registry.py 37.9 KB
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# SPDX-License-Identifier: Apache-2.0
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# SPDX-FileCopyrightText: Copyright contributors to the vLLM project
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from collections.abc import Mapping, Set
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from dataclasses import dataclass, field
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from typing import Any, Literal, Optional
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import os
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import pytest
from packaging.version import Version
from transformers import __version__ as TRANSFORMERS_VERSION
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# from ..utils import models_path_prefix
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models_path_prefix = os.getenv('VLLM_OPTEST_MODELS_PATH') or os.getenv("OPTEST_MODELS_PATH")
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from vllm.config import TokenizerMode

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@dataclass(frozen=True)
class _HfExamplesInfo:
    default: str
    """The default model to use for testing this architecture."""

    extras: Mapping[str, str] = field(default_factory=dict)
    """Extra models to use for testing this architecture."""

    tokenizer: Optional[str] = None
    """Set the tokenizer to load for this architecture."""

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    tokenizer_mode: TokenizerMode = "auto"
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    """Set the tokenizer type for this architecture."""

    speculative_model: Optional[str] = None
    """
    The default model to use for testing this architecture, which is only used
    for speculative decoding.
    """

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    min_transformers_version: Optional[str] = None
    """
    The minimum version of HF Transformers that is required to run this model.
    """

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    max_transformers_version: Optional[str] = None
    """
    The maximum version of HF Transformers that this model runs on.
    """

    transformers_version_reason: Optional[str] = None
    """
    The reason for the minimum/maximum version requirement.
    """

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    is_available_online: bool = True
    """
    Set this to ``False`` if the name of this architecture no longer exists on
    the HF repo. To maintain backwards compatibility, we have not removed them
    from the main model registry, so without this flag the registry tests will
    fail.
    """

    trust_remote_code: bool = False
    """The ``trust_remote_code`` level required to load the model."""

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    v0_only: bool = False
    """The model is only available with the vLLM V0 engine."""

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    hf_overrides: dict[str, Any] = field(default_factory=dict)
    """The ``hf_overrides`` required to load the model."""

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    max_model_len: Optional[int] = None
    """
    The maximum model length to use for this model. Some models default to a
    length that is too large to fit into memory in CI.
    """

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    revision: Optional[str] = None
    """
    The specific revision (commit hash, tag, or branch) to use for the model.
    If not specified, the default revision will be used.
    """

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    def check_transformers_version(
        self,
        *,
        on_fail: Literal["error", "skip"],
    ) -> None:
        """
        If the installed transformers version does not meet the requirements,
        perform the given action.
        """
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        if (self.min_transformers_version is None
                and self.max_transformers_version is None):
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            return

        current_version = TRANSFORMERS_VERSION
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        cur_base_version = Version(current_version).base_version
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        min_version = self.min_transformers_version
        max_version = self.max_transformers_version
        msg = f"`transformers=={current_version}` installed, but `transformers"
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        # Only check the base version for the min/max version, otherwise preview
        # models cannot be run because `x.yy.0.dev0`<`x.yy.0`
        if min_version and Version(cur_base_version) < Version(min_version):
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            msg += f">={min_version}` is required to run this model."
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        elif max_version and Version(cur_base_version) > Version(max_version):
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            msg += f"<={max_version}` is required to run this model."
        else:
            return
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        if self.transformers_version_reason:
            msg += f" Reason: {self.transformers_version_reason}"

        if on_fail == "error":
            raise RuntimeError(msg)
        else:
            pytest.skip(msg)
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    def check_available_online(
        self,
        *,
        on_fail: Literal["error", "skip"],
    ) -> None:
        """
        If the model is not available online, perform the given action.
        """
        if not self.is_available_online:
            msg = "Model is not available online"

            if on_fail == "error":
                raise RuntimeError(msg)
            else:
                pytest.skip(msg)

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# yapf: disable
_TEXT_GENERATION_EXAMPLE_MODELS = {
    # [Decoder-only]
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    "AquilaModel": _HfExamplesInfo(os.path.join(models_path_prefix, "BAAI/AquilaChat-7B"),
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                                   trust_remote_code=True),
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    "AquilaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "BAAI/AquilaChat2-7B"),
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                                         trust_remote_code=True),
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    "ArcticForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "Snowflake/snowflake-arctic-instruct"),
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                                         trust_remote_code=True),
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    "BaiChuanForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "baichuan-inc/Baichuan-7B"),
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                                         trust_remote_code=True),
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    "BaichuanForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "baichuan-inc/Baichuan2-7B-chat"),
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                                         trust_remote_code=True),
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    "BambaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm-ai-platform/Bamba-9B"),
                                        extras={"tiny": os.path.join(models_path_prefix,"hmellor/tiny-random-BambaForCausalLM")}),  # noqa: E501
    "BloomForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"bigscience/bloom-560m"),
                                        {"1b": os.path.join(models_path_prefix,"bigscience/bloomz-1b1")}),
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    "ChatGLMModel": _HfExamplesInfo(os.path.join(models_path_prefix, "THUDM/chatglm3-6b"),
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                                    trust_remote_code=True,
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                                    max_transformers_version="4.48"),
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    "ChatGLMForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "thu-coai/ShieldLM-6B-chatglm3"),  # noqa: E501
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                                                       trust_remote_code=True),
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    "CohereForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "CohereForAI/c4ai-command-r-v01"),
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                                         trust_remote_code=True),
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    "Cohere2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "CohereForAI/c4ai-command-r7b-12-2024"), # noqa: E501
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                                         trust_remote_code=True),
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    "DbrxForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "databricks/dbrx-instruct")),
    "DeciLMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "nvidia/Llama-3_3-Nemotron-Super-49B-v1"), # noqa: E501
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                                         trust_remote_code=True),
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    "DeepseekForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "deepseek-ai/deepseek-llm-7b-chat")),
    "DeepseekV2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "deepseek-ai/DeepSeek-V2-Lite-Chat"),  # noqa: E501
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                                         trust_remote_code=True),
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    "DeepseekV3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "deepseek-ai/DeepSeek-V3"),  # noqa: E501
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                                         trust_remote_code=True),
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    "Ernie4_5_ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"baidu/ERNIE-4.5-0.3B-PT"),
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                                        trust_remote_code=True),
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    "Ernie4_5_MoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"baidu/ERNIE-4.5-21B-A3B-PT"),
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                                        trust_remote_code=True),
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    "ExaoneForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"LGAI-EXAONE/EXAONE-3.0-7.8B-Instruct")),  # noqa: E501
    "Fairseq2LlamaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"mgleize/fairseq2-dummy-Llama-3.2-1B")),  # noqa: E501
    "FalconForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"tiiuae/falcon-7b")),
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    "FalconH1ForCausalLM":_HfExamplesInfo(os.path.join(models_path_prefix,"tiiuae/Falcon-H1-0.5B-Base"),
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                                          min_transformers_version="4.53"),
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    "GemmaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"google/gemma-1.1-2b-it")),
    "Gemma2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"google/gemma-2-9b")),
    "Gemma3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"google/gemma-3-1b-it")),
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    "Gemma3nForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"google/gemma-3n-E2B-it"),    # noqa: E501
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                                          min_transformers_version="4.53"),
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    "GlmForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"THUDM/glm-4-9b-chat-hf")),
    "Glm4ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"THUDM/GLM-4-9B-0414")),
    "GPT2LMHeadModel": _HfExamplesInfo(os.path.join(models_path_prefix,"openai-community/gpt2"),
                                       {"alias": os.path.join(models_path_prefix,"gpt2")}),
    "GPTBigCodeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"bigcode/starcoder"),
                                             {"tiny": os.path.join(models_path_prefix,"bigcode/tiny_starcoder_py")}),  # noqa: E501
    "GPTJForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Milos/slovak-gpt-j-405M"),
                                       {"6b": os.path.join(models_path_prefix,"EleutherAI/gpt-j-6b")}),
    "GPTNeoXForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"EleutherAI/pythia-70m"),
                                          {"1b": os.path.join(models_path_prefix,"EleutherAI/pythia-1.4b")}),
    "GraniteForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm/PowerLM-3b")),
    "GraniteMoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm/PowerMoE-3b")),
    "GraniteMoeHybridForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm-granite/granite-4.0-tiny-preview")),  # noqa: E501
    "GraniteMoeSharedForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm-research/moe-7b-1b-active-shared-experts")),  # noqa: E501
    "Grok1ModelForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"hpcai-tech/grok-1"),
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                                             trust_remote_code=True),
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    "HunYuanMoEV1ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"tencent/Hunyuan-A13B-Instruct"),
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                                               trust_remote_code=True),
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    "InternLMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"internlm/internlm-chat-7b"),
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                                           trust_remote_code=True),
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    "InternLM2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "internlm/internlm2-chat-7b"),
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                                            trust_remote_code=True),
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    "InternLM2VEForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "OpenGVLab/Mono-InternVL-2B"),
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                                              trust_remote_code=True),
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    "InternLM3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "internlm/internlm3-8b-instruct"),
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                                            trust_remote_code=True),
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    "JAISLMHeadModel": _HfExamplesInfo(os.path.join(models_path_prefix,"inceptionai/jais-13b-chat")),
    "JambaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"ai21labs/AI21-Jamba-1.5-Mini"),
                                        extras={"tiny": os.path.join(models_path_prefix,"ai21labs/Jamba-tiny-dev")}),  # noqa: E501
    "LlamaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"meta-llama/Llama-3.2-1B-Instruct"),
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                                        extras={"guard": os.path.join(models_path_prefix,"meta-llama/Llama-Guard-3-1B",  # noqa: E501
                                                "hermes": os.path.join(models_path_prefix,"NousResearch/Hermes-3-Llama-3.1-8B"), # noqa: E501
                                                "fp8": os.path.join(models_path_prefix,"RedHatAI/Meta-Llama-3.1-8B-Instruct-FP8")}),  # noqa: E501
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    "LLaMAForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"decapoda-research/llama-7b-hf"),
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                                        is_available_online=False),
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    "MambaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"state-spaces/mamba-130m-hf")),
    "Mamba2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"mistralai/Mamba-Codestral-7B-v0.1")),
    "FalconMambaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"tiiuae/falcon-mamba-7b-instruct")),  # noqa: E501
    "MiniCPMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"openbmb/MiniCPM-2B-sft-bf16"),
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                                         trust_remote_code=True),
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    "MiniCPM3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "openbmb/MiniCPM3-4B"),
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                                         trust_remote_code=True),
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    "MiniMaxText01ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "MiniMaxAI/MiniMax-Text-01"),
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                                                trust_remote_code=True,
                                                revision="a59aa9cbc53b9fb8742ca4e9e1531b9802b6fdc3"),  # noqa: E501
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    "MiniMaxM1ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "MiniMaxAI/MiniMax-M1-40k"),
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                                            trust_remote_code=True),
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    "MistralForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "mistralai/Mistral-7B-Instruct-v0.1")),
    "MixtralForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "mistralai/Mixtral-8x7B-Instruct-v0.1"),  # noqa: E501
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                                          {"tiny": os.path.join(models_path_prefix, "TitanML/tiny-mixtral")}),  # noqa: E501
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    "QuantMixtralForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "mistral-community/Mixtral-8x22B-v0.1-AWQ")),  # noqa: E501
    "MptForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "mpt"), is_available_online=False),
    "MPTForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "mosaicml/mpt-7b")),
    "NemotronForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "nvidia/Minitron-8B-Base")),
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    "NemotronHForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "nvidia/Nemotron-H-8B-Base-8K"),
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                                            trust_remote_code=True),
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    "OlmoForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "allenai/OLMo-1B-hf")),
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    "Olmo2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "allenai/OLMo-2-0425-1B")),
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    "OlmoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "allenai/OLMoE-1B-7B-0924-Instruct")),
    "OPTForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "facebook/opt-125m"),
                                      {"1b": os.path.join(models_path_prefix, "facebook/opt-iml-max-1.3b")}),
    "OrionForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "OrionStarAI/Orion-14B-Chat"),
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                                        trust_remote_code=True),
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    "PersimmonForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"adept/persimmon-8b-chat")),
    "PhiForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/phi-2")),
    "Phi3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/Phi-3-mini-4k-instruct")),
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    # Blocksparse attention not supported in V1 yet
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    "Phi3SmallForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/Phi-3-small-8k-instruct"),
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                                            trust_remote_code=True,
                                            v0_only=True),
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    "PhiMoEForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/Phi-3.5-MoE-instruct"),
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                                         trust_remote_code=True),
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    "Plamo2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "pfnet/plamo-2-1b"),
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                                        trust_remote_code=True),
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    "QWenLMHeadModel": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen-7B-Chat"),
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                                       trust_remote_code=True),
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    "Qwen2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen2-0.5B-Instruct"),
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                                        extras={"2.5": "Qwen/Qwen2.5-0.5B-Instruct"}), # noqa: E501
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    "Qwen2MoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen1.5-MoE-A2.7B-Chat")),
    "Qwen3ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen3-8B")),
    "Qwen3MoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen3-30B-A3B")),
    "Qwen3ForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix,"tomaarsen/Qwen3-Reranker-0.6B-seq-cls")),  # noqa: E501
    "RWForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"tiiuae/falcon-40b")),
    "StableLMEpochForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"stabilityai/stablelm-zephyr-3b")),  # noqa: E501
    "StableLmForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"stabilityai/stablelm-3b-4e1t")),
    "Starcoder2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"bigcode/starcoder2-3b")),
    "SolarForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"upstage/solar-pro-preview-instruct")),
    "TeleChat2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"Tele-AI/TeleChat2-3B"),
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                                            trust_remote_code=True),
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    "TeleFLMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "CofeAI/FLM-2-52B-Instruct-2407"),
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                                            trust_remote_code=True),
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    "XverseForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "xverse/XVERSE-7B-Chat"),
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                                         tokenizer=os.path.join(models_path_prefix, "meta-llama/Llama-2-7b"),
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                                         trust_remote_code=True),
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    "Zamba2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "Zyphra/Zamba2-7B-instruct")),
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    "Ernie4_5_ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "baidu/ERNIE-4.5-0.3B-PT"),
                                        trust_remote_code=True),
    "Ernie4_5_MoeForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "baidu/ERNIE-4.5-21B-A3B-PT"),
                                        trust_remote_code=True),
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    "MiMoForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "XiaomiMiMo/MiMo-7B-RL"),
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                                        trust_remote_code=True),
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    "Dots1ForCausalLM": _HfExamplesInfo("rednote-hilab/dots.llm1.inst",
                                        min_transformers_version="4.53"),
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    # [Encoder-decoder]
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    "BartModel": _HfExamplesInfo(os.path.join(models_path_prefix, "facebook/bart-base")),
    "BartForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "facebook/bart-large-cnn")),
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}

_EMBEDDING_EXAMPLE_MODELS = {
    # [Text-only]
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    "BertModel": _HfExamplesInfo(os.path.join(models_path_prefix,"BAAI/bge-base-en-v1.5"), v0_only=True),
    "Gemma2Model": _HfExamplesInfo(os.path.join(models_path_prefix,"BAAI/bge-multilingual-gemma2"), v0_only=True),  # noqa: E501
    "GPT2ForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix,"nie3e/sentiment-polish-gpt2-small")),  # noqa: E501
    "GritLM": _HfExamplesInfo(os.path.join(models_path_prefix,"parasail-ai/GritLM-7B-vllm")),
    "GteModel": _HfExamplesInfo(os.path.join(models_path_prefix,"Snowflake/snowflake-arctic-embed-m-v2.0"),
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                                               trust_remote_code=True),
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    "GteNewModel": _HfExamplesInfo(os.path.join(models_path_prefix, "Alibaba-NLP/gte-base-en-v1.5"),
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                                   trust_remote_code=True,
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                                   hf_overrides={"architectures": ["GteNewModel"]}),  # noqa: E501
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    "InternLM2ForRewardModel": _HfExamplesInfo(os.path.join(models_path_prefix, "internlm/internlm2-1_8b-reward"),
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                                               trust_remote_code=True),
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    "JambaForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix,"ai21labs/Jamba-tiny-reward-dev")),  # noqa: E501
    "LlamaModel": _HfExamplesInfo(os.path.join(models_path_prefix,"llama"), is_available_online=False),
    "MistralModel": _HfExamplesInfo(os.path.join(models_path_prefix,"intfloat/e5-mistral-7b-instruct")),
    "ModernBertModel": _HfExamplesInfo(os.path.join(models_path_prefix,"Alibaba-NLP/gte-modernbert-base"),
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                                trust_remote_code=True, v0_only=True),
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    "NomicBertModel": _HfExamplesInfo(os.path.join(models_path_prefix,"nomic-ai/nomic-embed-text-v2-moe"),
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                                               trust_remote_code=True, v0_only=True),  # noqa: E501
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    "Qwen2Model": _HfExamplesInfo(os.path.join(models_path_prefix,"ssmits/Qwen2-7B-Instruct-embed-base")),
    "Qwen2ForRewardModel": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen2.5-Math-RM-72B")),
    "Qwen2ForProcessRewardModel": _HfExamplesInfo(os.path.join(models_path_prefix,"Qwen/Qwen2.5-Math-PRM-7B")),
    "Qwen2ForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix,"jason9693/Qwen2.5-1.5B-apeach")),  # noqa: E501
    "RobertaModel": _HfExamplesInfo(os.path.join(models_path_prefix,"sentence-transformers/stsb-roberta-base-v2"), v0_only=True),  # noqa: E501
    "RobertaForMaskedLM": _HfExamplesInfo(os.path.join(models_path_prefix,"sentence-transformers/all-roberta-large-v1"), v0_only=True),  # noqa: E501
    "XLMRobertaModel": _HfExamplesInfo(os.path.join(models_path_prefix,"intfloat/multilingual-e5-small"), v0_only=True),  # noqa: E501
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    # [Multimodal]
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    "LlavaNextForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "royokong/e5-v")),
    "Phi3VForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "TIGER-Lab/VLM2Vec-Full"),
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                                         trust_remote_code=True),
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    "Qwen2VLForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "MrLight/dse-qwen2-2b-mrl-v1")), # noqa: E501
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    "PrithviGeoSpatialMAE": _HfExamplesInfo(os.path.join(models_path_prefix, "ibm-nasa-geospatial/Prithvi-EO-2.0-300M-TL-Sen1Floods11"), # noqa: E501
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                                            is_available_online=False),  # noqa: E501
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}

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_CROSS_ENCODER_EXAMPLE_MODELS = {
    # [Text-only]
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    "BertForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix, "cross-encoder/ms-marco-MiniLM-L-6-v2"), v0_only=True),  # noqa: E501
    "RobertaForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix, "cross-encoder/quora-roberta-base"), v0_only=True),  # noqa: E501
    "XLMRobertaForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix, "BAAI/bge-reranker-v2-m3"), v0_only=True),  # noqa: E501
    "ModernBertForSequenceClassification": _HfExamplesInfo(os.path.join(models_path_prefix, "Alibaba-NLP/gte-reranker-modernbert-base"), v0_only=True),  # noqa: E501
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}

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_MULTIMODAL_EXAMPLE_MODELS = {
    # [Decoder-only]
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    "AriaForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"rhymes-ai/Aria")),
    "AyaVisionForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"CohereForAI/aya-vision-8b")), # noqa: E501
    "Blip2ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"Salesforce/blip2-opt-2.7b"),  # noqa: E501
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                                                     extras={"6b": os.path.join(models_path_prefix,"Salesforce/blip2-opt-6.7b")}),  # noqa: E501
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    "ChameleonForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"facebook/chameleon-7b")),  # noqa: E501
    "DeepseekVLV2ForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"deepseek-ai/deepseek-vl2-tiny"),  # noqa: E501
                                                extras={"fork": os.path.join(models_path_prefix,"Isotr0py/deepseek-vl2-tiny")},  # noqa: E501
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                                                max_transformers_version="4.48",  # noqa: E501
                                                transformers_version_reason="HF model is not compatible.",  # noqa: E501
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                                                hf_overrides={"architectures": ["DeepseekVLV2ForCausalLM"]}),  # noqa: E501
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    "FuyuForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"adept/fuyu-8b")),
    "Gemma3ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"google/gemma-3-4b-it")),
    "GraniteSpeechForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"ibm-granite/granite-speech-3.3-2b")),  # noqa: E501
    "GLM4VForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"THUDM/glm-4v-9b"),
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                                        trust_remote_code=True,
                                        hf_overrides={"architectures": ["GLM4VForCausalLM"]}),  # noqa: E501
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    "Glm4vForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"THUDM/GLM-4.1V-9B-Thinking"), min_transformers_version="4.53"),  # noqa: E501
    "H2OVLChatModel": _HfExamplesInfo(os.path.join(models_path_prefix,"h2oai/h2ovl-mississippi-800m"),
                                      extras={"2b": os.path.join(models_path_prefix,"h2oai/h2ovl-mississippi-2b")},  # noqa: E501
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                                      max_transformers_version="4.48",  # noqa: E501
                                      transformers_version_reason="HF model is not compatible."),  # noqa: E501
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    "InternVLChatModel": _HfExamplesInfo(os.path.join(models_path_prefix, "OpenGVLab/InternVL2-1B"),
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                                         extras={"2B": os.path.join(models_path_prefix, "OpenGVLab/InternVL2-2B"),
                                                 "3.0": os.path.join(models_path_prefix, "OpenGVLab/InternVL3-1B")},  # noqa: E501
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                                         trust_remote_code=True),
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    "Idefics3ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "HuggingFaceM4/Idefics3-8B-Llama3"),  # noqa: E501
                                                        {"tiny": os.path.join(models_path_prefix, "HuggingFaceTB/SmolVLM-256M-Instruct")}),  # noqa: E501
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    "KeyeForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Kwai-Keye/Keye-VL-8B-Preview", # noqa: E501
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                                                    trust_remote_code=True),
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    "KimiVLForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "moonshotai/Kimi-VL-A3B-Instruct"),  # noqa: E501
                                                      extras={"thinking": os.path.join(models_path_prefix, "moonshotai/Kimi-VL-A3B-Thinking")},  # noqa: E501
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                                                      trust_remote_code=True),
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    "Llama4ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "meta-llama/Llama-4-Scout-17B-16E-Instruct",   # noqa: E501
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                                                      max_model_len=10240),
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    "LlavaForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "llava-hf/llava-1.5-7b-hf"),
                                                     extras={"mistral": os.path.join(models_path_prefix, "mistral-community/pixtral-12b"), # noqa: E501
                                                             "mistral-fp8": os.path.join(models_path_prefix, "nm-testing/pixtral-12b-FP8-dynamic")}),  # noqa: E501
    "LlavaNextForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "llava-hf/llava-v1.6-mistral-7b-hf")),  # noqa: E501
    "LlavaNextVideoForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "llava-hf/LLaVA-NeXT-Video-7B-hf")),  # noqa: E501
    "LlavaOnevisionForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "llava-hf/llava-onevision-qwen2-0.5b-ov-hf")),  # noqa: E501
    "MantisForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "TIGER-Lab/Mantis-8B-siglip-llama3"),  # noqa: E501
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                                                      max_transformers_version="4.48",  # noqa: E501
                                                      transformers_version_reason="HF model is not compatible.",  # noqa: E501
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                                                      hf_overrides={"architectures": ["MantisForConditionalGeneration"]}),  # noqa: E501
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    "MiniCPMO": _HfExamplesInfo(os.path.join(models_path_prefix, "openbmb/MiniCPM-o-2_6"),
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                                trust_remote_code=True),
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    "MiniCPMV": _HfExamplesInfo(os.path.join(models_path_prefix, "openbmb/MiniCPM-Llama3-V-2_5"),
                                extras={"2.6": os.path.join(models_path_prefix, "openbmb/MiniCPM-V-2_6")},  # noqa: E501
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                                trust_remote_code=True),
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    "MiniMaxVL01ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "MiniMaxAI/MiniMax-VL-01"), # noqa: E501
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                                              trust_remote_code=True,
                                              v0_only=True),
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    "Mistral3ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "mistralai/Mistral-Small-3.1-24B-Instruct-2503"),  # noqa: E501
                                                        extras={"fp8": os.path.join(models_path_prefix, "nm-testing/Mistral-Small-3.1-24B-Instruct-2503-FP8-dynamic")}),  # noqa: E501
    "MolmoForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "allenai/Molmo-7B-D-0924"),
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                                        max_transformers_version="4.48",
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                                        transformers_version_reason="Incorrectly-detected `tensorflow` import.",  # noqa: E501
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                                        extras={"olmo": os.path.join(models_path_prefix, "allenai/Molmo-7B-O-0924")},  # noqa: E501
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                                        trust_remote_code=True),
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    "NVLM_D": _HfExamplesInfo(os.path.join(models_path_prefix, "nvidia/NVLM-D-72B"),
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                              trust_remote_code=True),
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    "PaliGemmaForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "google/paligemma-3b-mix-224"),  # noqa: E501
                                                         extras={"v2": os.path.join(models_path_prefix, "google/paligemma2-3b-ft-docci-448")}),  # noqa: E501
    "Phi3VForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "microsoft/Phi-3-vision-128k-instruct"),
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                                        trust_remote_code=True,
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                                        max_transformers_version="4.48",
                                        transformers_version_reason="Use of deprecated imports which have been removed.",  # noqa: E501
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                              extras={"phi3.5": os.path.join(models_path_prefix,"microsoft/Phi-3.5-vision-instruct"})),  # noqa: E501
    "Ovis": _HfExamplesInfo(os.path.join(models_path_prefix,"AIDC-AI/Ovis2-1B"), trust_remote_code=True,
                            extras={"1.6-llama": os.path.join(models_path_prefix,"AIDC-AI/Ovis1.6-Llama3.2-3B"),
                                    "1.6-gemma": os.path.join(models_path_prefix,"AIDC-AI/Ovis1.6-Gemma2-9B")}),  # noqa: E501
    "Phi4MMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/Phi-4-multimodal-instruct"),
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                                        trust_remote_code=True),
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    "PixtralForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "mistralai/Pixtral-12B-2409"),  # noqa: E501
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                                                       tokenizer_mode="mistral"),
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    "QwenVLForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen-VL"),
                                                      extras={"chat": os.path.join(models_path_prefix, "Qwen/Qwen-VL-Chat")},  # noqa: E501
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                                                      trust_remote_code=True,
                                                      hf_overrides={"architectures": ["QwenVLForConditionalGeneration"]}),  # noqa: E501
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    "Qwen2AudioForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen2-Audio-7B-Instruct")),  # noqa: E501
    "Qwen2VLForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen2-VL-2B-Instruct")),  # noqa: E501
    "Qwen2_5_VLForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen2.5-VL-3B-Instruct")),  # noqa: E501
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    "Qwen2_5OmniModel": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen2.5-Omni-3B")),
    "Qwen2_5OmniForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "Qwen/Qwen2.5-Omni-7B-AWQ")),  # noqa: E501
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    "SkyworkR1VChatModel": _HfExamplesInfo(os.path.join(models_path_prefix, "Skywork/Skywork-R1V-38B")),
    "SmolVLMForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "HuggingFaceTB/SmolVLM2-2.2B-Instruct")),  # noqa: E501
    "UltravoxModel": _HfExamplesInfo(os.path.join(models_path_prefix, "fixie-ai/ultravox-v0_5-llama-3_2-1b"),  # noqa: E501
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                                     trust_remote_code=True),
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    "TarsierForConditionalGeneration": _HfExamplesInfo("omni-research/Tarsier-7b",  # noqa: E501
                                                        hf_overrides={"architectures": ["TarsierForConditionalGeneration"]}),  # noqa: E501
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    "Tarsier2ForConditionalGeneration": _HfExamplesInfo("omni-research/Tarsier2-Recap-7b",  # noqa: E501
                                                        hf_overrides={"architectures": ["Tarsier2ForConditionalGeneration"]}),  # noqa: E501
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    # [Encoder-decoder]
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    # Florence-2 uses BartFastTokenizer which can't be loaded from AutoTokenizer
    # Therefore, we borrow the BartTokenizer from the original Bart model
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    "Florence2ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix,"microsoft/Florence-2-base"),  # noqa: E501
                                                         tokenizer=os.path.join(models_path_prefix,"Isotr0py/Florence-2-tokenizer"),  # noqa: E501
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                                                         trust_remote_code=True),  # noqa: E501
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    "MllamaForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "meta-llama/Llama-3.2-11B-Vision-Instruct")),  # noqa: E501
    "Llama4ForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "meta-llama/Llama-4-Scout-17B-16E-Instruct")),  # noqa: E501
    "WhisperForConditionalGeneration": _HfExamplesInfo(os.path.join(models_path_prefix, "openai/whisper-large-v3")),  # noqa: E501
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}

_SPECULATIVE_DECODING_EXAMPLE_MODELS = {
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    "EAGLEModel": _HfExamplesInfo(os.path.join(models_path_prefix, "JackFram/llama-68m"),
                                  speculative_model=os.path.join(models_path_prefix, "abhigoyal/vllm-eagle-llama-68m-random")),  # noqa: E501
    "MedusaModel": _HfExamplesInfo(os.path.join(models_path_prefix, "JackFram/llama-68m"),
                                   speculative_model=os.path.join(models_path_prefix, "abhigoyal/vllm-medusa-llama-68m-random")),  # noqa: E501
    "MLPSpeculatorPreTrainedModel": _HfExamplesInfo(os.path.join(models_path_prefix, "JackFram/llama-160m"),
                                                    speculative_model=os.path.join(models_path_prefix, "ibm-ai-platform/llama-160m-accelerator")),  # noqa: E501
    "DeepSeekMTPModel": _HfExamplesInfo(os.path.join(models_path_prefix, "luccafong/deepseek_mtp_main_random"),
                                        speculative_model=os.path.join(models_path_prefix, "luccafong/deepseek_mtp_draft_random"),  # noqa: E501
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                                        trust_remote_code=True),
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    "EagleLlamaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "yuhuili/EAGLE-LLaMA3-Instruct-8B"),
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                                             trust_remote_code=True,
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                                             speculative_model=os.path.join(models_path_prefix, "yuhuili/EAGLE-LLaMA3-Instruct-8B"),
                                             tokenizer=os.path.join(models_path_prefix, "meta-llama/Meta-Llama-3-8B-Instruct")),  # noqa: E501
    "Eagle3LlamaForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "yuhuili/EAGLE3-LLaMA3.1-Instruct-8B"),  # noqa: E501
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                                            trust_remote_code=True,
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                                            speculative_model=os.path.join(models_path_prefix,"yuhuili/EAGLE3-LLaMA3.1-Instruct-8B"),
                                            tokenizer=os.path.join(models_path_prefix,"meta-llama/Llama-3.1-8B-Instruct")),
    "EagleMiniCPMForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix,"openbmb/MiniCPM-1B-sft-bf16"),
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                                            trust_remote_code=True,
                                            is_available_online=False,
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                                            speculative_model=os.path.join(models_path_prefix,"openbmb/MiniCPM-2B-sft-bf16"),
                                            tokenizer=os.path.join(models_path_prefix,"openbmb/MiniCPM-2B-sft-bf16")),
    "MiMoMTPModel": _HfExamplesInfo(os.path.join(models_path_prefix,"XiaomiMiMo/MiMo-7B-RL"),
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                                    trust_remote_code=True,
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                                    speculative_model=os.path.join(models_path_prefix,"XiaomiMiMo/MiMo-7B-RL"))
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}

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_TRANSFORMERS_MODELS = {
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    "TransformersForCausalLM": _HfExamplesInfo(os.path.join(models_path_prefix, "ArthurZ/Ilama-3.2-1B"), trust_remote_code=True),  # noqa: E501
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}

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_EXAMPLE_MODELS = {
    **_TEXT_GENERATION_EXAMPLE_MODELS,
    **_EMBEDDING_EXAMPLE_MODELS,
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    **_CROSS_ENCODER_EXAMPLE_MODELS,
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    **_MULTIMODAL_EXAMPLE_MODELS,
    **_SPECULATIVE_DECODING_EXAMPLE_MODELS,
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    **_TRANSFORMERS_MODELS,
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}


class HfExampleModels:
    def __init__(self, hf_models: Mapping[str, _HfExamplesInfo]) -> None:
        super().__init__()

        self.hf_models = hf_models

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    def get_supported_archs(self) -> Set[str]:
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        return self.hf_models.keys()

    def get_hf_info(self, model_arch: str) -> _HfExamplesInfo:
        return self.hf_models[model_arch]

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    def find_hf_info(self, model_id: str) -> _HfExamplesInfo:
        for info in self.hf_models.values():
            if info.default == model_id:
                return info

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        # Fallback to extras
        for info in self.hf_models.values():
            if any(extra == model_id for extra in info.extras.values()):
                return info

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        raise ValueError(f"No example model defined for {model_id}")

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HF_EXAMPLE_MODELS = HfExampleModels(_EXAMPLE_MODELS)