227 lines
8.9 KiB
Python
227 lines
8.9 KiB
Python
# Copyright 2023-present Daniel Han-Chen & the Unsloth team. All rights reserved.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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import warnings, importlib, sys
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from packaging.version import Version
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import os, re, subprocess, inspect
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import numpy as np
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# Unsloth currently does not work on multi GPU setups - sadly we are a 2 brother team so
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# enabling it will require much more work, so we have to prioritize. Please understand!
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# We do have a beta version, which you can contact us about!
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# Thank you for your understanding and we appreciate it immensely!
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# Fixes https://github.com/unslothai/unsloth/issues/1266
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os.environ["PROTOCOL_BUFFERS_PYTHON_IMPLEMENTATION"] = "python"
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if "CUDA_VISIBLE_DEVICES" in os.environ:
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os.environ["CUDA_DEVICE_ORDER"] = "PCI_BUS_ID"
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devices = os.environ["CUDA_VISIBLE_DEVICES"]
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# Check if there are multiple cuda devices set in env
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if not devices.isdigit():
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first_id = devices.split(",")[0]
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warnings.warn(
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f"Unsloth: 'CUDA_VISIBLE_DEVICES' is currently {devices} \n"\
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"Unsloth currently does not support multi GPU setups - but we are working on it!\n"\
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"Multiple CUDA devices detected but we require a single device.\n"\
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f"We will override CUDA_VISIBLE_DEVICES to first device: {first_id}."
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)
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os.environ["CUDA_VISIBLE_DEVICES"] = str(first_id)
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else:
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# warnings.warn("Unsloth: 'CUDA_VISIBLE_DEVICES' is not set. We shall set it ourselves.")
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os.environ["CUDA_DEVICE_ORDER"] = "PCI_BUS_ID"
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os.environ["CUDA_VISIBLE_DEVICES"] = "0"
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pass
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# Reduce VRAM usage by reducing fragmentation
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# And optimize pinning of memory
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os.environ["PYTORCH_CUDA_ALLOC_CONF"] = \
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"expandable_segments:True,"\
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"roundup_power2_divisions:[32:256,64:128,256:64,>:32]"
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# [TODO] Check why some GPUs don't work
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# "pinned_use_cuda_host_register:True,"\
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# "pinned_num_register_threads:8"
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# Hugging Face Hub faster downloads
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if "HF_HUB_ENABLE_HF_TRANSFER" not in os.environ:
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os.environ["HF_HUB_ENABLE_HF_TRANSFER"] = "1"
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pass
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# Log Unsloth is being used
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os.environ["UNSLOTH_IS_PRESENT"] = "1"
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try:
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import torch
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except ModuleNotFoundError:
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raise ImportError(
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"Unsloth: Pytorch is not installed. Go to https://pytorch.org/.\n"\
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"We have some installation instructions on our Github page."
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)
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except Exception as exception:
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raise exception
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pass
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# We support Pytorch 2
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# Fixes https://github.com/unslothai/unsloth/issues/38
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torch_version = torch.__version__.split(".")
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major_torch, minor_torch = torch_version[0], torch_version[1]
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major_torch, minor_torch = int(major_torch), int(minor_torch)
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if (major_torch < 2):
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raise ImportError("Unsloth only supports Pytorch 2 for now. Please update your Pytorch to 2.1.\n"\
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"We have some installation instructions on our Github page.")
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elif (major_torch == 2) and (minor_torch < 2):
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# Disable expandable_segments
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del os.environ["PYTORCH_CUDA_ALLOC_CONF"]
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pass
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# First check if CUDA is available ie a NVIDIA GPU is seen
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if not torch.cuda.is_available():
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raise NotImplementedError("Unsloth: No NVIDIA GPU found? Unsloth currently only supports GPUs!")
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# Fix Xformers performance issues since 0.0.25
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import importlib.util
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from pathlib import Path
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from importlib.metadata import version as importlib_version
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from packaging.version import Version
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try:
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xformers_version = importlib_version("xformers")
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if Version(xformers_version) < Version("0.0.29"):
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xformers_location = importlib.util.find_spec("xformers").origin
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xformers_location = os.path.split(xformers_location)[0]
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cutlass = Path(xformers_location) / "ops" / "fmha" / "cutlass.py"
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if cutlass.exists():
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with open(cutlass, "r+") as f:
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text = f.read()
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# See https://github.com/facebookresearch/xformers/issues/1176#issuecomment-2545829591
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if "num_splits_key=-1," in text:
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text = text.replace("num_splits_key=-1,", "num_splits_key=None,")
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f.seek(0)
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f.write(text)
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f.truncate()
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print("Unsloth: Patching Xformers to fix some performance issues.")
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pass
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pass
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pass
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pass
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except:
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pass
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pass
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# Torch 2.4 has including_emulation
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major_version, minor_version = torch.cuda.get_device_capability()
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SUPPORTS_BFLOAT16 = (major_version >= 8)
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old_is_bf16_supported = torch.cuda.is_bf16_supported
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if "including_emulation" in str(inspect.signature(old_is_bf16_supported)):
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def is_bf16_supported(including_emulation = False):
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return old_is_bf16_supported(including_emulation)
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torch.cuda.is_bf16_supported = is_bf16_supported
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else:
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def is_bf16_supported(): return SUPPORTS_BFLOAT16
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torch.cuda.is_bf16_supported = is_bf16_supported
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pass
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# For Gradio HF Spaces?
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# if "SPACE_AUTHOR_NAME" not in os.environ and "SPACE_REPO_NAME" not in os.environ:
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import triton
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libcuda_dirs = lambda: None
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if Version(triton.__version__) >= Version("3.0.0"):
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try: from triton.backends.nvidia.driver import libcuda_dirs
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except: pass
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else: from triton.common.build import libcuda_dirs
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# Triton 3.2 removed triton.ops, so we shall fix it!
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from .matmul_perf_model import TritonOps
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try: import triton.ops
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except: triton.ops = TritonOps()
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# Try loading bitsandbytes and triton
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import bitsandbytes as bnb
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try:
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cdequantize_blockwise_fp32 = bnb.functional.lib.cdequantize_blockwise_fp32
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libcuda_dirs()
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except:
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warnings.warn(
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"Unsloth: Running `ldconfig /usr/lib64-nvidia` to link CUDA."\
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)
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if os.path.exists("/usr/lib64-nvidia"):
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os.system("ldconfig /usr/lib64-nvidia")
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elif os.path.exists("/usr/local"):
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# Sometimes bitsandbytes cannot be linked properly in Runpod for example
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possible_cudas = subprocess.check_output(["ls", "-al", "/usr/local"]).decode("utf-8").split("\n")
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find_cuda = re.compile(r"[\s](cuda\-[\d\.]{2,})$")
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possible_cudas = [find_cuda.search(x) for x in possible_cudas]
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possible_cudas = [x.group(1) for x in possible_cudas if x is not None]
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# Try linking cuda folder, or everything in local
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if len(possible_cudas) == 0:
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os.system("ldconfig /usr/local/")
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else:
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find_number = re.compile(r"([\d\.]{2,})")
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latest_cuda = np.argsort([float(find_number.search(x).group(1)) for x in possible_cudas])[::-1][0]
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latest_cuda = possible_cudas[latest_cuda]
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os.system(f"ldconfig /usr/local/{latest_cuda}")
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pass
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importlib.reload(bnb)
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importlib.reload(triton)
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try:
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libcuda_dirs = lambda: None
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if Version(triton.__version__) >= Version("3.0.0"):
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try: from triton.backends.nvidia.driver import libcuda_dirs
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except: pass
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else: from triton.common.build import libcuda_dirs
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cdequantize_blockwise_fp32 = bnb.functional.lib.cdequantize_blockwise_fp32
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libcuda_dirs()
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# Triton 3.2 removed triton.ops, so we shall fix it!
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try: import triton.ops
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except: triton.ops = TritonOps()
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except:
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warnings.warn(
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"Unsloth: CUDA is not linked properly.\n"\
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"Try running `python -m bitsandbytes` then `python -m xformers.info`\n"\
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"We tried running `ldconfig /usr/lib64-nvidia` ourselves, but it didn't work.\n"\
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"You need to run in your terminal `sudo ldconfig /usr/lib64-nvidia` yourself, then import Unsloth.\n"\
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"Also try `sudo ldconfig /usr/local/cuda-xx.x` - find the latest cuda version.\n"\
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"Unsloth will still run for now, but maybe it might crash - let's hope it works!"
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)
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pass
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# Check for unsloth_zoo
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try:
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unsloth_zoo_version = importlib_version("unsloth_zoo")
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if Version(unsloth_zoo_version) < Version("2025.1.4"):
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try:
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os.system("pip install --upgrade --no-cache-dir --no-deps unsloth_zoo")
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except:
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try:
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os.system("pip install --upgrade --no-cache-dir --no-deps --user unsloth_zoo")
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except:
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raise ImportError("Unsloth: Please update unsloth_zoo via `pip install --upgrade --no-cache-dir --no-deps unsloth_zoo`")
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import unsloth_zoo
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except:
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raise ImportError("Unsloth: Please install unsloth_zoo via `pip install unsloth_zoo`")
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pass
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from .models import *
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from .save import *
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from .chat_templates import *
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from .tokenizer_utils import *
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from .trainer import *
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# Patch TRL trainers for backwards compatibility
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_patch_trl_trainer()
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