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Migrate GLMVImagePixelInputs to TensorSchema (#21679)
Signed-off-by: Benji Beck <benjibeck@meta.com>
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@ -6,7 +6,7 @@
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"""Inference-only CogAgent model compatible with THUDM weights."""
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"""Inference-only CogAgent model compatible with THUDM weights."""
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from argparse import Namespace
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from argparse import Namespace
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from collections.abc import Mapping, Sequence
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from collections.abc import Mapping, Sequence
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from typing import Literal, Optional, TypedDict, Union
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from typing import Annotated, Literal, Optional, Union
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import torch
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import torch
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from torch import nn
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from torch import nn
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@ -38,6 +38,7 @@ from vllm.multimodal.processing import (BaseMultiModalProcessor,
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from vllm.multimodal.profiling import BaseDummyInputsBuilder
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from vllm.multimodal.profiling import BaseDummyInputsBuilder
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from vllm.sequence import IntermediateTensors
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from vllm.sequence import IntermediateTensors
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from vllm.transformers_utils.configs import ChatGLMConfig
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from vllm.transformers_utils.configs import ChatGLMConfig
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from vllm.utils.tensor_schema import TensorSchema, TensorShape
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from .chatglm import ChatGLMBaseModel, ChatGLMModel
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from .chatglm import ChatGLMBaseModel, ChatGLMModel
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from .interfaces import (MultiModalEmbeddings, SupportsLoRA,
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from .interfaces import (MultiModalEmbeddings, SupportsLoRA,
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@ -45,10 +46,16 @@ from .interfaces import (MultiModalEmbeddings, SupportsLoRA,
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from .utils import flatten_bn, merge_multimodal_embeddings
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from .utils import flatten_bn, merge_multimodal_embeddings
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class GLMVImagePixelInputs(TypedDict):
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class GLMVImagePixelInputs(TensorSchema):
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type: Literal["pixel_values"]
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"""
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data: torch.Tensor
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Dimensions:
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"""Shape: `(batch_size, num_channels, height, width)`"""
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- b: Batch size
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- c: Number of channels (3)
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- h: Height of image
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- w: Width of image
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"""
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type: Literal["pixel_values"] = "pixel_values"
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data: Annotated[torch.Tensor, TensorShape("b", 3, "h", "w")]
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class EVA2CLIPPatchEmbedding(nn.Module):
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class EVA2CLIPPatchEmbedding(nn.Module):
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@ -562,19 +569,6 @@ class GLM4VForCausalLM(ChatGLMBaseModel, SupportsLoRA, SupportsPP,
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self.transformer: GLM4VModel
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self.transformer: GLM4VModel
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def _validate_pixel_values(self, data: torch.Tensor) -> torch.Tensor:
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h = w = self.config.vision_config["image_size"]
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expected_dims = (3, h, w)
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actual_dims = tuple(data.shape[1:])
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if actual_dims != expected_dims:
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expected_expr = ("batch_size", *map(str, expected_dims))
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raise ValueError(
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f"The expected shape of pixel values is {expected_expr}. "
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f"You supplied {tuple(data.shape)}.")
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return data
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def _parse_and_validate_image_input(
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def _parse_and_validate_image_input(
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self, **kwargs: object) -> Optional[GLMVImagePixelInputs]:
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self, **kwargs: object) -> Optional[GLMVImagePixelInputs]:
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pixel_values = kwargs.pop("pixel_values", None)
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pixel_values = kwargs.pop("pixel_values", None)
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@ -584,11 +578,14 @@ class GLM4VForCausalLM(ChatGLMBaseModel, SupportsLoRA, SupportsPP,
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raise ValueError("Incorrect type of pixel values. "
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raise ValueError("Incorrect type of pixel values. "
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f"Got type: {type(pixel_values)}")
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f"Got type: {type(pixel_values)}")
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return GLMVImagePixelInputs(
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expected_h = expected_w = self.config.vision_config["image_size"]
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type="pixel_values",
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return GLMVImagePixelInputs(type="pixel_values",
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data=self._validate_pixel_values(
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data=flatten_bn(pixel_values,
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flatten_bn(pixel_values, concat=True)),
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concat=True),
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)
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resolve_bindings={
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"h": expected_h,
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"w": expected_w
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})
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return None
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return None
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