[Bugfix] spec decode handle None entries in topk args in create_sequence_group_output (#7232)
Signed-off-by: Travis Johnson <tsjohnso@us.ibm.com>
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@ -343,3 +343,78 @@ def run_greedy_logprobs_correctness_test(baseline_llm_generator,
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b=baseline_rank_to_logprob[rank],
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abs_tol=1e-1,
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)
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@pytest.mark.parametrize(
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"common_llm_kwargs",
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[{
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"model": "JackFram/llama-160m",
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# Skip cuda graph recording for fast test.
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"enforce_eager": True,
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# Required for spec decode.
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"use_v2_block_manager": True,
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"max_logprobs": 6,
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}])
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@pytest.mark.parametrize("per_test_common_llm_kwargs", [{}])
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@pytest.mark.parametrize("baseline_llm_kwargs", [{}])
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@pytest.mark.parametrize("test_llm_kwargs",
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[{
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"speculative_model": "JackFram/llama-68m",
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"num_speculative_tokens": 3,
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"disable_logprobs_during_spec_decoding": True,
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}])
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@pytest.mark.parametrize("seed", [1])
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def test_logprobs_disabled(baseline_llm_generator, test_llm_generator):
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"""Check the behavior when logprobs are disabled.
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Token choices should match with the base model.
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"""
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prompts = [
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"Hello, my name is",
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"The president of the United States is",
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"The capital of France is",
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"The future of AI is",
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"San Francisco is know for its",
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"Facebook was created in 2004 by",
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"Curious George is a",
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"Python 3.11 brings improvements to its",
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]
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prompts = [prompt for prompt, _ in zip(cycle(prompts), range(4))]
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sampling_params = SamplingParams(
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# Use smaller output len for fast test
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max_tokens=7,
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ignore_eos=True,
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temperature=0.0,
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logprobs=2,
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)
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spec_batch_logprobs = get_logprobs_from_llm_generator(
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test_llm_generator, prompts, sampling_params)
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baseline_batch_logprobs = get_logprobs_from_llm_generator(
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baseline_llm_generator, prompts, sampling_params)
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assert len(baseline_batch_logprobs) == len(prompts)
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assert len(spec_batch_logprobs) == len(prompts)
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# For each sequence in the batch.
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for _, (baseline_logprobs, spec_logprobs) in enumerate(
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zip(baseline_batch_logprobs, spec_batch_logprobs)):
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assert len(spec_logprobs) == len(baseline_logprobs)
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# For each generated position of the sequence.
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for _, (spec_pos_logprobs, baseline_pos_logprobs) in enumerate(
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zip(spec_logprobs, baseline_logprobs)):
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assert len(spec_pos_logprobs) == 1
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spec_top_token_id = list(spec_pos_logprobs)[0]
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spec_top_logprob = spec_pos_logprobs[spec_top_token_id]
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assert spec_top_logprob.logprob == 0.0
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assert spec_top_logprob.rank == -1
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# check that the chosen token matches the base model
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baseline_logprob = baseline_pos_logprobs[spec_top_token_id]
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assert baseline_logprob.rank == 1
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assert spec_top_logprob.decoded_token \
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== baseline_logprob.decoded_token
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@ -64,23 +64,25 @@ def create_sequence_group_output(
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token_id_logprob_rank (int): The logprob rank of the sampled token.
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token_id_logprob (float): The logprob value of the sampled token.
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seq_id (int): The sequence id.
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topk_token_ids (List[int]): The list of top-k token ids.
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topk_logprobs (List[float]): The list of top-k logprobs.
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topk_token_ids (List[Optional[int]]): The list of top-k token ids.
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topk_logprobs (List[Optional[float]]): The list of top-k logprobs.
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"""
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# vLLM logprobs always include the sampled token. In addition, the user may
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# request topk-logprobs (where top-k varies per user up to max_logprobs).
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logprobs: Dict[Optional[int], Logprob] = {
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logprobs: Dict[int, Logprob] = {
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token_id: Logprob(
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logprob=token_id_logprob,
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rank=token_id_logprob_rank,
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),
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}
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logprobs.update({
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topk_token_ids[topk_logprob_index]: Logprob(
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logprob=topk_logprobs[topk_logprob_index],
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rank=topk_logprob_index + 1,
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topk_token_id: Logprob(
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logprob=topk_logprob if topk_logprob is not None else 0.0,
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rank=topk_index + 1,
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)
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for topk_logprob_index, _ in enumerate(topk_token_ids)
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for topk_index, (topk_token_id, topk_logprob) \
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in enumerate(zip(topk_token_ids, topk_logprobs)) \
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if topk_token_id is not None
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})
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return CompletionSequenceGroupOutput(
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