Xen ARM with Virtualization Extensions: Difference between revisions
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Please email [mailto:xen-devel@lists.xen.org xen-devel] with comments, questions and patches. Please see the [http://lists.xen.org/xen-devel list info page] for subscription information and the [http://lists.xen.org/archives/html/xen-devel/ archives]. For patches please see [[Submitting Xen Patches]]. |
Please email [mailto:xen-devel@lists.xen.org xen-devel] with comments, questions and patches. Please see the [http://lists.xen.org/xen-devel list info page] for subscription information and the [http://lists.xen.org/archives/html/xen-devel/ archives]. For patches please see [[Submitting Xen Patches]]. |
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== Testing == |
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{{Hatnote|The [mailto:xen-arm@lists.xen.org xen-arm] mailing list is focused on [[Xen ARM (PV)]] port.}} |
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There are a lot of different ARM boards and servers with many different IP blocks available. The project's CI loop can only test a small subset of these, as we cannot afford to buy and test against all possible boards. As such, we will be relying on manual testing during [[Xen Project Test Days]] to verify which ARM hardware works and which doesn't. The good news, is that from experience the vast majority of board specific issues will occur during boot and thus a a simple [[Xen ARM Manual Smoke Test]] is usually sufficient to identify such issues. |
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The [[Xen ARM Manual Smoke Test/Results]] contains a list of people who have specific boards and also lists when these boards have been last tested. Feel free to add any test results to the table. By doing so you will help others and yourself. |
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== Hardware == |
== Hardware == |
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{|class="prettytable" style="text-align: left;" valign="top" |
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The arm32 port of Xen currently runs on: |
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!Core/SoC/Board |
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* The Cortex A15 Real-time System Model's provided by ARM. See [[Xen ARM with Virtualization Extensions/FastModels]] for more information on obtaining and building the necessary model. |
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!Xen Guide |
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* A Cortex-A15 Processor running on the Versatile Express. See [[Xen ARM with Virtualization Extensions/Vexpress]]. |
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!Notes |
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* The Arndale board. See [[Xen ARMv7 with Virtualization Extensions/Arndale|Getting Xen on the Arndale]]. |
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|- |
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* The Calxeda ECX-2000 (aka Midway) server. See [[Xen ARM with Virtualization Extensions/Midway|Getting Xen running on Midway]]. |
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!colspan="3"|ARM Cortex [http://www.arm.com/products/processors/cortex-a/cortex-a7.php A7]/[http://www.arm.com/products/processors/cortex-a/cortex-a15.php A15] |
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* Allwinner A20/A31 boards. See [[Xen ARMv7 with Virtualization Extensions/Allwinner|Getting Xen on the Allwinner A20/A31]] |
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|- |
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* The OdroidXU board. See [[Xen ARM with Virtualization Extensions/OdroidXU|Getting Xen on the OdroidXU]]. |
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|ARM Cortex A7/A15 [http://www.arm.com/products/tools/models/fast-models/index.php Real-time System Model] (FVP) |
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|[[Xen ARM with Virtualization Extensions/FastModels|Fastmodels]] |
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|Commercial emulator |
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|- |
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|[http://www.arm.com/products/tools/development-boards/versatile-express/ Versatile Express] |
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|[[Xen ARM with Virtualization Extensions/Vexpress|Versatile Express]] |
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|With TC2 daughterboard |
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|- |
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|Calxeda EXC-2000 |
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|[[Xen ARM with Virtualization Extensions/Midway|Midway]] |
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| |
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|- |
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|colspan="3"|'''[http://www.allwinnertech.com/ Allwinner] sunxi''' |
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|- |
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| [http://www.allwinnertech.com/en/clq/processora/A20.html sun7i/A20] |
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|[[Xen ARM with Virtualization Extensions/Allwinner|Allwinner]] |
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|[http://linux-sunxi.org/A20 linux-sunxi community]. e.g. [http://linux-sunxi.org/Cubietech_Cubietruck Cubietruck] |
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|- |
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| sun6i/A31 |
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| |
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|[http://linux-sunxi.org/A31 linux-sunxi community] |
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|- |
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|colspan="3"|'''Exynos5xxx''' |
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|- |
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| [http://www.samsung.com/global/business/semiconductor/product/application/detail?productId=7668 Exynos5250] |
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|[[Xen ARM with Virtualization Extensions/Arndale|Arndale]] |
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|[http://www.arndaleboard.org/wiki/index.php/Main_Page www.arndaleboard.org] |
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|- |
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| [http://www.samsung.com/global/business/semiconductor/product/application/detail?productId=7976&iaId=2341 Exynos5410] |
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|[[Xen ARM with Virtualization Extensions/OdroidXU|OdroidXU]] |
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|[http://www.hardkernel.com/main/products/prdt_info.php?g_code=G137510300620 www.hardkernel.com] |
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|colspan="3"|'''OMAP5''' |
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| [http://www.ti.com/product/omap5432 OMAP5432] |
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|[[Xen ARM with Virtualization Extensions/OMAP5432_uEVM|uEVM]] |
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|[http://www.ti.com/tool/omap5432-evm www.ti.com] |
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|- |
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|colspan="3"|'''Renesas R-Car H2/H3''' |
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|[http://am.renesas.com/applications/automotive/cis/cis_highend/rcar_h2/index.jsp Renesas R-Car H2] |
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|[[Xen ARM with Virtualization Extensions/Lager|Lager]] |
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|- |
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|[https://elinux.org/R-Car/Boards/Stout Renesas R-Car H2] |
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|[[Xen ARM with Virtualization Extensions/Stout|Stout]] |
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|- |
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|[https://www.renesas.com/en-us/solutions/automotive/products/rcar-h3.html Renesas R-Car H3] |
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|[[Xen ARM with Virtualization Extensions/Salvator-X|Salvator-X]] |
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|- |
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|[https://www.renesas.com/us/en/products/automotive-products/automotive-system-chips-socs Renesas R-Car H3 (new)] |
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|[[Xen ARM with Virtualization Extensions/Salvator-XS|Salvator-XS]] |
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|- |
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!colspan="3"|ARM Cortex [http://arm.com/products/processors/cortex-a/cortex-a53-processor.php A53]/[http://arm.com/products/processors/cortex-a/cortex-a57-processor.php A57] |
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|- |
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|[https://www.qemu.org/ QEMU AArch64 Emulator] |
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|[[Xen ARM with Virtualization Extensions/qemu-system-aarch64|QEMU]] |
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|Fast Open Source emulator |
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|- |
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|[http://www.arm.com/products/tools/models/fast-models/foundation-model.php ARMv8 Foundation Model] |
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|[[Xen ARM with Virtualization Extensions/FastModels|Fastmodels]] |
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|Free as in beer emulator |
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|- |
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|ARM AEMv8 [http://www.arm.com/products/tools/models/fast-models/index.php Real-time System Model] |
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|[[Xen ARM with Virtualization Extensions/FastModels|Fastmodels]] |
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|Commercial emulator |
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|- |
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|ARM Cortex A53/A57 [http://www.arm.com/products/tools/models/fast-models/index.php Real-time System Model] |
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|[[Xen ARM with Virtualization Extensions/FastModels|Fastmodels]] |
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|Commercial emulator |
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|- |
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![https://www.apm.com/products/data-center/x-gene-family/ Applied Micro X-Gene] |
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||[https://www.apm.com/products/data-center/x-gene-family/x-gene/ X-Gene] |
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|[[Xen ARM with Virtualization Extensions/APMXGeneMustang|Mustang]] (XC-1), HP Moonshot (McDivitt) |
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| |
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|- |
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![https://www.96boards.org/products/ce/hikey HiKey board from 96boards.org] |
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|[[HiKey|HiKey]] |
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|Open Hardware Platform |
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|- |
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![http://www.96boards.org/product/hikey960/ HiKey960 board from 96boards.org] |
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|[[HiKey960|HiKey960]] |
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|Open Hardware Platform |
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|- |
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![http://www.xilinx.com/products/technology/ultrascale-mpsoc.html Xilinx Zynq UltraScale+ MPSoC (ZynqMP)] |
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||[http://www.wiki.xilinx.com/XEN+Hypervisor Xilinx Wiki] |
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|Open Source Emulator [http://www.wiki.xilinx.com/QEMU+-+Zynq+UltraScalePlus QEMU for ZynqMP] |
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|- |
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![http://wiki.espressobin.net/tiki-index.php ESPRESSObin based on Marvell ARMADA 3700] |
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|[[Xen ARM with Virtualization Extensions/ESPRESSObin|ESPRESSObin]] |
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|Hardware Platform |
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|- |
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![http://linux-sunxi.org/A64 Allwinner A64]/[http://linux-sunxi.org/H5 H5] based boards |
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|[[Xen ARM with Virtualization Extensions/Allwinner|Allwinner]] |
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|boards like: [http://linux-sunxi.org/Pine64 Pine64], [http://linux-sunxi.org/Xunlong_Orange_Pi_PC_2 OrangePi PC 2] |
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|- |
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!colspan="3"|ARM Cortex [https://developer.arm.com/products/processors/cortex-a/cortex-a53 A53]/[https://developer.arm.com/products/processors/cortex-a/cortex-a72 A72] |
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|- |
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![http://www.9tripod.com/showpro.php?id=93 Ibox3399 board based on Rockchip RK3399] |
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|[[Xen ARM with Virtualization Extensions/Ibox3399|Ibox3399]] |
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|boards like: [https://www.pine64.org/rockpro64 RockPro64] |
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|- |
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|} |
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Early work was also done to support the [http://www.chromium.org/chromium-os/developer-information-for-chrome-os-devices/samsung-arm-chromebook Google Chromebook], however this is no longer continued since it is not a good development platform. |
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The arm64 port of Xen currently runs on: |
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[[Xen ARM with Virtualization Extensions/Chromebook|Early work]] was also done to support the [http://www.chromium.org/chromium-os/developer-information-for-chrome-os-devices/samsung-arm-chromebook Google Chromebook], however this is no longer continued since it is not a good development platform. |
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* The AEMv8 Real-time System Models by ARM. See [[Xen ARM with Virtualization Extensions/FastModels]]. |
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* The [http://www.arm.com/products/tools/models/fast-models/foundation-model.php ARMv8 Foundation Model], is a freely available emulator. Use is very similar to the Fast Models, see [[Xen ARM with Virtualization Extensions/FastModels]]. |
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* APM X-Gene "Mustang". See [[Xen ARM with Virtualization Extensions/APMXGeneMustang]]. |
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== Requirements == |
== Requirements == |
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== Booting Xen == |
== Booting Xen == |
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=== ImageBuilder === |
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Many of the details necessary to boot Xen from U-Boot can be generated automatically by ImageBuilder's '''uboot-script-gen''', see [[ImageBuilder]]. |
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=== Boot Protocol === |
=== Boot Protocol === |
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At boot time Xen must be provided with a dom0 kernel blob and an optional dom0 initramfs blob. The bootloader must load these into memory and describe their location in the Device Tree Blob using the bindings specified in [http://xenbits.xen.org/gitweb/?p=xen.git;a=blob;f=docs/misc/arm/device-tree/booting.txt;h=8da1e0b8fcf9c98888ed63cd45bd11f1a880288b;hb=HEAD docs/misc/arm/device-tree/booting.txt]. |
At boot time Xen must be provided with a dom0 kernel blob and an optional dom0 initramfs blob. The bootloader must load these into memory and describe their location in the Device Tree Blob using the bindings specified in [http://xenbits.xen.org/gitweb/?p=xen.git;a=blob;f=docs/misc/arm/device-tree/booting.txt;h=8da1e0b8fcf9c98888ed63cd45bd11f1a880288b;hb=HEAD docs/misc/arm/device-tree/booting.txt]. |
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These nodes can either be added by hand (by editing and recompiling the .dts file) or by using u-boot's "fdt" command to add them |
These nodes can either be added by hand (by editing and recompiling the .dts file) or by using u-boot's "fdt" command to add them dynamically at boot time: |
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fdt addr ${fdt_addr} |
fdt addr ${fdt_addr} |
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There are two major components which need to be built for a Xen system. The Xen hypervisor binary itself and the Xen toolstack. |
There are two major components which need to be built for a Xen system. The Xen hypervisor binary itself and the Xen toolstack. |
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=== Cross Compiling === |
=== Cross Compiling Xen === |
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Cross compiling the Xen hypervisor is |
Cross compiling the Xen hypervisor is simple. |
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Linaro supply cross compilers for both arm32 (arm-linux-gnueabihf-) and arm64 (aarch64-linux-gnu-) via [https://launchpad.net/linaro-toolchain-binaries linaro-toolchain-binaries]. Alternatively, for 32-bit at least, you can download the arm-unknown-linux-gnueabi compiler from [http://www.kernel.org/pub/tools/crosstool/files/bin/x86_64/ kernel.org]. |
Linaro supply cross compilers for both arm32 (arm-linux-gnueabihf-) and arm64 (aarch64-linux-gnu-) via [https://launchpad.net/linaro-toolchain-binaries linaro-toolchain-binaries]. Alternatively, for 32-bit at least, you can download the arm-unknown-linux-gnueabi compiler from [http://www.kernel.org/pub/tools/crosstool/files/bin/x86_64/ kernel.org]. |
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This assumes that the command prefix for you cross compiler is <tt>arm-unknown-linux-gnueabihf-</tt> or <tt>aarch64-linux-gnu-</tt> and that the appropriate <tt>arm-unknown-linux-gnueabihf-gcc</tt> or <tt>aarch64-linux-gnu-gcc</tt> and friends are in your $PATH. |
This assumes that the command prefix for you cross compiler is <tt>arm-unknown-linux-gnueabihf-</tt> or <tt>aarch64-linux-gnu-</tt> and that the appropriate <tt>arm-unknown-linux-gnueabihf-gcc</tt> or <tt>aarch64-linux-gnu-gcc</tt> and friends are in your $PATH. |
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Cross compilation of the Xen toolstack is described in [[Xen ARM with Virtualization Extensions/CrossCompiling]]. |
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=== |
=== Building the Toolstack === |
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For a complete cross-compilation of the hypervisor and the toolstack, it is recommended to use Yocto, see [[Xen_on_ARM_and_Yocto]]. |
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In order to build the tools a native build environment is required. For 32-bit the developers mainly use the ''armhf'' port of Debian, which is present in Wheezy running on an IMX53 based development board, although any ARMv7 development board would do. Note that the build hardware does not need to support the virtualisation extensions, since you don't have to run Xen on the same system as where you build it. |
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It may also be possible to build using a cross-architecture chroot running on an X86 system as described in [http://www.hellion.org.uk/blog/posts/foreign-chroots-with-schroot-and-qemu/ this blog post], although this hasn't been tried yet. |
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Alternatively, it is possible to use qemu user to run an ARM64 chroot on a x86 host, i.e. an ARM64 Debian or Ubuntu container on a regular x86 laptop. |
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== Platform specific configuration == |
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$ apt-get install qemu-user-static |
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* [[Xen ARM with Virtualization Extensions/Allwinner]] |
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* [[Xen ARM with Virtualization Extensions/Arndale]] |
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It installs <tt>/usr/bin/qemu-aarch64-static</tt>. |
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* [[Xen ARM with Virtualization Extensions/Chromebook]] |
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* [[Xen ARM with Virtualization Extensions/FastModels]] |
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Next setup an ARM64 chroot environment on your x86 machine. Follow your distro recommandations. For instance, the following distros offer pre-packaged tarballs ready to be unpackged: |
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* [[Xen ARM with Virtualization Extensions/Midway]] |
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* [[Xen ARM with Virtualization Extensions/Vexpress]] |
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* Ubuntu: http://cdimage.ubuntu.com/ubuntu-base/releases/20.04/release/ubuntu-base-20.04-base-arm64.tar.gz |
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* [[Xen ARM with Virtualization Extensions/APMXGeneMustang]] |
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* Alpine Linux: http://dl-cdn.alpinelinux.org/alpine/v3.11/releases/aarch64/alpine-minirootfs-3.11.6-aarch64.tar.gz |
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* [[Xen ARM with Virtualization Extensions/OMAP5432_uEVM]] |
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* [[Xen ARM with Virtualization Extensions/OdroidXU]] |
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Assuming that the ARM64 chroot is under <tt>/chroot/distro_arm64</tt>, then you can: |
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$ cp /usr/bin/qemu-aarch64-static /chroot/distro_arm64/usr/bin/qemu-aarch64-static |
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$ chroot /chroot/distro_arm64 |
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Now you have a full ARM64 environment running on a regular x86 machine. You can automate all the last steps with the following Docker command (the example is running Debian): |
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$ docker run -it -v /usr/bin/qemu-aarch64-static:/usr/bin/qemu-aarch64-static arm64v8/debian /bin/bash |
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Inside your ARM64 environment you can follow the regular native compilation steps: |
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$ cd xen.git |
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# install build dependencies with apt-get/apk/yum etc. |
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$ ./configure |
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$ make -j4 |
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=== Native Building === |
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In order to build the tools a native build environment is required. For 32-bit the developers mainly use the ''armhf'' port of Debian, which is present in Wheezy running on an IMX53 based development board, although any ARMv7 development board would do. Note that the build hardware does not need to support the virtualisation extensions, since you don't have to run Xen on the same system as where you build it. |
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== Use of qemu-system-i386 on ARM == |
== Use of qemu-system-i386 on ARM == |
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Work on untangling things is ongoing but in the meantime qemu-system-i386 is what you want on ARM too. There is no CPU emulation in this mode so there is no danger of it trying to execute anything etc. |
Work on untangling things is ongoing but in the meantime qemu-system-i386 is what you want on ARM too. There is no CPU emulation in this mode so there is no danger of it trying to execute anything etc. |
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== Debugging == |
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A small set of [[Xen_ARM_DEBUG_hypercalls|DEBUG hypercalls]] are available to help debugging early boot domU issues. |
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== Open issues, known problems and workarounds == |
== Open issues, known problems and workarounds == |
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See [[Xen_ARM_TODO|this page]] for a full list of bugs and projects. |
See [[Xen_ARM_TODO|this page]] for a full list of bugs and projects. |
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== Also See == |
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* [[Automotive_Whitepapers]] |
* [[Automotive_Whitepapers]] |
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[[Category:XenARM]] |
[[Category:XenARM]] |
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[[Category:Developers]] |
[[Category:Developers]] |
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[[Category:OpenEmbedded]] |
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[[Category:Xen 4.3]] |
[[Category:Xen 4.3]] |
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[[Category:Xen 4.4]] |
[[Category:Xen 4.4]] |
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[[Category:Xen 4.5]] |
[[Category:Xen 4.5]] |
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[[Category:Xen 4.6]] |
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[[Category:Xen 4.7]] |
Latest revision as of 17:27, 30 July 2021
The ARM v7-A and ARM v8-A architectures include optional virtualization extensions that allow a hypervisor to manage fully hardware virtualized guests. These extensions are currently available in some ARM v7 processors such as the Cortex A15 and Cortex A7.
Introduction
If you are interested in the Xen on ARM architecture and how it compares to Xen on x86, read the Xen on ARM whitepaper.
Status
Both the 32-bit (arm32) and the 64-bit (arm64) ports of Xen boot dom0 and unprivileged guests can be created and destroyed using xl. See below for information on the hardware and models. You may also want to read our whitepaper that explains the basic architecture and terminology of Xen on ARM.
Guest ABI
The guest (including dom0) visible ABI exposed by the hypervisor has been declared stable as of the 4.4 release and will now be maintained in a backwards compatible manner.
Contributing
Please email xen-devel with comments, questions and patches. Please see the list info page for subscription information and the archives. For patches please see Submitting Xen Patches.
Testing
There are a lot of different ARM boards and servers with many different IP blocks available. The project's CI loop can only test a small subset of these, as we cannot afford to buy and test against all possible boards. As such, we will be relying on manual testing during Xen Project Test Days to verify which ARM hardware works and which doesn't. The good news, is that from experience the vast majority of board specific issues will occur during boot and thus a a simple Xen ARM Manual Smoke Test is usually sufficient to identify such issues.
The Xen ARM Manual Smoke Test/Results contains a list of people who have specific boards and also lists when these boards have been last tested. Feel free to add any test results to the table. By doing so you will help others and yourself.
Hardware
Early work was also done to support the Google Chromebook, however this is no longer continued since it is not a good development platform.
Requirements
- ARM Hardware or Software Model
- See above for details of the hardware and models which are supported.
- Firmware
- Xen requires certain functionality from the system firmware. See below for details.
- Device Tree
- A device tree in the flat device tree format (.dtb). The host platform must be described in a DTB binary passed to Xen at boot time. This will be used by Xen and Dom0. Normally the regular device tree used when booting natively on the platform should be used.
- Xen
- All current work is now merged into the current development branch git://xenbits.xen.org/xen.git. It is recommended to use the latest Xen master branch.
- Linux kernel for dom0
- The patches necessary to boot Linux as dom0 under Xen were merged upstream in v3.7. In order to actually start guests a few additional patches were required however these patches have now been included in the v3.8 Linux release. The latest Linus' tree has everything needed to run on Xen on ARM as dom0 and domU. It is recommended to use the latest Linux release where possible.
- dom0 userspace
- The developers are using the armhf port of Debian Wheezy.
- domU kernel
- The patches necessary to boot Linux as a guest under Xen were merged upstream in v3.7.
Hypervisor ABI Compatibility
The ABI for Xen on ARM was declared stable from Xen 4.4 onwards.
This ABI is implemented by Linux mainline v3.9-rc1 onwards.
Although not a hypervisor ABI change Linux versions prior to v3.13-rc5 (specifically 380108d891ac "xen/block: Correctly define structures in public headers on ARM32 and ARM64") incorrectly defined the PV block protocol on ARM. This means that versions of Linux prior to this fix are only able to interoperate (as either front or backend) with other versions of Linux prior to this commit. After this fix Linux correctly uses the same protocol as other ports (e.g. BSD).
Firmware Requirements
The primary requirement is that the hypervisor must be launched in Non-Secure Hypervisor mode only. If the stock firmware on a platform does not obey this (most commonly by launching in Secure Supervisor mode) then a firmware update may be required. This support is present in u-boot 2014.01.
Booting secondary processors on an SMP system requires firmware support for the Power State Coordination Interfaces (PSCI). Initial u-boot support for this interface is available in https://git.kernel.org/cgit/linux/kernel/git/maz/u-boot.git/log/?h=wip/psci .
When running Xen under a FastModel (which typically have no firmware at all) it is sometimes necessary to use a boot-wrapper. See the Fast Model page for more information.
Xen previously included a workaround for firmware which lacked this functionality, however it was unmaintainable and interfered with proper support for other platforms and therefore as of September 2013 it has been removed.
Booting Natively
Before starting to load Xen it is highly recommended to get the kernel you intend to use as dom0 booting natively (i.e. without Xen underneath). This will let you iron out any driver issues and figure out the necessary kernel command line etc before adding Xen into the mix.
Booting Xen
ImageBuilder
Many of the details necessary to boot Xen from U-Boot can be generated automatically by ImageBuilder's uboot-script-gen, see ImageBuilder.
Boot Protocol
Xen's boot requirements are spelled out in docs/misc/arm/booting.txt in the Xen tree, which references the Linux arm and arm64 booting documentation.
Device Trees
Xen needs the device trees to be in the flat device tree format (the device tree blob or DTB).
It is no longer necessary to build a specific DTB for use with Xen. The Device Tree files shipped with Linux or from the Split Device Tree Repository can be used.
Boot Modules
At boot time Xen must be provided with a dom0 kernel blob and an optional dom0 initramfs blob. The bootloader must load these into memory and describe their location in the Device Tree Blob using the bindings specified in docs/misc/arm/device-tree/booting.txt.
These nodes can either be added by hand (by editing and recompiling the .dts file) or by using u-boot's "fdt" command to add them dynamically at boot time:
fdt addr ${fdt_addr} fdt resize fdt set /chosen \#address-cells <1> fdt set /chosen \#size-cells <1> fdt mknod /chosen module@0 fdt set /chosen/module@0 compatible "xen,linux-zimage" "xen,multiboot-module" fdt set /chosen/module@0 reg <${kernel_addr_r} 0x${filesize} > fdt set /chosen/module@0 bootargs "<DOMAIN 0 COMMAND LINE>"
(this assumes the device tree blob is loaded at ${fdt_addr} and the kernel at ${kernel_addr_r}).
See e.g. Xen_ARM_with_Virtualization_Extensions/Allwinner for a more concrete example of this.
Command Lines
docs/misc/arm/device-tree/booting.txt describes where Xen looks for both its own command line and the command line to pass to domain 0.
Getting Xen output
To get output log on the UART, Xen needs to know which UART to use. This should be passed in the hypervisor command line using the "dtuart" parameter. e.g.:
console=dtuart dtuart=myserial
where myserial is either an alias to the UART in the device tree (aliases are found in the aliases device tree node) or a full DTB path to the device. As Xen already uses it the UART will be disabled from the point of view of domain 0.
For instance, this is a dummy device tree (won't work) to use the uart0 in Xen:
/ { choosen { bootargs = "console=dtuart dtuart=myserial"; } aliases { myserial = &myserial_0; } myserial_0: uart0 { ... configuration of your UART ... } }
Here dtuart is configured using the myserial alias. Alternatively /uart0 (the full path to the device) could have been used.
Note: If you don't see output from Xen, you can enable early printk. This option will turn on platform specific UART and output information before the console is initialized.
Dom0 kernel
In general the same kernel configuration as used to boot natively, plus turning on the Xen specific options should work. A good starting point is often the "multi_v7_defconfig" + Xen options.
If ARM_APPENDED_DTB is enabled then any appended DTB will be used instead of one supplied by Xen and the kernel will crash unless the memory in the DTB matches that location/size supplied by Xen. It is strongly recommended not to append a DTB to your dom0 kernel (or to disable APPENDED_DTB).
DomU kernel and DTS
Unprivileged guests can be created using xl. A simple VM config file would look like this:
kernel = "/root/image" memory = 128 name = "guest" vcpus = 1 disk = [ 'phy:/dev/loop0,xvda,w' ] extra = "earlyprintk=xenboot console=hvc0 root=/dev/xvda debug rw init=/bin/sh"
where "/root/image" is a Linux zImage.
Common DomU Pitfalls
- Enabling CONFIG_DEBUG_LL in the guest kernel configuration.
- Although this option can work for dom0 if configured appropriately for the host it does not work for domU (which cannot see the host UART). The symptoms of this are that the guest console will be silent because the kernel has taken a fault accessing the early UART. This can be confirmed by using the xenctx tool (found in $PREFIX/lib/xen/bin/). The tool takes a numeric domid (not a name, use xl list or xl domid $name) and dumps the VCPU state. A PC of 0x0000000c will usually indicate that an early trap has occurred.
Building Xen on ARM
At least gcc version 4.7.3 is known to miscompile certain parts of Xen, most often leading to a segmentation fault in the xl toolstack while starting a guest. We recommend using 4.8.x or later |
There are two major components which need to be built for a Xen system. The Xen hypervisor binary itself and the Xen toolstack.
Cross Compiling Xen
Cross compiling the Xen hypervisor is simple.
Linaro supply cross compilers for both arm32 (arm-linux-gnueabihf-) and arm64 (aarch64-linux-gnu-) via linaro-toolchain-binaries. Alternatively, for 32-bit at least, you can download the arm-unknown-linux-gnueabi compiler from kernel.org.
Once you have a suitable cross compiler you can compile Xen with:
$ make dist-xen XEN_TARGET_ARCH=arm32 CROSS_COMPILE=arm-unknown-linux-gnueabihf-
or:
$ make dist-xen XEN_TARGET_ARCH=arm64 CROSS_COMPILE=aarch64-linux-gnu-
This assumes that the command prefix for you cross compiler is arm-unknown-linux-gnueabihf- or aarch64-linux-gnu- and that the appropriate arm-unknown-linux-gnueabihf-gcc or aarch64-linux-gnu-gcc and friends are in your $PATH.
Building the Toolstack
For a complete cross-compilation of the hypervisor and the toolstack, it is recommended to use Yocto, see Xen_on_ARM_and_Yocto.
Alternatively, it is possible to use qemu user to run an ARM64 chroot on a x86 host, i.e. an ARM64 Debian or Ubuntu container on a regular x86 laptop.
$ apt-get install qemu-user-static
It installs /usr/bin/qemu-aarch64-static.
Next setup an ARM64 chroot environment on your x86 machine. Follow your distro recommandations. For instance, the following distros offer pre-packaged tarballs ready to be unpackged:
- Ubuntu: http://cdimage.ubuntu.com/ubuntu-base/releases/20.04/release/ubuntu-base-20.04-base-arm64.tar.gz
- Alpine Linux: http://dl-cdn.alpinelinux.org/alpine/v3.11/releases/aarch64/alpine-minirootfs-3.11.6-aarch64.tar.gz
Assuming that the ARM64 chroot is under /chroot/distro_arm64, then you can:
$ cp /usr/bin/qemu-aarch64-static /chroot/distro_arm64/usr/bin/qemu-aarch64-static $ chroot /chroot/distro_arm64
Now you have a full ARM64 environment running on a regular x86 machine. You can automate all the last steps with the following Docker command (the example is running Debian):
$ docker run -it -v /usr/bin/qemu-aarch64-static:/usr/bin/qemu-aarch64-static arm64v8/debian /bin/bash
Inside your ARM64 environment you can follow the regular native compilation steps:
$ cd xen.git # install build dependencies with apt-get/apk/yum etc. $ ./configure $ make -j4
Native Building
In order to build the tools a native build environment is required. For 32-bit the developers mainly use the armhf port of Debian, which is present in Wheezy running on an IMX53 based development board, although any ARMv7 development board would do. Note that the build hardware does not need to support the virtualisation extensions, since you don't have to run Xen on the same system as where you build it.
Use of qemu-system-i386 on ARM
This surprises many people.
Xen on ARM uses qemu only to provide certain PV backends (primarily qdisk and pvfb). However the Xen PV backend code on the qemu side is a bit entangled with the x86 stuff, due to the historical use with x86 HVM guests.
Work on untangling things is ongoing but in the meantime qemu-system-i386 is what you want on ARM too. There is no CPU emulation in this mode so there is no danger of it trying to execute anything etc.
Debugging
A small set of DEBUG hypercalls are available to help debugging early boot domU issues.
Open issues, known problems and workarounds
error: "PSR_MODE_EL3h" redefined
When build the tools for arm64 you may see:
In file included from /root/xenbits/xen/tools/xenstore/../../tools/include/xen/xen.h:35:0, from /root/xenbits/xen/tools/xenstore/../../tools/libxc/include/xenctrl.h:37, from xenstored_core.h:23, from xenstored_core.c:49: /root/xenbits/xen/tools/xenstore/../../tools/include/xen/arch-arm.h:345:0: error: "PSR_MODE_EL3h" redefined [-Werror] In file included from /usr/include/sys/user.h:25:0, from /usr/include/sys/procfs.h:34, from /usr/include/sys/ucontext.h:26, from /usr/include/signal.h:360, from xenstored_core.c:40: /usr/include/asm/ptrace.h:36:0: note: this is the location of the previous definition
and/or other similar PSR_MODE_*
errors.
This is a glibc bug, see Linaro launchpad bug #1169164.
This has been fixed in newer glibc, so first check if your distro has a fixed version available.
If not then you can either apply the patch from the bug directly to the headers under /usr/include
(not really recommended, since future upgrades may overwrite them) or edit xen/include/public/arch-arm.h
and insert the following before #define PSR_MODE_BIT 0x10
:
#undef PSR_MODE_BIT #undef PSR_MODE_EL3h #undef PSR_MODE_EL3t #undef PSR_MODE_EL2h #undef PSR_MODE_EL2t #undef PSR_MODE_EL1h #undef PSR_MODE_EL1t #undef PSR_MODE_EL0t
TODO
See this page for a full list of bugs and projects.