mirror of
https://github.com/espressif/esp-idf.git
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9c1d4f5b54
The "make" build system was deprecated in v4.0 in favor of idf.py (cmake). The remaining support is removed in v5.0.
441 lines
18 KiB
Plaintext
441 lines
18 KiB
Plaintext
#
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# For a description of the syntax of this configuration file,
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# see kconfig/kconfig-language.txt.
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#
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mainmenu "Espressif IoT Development Framework Configuration"
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config IDF_CMAKE
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bool
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default "y"
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config IDF_ENV_FPGA
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# This option is for internal use only
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bool
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option env="IDF_ENV_FPGA"
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config IDF_TARGET_ARCH_RISCV
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bool
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default "n"
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config IDF_TARGET_ARCH_XTENSA
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bool
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default "n"
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config IDF_TARGET
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# This option records the IDF target when sdkconfig is generated the first time.
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# It is not updated if environment variable $IDF_TARGET changes later, and
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# the build system is responsible for detecting the mismatch between
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# CONFIG_IDF_TARGET and $IDF_TARGET.
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string
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default "$IDF_TARGET"
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config IDF_TARGET_ESP32
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bool
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default "y" if IDF_TARGET="esp32"
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select IDF_TARGET_ARCH_XTENSA
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config IDF_TARGET_ESP32S2
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bool
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default "y" if IDF_TARGET="esp32s2"
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select FREERTOS_UNICORE
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select IDF_TARGET_ARCH_XTENSA
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config IDF_TARGET_ESP32S3
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bool
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default "y" if IDF_TARGET="esp32s3"
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select IDF_TARGET_ARCH_XTENSA
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config IDF_TARGET_ESP32C3
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bool
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default "y" if IDF_TARGET="esp32c3"
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select FREERTOS_UNICORE
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select IDF_TARGET_ARCH_RISCV
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config IDF_TARGET_ESP32H2
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bool
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default "y" if IDF_TARGET="esp32h2"
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select FREERTOS_UNICORE
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select IDF_TARGET_ARCH_RISCV
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config IDF_TARGET_ESP8684
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bool
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default "y" if IDF_TARGET="esp8684"
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select FREERTOS_UNICORE
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select IDF_TARGET_ARCH_RISCV
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select ESPTOOLPY_NO_STUB # remove if ESPTOOL-303
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select IDF_ENV_FPGA
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config IDF_TARGET_LINUX
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bool
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default "y" if IDF_TARGET="linux"
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config IDF_FIRMWARE_CHIP_ID
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hex
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default 0x0000 if IDF_TARGET_ESP32
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default 0x0002 if IDF_TARGET_ESP32S2
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default 0x0005 if IDF_TARGET_ESP32C3
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default 0x0009 if IDF_TARGET_ESP32S3
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default 0x000A if IDF_TARGET_ESP32H2 # ESP32H2-TODO: IDF-3475
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default 0x000C if IDF_TARGET_ESP8684
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default 0xFFFF
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menu "SDK tool configuration"
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config SDK_TOOLPREFIX
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string "Compiler toolchain path/prefix"
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default "xtensa-esp32-elf-" if IDF_TARGET_ESP32
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default "xtensa-esp32s2-elf-" if IDF_TARGET_ESP32S2
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default "xtensa-esp32s3-elf-" if IDF_TARGET_ESP32S3
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default "riscv32-esp-elf-" if IDF_TARGET_ESP32C3
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default "riscv32-esp-elf-" if IDF_TARGET_ESP32H2
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default "riscv32-esp-elf-" if IDF_TARGET_ESP8684
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help
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The prefix/path that is used to call the toolchain. The default setting assumes
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a crosstool-ng gcc setup that is in your PATH.
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config SDK_TOOLCHAIN_SUPPORTS_TIME_WIDE_64_BITS
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bool "Toolchain supports time_t wide 64-bits"
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default n
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help
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Enable this option in case you have a custom toolchain which supports time_t wide 64-bits.
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This option checks time_t is 64-bits and disables ROM time functions
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to use the time functions from the toolchain instead.
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This option allows resolving the Y2K38 problem.
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See "Setup Linux Toolchain from Scratch" to build
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a custom toolchain which supports 64-bits time_t.
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Note: ESP-IDF does not currently come with any pre-compiled toolchain
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that supports 64-bit wide time_t.
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This will change in a future major release,
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but currently 64-bit time_t requires a custom built toolchain.
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endmenu # SDK tool configuration
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menu "Build type"
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choice APP_BUILD_TYPE
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prompt "Application build type"
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default APP_BUILD_TYPE_APP_2NDBOOT
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help
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Select the way the application is built.
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By default, the application is built as a binary file in a format compatible with
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the ESP-IDF bootloader. In addition to this application, 2nd stage bootloader is
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also built. Application and bootloader binaries can be written into flash and
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loaded/executed from there.
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Another option, useful for only very small and limited applications, is to only link
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the .elf file of the application, such that it can be loaded directly into RAM over
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JTAG. Note that since IRAM and DRAM sizes are very limited, it is not possible to
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build any complex application this way. However for kinds of testing and debugging,
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this option may provide faster iterations, since the application does not need to be
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written into flash.
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Note that at the moment, ESP-IDF does not contain all the startup code required to
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initialize the CPUs and ROM memory (data/bss). Therefore it is necessary to execute
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a bit of ROM code prior to executing the application. A gdbinit file may look as follows (for ESP32):
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# Connect to a running instance of OpenOCD
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target remote :3333
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# Reset and halt the target
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mon reset halt
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# Run to a specific point in ROM code,
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# where most of initialization is complete.
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thb *0x40007d54
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c
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# Load the application into RAM
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load
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# Run till app_main
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tb app_main
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c
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Execute this gdbinit file as follows:
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xtensa-esp32-elf-gdb build/app-name.elf -x gdbinit
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Example gdbinit files for other targets can be found in tools/test_apps/system/gdb_loadable_elf/
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Recommended sdkconfig.defaults for building loadable ELF files is as follows.
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CONFIG_APP_BUILD_TYPE_ELF_RAM is required, other options help reduce application
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memory footprint.
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CONFIG_APP_BUILD_TYPE_ELF_RAM=y
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CONFIG_VFS_SUPPORT_TERMIOS=
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CONFIG_NEWLIB_NANO_FORMAT=y
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CONFIG_ESP_SYSTEM_PANIC_PRINT_HALT=y
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CONFIG_ESP_DEBUG_STUBS_ENABLE=
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CONFIG_ESP_ERR_TO_NAME_LOOKUP=
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config APP_BUILD_TYPE_APP_2NDBOOT
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bool
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prompt "Default (binary application + 2nd stage bootloader)"
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select APP_BUILD_GENERATE_BINARIES
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select APP_BUILD_BOOTLOADER
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select APP_BUILD_USE_FLASH_SECTIONS
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config APP_BUILD_TYPE_ELF_RAM
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bool
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prompt "ELF file, loadable into RAM (EXPERIMENTAL))"
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endchoice # APP_BUILD_TYPE
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# Hidden options, set according to the choice above
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config APP_BUILD_GENERATE_BINARIES
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bool # Whether to generate .bin files or not
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config APP_BUILD_BOOTLOADER
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bool # Whether to build the bootloader
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config APP_BUILD_USE_FLASH_SECTIONS
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bool # Whether to place code/data into memory-mapped flash sections
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config APP_REPRODUCIBLE_BUILD
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bool "Enable reproducible build"
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default n
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select COMPILER_HIDE_PATHS_MACROS
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help
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If enabled, all date, time, and path information would be eliminated. A .gdbinit file would be create
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automatically. (or will be append if you have one already)
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endmenu # Build type
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source "$COMPONENT_KCONFIGS_PROJBUILD_SOURCE_FILE"
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menu "Compiler options"
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choice COMPILER_OPTIMIZATION
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prompt "Optimization Level"
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default COMPILER_OPTIMIZATION_DEFAULT
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help
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This option sets compiler optimization level (gcc -O argument) for the app.
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- The "Default" setting will add the -0g flag to CFLAGS.
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- The "Size" setting will add the -0s flag to CFLAGS.
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- The "Performance" setting will add the -O2 flag to CFLAGS.
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- The "None" setting will add the -O0 flag to CFLAGS.
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The "Size" setting cause the compiled code to be smaller and faster, but
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may lead to difficulties of correlating code addresses to source file
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lines when debugging.
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The "Performance" setting causes the compiled code to be larger and faster,
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but will be easier to correlated code addresses to source file lines.
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"None" with -O0 produces compiled code without optimization.
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Note that custom optimization levels may be unsupported.
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Compiler optimization for the IDF bootloader is set separately,
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see the BOOTLOADER_COMPILER_OPTIMIZATION setting.
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config COMPILER_OPTIMIZATION_DEFAULT
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bool "Debug (-Og)"
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config COMPILER_OPTIMIZATION_SIZE
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bool "Optimize for size (-Os)"
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config COMPILER_OPTIMIZATION_PERF
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bool "Optimize for performance (-O2)"
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config COMPILER_OPTIMIZATION_NONE
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bool "Debug without optimization (-O0)"
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endchoice
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choice COMPILER_OPTIMIZATION_ASSERTION_LEVEL
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prompt "Assertion level"
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default COMPILER_OPTIMIZATION_ASSERTIONS_ENABLE
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help
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Assertions can be:
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- Enabled. Failure will print verbose assertion details. This is the default.
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- Set to "silent" to save code size (failed assertions will abort() but user
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needs to use the aborting address to find the line number with the failed assertion.)
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- Disabled entirely (not recommended for most configurations.) -DNDEBUG is added
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to CPPFLAGS in this case.
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config COMPILER_OPTIMIZATION_ASSERTIONS_ENABLE
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prompt "Enabled"
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bool
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help
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Enable assertions. Assertion content and line number will be printed on failure.
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config COMPILER_OPTIMIZATION_ASSERTIONS_SILENT
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prompt "Silent (saves code size)"
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bool
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help
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Enable silent assertions. Failed assertions will abort(), user needs to
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use the aborting address to find the line number with the failed assertion.
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config COMPILER_OPTIMIZATION_ASSERTIONS_DISABLE
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prompt "Disabled (sets -DNDEBUG)"
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bool
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help
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If assertions are disabled, -DNDEBUG is added to CPPFLAGS.
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endchoice # assertions
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config COMPILER_OPTIMIZATION_ASSERTION_LEVEL
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int
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default 0 if COMPILER_OPTIMIZATION_ASSERTIONS_DISABLE
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default 1 if COMPILER_OPTIMIZATION_ASSERTIONS_SILENT
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default 2 if COMPILER_OPTIMIZATION_ASSERTIONS_ENABLE
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config COMPILER_OPTIMIZATION_CHECKS_SILENT
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bool "Disable messages in ESP_RETURN_ON_* and ESP_EXIT_ON_* macros"
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default n
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help
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If enabled, the error messages will be discarded in following check macros:
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- ESP_RETURN_ON_ERROR
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- ESP_EXIT_ON_ERROR
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- ESP_RETURN_ON_FALSE
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- ESP_EXIT_ON_FALSE
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menuconfig COMPILER_HIDE_PATHS_MACROS
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bool "Replace ESP-IDF and project paths in binaries"
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default y
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help
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When expanding the __FILE__ and __BASE_FILE__ macros, replace paths inside ESP-IDF
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with paths relative to the placeholder string "IDF", and convert paths inside the
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project directory to relative paths.
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This allows building the project with assertions or other code that embeds file paths,
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without the binary containing the exact path to the IDF or project directories.
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This option passes -fmacro-prefix-map options to the GCC command line. To replace additional
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paths in your binaries, modify the project CMakeLists.txt file to pass custom -fmacro-prefix-map or
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-ffile-prefix-map arguments.
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menuconfig COMPILER_CXX_EXCEPTIONS
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bool "Enable C++ exceptions"
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default n
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help
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Enabling this option compiles all IDF C++ files with exception support enabled.
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Disabling this option disables C++ exception support in all compiled files, and any libstdc++ code
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which throws an exception will abort instead.
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Enabling this option currently adds an additional ~500 bytes of heap overhead
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when an exception is thrown in user code for the first time.
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config COMPILER_CXX_EXCEPTIONS_EMG_POOL_SIZE
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int "Emergency Pool Size"
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default 0
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depends on COMPILER_CXX_EXCEPTIONS
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help
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Size (in bytes) of the emergency memory pool for C++ exceptions. This pool will be used to allocate
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memory for thrown exceptions when there is not enough memory on the heap.
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config COMPILER_CXX_RTTI
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bool "Enable C++ run-time type info (RTTI)"
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default n
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help
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Enabling this option compiles all C++ files with RTTI support enabled.
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This increases binary size (typically by tens of kB) but allows using
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dynamic_cast conversion and typeid operator.
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choice COMPILER_STACK_CHECK_MODE
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prompt "Stack smashing protection mode"
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default COMPILER_STACK_CHECK_MODE_NONE
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help
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Stack smashing protection mode. Emit extra code to check for buffer overflows, such as stack
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smashing attacks. This is done by adding a guard variable to functions with vulnerable objects.
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The guards are initialized when a function is entered and then checked when the function exits.
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If a guard check fails, program is halted. Protection has the following modes:
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- In NORMAL mode (GCC flag: -fstack-protector) only functions that call alloca, and functions with
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buffers larger than 8 bytes are protected.
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- STRONG mode (GCC flag: -fstack-protector-strong) is like NORMAL, but includes additional functions
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to be protected -- those that have local array definitions, or have references to local frame
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addresses.
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- In OVERALL mode (GCC flag: -fstack-protector-all) all functions are protected.
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Modes have the following impact on code performance and coverage:
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- performance: NORMAL > STRONG > OVERALL
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- coverage: NORMAL < STRONG < OVERALL
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The performance impact includes increasing the amount of stack memory required for each task.
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config COMPILER_STACK_CHECK_MODE_NONE
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bool "None"
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config COMPILER_STACK_CHECK_MODE_NORM
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bool "Normal"
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config COMPILER_STACK_CHECK_MODE_STRONG
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bool "Strong"
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config COMPILER_STACK_CHECK_MODE_ALL
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bool "Overall"
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endchoice
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config COMPILER_STACK_CHECK
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bool
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default !COMPILER_STACK_CHECK_MODE_NONE
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help
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Stack smashing protection.
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config COMPILER_WARN_WRITE_STRINGS
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bool "Enable -Wwrite-strings warning flag"
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default "n"
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help
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Adds -Wwrite-strings flag for the C/C++ compilers.
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For C, this gives string constants the type ``const char[]`` so that
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copying the address of one into a non-const ``char *`` pointer
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produces a warning. This warning helps to find at compile time code
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that tries to write into a string constant.
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For C++, this warns about the deprecated conversion from string
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literals to ``char *``.
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config COMPILER_SAVE_RESTORE_LIBCALLS
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bool "Enable -msave-restore flag to reduce code size"
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depends on IDF_TARGET_ARCH_RISCV
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help
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Adds -msave-restore to C/C++ compilation flags.
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When this flag is enabled, compiler will call library functions to
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save/restore registers in function prologues/epilogues. This results
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in lower overall code size, at the expense of slightly reduced performance.
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This option can be enabled for RISC-V targets only.
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config COMPILER_DISABLE_GCC8_WARNINGS
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bool "Disable new warnings introduced in GCC 6 - 8"
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default "n"
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help
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Enable this option if using GCC 6 or newer, and wanting to disable warnings which don't appear with
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GCC 5.
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config COMPILER_DUMP_RTL_FILES
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bool "Dump RTL files during compilation"
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help
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If enabled, RTL files will be produced during compilation. These files
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can be used by other tools, for example to calculate call graphs.
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endmenu # Compiler Options
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menu "Component config"
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source "$COMPONENT_KCONFIGS_SOURCE_FILE"
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endmenu
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menu "Compatibility options"
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config LEGACY_INCLUDE_COMMON_HEADERS
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bool "Include headers across components as before IDF v4.0"
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default n
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help
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Soc, esp32, and driver components, the most common
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components. Some header of these components are included
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implicitly by headers of other components before IDF v4.0.
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It's not required for high-level components, but still
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included through long header chain everywhere.
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This is harmful to the modularity. So it's changed in IDF
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v4.0.
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You can still include these headers in a legacy way until it
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is totally deprecated by enable this option.
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endmenu #Compatibility options
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