Add PyTorch 2.6 QuickStart for Intel GPU (#13024)
* Add quickstart for install IPEX-LLM with PyTorch 2.6 on Intel GPUs * Add jump links * Rename * Small fix * Small fix * Update based on comments * Small fix
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## Windows
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					## Windows
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					> [!NOTE]
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					> For installation with PyTorch 2.6, please refer to this [guide](../Quickstart/install_pytorch26_gpu.md#windows-quickstart) for more information.
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### Prerequisites
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					### Prerequisites
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IPEX-LLM on Windows supports Intel iGPU and dGPU.
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					IPEX-LLM on Windows supports Intel iGPU and dGPU.
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## Linux
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					## Linux
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					> [!NOTE]
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					> For installation with PyTorch 2.6, please refer to this [guide](../Quickstart/install_pytorch26_gpu.md#linux-quickstart) for more information.
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### Prerequisites
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					### Prerequisites
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IPEX-LLM GPU support on Linux has been verified on:
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					IPEX-LLM GPU support on Linux has been verified on:
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This guide demonstrates how to install IPEX-LLM on Linux with Intel GPUs. It applies to Intel Data Center GPU Flex Series and Max Series, as well as Intel Arc Series GPU and Intel iGPU. 
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					This guide demonstrates how to install IPEX-LLM on Linux with Intel GPUs. It applies to Intel Data Center GPU Flex Series and Max Series, as well as Intel Arc Series GPU and Intel iGPU. 
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					> [!NOTE]
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					> For installation with PyTorch 2.6, please refer to this [guide](./install_pytorch26_gpu.md#linux-quickstart) for more information.
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> [!NOTE]
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					> [!NOTE]
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> For installation on Intel Arc B-Series GPU (such as **B580**), please refer to this [guide](./bmg_quickstart.md).
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					> For installation on Intel Arc B-Series GPU (such as **B580**), please refer to this [guide](./bmg_quickstart.md).
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本指南将引导你如何在带有 Intel GPU 的 Linux 系统上安装 IPEX-LLM。适用于 Intel 数据中心的 GPU Flex 和 Max 系列,以及 Intel Arc 系列 GPU 和 Intel iGPU。
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					本指南将引导你如何在带有 Intel GPU 的 Linux 系统上安装 IPEX-LLM。适用于 Intel 数据中心的 GPU Flex 和 Max 系列,以及 Intel Arc 系列 GPU 和 Intel iGPU。
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					> [!NOTE]
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					> 如果需要安装 IPEX-LLM PyTorch 2.6 版本,请参阅本[指南](./install_pytorch26_gpu.md#linux-quickstart)获取详细信息。
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> [!NOTE]
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					> [!NOTE]
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> 如果是在 Intel Arc B 系列 GPU 上安装(例,**B580**),请参阅本[指南](./bmg_quickstart.md)。
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					> 如果是在 Intel Arc B 系列 GPU 上安装(例,**B580**),请参阅本[指南](./bmg_quickstart.md)。
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								docs/mddocs/Quickstart/install_pytorch26_gpu.md
									
									
									
									
									
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								docs/mddocs/Quickstart/install_pytorch26_gpu.md
									
									
									
									
									
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					# Install IPEX-LLM on Intel GPU with PyTorch 2.6
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					This guide demonstrates how to install IPEX-LLM on Intel GPUs with PyTorch 2.6 support.
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					IPEX-LLM with PyTorch 2.6 provides a simpler prerequisites setup process, without requiring manual installation of oneAPI. Besides, it offers broader platform support with AOT (Ahead of Time) Compilation.
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					> [!TIP]
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					> For details on which device IPEX-LLM PyTorch 2.6 supports with AOT compilation, you could refer to here ([Windows](https://pytorch-extension.intel.com/installation?platform=gpu&version=v2.6.10%2Bxpu&os=windows&package=pip#:~:text=following%20system%20requirements%3A-,1.1.%20Hardware,-Supported%20by%20prebuilt) or [Linux](https://pytorch-extension.intel.com/installation?platform=gpu&version=v2.6.10%2Bxpu&os=linux%2Fwsl2&package=pip#:~:text=following%20system%20requirements%3A-,1.1.%20Hardware,-Supported%20by%20prebuilt)) for more information.
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					## Table of Contents
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					- [Windows Quickstart](#windows-quickstart)
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					  - [Install Prerequisites](#install-prerequisites)
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					  - [Install `ipex-llm`](#install-ipex-llm)
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					  - [Runtime Configurations](#runtime-configurations)
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					  - [Verify Installation](#verify-installation)
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					- [Linux Quickstart](#linux-quickstart)
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					  - [Install Prerequisites](#install-prerequisites-1)
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					  - [Install `ipex-llm`](#install-ipex-llm-1)
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					  - [Runtime Configurations](#runtime-configurations-1)
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					  - [Verify Installation](#verify-installation-1)
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					## Windows Quickstart
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					### Install Prerequisites
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					#### Update GPU Driver
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					We recommend updating your GPU driver to the [latest](https://www.intel.com/content/www/us/en/download/785597/intel-arc-iris-xe-graphics-windows.html). A system reboot is necessary to apply the changes after the installation is complete.
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					#### Setup Python Environment
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					Visit [Miniforge installation page](https://conda-forge.org/download/), download the **Miniforge installer for Windows**, and follow the instructions to complete the installation.
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					<div align="center">
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					<img src="https://llm-assets.readthedocs.io/en/latest/_images/quickstart_windows_gpu_miniforge_download.png"  width=80%/>
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					</div>
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					After installation, open the **Miniforge Prompt**, create a new python environment `llm-pt26`:
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					```cmd
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					conda create -n llm-pt26 python=3.11
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					```
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					Activate the newly created environment `llm-pt26`:
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					```cmd
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					conda activate llm-pt26
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					```
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					### Install `ipex-llm`
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					With the `llm-pt26` environment active, use `pip` to install `ipex-llm` for GPU:
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					- For **Intel Core™ Ultra Processors (Series 2) with processor number 2xxH (code name Arrow Lake)**:
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					  Choose either US or CN website for `extra-index-url`:
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					  - For **US**:
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					    ```cmd
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					    pip install --pre --upgrade ipex-llm[xpu_2.6_arl] --extra-index-url https://pytorch-extension.intel.com/release-whl/stable/arl/us/
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					    ```
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					  - For **CN**:
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					    ```cmd
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					    pip install --pre --upgrade ipex-llm[xpu_2.6_arl] --extra-index-url https://pytorch-extension.intel.com/release-whl/stable/arl/cn/
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					    ```
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					> [!TIP]
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					> For other Intel Core™ Ultra Processors, such as 2xxHX, please refer to the installation instruction below (i.e. for **other Intel iGPU and dGPU**).
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					- For **other Intel iGPU and dGPU**:
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					   ```cmd
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					   pip install --pre --upgrade ipex-llm[xpu_2.6] --extra-index-url https://download.pytorch.org/whl/xpu
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					   ```
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					### Runtime Configurations
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					For optimal performance, it is recommended to set several environment variables. Please check out the suggestions based on your device.
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					With the `llm-pt26` environment active:
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					- For **Intel Arc™ A-Series GPU (code name Alchemist)**
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					  ```cmd
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					  set SYCL_CACHE_PERSISTENT=1
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					  set UR_L0_USE_IMMEDIATE_COMMANDLISTS=0
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					  ```
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					> [!TIP]
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					> It is recommanded to experiment with `UR_L0_USE_IMMEDIATE_COMMANDLISTS=0` or `1` for best performance on Intel Arc™ A-Series GPU.
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					- For **other Intel iGPU and dGPU**:
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					  ```cmd
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					  set SYCL_CACHE_PERSISTENT=1
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					  :: [optional] The following environment variable may improve performance, but in some cases, it may also lead to performance degradation
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					  set SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS=1
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					  ```
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					> [!NOTE]
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					> The environment variable `SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS` determines the usage of immediate command lists for task submission to the GPU. It is highly recommanded to experiment with `SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS=1` or `0` on your device for best performance.
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					>
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					> You could refer to [here](https://www.intel.com/content/www/us/en/developer/articles/guide/level-zero-immediate-command-lists.html) regarding more information about Level Zero Immediate Command Lists.
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					### Verify Installation
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					You can verify if `ipex-llm` is successfully installed following below steps:
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					- Open the **Miniforge Prompt** and activate the Python environment `llm-pt26` you previously created:
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					  ```cmd
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					  conda activate llm-pt26
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					  ```
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					- Set environment variables according to the [Runtime Configurations section](#runtime-configurations).
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					- Launch the Python interactive shell by typing `python` in the Miniforge Prompt window and then press Enter.
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					- Copy following code to Miniforge Prompt **line by line** and press Enter **after copying each line**.
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					  ```python
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					  import torch
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					  from ipex_llm.transformers import AutoModel, AutoModelForCausalLM
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					  tensor_1 = torch.randn(1, 1, 40, 128).to('xpu')
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					  tensor_2 = torch.randn(1, 1, 128, 40).to('xpu')
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					  print(torch.matmul(tensor_1, tensor_2).size())
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					  ```
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					  It should output following content at the end:
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					  ```
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					  torch.Size([1, 1, 40, 40])
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					  ```
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					- To exit the Python interactive shell, simply press Ctrl+Z then press Enter (or input `exit()` then press Enter).
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					## Linux Quickstart
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					### Install Prerequisites
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					#### Install GPU Driver
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					We recommend following [Intel client GPU driver installation guide](https://dgpu-docs.intel.com/driver/client/overview.html) to install your GPU driver.
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					#### Setup Python Environment
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					Download and install the Miniforge as follows if you don't have conda installed on your machine:
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					```bash
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					wget https://github.com/conda-forge/miniforge/releases/latest/download/Miniforge3-Linux-x86_64.sh
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					bash Miniforge3-Linux-x86_64.sh
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					source ~/.bashrc
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					```
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					You can use `conda --version` to verify you conda installation.
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					After installation, create a new python environment `llm-pt26`:
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					```bash
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					conda create -n llm-pt26 python=3.11
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					```
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					Activate the newly created environment `llm-pt26`:
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					```bash
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					conda activate llm-pt26
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					```
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					### Install `ipex-llm`
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					With the `llm-pt26` environment active, use `pip` to install `ipex-llm` for GPU:
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					```bash
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					pip install --pre --upgrade ipex-llm[xpu_2.6] --extra-index-url https://download.pytorch.org/whl/xpu
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					```
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					### Runtime Configurations
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					For optimal performance, it is recommended to set several environment variables. Please check out the suggestions based on your device.
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					With the `llm-pt26` environment active:
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					```bash
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					unset OCL_ICD_VENDORS
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					export SYCL_CACHE_PERSISTENT=1
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					# [optional] The following environment variable may improve performance, but in some cases, it may also lead to performance degradation
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					export SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS=1
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					```
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					> [!NOTE]
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					> The environment variable `SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS` determines the usage of immediate command lists for task submission to the GPU. It is highly recommanded to experiment with `SYCL_PI_LEVEL_ZERO_USE_IMMEDIATE_COMMANDLISTS=1` or `0` on your device for best performance.
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					>
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					> You could refer to [here](https://www.intel.com/content/www/us/en/developer/articles/guide/level-zero-immediate-command-lists.html) regarding more information about Level Zero Immediate Command Lists.
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					### Verify Installation
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					You can verify if `ipex-llm` is successfully installed following below steps:
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					- Activate the Python environment `llm-pt26` you previously created:
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					  ```cmd
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					  conda activate llm-pt26
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					  ```
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					- Set environment variables according to the [Runtime Configurations section](#runtime-configurations-1).
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					- Launch the Python interactive shell by typing `python` in the terminal and then press Enter.
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					- Copy following code to Miniforge Prompt **line by line** and press Enter **after copying each line**.
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					  ```python
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					  import torch
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					  from ipex_llm.transformers import AutoModel, AutoModelForCausalLM
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					  tensor_1 = torch.randn(1, 1, 40, 128).to('xpu')
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					  tensor_2 = torch.randn(1, 1, 128, 40).to('xpu')
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					  print(torch.matmul(tensor_1, tensor_2).size())
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					  ```
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					  It should output following content at the end:
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 | 
					  ```
 | 
				
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 | 
					  torch.Size([1, 1, 40, 40])
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 | 
					  ```
 | 
				
			||||||
 | 
					
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 | 
					- To exit the Python interactive shell, simply press Ctrl+C then press Enter (or input `exit()` then press Enter).
 | 
				
			||||||
| 
						 | 
					@ -5,6 +5,9 @@
 | 
				
			||||||
    
 | 
					    
 | 
				
			||||||
This guide demonstrates how to install IPEX-LLM on Windows with Intel GPUs. 
 | 
					This guide demonstrates how to install IPEX-LLM on Windows with Intel GPUs. 
 | 
				
			||||||
 | 
					
 | 
				
			||||||
 | 
					> [!NOTE]
 | 
				
			||||||
 | 
					> For installation with PyTorch 2.6, please refer to this [guide](./install_pytorch26_gpu.md#windows-quickstart) for more information.
 | 
				
			||||||
 | 
					
 | 
				
			||||||
> [!NOTE]
 | 
					> [!NOTE]
 | 
				
			||||||
> For installation on Intel Arc B-Series GPU (such as **B580**), please refer to this [guide](./bmg_quickstart.md).
 | 
					> For installation on Intel Arc B-Series GPU (such as **B580**), please refer to this [guide](./bmg_quickstart.md).
 | 
				
			||||||
 | 
					
 | 
				
			||||||
| 
						 | 
					
 | 
				
			||||||
| 
						 | 
					@ -5,6 +5,9 @@
 | 
				
			||||||
    
 | 
					    
 | 
				
			||||||
本指南将引导你如何在具有 Intel GPUs 的 Windows 系统上安装 IPEX-LLM。 
 | 
					本指南将引导你如何在具有 Intel GPUs 的 Windows 系统上安装 IPEX-LLM。 
 | 
				
			||||||
 | 
					
 | 
				
			||||||
 | 
					> [!NOTE]
 | 
				
			||||||
 | 
					> 如果需要安装 IPEX-LLM PyTorch 2.6 版本,请参阅本[指南](./install_pytorch26_gpu.md#windows-quickstart)获取详细信息。
 | 
				
			||||||
 | 
					
 | 
				
			||||||
> [!NOTE]
 | 
					> [!NOTE]
 | 
				
			||||||
> 如果是在 Intel Arc B 系列 GPU 上安装(例,**B580**),请参阅本[指南](./bmg_quickstart.md)。
 | 
					> 如果是在 Intel Arc B 系列 GPU 上安装(例,**B580**),请参阅本[指南](./bmg_quickstart.md)。
 | 
				
			||||||
 | 
					
 | 
				
			||||||
| 
						 | 
					
 | 
				
			||||||
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