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2 Commits
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223
agent/session_model_metadata.py
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223
agent/session_model_metadata.py
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"""
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Session Model Metadata — Persist model context info per session
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When a session switches models mid-conversation, context length and
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token budget need to be updated to prevent silent truncation.
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Issue: #741
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"""
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import json
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import logging
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from dataclasses import dataclass, asdict
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from pathlib import Path
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from typing import Any, Dict, Optional
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logger = logging.getLogger(__name__)
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HERMES_HOME = Path.home() / ".hermes"
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# Common model context lengths (tokens)
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KNOWN_CONTEXT_LENGTHS = {
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# Anthropic
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"claude-opus-4-6": 200000,
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"claude-sonnet-4": 200000,
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"claude-3.5-sonnet": 200000,
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"claude-3-haiku": 200000,
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# OpenAI
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"gpt-4o": 128000,
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"gpt-4-turbo": 128000,
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"gpt-4": 8192,
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"gpt-3.5-turbo": 16385,
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# Nous / open models
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"hermes-3-llama-3.1-405b": 131072,
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"hermes-3-llama-3.1-70b": 131072,
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"deepseek-r1": 131072,
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"deepseek-v3": 131072,
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# Local
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"llama-3.1-8b": 131072,
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"llama-3.1-70b": 131072,
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"qwen-2.5-72b": 131072,
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# Xiaomi
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"mimo-v2-pro": 131072,
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"mimo-v2-flash": 131072,
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# Defaults
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"default": 4096,
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}
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# Reserve tokens for system prompt, response, and overhead
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TOKEN_RESERVE = 2000
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@dataclass
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class ModelMetadata:
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"""Metadata for a model in a session."""
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model: str
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provider: str
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context_length: int
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available_for_input: int # context_length - reserve
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current_tokens_used: int = 0
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@property
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def remaining_tokens(self) -> int:
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"""Tokens remaining for new input."""
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return max(0, self.available_for_input - self.current_tokens_used)
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@property
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def utilization_pct(self) -> float:
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"""Percentage of context used."""
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if self.available_for_input == 0:
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return 0.0
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return (self.current_tokens_used / self.available_for_input) * 100
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def to_dict(self) -> Dict[str, Any]:
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return asdict(self)
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def get_context_length(model: str) -> int:
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"""Get context length for a model."""
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model_lower = model.lower()
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# Check exact match
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if model_lower in KNOWN_CONTEXT_LENGTHS:
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return KNOWN_CONTEXT_LENGTHS[model_lower]
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# Check partial match
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for key, length in KNOWN_CONTEXT_LENGTHS.items():
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if key in model_lower:
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return length
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return KNOWN_CONTEXT_LENGTHS["default"]
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def create_metadata(model: str, provider: str = "", current_tokens: int = 0) -> ModelMetadata:
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"""Create model metadata."""
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context_length = get_context_length(model)
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available = max(0, context_length - TOKEN_RESERVE)
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return ModelMetadata(
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model=model,
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provider=provider,
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context_length=context_length,
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available_for_input=available,
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current_tokens_used=current_tokens
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)
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def check_model_switch(
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old_model: str,
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new_model: str,
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current_tokens: int
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) -> Dict[str, Any]:
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"""
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Check impact of switching models mid-session.
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Returns:
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Dict with switch analysis including warnings
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"""
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old_ctx = get_context_length(old_model)
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new_ctx = get_context_length(new_model)
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old_available = old_ctx - TOKEN_RESERVE
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new_available = new_ctx - TOKEN_RESERVE
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result = {
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"old_model": old_model,
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"new_model": new_model,
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"old_context": old_ctx,
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"new_context": new_ctx,
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"current_tokens": current_tokens,
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"fits_in_new": current_tokens <= new_available,
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"truncation_needed": max(0, current_tokens - new_available),
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"warning": None,
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}
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if not result["fits_in_new"]:
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result["warning"] = (
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f"Switching to {new_model} ({new_ctx:,} ctx) with {current_tokens:,} tokens "
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f"will truncate {result['truncation_needed']:,} tokens of history. "
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f"Consider starting a new session."
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)
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if new_ctx < old_ctx:
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reduction = old_ctx - new_ctx
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result["warning"] = (
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f"New model has {reduction:,} fewer tokens of context. "
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f"({old_ctx:,} -> {new_ctx:,})"
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)
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return result
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class SessionModelTracker:
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"""Track model metadata for a session."""
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def __init__(self, session_id: str):
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self.session_id = session_id
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self.metadata: Optional[ModelMetadata] = None
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self.history: list = [] # Model switch history
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def set_model(self, model: str, provider: str = "", tokens_used: int = 0):
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"""Set the current model for the session."""
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old_model = self.metadata.model if self.metadata else None
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self.metadata = create_metadata(model, provider, tokens_used)
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# Record switch in history
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if old_model and old_model != model:
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self.history.append({
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"from": old_model,
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"to": model,
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"tokens_at_switch": tokens_used,
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"context_length": self.metadata.context_length
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})
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logger.info(
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"Session %s: model=%s context=%d available=%d",
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self.session_id[:12], model,
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self.metadata.context_length,
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self.metadata.available_for_input
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)
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def update_tokens(self, tokens: int):
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"""Update current token usage."""
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if self.metadata:
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self.metadata.current_tokens_used = tokens
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def get_remaining(self) -> int:
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"""Get remaining tokens."""
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if not self.metadata:
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return 0
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return self.metadata.remaining_tokens
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def can_fit(self, additional_tokens: int) -> bool:
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"""Check if additional tokens fit in context."""
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if not self.metadata:
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return False
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return self.metadata.remaining_tokens >= additional_tokens
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def get_warning(self) -> Optional[str]:
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"""Get warning if context is running low."""
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if not self.metadata:
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return None
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util = self.metadata.utilization_pct
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if util > 90:
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return f"Context {util:.0f}% full. Consider compression or new session."
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if util > 75:
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return f"Context {util:.0f}% full."
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return None
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def to_dict(self) -> Dict[str, Any]:
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"""Export state."""
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return {
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"session_id": self.session_id,
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"metadata": self.metadata.to_dict() if self.metadata else None,
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"history": self.history
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}
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105
tests/test_session_model_metadata.py
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105
tests/test_session_model_metadata.py
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"""
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Tests for session model metadata
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Issue: #741
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"""
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import unittest
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from agent.session_model_metadata import (
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get_context_length,
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create_metadata,
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check_model_switch,
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SessionModelTracker,
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)
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class TestContextLength(unittest.TestCase):
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def test_known_model(self):
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ctx = get_context_length("claude-opus-4-6")
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self.assertEqual(ctx, 200000)
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def test_partial_match(self):
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ctx = get_context_length("anthropic/claude-sonnet-4")
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self.assertEqual(ctx, 200000)
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def test_unknown_model(self):
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ctx = get_context_length("unknown-model-xyz")
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self.assertEqual(ctx, 4096)
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class TestModelMetadata(unittest.TestCase):
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def test_create(self):
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meta = create_metadata("gpt-4o", "openai", 1000)
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self.assertEqual(meta.context_length, 128000)
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self.assertEqual(meta.current_tokens_used, 1000)
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self.assertGreater(meta.remaining_tokens, 0)
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def test_utilization(self):
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meta = create_metadata("gpt-4o", "openai", 64000)
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self.assertAlmostEqual(meta.utilization_pct, 50.0, delta=1)
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class TestModelSwitch(unittest.TestCase):
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def test_safe_switch(self):
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result = check_model_switch("gpt-3.5-turbo", "gpt-4o", 5000)
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self.assertTrue(result["fits_in_new"])
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self.assertIsNone(result["warning"])
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def test_truncation_warning(self):
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result = check_model_switch("gpt-4o", "gpt-3.5-turbo", 20000)
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self.assertFalse(result["fits_in_new"])
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self.assertIsNotNone(result["warning"])
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self.assertIn("truncate", result["warning"].lower())
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def test_downgrade_warning(self):
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result = check_model_switch("claude-opus-4-6", "gpt-4", 5000)
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self.assertIsNotNone(result["warning"])
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class TestSessionModelTracker(unittest.TestCase):
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def test_set_model(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o", "openai")
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self.assertEqual(tracker.metadata.model, "gpt-4o")
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def test_update_tokens(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o")
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tracker.update_tokens(5000)
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self.assertEqual(tracker.metadata.current_tokens_used, 5000)
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def test_remaining(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o")
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tracker.update_tokens(10000)
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self.assertGreater(tracker.get_remaining(), 0)
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def test_can_fit(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o")
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tracker.update_tokens(10000)
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self.assertTrue(tracker.can_fit(5000))
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self.assertFalse(tracker.can_fit(200000))
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def test_warning_low_context(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o")
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tracker.update_tokens(115000) # ~90% used
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warning = tracker.get_warning()
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self.assertIsNotNone(warning)
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def test_model_switch_history(self):
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tracker = SessionModelTracker("test")
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tracker.set_model("gpt-4o", "openai")
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tracker.update_tokens(5000)
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tracker.set_model("claude-opus-4-6", "anthropic")
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self.assertEqual(len(tracker.history), 1)
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self.assertEqual(tracker.history[0]["from"], "gpt-4o")
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if __name__ == "__main__":
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unittest.main()
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Reference in New Issue
Block a user