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27e9d1fcf0
Fixes #3382
142 lines
6.1 KiB
Plaintext
142 lines
6.1 KiB
Plaintext
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===================
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The Genode run tool
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===================
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Introduction
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############
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The run tool is used to configure, build, and execute so-called run scripts.
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These run scripts include a scenario or test-case of Genode components and
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subsystems. Its core functionality is split into various modules to accommodate
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a variety of different execution environments. These modules provide the
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implementation of a given step in the sequence of execution of a run script.
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These steps are:
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* Building the corresponding components
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* Wrapping the components in a format suitable for execution
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* Preparing the target systems
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* Executing the scenario
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* Collecting any output
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After the run script was executed successfully, the run tool will print the
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string 'Run script execution successful.". This message can be used to check
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for the successful completion of the run script when doing automated testing.
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The categories of modules are formed by existing requirements such as automated
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testing on a variety of different hardware platforms and are based
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on the above-named steps:
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:boot_dir:
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These modules contain the functionality to populate the boot directory
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and are specific to each kernel. It is mandatory to always include the
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module corresponding to the used kernel.
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:image modules:
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These modules are used to wrap up all components used by the run script
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in a specific format and thereby to prepare them for execution.
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Depending on the used kernel, there are different formats. With these
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modules, the creation of ISO and disk images is also handled.
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:load modules:
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These modules handle the way the components are transfered to the
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target system. Depending on the used kernel there are various options
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to pass on the components. Loading from TFTP or via JTAG is handled
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by the modules of this category.
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:log modules:
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These modules handle how the output of a currently executed run script
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is captured.
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:power_on modules:
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These modules are used for bringing the target system into an defined
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state, e.g., by starting or rebooting the system.
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:power_off modules:
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These modules are used for turning the target system off after the
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execution of a run script.
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When executing a run script, only one module of each category must be used.
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Usage
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#####
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To execute a run script a combination of modules may be used. The combination
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is controlled via the RUN_OPT variable used by the build framework. Here are a
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few common exemplary combinations:
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Executing NOVA in Qemu:
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!RUN_OPT = --include boot_dir/nova \
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! --include power_on/qemu --include log/qemu --include image/iso
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Executing NOVA on a real x86 machine using AMT for resetting the target system
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and for capturing the serial output while loading the files via TFTP:
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!RUN_OPT = --include boot_dir/nova \
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! --include power_on/amt --power-on-amt-host 10.23.42.13 \
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! --power-on-amt-password 'foo!' \
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! --include load/tftp --load-tftp-base-dir /var/lib/tftpboot \
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! --load-tftp-offset-dir /x86 \
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! --include log/amt --log-amt-host 10.23.42.13 \
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! --log-amt-password 'foo!'
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Executing fiasco.OC on a real x86 machine using AMT for resetting, USB serial
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for output while loading the files via TFTP:
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!RUN_OPT = --include boot_dir/foc \
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! --include power_on/amt --amt-host 10.23.42.13 --amt-password 'foo!' \
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! --include load/tftp --load-tftp-base-dir /var/lib/tftpboot \
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! --load-tftp-offset-dir /x86 \
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! --include log/serial --log-serial-cmd 'picocom -b 115200 /dev/ttyUSB0'
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Executing hw on a rpi using NETIO powerplug to reset the hardware, JTAG to load
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the image and USB serial to capture the output:
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!RUN_OPT = --include boot_dir/hw \
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! --include power_on/netio --power-on-netio-host 10.23.42.5 \
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! --power-on-netio-user admin \
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! --power-on-netio-password secret \
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! --power-on-netio-port 1
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! --include power_off/netio --power-off-netio-host 10.23.42.5 \
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! --power-off-netio-user admin \
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! --power-off-netio-password secret \
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! --power-off-netio-port 1
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! --include load/jtag \
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! --load-jtag-debugger /usr/share/openocd/scripts/interface/flyswatter2.cfg \
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! --load-jtag-board /usr/share/openocd/scripts/interface/raspberrypi.cfg \
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! --include log/serial --log-serial-cmd 'picocom -b 115200 /dev/ttyUSB0'
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Module overview
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###############
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A module consist of a expect/TCL source file located in one of the existing
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directories of a category. It is named implicitly by its location and the
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name of the source file, e.g. 'image/iso' is the name of the image module
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that creates an ISO image.
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The source file contains one mandatory procedure:
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* run_<module> { <module-args> }
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The procedure is called if the step at hand is executed by the
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run tool. If its execution was successful, it returns true and
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otherwise false. Certain modules may also call exit on failure.
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A module may have arguments, which are by convention prefixed with the name
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of the source file, e.g. 'power_on/amt' may have an argument called
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'--power-on-amt-host'. If the argument passes on a value the value must be
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made accessible by calling an equally named procedure, e.g.
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'--power-on-amt-host' becomes 'proc amt_host { }'.
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Thereby a run script or a run environment can access the value of the argument
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in a defined way without the use of a global variable by using
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'[power_on_amt_host]'. Also arguments without a value may be queried in this
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way. '--image-uboot-gzip' becomes '[image_uboot_use_gzip]'.
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In addition to these procedures, a module may have any number of public
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procedures. They may be used after the presence of the particular module that
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contains them is verified. For this reason the run tool provides a procedure
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called 'have_include', that performs this check. For example the presence of
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the 'load/tftp' module is checked by calling '[have_include "load/tftp"]'.
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