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4.47 kB
| """Tests for OpenAI provider.""" | |
| import pytest | |
| from headroom.providers.openai import ( | |
| _get_encoding_name_for_model, | |
| ) | |
| class TestOpenAITokenCounting: | |
| def test_count_text_empty(self, openai_tokenizer): | |
| assert openai_tokenizer.count_text("") == 0 | |
| def test_count_text_simple(self, openai_tokenizer): | |
| count = openai_tokenizer.count_text("Hello world") | |
| assert count > 0 | |
| assert count < 10 # Should be ~2 tokens | |
| def test_count_text_with_special_chars(self, openai_tokenizer): | |
| text = "Hello 🌍! Special chars: @#$%" | |
| count = openai_tokenizer.count_text(text) | |
| assert count > 0 | |
| def test_count_messages_single(self, openai_tokenizer): | |
| messages = [{"role": "user", "content": "Hello"}] | |
| count = openai_tokenizer.count_messages(messages) | |
| assert count > 0 | |
| def test_count_messages_with_tools(self, openai_tokenizer): | |
| messages = [ | |
| {"role": "user", "content": "Search"}, | |
| { | |
| "role": "assistant", | |
| "tool_calls": [{"id": "call_1", "function": {"name": "search", "arguments": "{}"}}], | |
| }, | |
| ] | |
| count = openai_tokenizer.count_messages(messages) | |
| assert count > 10 # Tool calls add overhead | |
| def test_count_message_overhead(self, openai_tokenizer): | |
| # Each message has ~4 tokens overhead | |
| msg = {"role": "user", "content": ""} | |
| count = openai_tokenizer.count_message(msg) | |
| assert count >= 4 | |
| class TestOpenAIModelLimits: | |
| def test_get_context_limit_gpt4o(self, openai_provider): | |
| assert openai_provider.get_context_limit("gpt-4o") == 128000 | |
| def test_get_context_limit_o1(self, openai_provider): | |
| assert openai_provider.get_context_limit("o1") == 200000 | |
| def test_get_context_limit_unknown_model(self, openai_provider): | |
| # Unknown models now get a fallback value instead of raising | |
| limit = openai_provider.get_context_limit("unknown-model") | |
| assert limit == 128000 # Default fallback | |
| def test_supports_model_known(self, openai_provider): | |
| assert openai_provider.supports_model("gpt-4o") is True | |
| assert openai_provider.supports_model("gpt-4o-mini") is True | |
| def test_supports_model_unknown(self, openai_provider): | |
| assert openai_provider.supports_model("claude-3") is False | |
| class TestOpenAICostEstimation: | |
| def test_estimate_cost_input_only(self, openai_provider): | |
| cost = openai_provider.estimate_cost( | |
| input_tokens=1000000, | |
| output_tokens=0, | |
| model="gpt-4o", | |
| ) | |
| assert cost == pytest.approx(2.50, rel=0.01) | |
| def test_estimate_cost_with_output(self, openai_provider): | |
| cost = openai_provider.estimate_cost( | |
| input_tokens=1000000, | |
| output_tokens=1000000, | |
| model="gpt-4o", | |
| ) | |
| # $2.50 input + $10.00 output = $12.50 | |
| assert cost == pytest.approx(12.50, rel=0.01) | |
| def test_estimate_cost_with_cached(self, openai_provider): | |
| cost = openai_provider.estimate_cost( | |
| input_tokens=1000000, | |
| output_tokens=0, | |
| model="gpt-4o", | |
| cached_tokens=500000, | |
| ) | |
| # 500K regular @ $2.50/M = $1.25, 500K cached @ $1.25/M = $0.625 | |
| assert cost == pytest.approx(1.875, rel=0.01) | |
| def test_estimate_cost_unknown_model(self, openai_provider): | |
| # Unknown models now get fallback pricing (gpt-4o tier) | |
| cost = openai_provider.estimate_cost( | |
| input_tokens=1000, | |
| output_tokens=1000, | |
| model="unknown-model", | |
| ) | |
| # Fallback uses gpt-4o pricing: $2.50/M input + $10/M output | |
| # = (1000/1M * 2.50) + (1000/1M * 10.00) = 0.0025 + 0.01 = 0.0125 | |
| assert cost == pytest.approx(0.0125, rel=0.01) | |
| class TestEncodingSelection: | |
| def test_gpt4o_uses_o200k(self): | |
| assert _get_encoding_name_for_model("gpt-4o") == "o200k_base" | |
| def test_gpt4_uses_cl100k(self): | |
| assert _get_encoding_name_for_model("gpt-4") == "cl100k_base" | |
| def test_versioned_model_prefix_match(self): | |
| assert _get_encoding_name_for_model("gpt-4o-2024-11-20") == "o200k_base" | |
| def test_unknown_model_uses_fallback(self): | |
| # Unknown models now get a fallback encoding instead of raising | |
| encoding = _get_encoding_name_for_model("completely-unknown") | |
| assert encoding == "o200k_base" # Default fallback | |