Llama3 and Llama2 are ExecuTorch compatible (#34101)
Llama3_1b and Llama2_7b are ExecuTorch compatible Co-authored-by: Guang Yang <guangyang@fb.com>
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@@ -23,6 +23,7 @@ from packaging import version
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from parameterized import parameterized
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from parameterized import parameterized
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from transformers import AutoTokenizer, LlamaConfig, StaticCache, is_torch_available, set_seed
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from transformers import AutoTokenizer, LlamaConfig, StaticCache, is_torch_available, set_seed
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from transformers.generation.configuration_utils import GenerationConfig
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from transformers.testing_utils import (
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from transformers.testing_utils import (
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backend_empty_cache,
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backend_empty_cache,
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require_bitsandbytes,
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require_bitsandbytes,
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@@ -916,6 +917,74 @@ class LlamaIntegrationTest(unittest.TestCase):
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static_compiled_text = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)
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static_compiled_text = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)
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self.assertEqual(EXPECTED_TEXT_COMPLETION, static_compiled_text)
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self.assertEqual(EXPECTED_TEXT_COMPLETION, static_compiled_text)
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@slow
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@require_read_token
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def test_export_static_cache(self):
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if version.parse(torch.__version__) < version.parse("2.4.0"):
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self.skipTest(reason="This test requires torch >= 2.4 to run.")
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from transformers.integrations.executorch import (
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TorchExportableModuleWithStaticCache,
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convert_and_export_with_cache,
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)
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llama_models = {
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"meta-llama/Llama-3.2-1B": [
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"Simply put, the theory of relativity states that 1) the speed of light is the same for all "
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"observers, regardless of their location, and 2) the laws of physics are the same for all observers"
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],
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"meta-llama/Llama-3.2-3B": [
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"Simply put, the theory of relativity states that 1. the speed of light is constant, and 2. "
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"the speed of light is the fastest speed possible"
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],
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"meta-llama/Llama-2-7b-hf": [
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"Simply put, the theory of relativity states that 1) the speed of light is a constant, and 2) "
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"the laws of physics are the same for all",
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],
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}
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for llama_model_ckp, EXPECTED_TEXT_COMPLETION in llama_models.items():
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# Load tokenizer
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tokenizer = AutoTokenizer.from_pretrained(llama_model_ckp, pad_token="</s>", padding_side="right")
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max_generation_length = tokenizer(EXPECTED_TEXT_COMPLETION, return_tensors="pt", padding=True)[
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"input_ids"
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].shape[-1]
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# Load model
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device = "cpu"
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dtype = torch.bfloat16
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cache_implementation = "static"
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attn_implementation = "sdpa"
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batch_size = 1
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model = LlamaForCausalLM.from_pretrained(
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llama_model_ckp,
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device_map=device,
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torch_dtype=dtype,
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attn_implementation=attn_implementation,
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generation_config=GenerationConfig(
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use_cache=True,
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cache_implementation=cache_implementation,
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max_length=max_generation_length,
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cache_config={
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"batch_size": batch_size,
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"max_cache_len": max_generation_length,
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},
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),
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)
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prompts = ["Simply put, the theory of relativity states that "]
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prompt_tokens = tokenizer(prompts, return_tensors="pt", padding=True).to(model.device)
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prompt_token_ids = prompt_tokens["input_ids"]
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max_new_tokens = max_generation_length - prompt_token_ids.shape[-1]
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# Static Cache + export
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exported_program = convert_and_export_with_cache(model)
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ep_generated_ids = TorchExportableModuleWithStaticCache.generate(
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exported_program=exported_program, prompt_token_ids=prompt_token_ids, max_new_tokens=max_new_tokens
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)
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ep_generated_text = tokenizer.batch_decode(ep_generated_ids, skip_special_tokens=True)
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self.assertEqual(EXPECTED_TEXT_COMPLETION, ep_generated_text)
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@slow
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@slow
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@require_torch_accelerator
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@require_torch_accelerator
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