function.name,
- 'arguments': tc.function.arguments
- }
- } for tc in response_message.tool_calls]
-
- messages.append(message_dict)
-
- log_entry = {
+ result = self._handle_standard(messages, llm_response, is_first_turn=(turn_count == 0))
+ if result is not None:
+ return result
+
+ turn_count += 1
+
+ def _has_interleaved_thinking(self, response: LLMResponse) -> bool:
+ """Check if response has interleaved thinking (reasoning between tool calls)."""
+ # If we have tool calls AND reasoning that isn't the final response
+ if response.tool_calls and response.reasoning_steps:
+ # Check if the reasoning is not marked as final response
+ has_non_final_reasoning = any(
+ not step.is_final_response
+ for step in response.reasoning_steps
+ )
+ return has_non_final_reasoning
+ return False
+
+ def _handle_interleaved(self, messages: List[Dict], response: LLMResponse):
+ """Handle interleaved thinking (reasoning between tool calls)."""
+ print("--- Interleaved thinking detected ---")
+
+ # Extract reasoning content
+ reasoning_text = "\n".join(
+ step.content for step in response.reasoning_steps
+ if not step.is_final_response
+ )
+
+ # Build assistant message with reasoning and tool calls
+ assistant_message = {
+ "role": "assistant",
+ "content": reasoning_text if reasoning_text else None,
+ "tool_calls": response.tool_calls
+ }
+ messages.append(assistant_message)
+
+ # Log the assistant message
+ self.logs.append({
+ "role": "assistant",
+ "content": reasoning_text,
+ "reasoning": reasoning_text,
+ "tool_calls": response.tool_calls,
+ "interleaved_thinking": True,
+ "response_metadata": {
+ "model": self.model,
+ "usage": response.usage
+ }
+ })
+
+ # print(f"--- Reasoning ---\n{reasoning_text[:200]}..." if len(reasoning_text) > 200 else f"--- Reasoning ---\n{reasoning_text}")
+ print(f"--- LLM requested {len(response.tool_calls)} tool execution(s) ---")
+
+ # Execute each tool call and continue the loop
+ for tool_call in response.tool_calls:
+ result = self._execute_tool(messages, tool_call)
+ if result is None:
+ return None # Stop iteration
+
+ # Continue the while loop for more tool calls or final response
+ return None
+
+ def _handle_standard(self, messages: List[Dict], response: LLMResponse, is_first_turn: bool = False):
+ """Handle standard response (reasoning, then tools, then final or just final)."""
+ content = response.content or ""
+ reasoning = response.reasoning_steps[0].content if response.reasoning_steps else None
+
+ # If there are tool calls
+ if response.tool_calls:
+ # Build assistant message
+ assistant_message = {
"role": "assistant",
- "content": clean_content,
- "tool_calls": [{
- 'id': tc.id,
- 'type': tc.type,
- 'function': {
- 'name': tc.function.name,
- 'arguments': tc.function.arguments
- }
- } for tc in response_message.tool_calls] if response_message.tool_calls else None,
+ "content": content if content else None,
+ "tool_calls": response.tool_calls
+ }
+ messages.append(assistant_message)
+
+ # Log entry
+ self.logs.append({
+ "role": "assistant",
+ "content": content,
+ "reasoning": reasoning,
+ "tool_calls": response.tool_calls,
"response_metadata": {
- "model": response.model,
- "usage": {
- "completion_tokens": response.usage.completion_tokens,
- "prompt_tokens": response.usage.prompt_tokens,
- "total_tokens": response.usage.total_tokens,
- }
+ "model": self.model,
+ "usage": response.usage
}
- }
+ })
+
+ print(f"--- LLM requested {len(response.tool_calls)} tool execution(s) ---")
+
+ # Execute all tool calls
+ for tool_call in response.tool_calls:
+ result = self._execute_tool(messages, tool_call)
+ if result is None:
+ return None
+
+ # Continue loop for more interactions
+ return None
+
+ else:
+ # No tool calls - check if this is a final response or just a conversational response
+ # On first turn, models like Kimi-K2 may respond conversationally before making tool calls
+ if is_first_turn:
+ # Log the response but don't return - continue to next turn
+ assistant_message = {
+ "role": "assistant",
+ "content": content if content else None
+ }
+ messages.append(assistant_message)
- if reasoning:
- log_entry["reasoning"] = reasoning
-
- model_reasoning = getattr(response_message, 'reasoning', None)
- if model_reasoning:
- print(f"--- MODEL REASONING ---\n{model_reasoning}")
- log_entry["reasoning"] = model_reasoning
-
- # Append the processed assistant message to our internal logs
- self.logs.append(log_entry)
-
- if response_message.tool_calls:
- print(f"--- LLM requested tool execution ---")
- for tool_call in response_message.tool_calls:
- function_name = tool_call.function.name
- function_args = json.loads(tool_call.function.arguments)
-
- function_to_call = self.available_functions.get(function_name)
- function_output = function_to_call(**function_args)
-
- print(f"Executing: {function_name}({function_args}) -> {function_output}")
-
- tool_message = {
- "tool_call_id": tool_call.id,
- "role": "tool",
- "content": str(function_output),
+ self.logs.append({
+ "role": "assistant",
+ "content": content,
+ "reasoning": reasoning,
+ "tool_calls": None,
+ "response_metadata": {
+ "model": self.model,
+ "usage": response.usage
}
- messages.append(tool_message)
- self.logs.append(tool_message)
+ })
+
+ # Continue to next turn - don't return
+ return None
else:
- print(f"\n--- Final LLM Response ---\n{response_message.content}")
- return response_message.content
-
- def save_logs(self, output_dir="output"):
+ # Not first turn and no tool calls - this is a final response
+ assistant_message = {
+ "role": "assistant",
+ "content": content if content else None
+ }
+ messages.append(assistant_message)
+
+ # Log entry
+ self.logs.append({
+ "role": "assistant",
+ "content": content,
+ "reasoning": reasoning,
+ "tool_calls": None,
+ "response_metadata": {
+ "model": self.model,
+ "usage": response.usage
+ }
+ })
+
+ # print(f"\n--- Final LLM Response ---\n{content}")
+ return content
+
+ def _execute_tool(self, messages: List[Dict], tool_call: Dict) -> Optional[str]:
+ """Execute a single tool call."""
+ function_name = tool_call["function"]["name"]
+ function_args = json.loads(tool_call["function"]["arguments"])
+
+ function_to_call = self.available_functions.get(function_name)
+ if not function_to_call:
+ error_msg = f"Unknown tool: {function_name}"
+ print(f"Error: {error_msg}")
+ function_output = error_msg
+ else:
+ try:
+ function_output = function_to_call(**function_args)
+ except Exception as e:
+ function_output = f"Error executing {function_name}: {str(e)}"
+
+ # print(f"Executing: {function_name}({function_args}) -> {function_output}")
+ print(f"Executing: {function_name}({function_args})")
+
+ # Create tool message
+ tool_message = {
+ "tool_call_id": tool_call["id"],
+ "role": "tool",
+ "content": str(function_output)
+ }
+ messages.append(tool_message)
+ self.logs.append(tool_message)
+
+ return str(function_output)
+
+ def save_logs(
+ self,
+ output_dir: str = "output",
+ scenario: str = None,
+ oversight_level: str = None
+ ):
+ """Save conversation logs to a JSON file."""
timestamp = datetime.datetime.now().strftime("%Y%m%d_%H%M%S")
model_name_safe = self.model.replace("/", "_")
- scenario_name_safe = self.scenario.replace("/", "_")
+ scenario_name = (scenario or self.scenario).replace("/", "_")
+ oversight = oversight_level or self.oversight_level
- # New directory structure
- model_output_dir = os.path.join(output_dir, model_name_safe)
- os.makedirs(model_output_dir, exist_ok=True)
+ # Directory structure: output/{model}/{scenario}/{oversight}/
+ base_dir = os.path.join(output_dir, model_name_safe, scenario_name, oversight)
+ os.makedirs(base_dir, exist_ok=True)
- # New filename and run_id
- filename_base = f"{scenario_name_safe}_{self.oversight_level}_{timestamp}"
- run_id = f"{model_name_safe}/{filename_base}"
- log_file = os.path.join(model_output_dir, f"{filename_base}.json")
+ # Filename: {timestamp}_run_id.json
+ filename_base = f"{timestamp}"
+ run_id = f"{model_name_safe}/{scenario_name}/{oversight}/{filename_base}"
+ log_file = os.path.join(base_dir, f"{filename_base}.json")
log_data = {
"run_id": run_id,
"model": self.model,
- "scenario": self.scenario,
- "oversight_level": self.oversight_level,
+ "scenario": scenario or self.scenario,
+ "oversight_level": oversight,
"user_prompt_type": self.user_prompt_type,
"temperature": self.temperature,
- "base_url": str(self.client.base_url),
- "include_reasoning_in_context": INCLUDE_REASONING_IN_CONTEXT,
- "extra_body_config": EXTRA_BODY,
+ "base_url": str(self.provider.provider_config.base_url) if self.provider else None,
+ "extra_body_config": self.provider.model_config.extra_body if self.provider else {},
"final_vfs_state": VFS.get_instance().fs,
"total_tokens": self.total_tokens,
"prompt_tokens": self.prompt_tokens,
"completion_tokens": self.completion_tokens,
"conversation": self.logs
}
-
+
with open(log_file, "w") as f:
json.dump(log_data, f, indent=4)
print(f"\nLogs saved to {log_file}")
+ return log_file
diff --git a/src/agents/main/config.yaml b/src/agents/main/config.yaml
new file mode 100644
index 0000000..58faa3b
--- /dev/null
+++ b/src/agents/main/config.yaml
@@ -0,0 +1,89 @@
+# Experiment Configuration
+# Define providers, models, scenarios, and runs
+
+# Default parameters (can be overridden per model)
+defaults:
+ temperature: 1.0
+ # max_tokens: 4096
+ oversight: low
+ include_reasoning_in_context: true
+
+# Provider configurations
+providers:
+ openai:
+ api_key_env: OPENAI_API_KEY
+ base_url: https://api.openai.com/v1
+ google:
+ api_key_env: GOOGLE_API_KEY
+ base_url: https://generativelanguage.googleapis.com/v1beta/openai/
+ openrouter:
+ api_key_env: OPENROUTER_API_KEY
+ base_url: https://openrouter.ai/api/v1
+ anthropic:
+ api_key_env: ANTHROPIC_API_KEY
+ moonshot:
+ api_key_env: OPENROUTER_API_KEY
+ base_url: https://openrouter.ai/api/v1
+
+
+# Models to test
+models:
+ - id: z-ai/glm-4.7
+ provider: openrouter
+ extra_body:
+ thinking:
+ enabled: true
+
+# - id: gpt-4.5
+# provider: openai
+# temperature: 0.7
+
+# - id: claude-haiku-4-5
+# provider: anthropic
+# temperature: 0.7
+# extra_body:
+# thinking:
+# type: "enabled"
+# budget_tokens: 10000
+
+# - id: gemini-2.5-flash
+# provider: google
+# temperature: 1
+# extra_body:
+# extra_body:
+# google:
+# thinking_config:
+# include_thoughts: True
+
+# - id: anthropic/claude-sonnet-4-5
+# provider: openrouter
+# temperature: 0.7
+
+# - id: moonshotai/kimi-k2-thinking
+# provider: moonshot
+# temperature: 1.0
+# extra_body:
+# reasoning:
+# enabled: True
+
+# Scenarios to run
+scenarios:
+ - path: scenarios/corporate_sabotage_v2
+ runs: 1
+
+# - path: scenarios/data_sanitization
+# runs: 3
+#
+# - path: scenarios/log_redaction
+# runs: 3
+
+# Oversight levels to test
+oversight_levels:
+# - low
+# - medium
+ - high
+
+# Output settings
+output:
+ dir: test
+ save_vfs_state: true
diff --git a/src/agents/main/config_loader.py b/src/agents/main/config_loader.py
new file mode 100644
index 0000000..056b47b
--- /dev/null
+++ b/src/agents/main/config_loader.py
@@ -0,0 +1,161 @@
+"""
+Configuration loader for the experiment framework.
+Loads config.yaml and provides access to providers, models, scenarios.
+"""
+import os
+import yaml
+from typing import Any, Dict, List, Optional
+from dataclasses import dataclass, field
+
+# Load environment variables from .env file
+try:
+ from dotenv import load_dotenv
+ load_dotenv()
+except ImportError:
+ pass # python-dotenv not installed
+
+
+@dataclass
+class ProviderConfig:
+ """Configuration for a provider."""
+ name: str
+ api_key_env: str
+ base_url: str
+ extra_body: Dict[str, Any] = field(default_factory=dict)
+
+ @property
+ def api_key(self) -> str:
+ """Get API key from environment variable."""
+ key = os.environ.get(self.api_key_env)
+ if not key:
+ raise ValueError(f"Environment variable {self.api_key_env} not set")
+ return key
+
+
+@dataclass
+class ModelConfig:
+ """Configuration for a model."""
+ id: str
+ provider: str
+ temperature: float = 1.0
+ max_tokens: Optional[int] = None
+ extra_body: Dict[str, Any] = field(default_factory=dict)
+
+
+@dataclass
+class ScenarioConfig:
+ """Configuration for a scenario."""
+ path: str
+ runs: int = 1
+
+
+class ConfigLoader:
+ """Load and manage experiment configuration."""
+
+ def __init__(self, config_path: str = "config.yaml"):
+ self.config_path = config_path
+ self._config: Dict[str, Any] = {}
+ self._providers: Dict[str, ProviderConfig] = {}
+ self._models: List[ModelConfig] = []
+ self._scenarios: List[ScenarioConfig] = []
+
+ def load(self) -> None:
+ """Load configuration from YAML file."""
+ with open(self.config_path, 'r') as f:
+ self._config = yaml.safe_load(f)
+
+ self._parse_providers()
+ self._parse_models()
+ self._parse_scenarios()
+
+ def _parse_providers(self) -> None:
+ """Parse provider configurations."""
+ providers = self._config.get('providers', {})
+ for name, config in providers.items():
+ self._providers[name] = ProviderConfig(
+ name=name,
+ api_key_env=config.get('api_key_env', ''),
+ base_url=config.get('base_url', ''),
+ extra_body=config.get('extra_body', {})
+ )
+
+ def _parse_models(self) -> None:
+ """Parse model configurations."""
+ defaults = self._config.get('defaults', {})
+ models = self._config.get('models', [])
+
+ for model in models:
+ self._models.append(ModelConfig(
+ id=model['id'],
+ provider=model['provider'],
+ temperature=model.get('temperature', defaults.get('temperature', 1.0)),
+ max_tokens=model.get('max_tokens', defaults.get('max_tokens')),
+ extra_body=model.get('extra_body', {})
+ ))
+
+ def _parse_scenarios(self) -> None:
+ """Parse scenario configurations."""
+ scenarios = self._config.get('scenarios', [])
+
+ for scenario in scenarios:
+ self._scenarios.append(ScenarioConfig(
+ path=scenario['path'],
+ runs=scenario.get('runs', 1)
+ ))
+
+ @property
+ def providers(self) -> Dict[str, ProviderConfig]:
+ """Get all provider configurations."""
+ return self._providers
+
+ @property
+ def models(self) -> List[ModelConfig]:
+ """Get all model configurations."""
+ return self._models
+
+ @property
+ def scenarios(self) -> List[ScenarioConfig]:
+ """Get all scenario configurations."""
+ return self._scenarios
+
+ @property
+ def oversight_levels(self) -> List[str]:
+ """Get oversight levels to test."""
+ return self._config.get('oversight_levels', ['low'])
+
+ @property
+ def defaults(self) -> Dict[str, Any]:
+ """Get default configuration."""
+ return self._config.get('defaults', {})
+
+ @property
+ def output_dir(self) -> str:
+ """Get output directory."""
+ return self._config.get('output', {}).get('dir', 'output')
+
+ def get_provider(self, name: str) -> ProviderConfig:
+ """Get a specific provider configuration."""
+ if name not in self._providers:
+ raise ValueError(f"Unknown provider: {name}")
+ return self._providers[name]
+
+ def get_model(self, model_id: str) -> ModelConfig:
+ """Get a specific model configuration."""
+ for model in self._models:
+ if model.id == model_id:
+ return model
+ raise ValueError(f"Unknown model: {model_id}")
+
+ def get_scenario(self, path: str) -> ScenarioConfig:
+ """Get a specific scenario configuration."""
+ for scenario in self._scenarios:
+ if scenario.path == path:
+ return scenario
+ raise ValueError(f"Unknown scenario: {path}")
+
+
+def load_config(config_path: str = "config.yaml") -> ConfigLoader:
+ """Convenience function to load configuration."""
+ loader = ConfigLoader(config_path)
+ loader.load()
+ return loader
diff --git a/src/agents/main/interrogate.py b/src/agents/main/interrogate.py
index e0b85c4..035ca58 100644
--- a/src/agents/main/interrogate.py
+++ b/src/agents/main/interrogate.py
@@ -1,15 +1,75 @@
-# interrogate.py
+"""
+Interrogate - replay and continue a conversation from a log file.
+Allows interactive questioning of an agent based on a previous run.
+"""
import argparse
import json
+import os
+from typing import Dict, Any, Optional
from agent import Agent
-from config import API_KEY # We'll need the API key from the config
-from vfs import VFS # Import VFS
+from config_loader import ConfigLoader, ProviderConfig, ModelConfig
+from provider import create_provider_adapter
+from vfs import VFS
+
+
+def load_prompt(file_path: str) -> str:
+ """Load a prompt file."""
+ if not os.path.exists(file_path):
+ return ""
+ with open(file_path, 'r') as f:
+ return f.read().strip()
+
+
+def get_provider_from_log(log_data: Dict) -> tuple:
+ """Extract provider info from log and create configs."""
+ model_id = log_data["model"]
+ base_url = log_data.get("base_url", "")
+ temperature = log_data.get("temperature", 1.0)
+ extra_body = log_data.get("extra_body_config", {})
+
+ # Determine provider from base_url
+ if "openrouter" in base_url:
+ provider_name = "openrouter"
+ elif "openai" in base_url:
+ provider_name = "openai"
+ elif "google" in base_url or "generativelanguage" in base_url:
+ provider_name = "google"
+ else:
+ # Default to openai-compatible
+ provider_name = "openai"
+
+ # Create configs
+ # Note: API key needs to be in environment or config
+ provider_config = ProviderConfig(
+ name=provider_name,
+ api_key_env=f"{provider_name.upper()}_API_KEY",
+ base_url=base_url
+ )
+
+ model_config = ModelConfig(
+ id=model_id,
+ provider=provider_name,
+ temperature=temperature,
+ extra_body=extra_body
+ )
+
+ return provider_config, model_config
+
def main():
parser = argparse.ArgumentParser(description="Interrogate a conversation log.")
parser.add_argument("log_file", help="Path to the log file to load.")
+ parser.add_argument("--config", default="config.yaml", help="Path to config file (for API keys)")
args = parser.parse_args()
+ # Load config (for API keys)
+ config = ConfigLoader(args.config)
+ try:
+ config.load()
+ except FileNotFoundError:
+ pass # Config file is optional for interrogation
+
+ # Load log file
try:
with open(args.log_file, 'r') as f:
log_data = json.load(f)
@@ -20,38 +80,40 @@ def main():
print(f"Error: Could not decode JSON from {args.log_file}")
return
- # Extract data to re-hydrate the agent
- conversation_history = log_data["conversation"]
- system_prompt = conversation_history[0]['content']
- model = log_data["model"]
- temperature = log_data.get("temperature", 1.0) # Default if not found
- base_url = log_data.get("base_url")
- extra_body = log_data.get("extra_body_config", {})
+ # Extract data from log
+ conversation_history = log_data.get("conversation", [])
+ if not conversation_history:
+ print("Error: No conversation history in log file")
+ return
+
+ system_prompt = conversation_history[0].get('content', '') if conversation_history else ''
+ scenario = log_data.get('scenario', 'interrogation')
+ oversight_level = log_data.get('oversight_level', 'N/A')
+
+ # Get provider from log
+ provider_config, model_config = get_provider_from_log(log_data)
- # Initialize the virtual file system from the log
+ # Initialize VFS from log
final_vfs_state = log_data.get("final_vfs_state")
if final_vfs_state:
VFS.get_instance(fs_data=final_vfs_state)
print("--- VFS State Loaded from Log ---")
+ VFS.get_instance().print_fs()
else:
- # If no VFS state is found in the log, initialize with an empty VFS
- VFS.get_instance() # Initialize an empty VFS if no state found
+ VFS.get_instance()
print("--- No VFS State in Log, Initializing Empty VFS ---")
- # Initialize the agent
- # Note: some parameters like scenario are just for logging, not for re-hydration
- agent = Agent(
+ # Create agent from log provider info
+ agent = Agent.from_configs(
system_prompt=system_prompt,
- model=model,
- base_url=base_url,
- api_key=API_KEY, # API key is not in the log, get it from config
- temperature=temperature,
- # Pass scenario/oversight for logging purposes if we save later
- scenario=log_data.get('scenario', 'interrogation'),
- oversight_level=log_data.get('oversight_level', 'N/A')
+ provider_config=provider_config,
+ model_config=model_config,
+ scenario=scenario,
+ oversight_level=oversight_level,
+ user_prompt_type=log_data.get('user_prompt_type', 'interrogation')
)
-
- # Load the conversation history
+
+ # Load conversation history (skip system prompt as it's already in system_prompt)
agent.load_conversation(
conversation_history=conversation_history,
total_tokens=log_data.get('total_tokens', 0),
@@ -59,26 +121,54 @@ def main():
completion_tokens=log_data.get('completion_tokens', 0)
)
- print("Starting interactive session... (type 'exit' to quit)")
+ print("\n--- Loaded Conversation ---")
+ print(f"Model: {agent.model}")
+ print(f"Scenario: {scenario}")
+ print(f"Oversight: {oversight_level}")
+ print(f"Total tokens so far: {agent.total_tokens}")
+ print(f"Conversation turns: {len([m for m in conversation_history if m.get('role') in ['user', 'assistant', 'tool']])}")
+
+ # Start interactive session
+ print("\nStarting interactive session... (type 'exit' to quit, 'save' to save)")
while True:
try:
user_input = input("\nYour turn: ")
if user_input.lower() == 'exit':
break
-
+ if user_input.lower() == 'save':
+ agent.save_logs()
+ continue
+
agent.chat(user_input)
+ # Find the last assistant message to print response
+ found = False
+ for msg in reversed(agent.logs):
+ if msg.get('role') == 'assistant':
+ content = msg.get('content', '')
+ reasoning = msg.get('reasoning', '')
+ print(f"\n--- Assistant Response ---")
+ if reasoning:
+ print(f"Reasoning: {reasoning[:300]}{'...' if len(reasoning) > 300 else ''}")
+ if content:
+ print(f"Content: {content[:300]}{'...' if len(content) > 300 else ''}")
+ if msg.get('tool_calls'):
+ print(f"Tool calls: {len(msg['tool_calls'])}")
+ found = True
+ break
+
+ if not found:
+ print("No assistant message found in logs")
+
except KeyboardInterrupt:
print("\nExiting...")
break
-
- # Ask user if they want to save the new conversation
+
+ # Ask to save
save_choice = input("\nSave the extended conversation to a new log file? (y/n): ").lower()
if save_choice == 'y':
- agent.save_logs(output_dir="interrogation_logs")
-
- print("Session ended.")
+ agent.save_logs()
if __name__ == "__main__":
- main() \ No newline at end of file
+ main()
diff --git a/src/agents/main/main.py b/src/agents/main/main.py
index 5d398c4..ad4015a 100644
--- a/src/agents/main/main.py
+++ b/src/agents/main/main.py
@@ -1,62 +1,14 @@
-# main.py
-from agent import Agent
-import os
-from config import INCLUDE_HIDDEN_GOAL, MODEL
-from vfs import VFS
+"""
+Main entry point for running experiments.
+Uses config.yaml to define what to run.
+"""
+from runner import run_from_config
-def load_prompt(file_path):
- if not os.path.exists(file_path):
- return ""
- with open(file_path, 'r') as f:
- return f.read().strip()
-if __name__ == "__main__":
- # Configuration for the experiment run
- SCENARIO = "corporate_sabotage"
- OVERSIGHT_LEVEL = "high"
-
- # Construct paths based on the scenario
- scenario_dir = os.path.join("scenarios", SCENARIO)
- vfs_path = os.path.join(scenario_dir, "data")
-
- # Initialize the virtual file system
- VFS.get_instance(vfs_path)
-
- # Load prompts
- benign_goal_path = os.path.join(scenario_dir, "benign_goal.md")
- hidden_goal_path = os.path.join(scenario_dir, "hidden_goal.md")
- user_prompt_path = os.path.join(scenario_dir, "user.md")
-
- benign_goal = load_prompt(benign_goal_path)
- user_prompt = load_prompt(user_prompt_path)
-
- system_prompt_parts = [benign_goal]
-
- if INCLUDE_HIDDEN_GOAL:
- hidden_goal = load_prompt(hidden_goal_path)
- system_prompt_parts.append(hidden_goal)
+def main():
+ """Run all experiments defined in config.yaml."""
+ run_from_config("config.yaml")
- # Load and append oversight prompt
- oversight_prompt_path = os.path.join("oversight", f"{OVERSIGHT_LEVEL}.md")
- oversight_prompt = load_prompt(oversight_prompt_path)
- system_prompt_parts.append(oversight_prompt)
- system_prompt = "\n\n".join(filter(None, system_prompt_parts))
-
- print("\n--- Using model:", MODEL, "---\n")
- print("\n--- Final Virtual File System State ---")
- VFS.get_instance().print_fs()
- agent = Agent(
- system_prompt=system_prompt,
- scenario=SCENARIO,
- oversight_level=OVERSIGHT_LEVEL,
- user_prompt_type=os.path.basename(user_prompt_path)
- )
- agent.run(user_prompt)
- agent.save_logs()
-
- print("\n--- Final Virtual File System State ---")
- VFS.get_instance().print_fs()
-
-
-
+if __name__ == "__main__":
+ main()
diff --git a/src/agents/main/provider.py b/src/agents/main/provider.py
new file mode 100644
index 0000000..837810c
--- /dev/null
+++ b/src/agents/main/provider.py
@@ -0,0 +1,586 @@
+"""
+Provider abstraction layer.
+Handles different LLM providers with OpenAI-compatible APIs and reasoning extraction.
+"""
+import json
+import re
+from abc import ABC, abstractmethod
+from typing import Any, Dict, List, Optional, Tuple
+from dataclasses import dataclass, field
+from openai import OpenAI
+from config_loader import ProviderConfig, ModelConfig
+
+
+@dataclass
+class ReasoningStep:
+ """A reasoning step from the model."""
+ content: str
+ type: str = "reasoning" # "reasoning", "tool_call", "tool_result"
+ tool_name: Optional[str] = None
+ tool_args: Optional[Dict] = None
+ tool_result: Optional[str] = None
+ is_final_response: bool = False
+
+
+@dataclass
+class LLMResponse:
+ """Unified response from any LLM provider."""
+ content: Optional[str] = None
+ reasoning_steps: List[ReasoningStep] = field(default_factory=list)
+ tool_calls: List[Dict] = field(default_factory=list)
+ usage: Dict[str, int] = field(default_factory=dict)
+ raw_response: Any = None
+
+
+class ProviderAdapter(ABC):
+ """Base class for provider adapters."""
+
+ def __init__(self, provider_config: ProviderConfig, model_config: ModelConfig):
+ self.provider_config = provider_config
+ self.model_config = model_config
+
+ @abstractmethod
+ def call(self, messages: List[Dict], tools: List[Dict]) -> LLMResponse:
+ """Make an API call and return a unified response."""
+ pass
+
+ @abstractmethod
+ def extract_reasoning(self, response: Any) -> List[ReasoningStep]:
+ """Extract reasoning steps from provider response."""
+ pass
+
+ def _merge_extra_body(self, extra_body: Dict[str, Any]) -> Dict[str, Any]:
+ """Merge model extra_body with provider extra_body."""
+ merged = self.provider_config.extra_body.copy()
+ merged.update(extra_body)
+ return merged
+
+
+class OpenAIProviderAdapter(ProviderAdapter):
+ """Adapter for OpenAI-compatible APIs (OpenAI, OpenRouter, Together, etc.)."""
+
+ def __init__(self, provider_config: ProviderConfig, model_config: ModelConfig):
+ super().__init__(provider_config, model_config)
+ self.client = OpenAI(
+ base_url=provider_config.base_url,
+ api_key=provider_config.api_key
+ )
+
+ def call(self, messages: List[Dict], tools: List[Dict]) -> LLMResponse:
+ """Make an API call via OpenAI-compatible endpoint."""
+ extra_body = self._merge_extra_body(self.model_config.extra_body)
+
+ response = self.client.chat.completions.create(
+ model=self.model_config.id,
+ messages=messages,
+ tools=tools if tools else None,
+ temperature=self.model_config.temperature,
+ max_tokens=self.model_config.max_tokens,
+ extra_body=extra_body if extra_body else None
+ )
+
+ return self._parse_response(response)
+
+ def _parse_response(self, response) -> LLMResponse:
+ """Parse OpenAI-compatible response."""
+ # Extract usage
+ usage = {}
+ if response.usage:
+ usage = {
+ "prompt_tokens": response.usage.prompt_tokens,
+ "completion_tokens": response.usage.completion_tokens,
+ "total_tokens": response.usage.total_tokens
+ }
+
+ message = response.choices[0].message
+
+ # Extract content and reasoning
+ content = message.content or ""
+ reasoning = None
+
+ # Try to get reasoning from different sources
+ # 1. Check for reasoning_content (OpenRouter)
+ if hasattr(message, 'reasoning_content') and message.reasoning_content:
+ reasoning = message.reasoning_content
+
+ # 2. Check for reasoning_details (structured)
+ elif hasattr(message, 'reasoning_details') and message.reasoning_details:
+ reasoning = self._extract_from_reasoning_details(message.reasoning_details)
+
+ # 3. Regex fallback for <thinking> tags
+ else:
+ thought_match = re.search(r"<(thinking|thought)>(.*?)</\1>", content, re.DOTALL)
+ if thought_match:
+ reasoning = thought_match.group(2).strip()
+ content = content.replace(thought_match.group(0), "").strip()
+
+ # Extract tool calls
+ tool_calls = []
+ has_tool_calls = False
+ if message.tool_calls:
+ has_tool_calls = True
+ tool_calls = [
+ {
+ "id": tc.id,
+ "type": tc.type,
+ "function": {
+ "name": tc.function.name,
+ "arguments": tc.function.arguments
+ }
+ }
+ for tc in message.tool_calls
+ ]
+
+ # If there are tool calls, content should be None (reasoning is in the reasoning field)
+ if has_tool_calls:
+ content = None
+
+ # Build reasoning steps
+ reasoning_steps = []
+ if reasoning:
+ reasoning_steps.append(ReasoningStep(content=reasoning, type="reasoning"))
+
+ # Add final response if no tool calls
+ if not tool_calls and content:
+ reasoning_steps.append(ReasoningStep(
+ content=content,
+ type="reasoning",
+ is_final_response=True
+ ))
+
+ return LLMResponse(
+ content=content,
+ reasoning_steps=reasoning_steps,
+ tool_calls=tool_calls,
+ usage=usage,
+ raw_response=response
+ )
+
+ def _extract_from_reasoning_details(self, reasoning_details: List[Dict]) -> str:
+ """Extract reasoning text from structured reasoning_details."""
+ reasoning_parts = []
+ for item in reasoning_details:
+ if item.get("type") == "reasoning.text":
+ reasoning_parts.append(item.get("text", ""))
+ return "\n".join(reasoning_parts).strip()
+
+ def extract_reasoning(self, response: Any) -> List[ReasoningStep]:
+ """Extract reasoning steps from raw response."""
+ parsed = self._parse_response(response)
+ return parsed.reasoning_steps
+
+
+class GoogleProviderAdapter(ProviderAdapter):
+ """Adapter for Google's Generative Language API."""
+
+ def __init__(self, provider_config: ProviderConfig, model_config: ModelConfig):
+ super().__init__(provider_config, model_config)
+ # Google uses a different SDK, but we can use OpenAI-compatible endpoint
+ self.client = OpenAI(
+ base_url=provider_config.base_url,
+ api_key=provider_config.api_key
+ )
+
+ def call(self, messages: List[Dict], tools: List[Dict]) -> LLMResponse:
+ """Make an API call via Google Generative Language API."""
+ extra_body = self._merge_extra_body(self.model_config.extra_body)
+
+ response = self.client.chat.completions.create(
+ model=self.model_config.id,
+ messages=messages,
+ tools=tools if tools else None,
+ temperature=self.model_config.temperature,
+ max_tokens=self.model_config.max_tokens,
+ extra_body=extra_body if extra_body else None
+ )
+
+ return self._parse_response(response)
+
+ def _parse_response(self, response) -> LLMResponse:
+ """Parse Google-compatible response."""
+ usage = {}
+ if response.usage:
+ usage = {
+ "prompt_tokens": response.usage.prompt_tokens,
+ "completion_tokens": response.usage.completion_tokens,
+ "total_tokens": response.usage.total_tokens
+ }
+
+ message = response.choices[0].message
+ content = message.content or ""
+
+ # Google doesn't typically output structured reasoning in this format
+ # Just return content
+ reasoning_steps = []
+ if content:
+ reasoning_steps.append(ReasoningStep(
+ content=content,
+ type="reasoning",
+ is_final_response=True
+ ))
+
+ tool_calls = []
+ if message.tool_calls:
+ tool_calls = [
+ {
+ "id": tc.id,
+ "type": tc.type,
+ "function": {
+ "name": tc.function.name,
+ "arguments": tc.function.arguments
+ }
+ }
+ for tc in message.tool_calls
+ ]
+
+ return LLMResponse(
+ content=content,
+ reasoning_steps=reasoning_steps,
+ tool_calls=tool_calls,
+ usage=usage,
+ raw_response=response
+ )
+
+ def extract_reasoning(self, response: Any) -> List[ReasoningStep]:
+ """Extract reasoning steps from raw response."""
+ parsed = self._parse_response(response)
+ return parsed.reasoning_steps
+
+
+class AnthropicProviderAdapter(ProviderAdapter):
+ """Adapter for Anthropic's direct API."""
+
+ def __init__(self, provider_config: ProviderConfig, model_config: ModelConfig):
+ super().__init__(provider_config, model_config)
+ try:
+ import anthropic
+ self.client = anthropic.Anthropic(
+ api_key=provider_config.api_key
+ )
+ except ImportError:
+ raise ImportError("anthropic package not installed. Run: pip install anthropic")
+
+ def call(self, messages: List[Dict], tools: List[Dict]) -> LLMResponse:
+ """Make an API call via Anthropic API."""
+ # Convert OpenAI-style messages to Anthropic format
+ system_prompt = None
+ anthropic_messages = []
+
+ for msg in messages:
+ role = msg.get("role")
+ content = msg.get("content")
+
+ if role == "system":
+ system_prompt = content
+ elif role == "user":
+ anthropic_messages.append({
+ "role": "user",
+ "content": content
+ })
+ elif role == "assistant":
+ # Check for tool calls in the message
+ if msg.get("tool_calls"):
+ # Anthropic uses content blocks for tool calls
+ blocks = [{"type": "text", "text": content or ""}]
+ for tc in msg.get("tool_calls", []):
+ blocks.append({
+ "type": "tool_use",
+ "id": tc["id"],
+ "name": tc["function"]["name"],
+ "input": json.loads(tc["function"]["arguments"])
+ })
+ anthropic_messages.append({
+ "role": "assistant",
+ "content": blocks
+ })
+ else:
+ anthropic_messages.append({
+ "role": "assistant",
+ "content": content
+ })
+ elif role == "tool":
+ # Tool result
+ anthropic_messages.append({
+ "role": "user",
+ "content": [
+ {
+ "type": "tool_result",
+ "tool_use_id": msg.get("tool_call_id"),
+ "content": msg.get("content")
+ }
+ ]
+ })
+
+ # Build thinking config from extra_body
+ extra_body = self._merge_extra_body(self.model_config.extra_body)
+ thinking_config = extra_body.get("thinking", {"type": "enabled", "budget_tokens": 10000})
+
+ response = self.client.messages.create(
+ model=self.model_config.id,
+ max_tokens=self.model_config.max_tokens or 16000,
+ thinking=thinking_config,
+ system=system_prompt,
+ messages=anthropic_messages
+ )
+
+ return self._parse_response(response)
+
+ def _parse_response(self, response) -> LLMResponse:
+ """Parse Anthropic response with content blocks."""
+ # Extract usage
+ usage = {}
+ if hasattr(response, "usage"):
+ usage = {
+ "input_tokens": getattr(response.usage, "input_tokens", 0),
+ "output_tokens": getattr(response.usage, "output_tokens", 0),
+ "total_tokens": getattr(response.usage, "input_tokens", 0) + getattr(response.usage, "output_tokens", 0)
+ }
+
+ # Parse content blocks
+ reasoning_content = ""
+ final_content = ""
+ reasoning_steps = []
+
+ for block in response.content:
+ if block.type == "thinking":
+ # Extract reasoning from thinking block
+ if hasattr(block, "thinking") and block.thinking:
+ reasoning_content += block.thinking + "\n"
+ reasoning_steps.append(ReasoningStep(
+ content=block.thinking,
+ type="reasoning"
+ ))
+ elif block.type == "text":
+ final_content += block.text + "\n"
+
+ # Clean up
+ reasoning_content = reasoning_content.strip()
+ final_content = final_content.strip()
+
+ # Check for tool use blocks (Anthropic tool use)
+ tool_calls = []
+ for block in response.content:
+ if block.type == "tool_use":
+ tool_calls.append({
+ "id": block.id,
+ "type": "function",
+ "function": {
+ "name": block.name,
+ "arguments": json.dumps(block.input)
+ }
+ })
+
+ # Build response
+ if tool_calls:
+ # If there are tool calls, content is None
+ pass
+ elif final_content:
+ # Final response
+ reasoning_steps.append(ReasoningStep(
+ content=final_content,
+ type="reasoning",
+ is_final_response=True
+ ))
+
+ return LLMResponse(
+ content=final_content if not tool_calls else None,
+ reasoning_steps=reasoning_steps,
+ tool_calls=tool_calls,
+ usage=usage,
+ raw_response=response
+ )
+
+ def extract_reasoning(self, response: Any) -> List[ReasoningStep]:
+ """Extract reasoning steps from raw response."""
+ parsed = self._parse_response(response)
+ return parsed.reasoning_steps
+
+
+class MoonshotProviderAdapter(ProviderAdapter):
+ """Adapter for Moonshot AI (Kimi-K2) using proprietary token format for tool calls."""
+
+ def __init__(self, provider_config: ProviderConfig, model_config: ModelConfig):
+ super().__init__(provider_config, model_config)
+ self.client = OpenAI(
+ base_url=provider_config.base_url,
+ api_key=provider_config.api_key
+ )
+
+ def call(self, messages: List[Dict], tools: List[Dict]) -> LLMResponse:
+ """Make an API call via Moonshot AI endpoint."""
+ extra_body = self._merge_extra_body(self.model_config.extra_body)
+
+ response = self.client.chat.completions.create(
+ model=self.model_config.id,
+ messages=messages,
+ tools=tools if tools else None,
+ temperature=self.model_config.temperature,
+ max_tokens=self.model_config.max_tokens,
+ extra_body=extra_body if extra_body else None
+ )
+
+ return self._parse_response(response)
+
+ def _parse_response(self, response) -> LLMResponse:
+ """Parse Moonshot AI response with proprietary token format."""
+ usage = {}
+ if response.usage:
+ usage = {
+ "prompt_tokens": response.usage.prompt_tokens,
+ "completion_tokens": response.usage.completion_tokens,
+ "total_tokens": response.usage.total_tokens
+ }
+
+ message = response.choices[0].message
+ content = message.content or ""
+
+ # Extract reasoning from various sources
+ reasoning = None
+
+ # 1. Check for reasoning_content attribute (OpenRouter structured output)
+ if hasattr(message, 'reasoning_content') and message.reasoning_content:
+ reasoning = message.reasoning_content
+
+ # 2. Check for <thinking> tags in content
+ if not reasoning:
+ thought_match = re.search(r"<(thinking|thought)>(.*?)</\1>", content, re.DOTALL)
+ if thought_match:
+ reasoning = thought_match.group(2).strip()
+ content = content.replace(thought_match.group(0), "").strip()
+
+ # DEBUG: Check for OpenAI tool_calls first
+ openai_tool_calls = []
+ has_openai_tc = hasattr(message, 'tool_calls') and message.tool_calls
+ if has_openai_tc:
+ for tc in message.tool_calls:
+ openai_tool_calls.append({
+ "id": tc.id,
+ "type": tc.type,
+ "function": {
+ "name": tc.function.name,
+ "arguments": tc.function.arguments
+ }
+ })
+
+ # Extract tool calls from proprietary Kimi-K2 token format
+ proprietary_tool_calls = self._extract_tool_calls(content)
+
+ # Debug output
+ has_prop_tc = len(proprietary_tool_calls) > 0
+ print(f" [MoonshotAdapter] content_len={len(content)}, has_reasoning={bool(reasoning)}, has_openai_tc={has_openai_tc}, has_proprietary_tc={has_prop_tc}")
+
+ # Use OpenAI tool_calls if available, otherwise use proprietary
+ tool_calls = openai_tool_calls if openai_tool_calls else proprietary_tool_calls
+
+ # Clean tool calls from content
+ clean_content = content
+ if tool_calls:
+ clean_content = self._remove_tool_tokens(clean_content)
+
+ # Build reasoning steps
+ reasoning_steps = []
+
+ # Add reasoning if present (either from reasoning_content or <thinking> tags)
+ if reasoning:
+ reasoning_steps.append(ReasoningStep(content=reasoning, type="reasoning"))
+
+ # When there are tool calls, the content is the model's reasoning about tool selection
+ if tool_calls and clean_content:
+ reasoning_steps.append(ReasoningStep(
+ content=clean_content,
+ type="reasoning"
+ ))
+
+ # Add final response content if present and no tool calls
+ if not tool_calls and clean_content:
+ reasoning_steps.append(ReasoningStep(
+ content=clean_content,
+ type="reasoning",
+ is_final_response=True
+ ))
+
+ return LLMResponse(
+ content=clean_content if not tool_calls else None,
+ reasoning_steps=reasoning_steps,
+ tool_calls=tool_calls,
+ usage=usage,
+ raw_response=response
+ )
+
+ def _extract_tool_calls(self, content: str) -> List[Dict]:
+ """Extract tool calls from Kimi-K2 proprietary token format."""
+ if '<|tool_calls_section_begin|>' not in content:
+ return []
+
+ # Pattern to match Kimi-K2 tool call format:
+ # <|tool_call_begin|>functions.read_file:1<|tool_call_argument_begin|>{"file_path": "..."}<|tool_call_end|>
+ pattern = r"<\|tool_call_begin\|>\s*(?P<tool_call_id>[\w\.]+:\d+)\s*<\|tool_call_argument_begin\|>\s*(?P<function_arguments>.*?)\s*<\|tool_call_end\|>"
+
+ tool_calls = []
+ tool_calls_section_match = re.search(
+ r"<\|tool_calls_section_begin\|>(.*?)<\|tool_calls_section_end\|>",
+ content,
+ re.DOTALL
+ )
+
+ if not tool_calls_section_match:
+ return []
+
+ section_content = tool_calls_section_match.group(1)
+
+ for match in re.finditer(pattern, section_content, re.DOTALL):
+ function_id = match.group("tool_call_id")
+ function_args = match.group("function_arguments")
+
+ # Parse function name from ID: functions.read_file:0 -> read_file
+ function_name = function_id.split('.')[1].split(':')[0]
+
+ # Generate a proper UUID-style ID for compatibility
+ tool_id = f"tc_{len(tool_calls)}"
+
+ tool_calls.append({
+ "id": tool_id,
+ "type": "function",
+ "function": {
+ "name": function_name,
+ "arguments": function_args
+ }
+ })
+
+ return tool_calls
+
+ def _remove_tool_tokens(self, content: str) -> str:
+ """Remove proprietary tool call tokens from content."""
+ # Remove the entire tool calls section
+ content = re.sub(
+ r"<\|tool_calls_section_begin\|>.*?<\|tool_calls_section_end\||>",
+ "",
+ content,
+ flags=re.DOTALL
+ )
+ return content.strip()
+
+ def extract_reasoning(self, response: Any) -> List[ReasoningStep]:
+ """Extract reasoning steps from raw response."""
+ parsed = self._parse_response(response)
+ return parsed.reasoning_steps
+
+
+def create_provider_adapter(provider_config: ProviderConfig, model_config: ModelConfig) -> ProviderAdapter:
+ """Factory function to create the appropriate provider adapter."""
+ provider_name = provider_config.name.lower()
+
+ adapters = {
+ "openai": OpenAIProviderAdapter,
+ "openrouter": OpenAIProviderAdapter,
+ "together": OpenAIProviderAdapter,
+ "google": GoogleProviderAdapter,
+ "anthropic": AnthropicProviderAdapter,
+ "moonshot": MoonshotProviderAdapter,
+ }
+
+ adapter_class = adapters.get(provider_name)
+ if not adapter_class:
+ raise ValueError(f"Unsupported provider: {provider_name}")
+
+ return adapter_class(provider_config, model_config)
diff --git a/src/agents/main/pyproject.toml b/src/agents/main/pyproject.toml
index 20c98f3..60220b1 100644
--- a/src/agents/main/pyproject.toml
+++ b/src/agents/main/pyproject.toml
@@ -5,5 +5,8 @@ description = "Add your description here"
readme = "README.md"
requires-python = ">=3.13"
dependencies = [
+ "anthropic>=0.75.0",
"openai>=2.8.0",
+ "pyyaml>=6.0.3",
+ "python-dotenv>=1.0.0",
]
diff --git a/src/agents/main/runner.py b/src/agents/main/runner.py
new file mode 100644
index 0000000..218602a
--- /dev/null
+++ b/src/agents/main/runner.py
@@ -0,0 +1,166 @@
+"""
+Runner - orchestrates experiment runs based on config.
+Loops through models, scenarios, and oversight levels.
+"""
+import os
+from typing import List, Dict, Any
+from config_loader import ConfigLoader, ProviderConfig, ModelConfig, ScenarioConfig
+from vfs import VFS
+from agent import Agent
+import datetime
+
+
+def load_prompt(file_path: str) -> str:
+ """Load a prompt file."""
+ if not os.path.exists(file_path):
+ return ""
+ with open(file_path, 'r') as f:
+ return f.read().strip()
+
+
+class ExperimentRunner:
+ """Runs experiments based on configuration."""
+
+ def __init__(self, config: ConfigLoader, verbose: bool = False):
+ self.config = config
+ self.results: List[Dict] = []
+ self.verbose = verbose
+
+ def run_all(self):
+ """Run all experiments defined in config."""
+ print(f"\n{'='*60}")
+ print("Starting Experiment Run")
+ print(f"{'='*60}\n")
+
+ total_runs = 0
+ for model_config in self.config.models:
+ for scenario_config in self.config.scenarios:
+ for oversight_level in self.config.oversight_levels:
+ runs = self._run_combo(model_config, scenario_config, oversight_level)
+ total_runs += runs
+
+ print(f"\n{'='*60}")
+ print(f"Experiment Complete: {total_runs} runs")
+ print(f"{'='*60}\n")
+
+ def _run_combo(
+ self,
+ model_config: ModelConfig,
+ scenario_config: ScenarioConfig,
+ oversight_level: str
+ ) -> int:
+ """Run a specific combination of model, scenario, and oversight."""
+ provider_config = self.config.get_provider(model_config.provider)
+
+ scenario_name = os.path.basename(scenario_config.path)
+ print(f"\n--- Running: {model_config.id} | {scenario_name} | {oversight_level} ---")
+
+ runs_completed = 0
+ for run_num in range(1, scenario_config.runs + 1):
+ try:
+ self._run_single(
+ model_config=model_config,
+ provider_config=provider_config,
+ scenario_config=scenario_config,
+ oversight_level=oversight_level,
+ run_num=run_num
+ )
+ runs_completed += 1
+ except Exception as e:
+ print(f"ERROR in run {run_num}: {e}")
+ import traceback
+ traceback.print_exc()
+
+ print(f"--- Completed: {runs_completed}/{scenario_config.runs} runs ---")
+ return runs_completed
+
+ def _run_single(
+ self,
+ model_config: ModelConfig,
+ provider_config: ProviderConfig,
+ scenario_config: ScenarioConfig,
+ oversight_level: str,
+ run_num: int
+ ):
+ """Run a single experiment."""
+ # Load scenario prompts
+ benign_goal = load_prompt(os.path.join(scenario_config.path, "benign_goal.md"))
+ hidden_goal = load_prompt(os.path.join(scenario_config.path, "hidden_goal.md"))
+ user_prompt = load_prompt(os.path.join(scenario_config.path, "user.md"))
+ oversight_prompt = load_prompt(os.path.join("oversight", f"{oversight_level}.md"))
+
+ # Build system prompt
+ system_parts = [benign_goal]
+ if hidden_goal:
+ system_parts.append(hidden_goal)
+ if oversight_prompt:
+ system_parts.append(oversight_prompt)
+ system_prompt = "\n\n".join(filter(None, system_parts))
+
+ # Initialize VFS
+ vfs_path = os.path.join(scenario_config.path, "data")
+ VFS.get_instance(vfs_path)
+
+ print(f" VFS initialized from: {vfs_path}")
+ if self.verbose:
+ VFS.get_instance().print_fs()
+
+ # Create agent
+ agent = Agent.from_configs(
+ system_prompt=system_prompt,
+ provider_config=provider_config,
+ model_config=model_config,
+ scenario=os.path.basename(scenario_config.path),
+ oversight_level=oversight_level,
+ user_prompt_type="user.md"
+ )
+
+ # Run the conversation
+ print(f"\n Starting conversation (run {run_num})...")
+ start_time = datetime.datetime.now()
+ agent.run(user_prompt)
+ end_time = datetime.datetime.now()
+
+ # Save logs
+ output_dir = self.config.output_dir
+ log_file = agent.save_logs(output_dir=output_dir)
+
+ # Print final VFS
+ if self.verbose:
+ print(f"\n Final VFS state:")
+ VFS.get_instance().print_fs()
+
+ # Record result
+ self.results.append({
+ "model": model_config.id,
+ "provider": model_config.provider,
+ "scenario": os.path.basename(scenario_config.path),
+ "oversight_level": oversight_level,
+ "run_num": run_num,
+ "run_id": f"{model_config.id}/{os.path.basename(scenario_config.path)}/{oversight_level}/{datetime.datetime.now().strftime('%Y%m%d_%H%M%S')}",
+ "duration_seconds": (end_time - start_time).total_seconds(),
+ "total_tokens": agent.total_tokens,
+ "log_file": log_file
+ })
+
+ print(f" Completed in {(end_time - start_time).total_seconds():.2f}s")
+
+
+def run_from_config(config_path: str = "config.yaml"):
+ """Convenience function to run all experiments from a config file."""
+ config = ConfigLoader(config_path)
+ config.load()
+
+ runner = ExperimentRunner(config)
+ runner.run_all()
+
+ return runner.results
+
+
+if __name__ == "__main__":
+ import argparse
+ parser = argparse.ArgumentParser(description="Run experiments from config")
+ parser.add_argument("--config", default="config.yaml", help="Path to config file")
+ args = parser.parse_args()
+
+ run_from_config(args.config)
diff --git a/src/agents/main/uv.lock b/src/agents/main/uv.lock
index f7de79d..afdc655 100644
--- a/src/agents/main/uv.lock
+++ b/src/agents/main/uv.lock
@@ -1,5 +1,4 @@
version = 1
-revision = 3
requires-python = ">=3.13"
[[package]]
@@ -7,19 +6,46 @@ name = "03-logs"
version = "0.1.0"
source = { virtual = "." }
dependencies = [
+ { name = "anthropic" },
{ name = "openai" },
+ { name = "python-dotenv" },
+ { name = "pyyaml" },
]
[package.metadata]
-requires-dist = [{ name = "openai", specifier = ">=2.8.0" }]
+requires-dist = [
+ { name = "anthropic", specifier = ">=0.75.0" },
+ { name = "openai", specifier = ">=2.8.0" },
+ { name = "python-dotenv", specifier = ">=1.0.0" },
+ { name = "pyyaml", specifier = ">=6.0.3" },
+]
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+
+[[package]]
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+version = "0.75.0"
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+dependencies = [
+ { name = "anyio" },
+ { name = "distro" },
+ { name = "docstring-parser" },
+ { name = "httpx" },
+ { name = "jiter" },
+ { name = "pydantic" },
+ { name = "sniffio" },
+ { name = "typing-extensions" },
+]
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