xref: /optee_os/mk/config.mk (revision b1469ba0bfd0371eb52bd50f5c52eeda7a8f5f1e)
1# Default configuration values for OP-TEE core (all platforms).
2#
3# Platform-specific overrides are in core/arch/arm32/plat-*/conf.mk.
4# Some subsystem-specific defaults are not here but rather in */sub.mk.
5#
6# Configuration values may be assigned from multiple sources.
7# From higher to lower priority:
8#
9#   1. Make arguments ('make CFG_FOO=bar...')
10#   2. The file specified by $(CFG_OPTEE_CONFIG) (if defined)
11#   3. The environment ('CFG_FOO=bar make...')
12#   4. The platform-specific configuration file: core/arch/arm32/plat-*/conf.mk
13#   5. This file
14#   6. Subsystem-specific makefiles (*/sub.mk)
15#
16# Actual values used during the build are output to $(out-dir)/conf.mk
17# (CFG_* variables only).
18
19# Cross-compiler prefix and suffix
20CROSS_COMPILE ?= arm-linux-gnueabihf-
21CROSS_COMPILE32 ?= $(CROSS_COMPILE)
22CROSS_COMPILE64 ?= aarch64-linux-gnu-
23COMPILER ?= gcc
24
25# For convenience
26ifdef CFLAGS
27CFLAGS32 ?= $(CFLAGS)
28CFLAGS64 ?= $(CFLAGS)
29endif
30
31# Compiler warning level.
32# Supported values: undefined, 1, 2 and 3. 3 gives more warnings.
33WARNS ?= 3
34
35# Define NOWERROR=1 so that warnings are not treated as errors
36# NOWERROR=1
37
38# Define DEBUG=1 to compile without optimization (forces -O0)
39# DEBUG=1
40
41# If y, enable debug features of the TEE core (assertions and lock checks
42# are enabled, panic and assert messages are more verbose, data and prefetch
43# aborts show a stack dump). When disabled, the NDEBUG directive is defined
44# so assertions are disabled.
45CFG_TEE_CORE_DEBUG ?= y
46
47# Max level of the tee core traces. 0 means disable, 4 is max.
48# Supported values: 0 (no traces) to 4 (all traces)
49# If CFG_TEE_DRV_DEBUGFS is set, the level of traces to print can be
50# dynamically changes via debugfs in the range 1 => CFG_TEE_CORE_LOG_LEVEL
51CFG_TEE_CORE_LOG_LEVEL ?= 1
52
53# TA and TEECore log level
54# Supported values: 0 (no traces) to 4 (all traces)
55# If CFG_TEE_DRV_DEBUGFS is set, the level of traces to print can be
56# dynamically changes via debugfs in the range 1 => CFG_TEE_TA_LOG_LEVEL
57CFG_TEE_TA_LOG_LEVEL ?= 1
58
59# TA enablement
60# When defined to "y", TA traces are output according to
61# CFG_TEE_TA_LOG_LEVEL. Otherwise, they are not output at all
62CFG_TEE_CORE_TA_TRACE ?= y
63
64# If 1, enable debug features in TA memory allocation.
65# Debug features include check of buffer overflow, statistics, mark/check heap
66# feature.
67CFG_TEE_CORE_USER_MEM_DEBUG ?= 1
68
69# If y, enable memory leak detection feature in bget memory allocator.
70CFG_TEE_CORE_MALLOC_DEBUG ?= n
71CFG_TEE_TA_MALLOC_DEBUG ?= n
72
73# Mask to select which messages are prefixed with long debugging information
74# (severity, thread ID, component name, function name, line number) based on
75# the message level. If BIT(level) is set, the long prefix is shown.
76# Otherwise a short prefix is used (severity and component name only).
77# Levels: 0=none 1=error 2=info 3=debug 4=flow
78CFG_MSG_LONG_PREFIX_MASK ?= 0x1a
79
80# PRNG configuration
81# If CFG_WITH_SOFTWARE_PRNG is enabled, crypto provider provided
82# software PRNG implementation is used.
83# Otherwise, you need to implement hw_get_random_byte() for your platform
84CFG_WITH_SOFTWARE_PRNG ?= y
85
86# Number of threads
87CFG_NUM_THREADS ?= 2
88
89# API implementation version
90CFG_TEE_API_VERSION ?= GPD-1.1-dev
91
92# Implementation description (implementation-dependent)
93CFG_TEE_IMPL_DESCR ?= OPTEE
94
95# Should OPTEE_SMC_CALL_GET_OS_REVISION return a build identifier to Normal
96# World?
97CFG_OS_REV_REPORTS_GIT_SHA1 ?= y
98
99# Trusted OS implementation version
100TEE_IMPL_VERSION ?= $(shell git describe --always --dirty=-dev 2>/dev/null || echo Unknown)
101ifeq ($(CFG_OS_REV_REPORTS_GIT_SHA1),y)
102TEE_IMPL_GIT_SHA1 := 0x$(shell git rev-parse --short=8 HEAD 2>/dev/null || echo 0)
103else
104TEE_IMPL_GIT_SHA1 := 0x0
105endif
106# The following values are not extracted from the "git describe" output because
107# we might be outside of a Git environment, or the tree may have been cloned
108# with limited depth not including any tag, so there is really no guarantee
109# that TEE_IMPL_VERSION contains the major and minor revision numbers.
110CFG_OPTEE_REVISION_MAJOR ?= 2
111CFG_OPTEE_REVISION_MINOR ?= 6
112
113# Trusted OS implementation manufacturer name
114CFG_TEE_MANUFACTURER ?= LINARO
115
116# Trusted firmware version
117CFG_TEE_FW_IMPL_VERSION ?= FW_IMPL_UNDEF
118
119# Trusted OS implementation manufacturer name
120CFG_TEE_FW_MANUFACTURER ?= FW_MAN_UNDEF
121
122# Rich Execution Environment (REE) file system support: normal world OS
123# provides the actual storage.
124# This is the default FS when enabled (i.e., the one used when
125# TEE_STORAGE_PRIVATE is passed to the trusted storage API)
126CFG_REE_FS ?= y
127
128# RPMB file system support
129CFG_RPMB_FS ?= n
130
131# Device identifier used when CFG_RPMB_FS = y.
132# The exact meaning of this value is platform-dependent. On Linux, the
133# tee-supplicant process will open /dev/mmcblk<id>rpmb
134CFG_RPMB_FS_DEV_ID ?= 0
135
136# Enables RPMB key programming by the TEE, in case the RPMB partition has not
137# been configured yet.
138# !!! Security warning !!!
139# Do *NOT* enable this in product builds, as doing so would allow the TEE to
140# leak the RPMB key.
141# This option is useful in the following situations:
142# - Testing
143# - RPMB key provisioning in a controlled environment (factory setup)
144CFG_RPMB_WRITE_KEY ?= n
145
146# Embed public part of this key in OP-TEE OS
147TA_SIGN_KEY ?= keys/default_ta.pem
148
149# Include lib/libutils/isoc in the build? Most platforms need this, but some
150# may not because they obtain the isoc functions from elsewhere
151CFG_LIBUTILS_WITH_ISOC ?= y
152
153# Enables floating point support for user TAs
154# ARM32: EABI defines both a soft-float ABI and a hard-float ABI,
155#	 hard-float is basically a super set of soft-float. Hard-float
156#	 requires all the support routines provided for soft-float, but the
157#	 compiler may choose to optimize to not use some of them and use
158#	 the floating-point registers instead.
159# ARM64: EABI doesn't define a soft-float ABI, everything is hard-float (or
160#	 nothing with ` -mgeneral-regs-only`)
161# With CFG_TA_FLOAT_SUPPORT enabled TA code is free use floating point types
162CFG_TA_FLOAT_SUPPORT ?= y
163
164# Stack unwinding: print a stack dump to the console on core or TA abort, or
165# when a TA panics.
166# If CFG_UNWIND is enabled, both the kernel and user mode call stacks can be
167# unwound (not paged TAs, however).
168# Note that 32-bit ARM code needs unwind tables for this to work, so enabling
169# this option will increase the size of the 32-bit TEE binary by a few KB.
170# Similarly, TAs have to be compiled with -funwind-tables (default when the
171# option is set) otherwise they can't be unwound.
172# Warning: since the unwind sequence for user-mode (TA) code is implemented in
173# the privileged layer of OP-TEE, enabling this feature will weaken the
174# user/kernel isolation. Therefore it should be disabled in release builds.
175ifeq ($(CFG_TEE_CORE_DEBUG),y)
176CFG_UNWIND ?= y
177endif
178
179# Enable support for dynamically loaded user TAs
180CFG_WITH_USER_TA ?= y
181
182# Load user TAs from the REE filesystem via tee-supplicant
183# There is currently no other alternative, but you may want to disable this in
184# case you implement your own TA store
185CFG_REE_FS_TA ?= y
186
187# Support for loading user TAs from a special section in the TEE binary.
188# Such TAs are available even before tee-supplicant is available (hence their
189# name), but note that many services exported to TAs may need tee-supplicant,
190# so early use is limited to a subset of the TEE Internal Core API (crypto...)
191# To use this feature, set EARLY_TA_PATHS to the paths to one or more TA ELF
192# file(s). For example:
193#   $ make ... \
194#     EARLY_TA_PATHS="path/to/8aaaf200-2450-11e4-abe2-0002a5d5c51b.stripped.elf \
195#                     path/to/cb3e5ba0-adf1-11e0-998b-0002a5d5c51b.stripped.elf"
196# Typical build steps:
197#   $ make ta_dev_kit CFG_EARLY_TA=y # Create the dev kit (user mode libraries,
198#                                    # headers, makefiles), ready to build TAs.
199#                                    # CFG_EARLY_TA=y is optional, it prevents
200#                                    # later library recompilations.
201#   <build some TAs>
202#   $ make EARLY_TA_PATHS=<paths>    # Build OP-TEE and embbed the TA(s)
203ifneq ($(EARLY_TA_PATHS),)
204$(call force,CFG_EARLY_TA,y)
205else
206CFG_EARLY_TA ?= n
207endif
208ifeq ($(CFG_EARLY_TA),y)
209$(call force,CFG_ZLIB,y)
210endif
211
212# Enable paging, requires SRAM, can't be enabled by default
213CFG_WITH_PAGER ?= n
214
215# Use the pager for user TAs
216CFG_PAGED_USER_TA ?= $(CFG_WITH_PAGER)
217
218# Enable support for detected undefined behavior in C
219# Uses a lot of memory, can't be enabled by default
220CFG_CORE_SANITIZE_UNDEFINED ?= n
221
222# Enable Kernel Address sanitizer, has a huge performance impact, uses a
223# lot of memory and need platform specific adaptations, can't be enabled by
224# default
225CFG_CORE_SANITIZE_KADDRESS ?= n
226
227# Device Tree support
228# When enabled, the TEE _start function expects to find the address of a
229# Device Tree Blob (DTB) in register r2. The DT parsing code relies on
230# libfdt.  Currently only used to add the optee node and a reserved-memory
231# node for shared memory.
232CFG_DT ?= n
233
234# Maximum size of the Device Tree Blob, has to be large enough to allow
235# editing of the supplied DTB.
236CFG_DTB_MAX_SIZE ?= 0x10000
237
238# Enable static TA and core self tests
239CFG_TEE_CORE_EMBED_INTERNAL_TESTS ?= y
240
241# This option enables OP-TEE to respond to SMP boot request: the Rich OS
242# issues this to request OP-TEE to release secondaries cores out of reset,
243# with specific core number and non-secure entry address.
244CFG_BOOT_SECONDARY_REQUEST ?= n
245
246# Default heap size for Core, 64 kB
247CFG_CORE_HEAP_SIZE ?= 65536
248
249# TA profiling.
250# When this option is enabled, OP-TEE can execute Trusted Applications
251# instrumented with GCC's -pg flag and will output profiling information
252# in gmon.out format to /tmp/gmon-<ta_uuid>.out (path is defined in
253# tee-supplicant)
254CFG_TA_GPROF_SUPPORT ?= n
255
256# Enable to compile user TA libraries with profiling (-pg).
257# Depends on CFG_TA_GPROF_SUPPORT.
258CFG_ULIBS_GPROF ?= n
259
260ifeq ($(CFG_ULIBS_GPROF),y)
261ifneq ($(CFG_TA_GPROF_SUPPORT),y)
262$(error Cannot instrument user libraries if user mode profiling is disabled)
263endif
264endif
265
266# CFG_GP_SOCKETS
267# Enable Global Platform Sockets support
268CFG_GP_SOCKETS ?= y
269
270# Enable Secure Data Path support in OP-TEE core (TA may be invoked with
271# invocation parameters referring to specific secure memories).
272CFG_SECURE_DATA_PATH ?= n
273
274# Define the number of cores per cluster used in calculating core position.
275# The cluster number is shifted by this value and added to the core ID,
276# so its value represents log2(cores/cluster).
277# Default is 2**(2) = 4 cores per cluster.
278CFG_CORE_CLUSTER_SHIFT ?= 2
279
280# Do not report to NW that dynamic shared memory (shared memory outside
281# predefined region) is enabled.
282# Note that you can disable this feature for debug purposes. OP-TEE will not
283# report to Normal World that it support dynamic SHM. But, nevertheles it
284# will accept dynamic SHM buffers.
285CFG_DYN_SHM_CAP ?= y
286
287# Enables support for larger physical addresses, that is, it will define
288# paddr_t as a 64-bit type.
289CFG_CORE_LARGE_PHYS_ADDR ?= n
290