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Add a shortfin pipeline for flux #876

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10 changes: 5 additions & 5 deletions sharktank/sharktank/layers/configs/llm_configs.py
Original file line number Diff line number Diff line change
Expand Up @@ -225,8 +225,8 @@ def __post_init__(self):
def from_gguf_properties(properties: dict[str, Any], **kwargs):
assert properties["general.architecture"] == "t5"
assert (
properties["t5.attention.layer_norm_epsilon"]
== properties["t5.attention.layer_norm_rms_epsilon"]
properties["t5.attention.layer_norm_epsilon"]
== properties["t5.attention.layer_norm_rms_epsilon"]
)

all_kwargs = {"vocab_size": None, "feed_forward_proj": None}
Expand Down Expand Up @@ -290,10 +290,10 @@ class ClipTextConfig:
output_hidden_states: bool = False
use_return_dict: bool = True
dtype: torch.dtype = torch.float32

@staticmethod
def from_hugging_face_clip_text_model_config(
config: "transformers.CLIPTextConfig",
config: "transformers.CLIPTextConfig", # type: ignore
) -> "ClipTextConfig":
return ClipTextConfig(
vocab_size=config.vocab_size,
Expand All @@ -314,7 +314,7 @@ def from_hugging_face_clip_text_model_config(
dtype=config.torch_dtype or torch.float32,
)

def to_hugging_face_clip_text_model_config(self) -> "transformers.CLIPTextConfig":
def to_hugging_face_clip_text_model_config(self) -> "transformers.CLIPTextConfig": # type: ignore
kwargs = self.to_properties()
kwargs["torch_dtype"] = kwargs["dtype"]
del kwargs["dtype"]
Expand Down
8 changes: 7 additions & 1 deletion sharktank/sharktank/models/clip/export.py
Original file line number Diff line number Diff line change
Expand Up @@ -4,6 +4,7 @@
# See https://llvm.org/LICENSE.txt for license information.
# SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception

import functools
from typing import Optional, Union
import transformers
from transformers.models.clip.modeling_clip import (
Expand All @@ -18,6 +19,7 @@
from ...layers.configs import ClipTextConfig
from .clip import ClipTextModel
from iree.turbine.aot import FxProgramsBuilder, export
from sharktank.transforms.dataset import set_float_dtype


def hugging_face_clip_attention_to_theta(model: HfCLIPAttention) -> Theta:
Expand Down Expand Up @@ -50,8 +52,12 @@ def clip_text_model_to_dataset(model: ClipTextModel) -> Dataset:
return Dataset(properties=model.config.to_properties(), root_theta=model.theta)


def export_clip_text_model_iree_parameters(model: ClipTextModel, output_path: PathLike):
def export_clip_text_model_iree_parameters(model: ClipTextModel, output_path: PathLike, dtype=None):
dataset = clip_text_model_to_dataset(model)
if dtype:
dataset.root_theta = dataset.root_theta.transform(
functools.partial(set_float_dtype, dtype=dtype)
)
dataset.save(output_path)


Expand Down
11 changes: 8 additions & 3 deletions sharktank/sharktank/models/flux/export.py
Original file line number Diff line number Diff line change
Expand Up @@ -4,6 +4,7 @@
# See https://llvm.org/LICENSE.txt for license information.
# SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception

import functools
from os import PathLike
import os
from pathlib import Path
Expand All @@ -14,6 +15,7 @@
from .flux import FluxModelV1, FluxParams
from ...types import Dataset
from ...utils.hf_datasets import get_dataset
from sharktank.transforms.dataset import set_float_dtype

flux_transformer_default_batch_sizes = [1]

Expand All @@ -27,11 +29,14 @@ def export_flux_transformer_model_mlir(


def export_flux_transformer_iree_parameters(
model: FluxModelV1, parameters_output_path: PathLike
model: FluxModelV1, parameters_output_path: PathLike, dtype = None
):
model.theta.rename_tensors_to_paths()
# TODO: export properties
dataset = Dataset(root_theta=model.theta, properties={})
dataset = Dataset(root_theta=model.theta, properties=model.params.to_hugging_face_properties())
if dtype:
dataset.root_theta = dataset.root_theta.transform(
functools.partial(set_float_dtype, dtype=dtype)
)
dataset.save(parameters_output_path)


Expand Down
16 changes: 15 additions & 1 deletion sharktank/sharktank/models/flux/flux.py
Original file line number Diff line number Diff line change
Expand Up @@ -12,8 +12,8 @@
from typing import Any, Optional
from collections import OrderedDict
from copy import copy
from dataclasses import dataclass, asdict
import math
from dataclasses import dataclass
import torch
import torch.nn as nn
import torch.nn.functional as F
Expand Down Expand Up @@ -49,6 +49,19 @@ class FluxParams:
qkv_bias: bool
guidance_embed: bool

def to_hugging_face_properties(self) -> dict[str, Any]:
hparams = {
"in_channels": self.in_channels,
"pooled_projection_dim": self.vec_in_dim,
"joint_attention_dim": self.context_in_dim,
"num_attention_heads": self.num_heads,
"num_layers": self.depth,
"num_single_layers": self.depth_single_blocks,
"attention_head_dim": sum(self.axes_dim),
"guidance_embeds": self.guidance_embed
}
return {"hparams": hparams}

@staticmethod
def from_hugging_face_properties(properties: dict[str, Any]) -> "FluxParams":
p = properties["hparams"]
Expand Down Expand Up @@ -175,6 +188,7 @@ def forward(
"Didn't get guidance strength for guidance distilled model."
)
vec = vec + self.guidance_in(timestep_embedding(guidance, 256))

vec = vec + self.vector_in(y)

txt = self.txt_in(txt)
Expand Down
9 changes: 0 additions & 9 deletions sharktank/sharktank/models/vae/model.py
Original file line number Diff line number Diff line change
Expand Up @@ -74,15 +74,6 @@ def forward(
"latent_embeds": latent_embeds,
},
)
if not self.hp.use_post_quant_conv:
sample = rearrange(
sample,
"b (h w) (c ph pw) -> b c (h ph) (w pw)",
h=math.ceil(1024 / 16),
w=math.ceil(1024 / 16),
ph=2,
pw=2,
)
sample = sample / self.hp.scaling_factor + self.hp.shift_factor

if self.hp.use_post_quant_conv:
Expand Down
7 changes: 7 additions & 0 deletions sharktank/sharktank/pipelines/flux/__init__.py
Original file line number Diff line number Diff line change
@@ -0,0 +1,7 @@
"""Flux text-to-image generation pipeline."""

from .flux_pipeline import FluxPipeline

__all__ = [
"FluxPipeline",
]
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