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chore: import upstream snapshot with attribution
2026-07-13 12:59:56 +08:00

761 lines
28 KiB
Python

# Unsloth - 2x faster, 60% less VRAM LLM training and finetuning
# Copyright 2023-present Daniel Han-Chen, Michael Han-Chen & the Unsloth team. All rights reserved.
#
# This program is free software: you can redistribute it and/or modify
# it under the terms of the GNU Lesser General Public License as published by
# the Free Software Foundation, either version 3 of the License, or
# (at your option) any later version.
#
# This program is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU Lesser General Public License for more details.
"""Drift detectors for the upstream pathologies ``unsloth/import_fixes.py``
works around; one test per ``fix_*`` / ``patch_*``, each fails (never skips)
when the pathology is active. Runs under the GPU-free ``tests/conftest.py``."""
from __future__ import annotations
import importlib
import importlib.util
import inspect
import os
import re
import sys
from pathlib import Path
from importlib.metadata import version as importlib_version
import pytest
# Mirrors import_fixes.py's local Version(): strip dev/alpha/beta/rc/local suffixes.
from packaging.version import Version as _PkgVersion
def _safe_version(raw):
raw_str = str(raw)
base = raw_str.split("+", 1)[0]
try:
return _PkgVersion(base)
except Exception:
match = re.match(r"[0-9]+(?:\.[0-9]+)*", base)
if not match:
raise
return _PkgVersion(match.group(0))
# protobuf
def test_protobuf_message_factory_get_prototype_or_get_message_class_present():
"""``fix_message_factory_issue``."""
mf = pytest.importorskip("google.protobuf.message_factory")
has_mf_class = hasattr(mf, "MessageFactory")
has_get_prototype = has_mf_class and hasattr(mf.MessageFactory, "GetPrototype")
has_get_message_class = hasattr(mf, "GetMessageClass")
if not has_mf_class:
pytest.fail(
"DRIFT DETECTED: google.protobuf.message_factory.MessageFactory is "
"missing entirely -- fix_message_factory_issue would inject a stub."
)
if not (has_get_prototype or has_get_message_class):
pytest.fail(
"DRIFT DETECTED: neither MessageFactory.GetPrototype nor "
"module-level GetMessageClass is present; fix_message_factory_issue "
"would inject the GetPrototype/GetMessageClass shim."
)
assert has_get_prototype or has_get_message_class
# datasets
def test_datasets_version_not_in_broken_recursion_range():
"""``patch_datasets``: datasets 4.4.0-4.5.0 hit RLock recursion in the Arrow loader."""
pytest.importorskip("datasets")
ds_v = _safe_version(importlib_version("datasets"))
lo = _PkgVersion("4.4.0")
hi = _PkgVersion("4.5.0")
assert not (lo <= ds_v <= hi), (
f"datasets=={ds_v} lies in the 4.4.0-4.5.0 recursion-error "
f"range that patch_datasets explicitly forbids. Downgrade to "
f"datasets==4.3.0 or upgrade past 4.5.0."
)
# trl
def test_trl_is_x_available_returns_bool_not_tuple():
"""``fix_trl_vllm_ascend``: TRL's ``is_*_available`` must still return bools
after transformers >=4.48 made ``_is_package_available`` return a tuple."""
pytest.importorskip("trl")
try:
import trl.import_utils as tiu
except Exception as exc:
pytest.skip(f"trl.import_utils not importable: {exc!r}")
accessor_names = [
n
for n in dir(tiu)
if n.startswith("is_") and n.endswith("_available") and callable(getattr(tiu, n, None))
]
assert accessor_names, "trl.import_utils has no is_*_available accessors"
bad = {}
for name in accessor_names:
accessor = getattr(tiu, name)
try:
sig = inspect.signature(accessor)
required = [
p
for p in sig.parameters.values()
if p.default is inspect.Parameter.empty
and p.kind
in (
inspect.Parameter.POSITIONAL_ONLY,
inspect.Parameter.POSITIONAL_OR_KEYWORD,
)
]
if required:
continue
result = accessor()
except Exception:
continue
if not isinstance(result, bool):
bad[name] = (type(result).__name__, result)
if bad:
pytest.fail(
"DRIFT DETECTED: fix_trl_vllm_ascend coerces these accessors "
f"from tuple-cached values to bool: {bad}"
)
def test_trl_cached_available_flags_are_not_tuples():
"""``fix_trl_vllm_ascend``: same drift on the module-level cached ``_*_available`` attrs."""
pytest.importorskip("trl")
try:
import trl.import_utils as tiu
except Exception as exc:
pytest.skip(f"trl.import_utils not importable: {exc!r}")
tuple_flags = {
name: value
for name, value in vars(tiu).items()
if name.startswith("_") and name.endswith("_available") and isinstance(value, tuple)
}
if tuple_flags:
pytest.fail(
"DRIFT DETECTED: fix_trl_vllm_ascend needs to coerce these tuple-"
f"cached flags to bool: {sorted(tuple_flags)}"
)
# transformers
def test_pretrained_model_enable_input_require_grads_uses_old_pattern():
"""``patch_enable_input_require_grads``: HF PR #41993 made
enable_input_require_grads iterate ``self.modules()``, so vision submodules
raise NotImplementedError unless the tolerant replacement is installed."""
pytest.importorskip("transformers")
from transformers import PreTrainedModel
try:
src = inspect.getsource(PreTrainedModel.enable_input_require_grads)
except Exception as exc:
pytest.skip(f"could not getsource(enable_input_require_grads): {exc!r}")
if "for module in self.modules()" not in src:
return # pre-HF#41993 shape
if "NotImplementedError" in src:
return # tolerant replacement installed
pytest.fail(
"DRIFT DETECTED: PreTrainedModel.enable_input_require_grads now "
"iterates self.modules() (post HF#41993) and has NOT been "
"wrapped by patch_enable_input_require_grads; vision submodules "
"(e.g. GLM V4.6's self.visual) will raise NotImplementedError "
"from get_input_embeddings and crash the whole call."
)
def test_transformers_torchcodec_available_flag_is_present():
"""``disable_torchcodec_if_broken``: needs the pre-5.x ``_torchcodec_available``
flag or 5.x ``is_torchcodec_available`` as its patch site when FFmpeg is missing."""
tf_iu = pytest.importorskip("transformers.utils.import_utils")
has_flag = hasattr(tf_iu, "_torchcodec_available")
has_func = callable(getattr(tf_iu, "is_torchcodec_available", None))
assert has_flag or has_func, (
"transformers.utils.import_utils dropped both "
"``_torchcodec_available`` (pre-5.x) AND "
"``is_torchcodec_available`` (>=5.x); "
"disable_torchcodec_if_broken can no longer disable a broken "
"torchcodec install."
)
def test_transformers_is_causal_conv1d_available_symbol_present():
"""``_disable_transformers_causal_conv1d``: needs a causal_conv1d availability hook."""
tf_iu = pytest.importorskip("transformers.utils.import_utils")
candidates = [
"is_causal_conv1d_available",
"_causal_conv1d_available",
"_is_causal_conv1d_available",
]
present = [name for name in candidates if hasattr(tf_iu, name)]
if not present:
pytest.fail(
"DRIFT DETECTED: transformers.utils.import_utils dropped every "
f"hook in {candidates}; _disable_transformers_causal_conv1d "
"can no longer mask a broken causal_conv1d binary."
)
# transformers + accelerate (wandb checkers)
def test_transformers_and_accelerate_is_wandb_available_callable():
"""``disable_broken_wandb``: patches is_wandb_available in three modules
(transformers integration_utils + accelerate imports/utils); all must exist."""
pytest.importorskip("transformers")
pytest.importorskip("accelerate")
from transformers.integrations import integration_utils as tf_integration
import accelerate.utils.imports as acc_imports
import accelerate.utils as acc_utils
assert callable(getattr(tf_integration, "is_wandb_available", None)), (
"transformers.integrations.integration_utils.is_wandb_available "
"was removed/renamed; disable_broken_wandb can no longer mask a "
"broken wandb install for trl trainers."
)
assert callable(getattr(acc_imports, "is_wandb_available", None)), (
"accelerate.utils.imports.is_wandb_available removed; "
"disable_broken_wandb cannot patch the source module."
)
assert callable(getattr(acc_utils, "is_wandb_available", None)), (
"accelerate.utils.is_wandb_available removed; "
"disable_broken_wandb cannot patch the re-export namespace "
"consulted by trl/trainer/callbacks.py."
)
# peft
def test_peft_transformers_weight_conversion_importable_and_signature():
"""``patch_peft_weight_converter_compatibility``: wraps build_peft_weight_mapping;
silently no-ops if the module is unimportable."""
pytest.importorskip("peft")
try:
from peft.utils import transformers_weight_conversion as twc
except Exception as exc:
pytest.fail(
"DRIFT DETECTED: peft.utils.transformers_weight_conversion "
f"is unimportable on this stack ({exc!r}). "
"patch_peft_weight_converter_compatibility will silently no-op."
)
assert hasattr(
twc, "build_peft_weight_mapping"
), "build_peft_weight_mapping vanished from peft.utils.transformers_weight_conversion."
sig = inspect.signature(twc.build_peft_weight_mapping)
expected_params = {"weight_conversions", "adapter_name"}
actual_params = set(sig.parameters)
assert expected_params.issubset(actual_params), (
f"build_peft_weight_mapping signature drifted: expected at "
f"least {sorted(expected_params)}, got {sorted(actual_params)}."
)
# triton
def test_triton_compiled_kernel_has_num_ctas_and_cluster_dims():
"""``fix_triton_compiled_kernel_missing_attrs``: triton 3.6+ dropped
num_ctas/cluster_dims on CompiledKernel, but Inductor's make_launcher needs them."""
pytest.importorskip("torch")
triton_mod = pytest.importorskip("triton") # noqa: F841
tc = pytest.importorskip("triton.compiler.compiler")
ck_cls = tc.CompiledKernel
# Healthy if pre-3.6 class attr present, or __init__ wrapped to install
# num_ctas + cluster_dims per instance (the post-3.6 fix).
if hasattr(ck_cls, "num_ctas"):
return
init = getattr(ck_cls, "__init__", None)
if init is not None:
code = getattr(init, "__code__", None)
freevars = set(getattr(code, "co_freevars", ()) or ())
co_names = set(getattr(code, "co_names", ()) or ())
if "_orig_init" in freevars or {"num_ctas", "cluster_dims"}.issubset(co_names):
return
pytest.fail(
"DRIFT DETECTED: triton.CompiledKernel lacks the `num_ctas` "
"class attribute AND ``__init__`` has not been wrapped by "
"fix_triton_compiled_kernel_missing_attrs; torch Inductor's "
"``make_launcher`` will crash on the eager "
"``binary.metadata.num_ctas, *binary.metadata.cluster_dims`` "
"unpack under torch.compile."
)
# torch + torchvision pairing table
# Mirrors TORCH_TORCHVISION_COMPAT in torchvision_compatibility_check.
_TORCH_TORCHVISION_COMPAT = {
(2, 9): (0, 24),
(2, 8): (0, 23),
(2, 7): (0, 22),
(2, 6): (0, 21),
(2, 5): (0, 20),
(2, 4): (0, 19),
}
def _is_custom_torch_build(raw_version_str):
if "+" not in raw_version_str:
return False
local = raw_version_str.split("+", 1)[1]
if not local:
return False
return not re.fullmatch(r"cu\d[\d.]*|rocm\d[\d.]*|cpu|xpu", local, re.IGNORECASE)
def test_installed_torch_torchvision_pair_is_compatible():
"""``torchvision_compatibility_check``: raises when the (torch, torchvision)
pair fails the pinned table; custom/prerelease builds are warning-only."""
pytest.importorskip("torch")
pytest.importorskip("torchvision")
torch_raw = importlib_version("torch")
tv_raw = importlib_version("torchvision")
torch_v = _safe_version(torch_raw)
tv_v = _safe_version(tv_raw)
torch_major = torch_v.release[0]
torch_minor = torch_v.release[1] if len(torch_v.release) > 1 else 0
required = _TORCH_TORCHVISION_COMPAT.get((torch_major, torch_minor))
if required is None:
pytest.skip(
f"torch=={torch_raw} is outside the pinned compatibility "
f"table (entries cover 2.4-2.9). The formula fallback "
f"in _infer_required_torchvision handles it at runtime."
)
pre_tags = (".dev", "a0", "b0", "rc", "alpha", "beta", "nightly")
is_prerelease = any(t in torch_raw for t in pre_tags) or any(t in tv_raw for t in pre_tags)
is_custom = _is_custom_torch_build(torch_raw) or _is_custom_torch_build(tv_raw)
if is_prerelease or is_custom:
pytest.skip(
f"torch=={torch_raw} torchvision=={tv_raw} is a custom/"
f"prerelease build; the runtime check downgrades to warning."
)
required_str = f"{required[0]}.{required[1]}.0"
assert tv_v >= _PkgVersion(required_str), (
f"DRIFT DETECTED: torch=={torch_raw} requires "
f"torchvision>={required_str}, but torchvision=={tv_raw} is "
f"installed. torchvision_compatibility_check would raise."
)
# vllm
def test_vllm_guided_decoding_params_or_structured_outputs_present():
"""``fix_vllm_guided_decoding_params``: vLLM PR #22772 renamed
GuidedDecodingParams -> StructuredOutputsParams; the fix re-aliases for trl."""
pytest.importorskip("vllm")
try:
sp = importlib.import_module("vllm.sampling_params")
except Exception as exc:
pytest.skip(f"vllm.sampling_params unimportable: {exc!r}")
has_guided = hasattr(sp, "GuidedDecodingParams")
has_structured = hasattr(sp, "StructuredOutputsParams")
assert has_guided or has_structured, (
"vllm.sampling_params has neither GuidedDecodingParams nor "
"StructuredOutputsParams; fix_vllm_guided_decoding_params "
"cannot re-alias. trl import path will break."
)
if not has_guided:
pytest.fail(
"DRIFT DETECTED: vllm.sampling_params only exposes "
"StructuredOutputsParams (post PR #22772); "
"fix_vllm_guided_decoding_params injects a GuidedDecodingParams "
"alias so trl keeps importing."
)
def test_vllm_aimv2_ovis_config_is_past_fix_version():
"""``fix_vllm_aimv2_issue``: vLLM <0.10.1 double-registers ``aimv2`` (duplicate-key
ValueError); the fix only touches old versions."""
pytest.importorskip("vllm")
vllm_v = _safe_version(importlib_version("vllm"))
cutoff = _PkgVersion("0.10.1")
if vllm_v < cutoff:
pytest.fail(
f"DRIFT DETECTED: vllm=={vllm_v} < {cutoff}; "
"fix_vllm_aimv2_issue rewrites ovis.py to skip the duplicate "
'AutoConfig.register("aimv2", ...) call.'
)
# huggingface_hub
def test_huggingface_hub_is_offline_mode_or_hf_hub_offline_present():
"""``fix_huggingface_hub``: re-injects top-level ``is_offline_mode`` from
``constants.HF_HUB_OFFLINE`` after huggingface_hub dropped it."""
hub = pytest.importorskip("huggingface_hub")
has_top_level = False
try:
has_top_level = callable(getattr(hub, "is_offline_mode", None))
except Exception:
has_top_level = False
has_constant = False
try:
constants_mod = importlib.import_module("huggingface_hub.constants")
has_constant = hasattr(constants_mod, "HF_HUB_OFFLINE")
except Exception:
has_constant = False
assert has_top_level or has_constant, (
"huggingface_hub dropped both ``is_offline_mode`` AND "
"``huggingface_hub.constants.HF_HUB_OFFLINE``; "
"fix_huggingface_hub can no longer re-inject the helper."
)
# torch
def test_torch_nn_init_trunc_normal_exists():
"""``patch_trunc_normal_precision_issue``: fp16/bf16 wrapper monkey-patches
torch.nn.init.trunc_normal_, which must still exist."""
pytest.importorskip("torch")
import torch.nn.init as init_mod
assert callable(getattr(init_mod, "trunc_normal_", None)), (
"torch.nn.init.trunc_normal_ removed/renamed; "
"patch_trunc_normal_precision_issue cannot wrap it."
)
# xformers
def test_xformers_is_post_num_splits_key_fix_or_not_installed():
"""``fix_xformers_performance_issue``: xformers <0.0.29 has the
``num_splits_key=-1`` perf bug Unsloth rewrites at install time."""
if importlib.util.find_spec("xformers") is None:
pytest.skip("xformers not installed -- nothing to drift-check.")
x_v = _safe_version(importlib_version("xformers"))
cutoff = _PkgVersion("0.0.29")
if x_v < cutoff:
pytest.fail(
f"DRIFT DETECTED: xformers=={x_v} < {cutoff}; "
"fix_xformers_performance_issue rewrites "
"ops/fmha/cutlass.py num_splits_key=-1 -> None."
)
# transformers (PreTrainedModel base import sanity)
def test_transformers_pretrained_model_has_get_input_embeddings():
"""``patch_enable_input_require_grads``: its replacement calls
``get_input_embeddings`` per submodule, so the accessor must still exist."""
pytest.importorskip("transformers")
from transformers import PreTrainedModel
assert hasattr(PreTrainedModel, "get_input_embeddings"), (
"PreTrainedModel.get_input_embeddings was renamed or removed; "
"patch_enable_input_require_grads's replacement no longer compiles."
)
# accelerate -- ``is_X_available`` API stability used across the fixes
# Regression for https://github.com/unslothai/unsloth/issues/4188:
# Qwen3_5ForConditionalGeneration uses loss_type='ForConditionalGeneration', a
# separate LOSS_MAPPING key left unpatched, falling back to stock ForCausalLMLoss
# whose logits.float() OOMs on <=24 GB GPUs.
def _reset_loss_mapping(mapping, saved):
mapping.clear()
mapping.update(saved)
def test_patch_loss_functions_covers_conditional_generation():
"""patch_loss_functions() must repoint every ForCausalLMLoss alias to the
Unsloth kernel, not just LOSS_MAPPING['ForCausalLM']."""
lu = pytest.importorskip("transformers.loss.loss_utils")
cel = pytest.importorskip("unsloth.kernels.cross_entropy_loss")
saved = dict(lu.LOSS_MAPPING)
try:
cel.patch_loss_functions(torch_compile = False)
unsloth_loss = lu.LOSS_MAPPING.get("ForCausalLM")
assert unsloth_loss is not None
assert "Unsloth" in str(
unsloth_loss
), f"LOSS_MAPPING['ForCausalLM'] was not replaced: {unsloth_loss}"
cg_loss = lu.LOSS_MAPPING.get("ForConditionalGeneration")
assert cg_loss is unsloth_loss, (
f"LOSS_MAPPING['ForConditionalGeneration'] not patched: {cg_loss}. "
f"Qwen3_5ForConditionalGeneration will silently use the stock "
f"ForCausalLMLoss and OOM at large sequence lengths."
)
finally:
_reset_loss_mapping(lu.LOSS_MAPPING, saved)
def test_patch_loss_functions_does_not_touch_other_loss_types():
"""patch_loss_functions() must not overwrite unrelated loss types with the causal-LM kernel."""
lu = pytest.importorskip("transformers.loss.loss_utils")
cel = pytest.importorskip("unsloth.kernels.cross_entropy_loss")
non_causal_keys = {
k for k, v in lu.LOSS_MAPPING.items() if getattr(v, "__name__", "") != "ForCausalLMLoss"
}
saved = dict(lu.LOSS_MAPPING)
try:
cel.patch_loss_functions(torch_compile = False)
unsloth_loss = lu.LOSS_MAPPING.get("ForCausalLM")
for key in non_causal_keys:
assert lu.LOSS_MAPPING.get(key) is not unsloth_loss, (
f"patch_loss_functions() incorrectly overwrote "
f"LOSS_MAPPING['{key}'] with the Unsloth ForCausalLM kernel."
)
finally:
_reset_loss_mapping(lu.LOSS_MAPPING, saved)
def test_accelerate_utils_imports_module_present():
"""``disable_broken_wandb`` + ``fix_trl_vllm_ascend`` both reach into
accelerate.utils.imports."""
pytest.importorskip("accelerate")
mod = pytest.importorskip("accelerate.utils.imports")
# is_wandb_available is the canonical target of disable_broken_wandb.
assert hasattr(mod, "is_wandb_available"), (
"accelerate.utils.imports.is_wandb_available is gone; "
"disable_broken_wandb cannot patch the source module."
)
def test_accelerate_recursively_apply_empty_logits_patch():
"""patch_accelerate_recursively_apply overrides recursively_apply to bypass EmptyLogits."""
pytest.importorskip("accelerate")
import accelerate.utils.operations as acc_ops
from unsloth.import_fixes import patch_accelerate_recursively_apply
class EmptyLogits:
pass
e = EmptyLogits()
patch_accelerate_recursively_apply()
res = acc_ops.recursively_apply(lambda x: x, e, error_on_other_type = True)
assert res is e
def test_accelerate_gather_empty_logits_debug_mode_patch():
"""gather and broadcast bypass EmptyLogits when debug mode is enabled."""
pytest.importorskip("accelerate")
from accelerate.state import PartialState, DistributedType
import accelerate.utils.operations as acc_ops
from unsloth.import_fixes import patch_accelerate_recursively_apply
import unittest.mock as mock
import torch
class EmptyLogits:
pass
e = EmptyLogits()
patch_accelerate_recursively_apply()
# Enable debug mode and mock a 2-process distributed state
state = PartialState()
orig_debug = state.debug
orig_dist_type = state.distributed_type
orig_num_processes = state.num_processes
orig_device = state.device
state.debug = True
state.distributed_type = DistributedType.MULTI_GPU
state.num_processes = 2
def mock_gather_object(obj, *args, **kwargs):
return [obj] * state.num_processes
def mock_gpu_gather(tensor, *args, **kwargs):
def _gather_one(t):
if t.ndim == 0:
t = t.clone()[None]
return torch.cat([t] * state.num_processes, dim = 0)
return acc_ops.recursively_apply(_gather_one, tensor, error_on_other_type = True)
def mock_gpu_broadcast(data, *args, **kwargs):
return data
try:
with (
mock.patch(
"accelerate.utils.operations.gather_object",
side_effect = mock_gather_object,
),
mock.patch("accelerate.utils.operations._gpu_gather", side_effect = mock_gpu_gather),
mock.patch(
"accelerate.utils.operations._gpu_broadcast",
side_effect = mock_gpu_broadcast,
),
):
state.device = torch.device("cpu")
# Top-level EmptyLogits gathers to itself
res = acc_ops.gather(e)
assert res is e
# Nested EmptyLogits
res_nested = acc_ops.gather([e])
assert isinstance(res_nested, list) and res_nested[0] is e
# Mixed payload: real tensor gets gathered, EmptyLogits passes through.
# Tensor must live on state.device or debug-mode device check fails on GPUs.
real_tensor = torch.tensor([42], device = state.device)
payload = {"labels": real_tensor, "logits": e}
res_mixed = acc_ops.gather(payload)
assert isinstance(res_mixed, dict)
assert res_mixed["logits"] is e
# num_processes = 2 -> gathered to [42, 42]
assert torch.equal(res_mixed["labels"], torch.tensor([42, 42], device = state.device))
# Broadcast with EmptyLogits
res_broadcast = acc_ops.broadcast(e)
assert res_broadcast is e
# Mixed payload broadcast
res_broadcast_mixed = acc_ops.broadcast(payload)
assert isinstance(res_broadcast_mixed, dict)
assert res_broadcast_mixed["logits"] is e
assert torch.equal(res_broadcast_mixed["labels"], real_tensor)
finally:
state.debug = orig_debug
state.distributed_type = orig_dist_type
state.num_processes = orig_num_processes
state.device = orig_device
def test_accelerate_patch_is_idempotent():
"""Calling patch_accelerate_recursively_apply twice must not stack wrappers."""
pytest.importorskip("accelerate")
import accelerate.utils.operations as acc_ops
from unsloth.import_fixes import patch_accelerate_recursively_apply
patch_accelerate_recursively_apply()
recursively_apply = acc_ops.recursively_apply
find_device = acc_ops.find_device
patch_accelerate_recursively_apply()
assert (
acc_ops.recursively_apply is recursively_apply
), "DRIFT DETECTED: recursively_apply was wrapped twice."
assert acc_ops.find_device is find_device, "DRIFT DETECTED: find_device was wrapped twice."
def test_accelerate_find_device_skips_empty_logits():
"""find_device must search past EmptyLogits and keep None for tensor-free data."""
pytest.importorskip("accelerate")
import torch
import accelerate.utils.operations as acc_ops
from accelerate.state import PartialState
from unsloth.import_fixes import patch_accelerate_recursively_apply
class EmptyLogits:
pass
patch_accelerate_recursively_apply()
tensor = torch.tensor([1.0])
# Leading sentinel must not stop the search before the real tensor
assert acc_ops.find_device({"logits": EmptyLogits(), "labels": tensor}) == tensor.device
# Tensor-free payloads keep returning None (AlignDevicesHook needs it to skip moves)
assert acc_ops.find_device({"a": 1}) is None
# Sentinel-only payloads fall back to current device so debug-mode
# find_device(...).type doesn't raise AttributeError
assert acc_ops.find_device(EmptyLogits()) == PartialState().device
def test_accelerate_patch_wired_into_gpu_init():
"""The patch must be installed at startup, not only importable."""
source = Path(__file__).resolve().parent.parent / "unsloth" / "_gpu_init.py"
source = source.read_text()
assert "patch_accelerate_recursively_apply()" in source, (
"DRIFT DETECTED: patch_accelerate_recursively_apply is defined but "
"never called in _gpu_init.py, so real imports never install it."
)
# ===========================================================================
# bitsandbytes -- ROCm arch / warp-size detection shape
# ===========================================================================
def test_bitsandbytes_rocm_detection_helpers_recognizable():
"""``fix_bitsandbytes_rocm_arch_detection``: the source sniff only patches
bnb's ROCm helpers in recognized shapes; fail (don't import) when it drifts."""
spec = importlib.util.find_spec("bitsandbytes")
if spec is None:
pytest.skip("bitsandbytes not installed -- nothing to drift-check.")
cuda_specs_path = None
for location in spec.submodule_search_locations or []:
candidate = os.path.join(location, "cuda_specs.py")
if os.path.isfile(candidate):
cuda_specs_path = candidate
break
if cuda_specs_path is None:
pytest.skip("bitsandbytes has no cuda_specs.py (pre-ROCm version).")
import ast
with open(cuda_specs_path, "r", encoding = "utf-8") as f:
source = f.read()
helpers = [
node
for node in ast.walk(ast.parse(source))
if isinstance(node, ast.FunctionDef)
and node.name in ("get_rocm_gpu_arch", "get_rocm_warpsize")
]
if not helpers:
pytest.skip("bitsandbytes cuda_specs has no ROCm detection helpers.")
for node in helpers:
segment = ast.get_source_segment(source, node) or ""
recognized = (
"subprocess" in segment
or "get_device_properties" in segment
or "gcnArchName" in segment
)
if not recognized:
pytest.fail(
f"DRIFT DETECTED: bitsandbytes.cuda_specs.{node.name} uses "
"neither subprocess nor torch device properties; "
"fix_bitsandbytes_rocm_arch_detection's shape sniff will "
"decline to patch it and Windows ROCm import-time noise / "
"wrong ROCM_GPU_ARCH may return."
)