1 /* SPDX-License-Identifier: GPL-2.0 */ 2 /* 3 * Copyright (c) 2022 Meta Platforms, Inc. and affiliates. 4 * Copyright (c) 2022 Tejun Heo <tj@kernel.org> 5 * Copyright (c) 2022 David Vernet <dvernet@meta.com> 6 */ 7 #ifndef __SCX_COMMON_BPF_H 8 #define __SCX_COMMON_BPF_H 9 10 /* 11 * The generated kfunc prototypes in vmlinux.h are missing address space 12 * attributes which cause build failures. For now, suppress the generated 13 * prototypes. See https://github.com/sched-ext/scx/issues/1111. 14 */ 15 #define BPF_NO_KFUNC_PROTOTYPES 16 17 #ifdef LSP 18 #define __bpf__ 19 #include "../vmlinux.h" 20 #else 21 #include "vmlinux.h" 22 #endif 23 24 #include <bpf/bpf_helpers.h> 25 #include <bpf/bpf_tracing.h> 26 #include <asm-generic/errno.h> 27 #include "user_exit_info.bpf.h" 28 #include "enum_defs.autogen.h" 29 30 #define PF_IDLE 0x00000002 /* I am an IDLE thread */ 31 #define PF_IO_WORKER 0x00000010 /* Task is an IO worker */ 32 #define PF_WQ_WORKER 0x00000020 /* I'm a workqueue worker */ 33 #define PF_KCOMPACTD 0x00010000 /* I am kcompactd */ 34 #define PF_KSWAPD 0x00020000 /* I am kswapd */ 35 #define PF_KTHREAD 0x00200000 /* I am a kernel thread */ 36 #define PF_EXITING 0x00000004 37 #define CLOCK_MONOTONIC 1 38 39 #ifndef NR_CPUS 40 #define NR_CPUS 1024 41 #endif 42 43 #ifndef NUMA_NO_NODE 44 #define NUMA_NO_NODE (-1) 45 #endif 46 47 extern int LINUX_KERNEL_VERSION __kconfig; 48 extern const char CONFIG_CC_VERSION_TEXT[64] __kconfig __weak; 49 extern const char CONFIG_LOCALVERSION[64] __kconfig __weak; 50 51 /* 52 * Earlier versions of clang/pahole lost upper 32bits in 64bit enums which can 53 * lead to really confusing misbehaviors. Let's trigger a build failure. 54 */ 55 static inline void ___vmlinux_h_sanity_check___(void) 56 { 57 _Static_assert(SCX_DSQ_FLAG_BUILTIN, 58 "bpftool generated vmlinux.h is missing high bits for 64bit enums, upgrade clang and pahole"); 59 } 60 61 s32 scx_bpf_create_dsq(u64 dsq_id, s32 node) __ksym; 62 s32 scx_bpf_select_cpu_dfl(struct task_struct *p, s32 prev_cpu, u64 wake_flags, bool *is_idle) __ksym; 63 s32 __scx_bpf_select_cpu_and(struct task_struct *p, const struct cpumask *cpus_allowed, 64 struct scx_bpf_select_cpu_and_args *args) __ksym __weak; 65 bool __scx_bpf_dsq_insert_vtime(struct task_struct *p, struct scx_bpf_dsq_insert_vtime_args *args) __ksym __weak; 66 u32 scx_bpf_dispatch_nr_slots(void) __ksym; 67 void scx_bpf_dispatch_cancel(void) __ksym; 68 void scx_bpf_kick_cpu(s32 cpu, u64 flags) __ksym; 69 s32 scx_bpf_dsq_nr_queued(u64 dsq_id) __ksym; 70 void scx_bpf_destroy_dsq(u64 dsq_id) __ksym; 71 struct task_struct *scx_bpf_dsq_peek(u64 dsq_id) __ksym __weak; 72 int bpf_iter_scx_dsq_new(struct bpf_iter_scx_dsq *it, u64 dsq_id, u64 flags) __ksym __weak; 73 struct task_struct *bpf_iter_scx_dsq_next(struct bpf_iter_scx_dsq *it) __ksym __weak; 74 void bpf_iter_scx_dsq_destroy(struct bpf_iter_scx_dsq *it) __ksym __weak; 75 void scx_bpf_exit_bstr(s64 exit_code, char *fmt, unsigned long long *data, u32 data__sz) __ksym __weak; 76 void scx_bpf_error_bstr(char *fmt, unsigned long long *data, u32 data_len) __ksym; 77 void scx_bpf_dump_bstr(char *fmt, unsigned long long *data, u32 data_len) __ksym __weak; 78 u32 scx_bpf_cpuperf_cap(s32 cpu) __ksym __weak; 79 u32 scx_bpf_cpuperf_cur(s32 cpu) __ksym __weak; 80 void scx_bpf_cpuperf_set(s32 cpu, u32 perf) __ksym __weak; 81 u32 scx_bpf_nr_node_ids(void) __ksym __weak; 82 u32 scx_bpf_nr_cpu_ids(void) __ksym __weak; 83 int scx_bpf_cpu_node(s32 cpu) __ksym __weak; 84 const struct cpumask *scx_bpf_get_possible_cpumask(void) __ksym __weak; 85 const struct cpumask *scx_bpf_get_online_cpumask(void) __ksym __weak; 86 void scx_bpf_put_cpumask(const struct cpumask *cpumask) __ksym __weak; 87 const struct cpumask *scx_bpf_get_idle_cpumask_node(int node) __ksym __weak; 88 const struct cpumask *scx_bpf_get_idle_cpumask(void) __ksym; 89 const struct cpumask *scx_bpf_get_idle_smtmask_node(int node) __ksym __weak; 90 const struct cpumask *scx_bpf_get_idle_smtmask(void) __ksym; 91 void scx_bpf_put_idle_cpumask(const struct cpumask *cpumask) __ksym; 92 bool scx_bpf_test_and_clear_cpu_idle(s32 cpu) __ksym; 93 s32 scx_bpf_pick_idle_cpu_node(const cpumask_t *cpus_allowed, int node, u64 flags) __ksym __weak; 94 s32 scx_bpf_pick_idle_cpu(const cpumask_t *cpus_allowed, u64 flags) __ksym; 95 s32 scx_bpf_pick_any_cpu_node(const cpumask_t *cpus_allowed, int node, u64 flags) __ksym __weak; 96 s32 scx_bpf_pick_any_cpu(const cpumask_t *cpus_allowed, u64 flags) __ksym; 97 bool scx_bpf_task_running(const struct task_struct *p) __ksym; 98 s32 scx_bpf_task_cpu(const struct task_struct *p) __ksym; 99 struct rq *scx_bpf_cpu_rq(s32 cpu) __ksym; 100 struct rq *scx_bpf_locked_rq(void) __ksym; 101 struct task_struct *scx_bpf_cpu_curr(s32 cpu) __ksym __weak; 102 u64 scx_bpf_now(void) __ksym __weak; 103 void scx_bpf_events(struct scx_event_stats *events, size_t events__sz) __ksym __weak; 104 bool scx_bpf_sub_dispatch(u64 cgroup_id) __ksym __weak; 105 106 /* 107 * Use the following as @it__iter when calling scx_bpf_dsq_move[_vtime]() from 108 * within bpf_for_each() loops. 109 */ 110 #define BPF_FOR_EACH_ITER (&___it) 111 112 #define scx_read_event(e, name) \ 113 (bpf_core_field_exists((e)->name) ? (e)->name : 0) 114 115 static inline __attribute__((format(printf, 1, 2))) 116 void ___scx_bpf_bstr_format_checker(const char *fmt, ...) {} 117 118 #define SCX_STRINGIFY(x) #x 119 #define SCX_TOSTRING(x) SCX_STRINGIFY(x) 120 121 /* 122 * Helper macro for initializing the fmt and variadic argument inputs to both 123 * bstr exit kfuncs. Callers to this function should use ___fmt and ___param to 124 * refer to the initialized list of inputs to the bstr kfunc. 125 */ 126 #define scx_bpf_bstr_preamble(fmt, args...) \ 127 static char ___fmt[] = fmt; \ 128 /* \ 129 * Note that __param[] must have at least one \ 130 * element to keep the verifier happy. \ 131 */ \ 132 unsigned long long ___param[___bpf_narg(args) ?: 1] = {}; \ 133 \ 134 _Pragma("GCC diagnostic push") \ 135 _Pragma("GCC diagnostic ignored \"-Wint-conversion\"") \ 136 ___bpf_fill(___param, args); \ 137 _Pragma("GCC diagnostic pop") 138 139 /* 140 * scx_bpf_exit() wraps the scx_bpf_exit_bstr() kfunc with variadic arguments 141 * instead of an array of u64. Using this macro will cause the scheduler to 142 * exit cleanly with the specified exit code being passed to user space. 143 */ 144 #define scx_bpf_exit(code, fmt, args...) \ 145 ({ \ 146 scx_bpf_bstr_preamble(fmt, args) \ 147 scx_bpf_exit_bstr(code, ___fmt, ___param, sizeof(___param)); \ 148 ___scx_bpf_bstr_format_checker(fmt, ##args); \ 149 }) 150 151 /* 152 * scx_bpf_error() wraps the scx_bpf_error_bstr() kfunc with variadic arguments 153 * instead of an array of u64. Invoking this macro will cause the scheduler to 154 * exit in an erroneous state, with diagnostic information being passed to the 155 * user. It appends the file and line number to aid debugging. 156 */ 157 #define scx_bpf_error(fmt, args...) \ 158 ({ \ 159 scx_bpf_bstr_preamble( \ 160 __FILE__ ":" SCX_TOSTRING(__LINE__) ": " fmt, ##args) \ 161 scx_bpf_error_bstr(___fmt, ___param, sizeof(___param)); \ 162 ___scx_bpf_bstr_format_checker( \ 163 __FILE__ ":" SCX_TOSTRING(__LINE__) ": " fmt, ##args); \ 164 }) 165 166 /* 167 * scx_bpf_dump() wraps the scx_bpf_dump_bstr() kfunc with variadic arguments 168 * instead of an array of u64. To be used from ops.dump() and friends. 169 */ 170 #define scx_bpf_dump(fmt, args...) \ 171 ({ \ 172 scx_bpf_bstr_preamble(fmt, args) \ 173 scx_bpf_dump_bstr(___fmt, ___param, sizeof(___param)); \ 174 ___scx_bpf_bstr_format_checker(fmt, ##args); \ 175 }) 176 177 /* 178 * scx_bpf_dump_header() is a wrapper around scx_bpf_dump that adds a header 179 * of system information for debugging. 180 */ 181 #define scx_bpf_dump_header() \ 182 ({ \ 183 scx_bpf_dump("kernel: %d.%d.%d %s\ncc: %s\n", \ 184 LINUX_KERNEL_VERSION >> 16, \ 185 LINUX_KERNEL_VERSION >> 8 & 0xFF, \ 186 LINUX_KERNEL_VERSION & 0xFF, \ 187 CONFIG_LOCALVERSION, \ 188 CONFIG_CC_VERSION_TEXT); \ 189 }) 190 191 #define BPF_STRUCT_OPS(name, args...) \ 192 SEC("struct_ops/"#name) \ 193 BPF_PROG(name, ##args) 194 195 #define BPF_STRUCT_OPS_SLEEPABLE(name, args...) \ 196 SEC("struct_ops.s/"#name) \ 197 BPF_PROG(name, ##args) 198 199 /** 200 * RESIZABLE_ARRAY - Generates annotations for an array that may be resized 201 * @elfsec: the data section of the BPF program in which to place the array 202 * @arr: the name of the array 203 * 204 * libbpf has an API for setting map value sizes. Since data sections (i.e. 205 * bss, data, rodata) themselves are maps, a data section can be resized. If 206 * a data section has an array as its last element, the BTF info for that 207 * array will be adjusted so that length of the array is extended to meet the 208 * new length of the data section. This macro annotates an array to have an 209 * element count of one with the assumption that this array can be resized 210 * within the userspace program. It also annotates the section specifier so 211 * this array exists in a custom sub data section which can be resized 212 * independently. 213 * 214 * See RESIZE_ARRAY() for the userspace convenience macro for resizing an 215 * array declared with RESIZABLE_ARRAY(). 216 */ 217 #define RESIZABLE_ARRAY(elfsec, arr) arr[1] SEC("."#elfsec"."#arr) 218 219 /** 220 * MEMBER_VPTR - Obtain the verified pointer to a struct or array member 221 * @base: struct or array to index 222 * @member: dereferenced member (e.g. .field, [idx0][idx1], .field[idx0] ...) 223 * 224 * The verifier often gets confused by the instruction sequence the compiler 225 * generates for indexing struct fields or arrays. This macro forces the 226 * compiler to generate a code sequence which first calculates the byte offset, 227 * checks it against the struct or array size and add that byte offset to 228 * generate the pointer to the member to help the verifier. 229 * 230 * Ideally, we want to abort if the calculated offset is out-of-bounds. However, 231 * BPF currently doesn't support abort, so evaluate to %NULL instead. The caller 232 * must check for %NULL and take appropriate action to appease the verifier. To 233 * avoid confusing the verifier, it's best to check for %NULL and dereference 234 * immediately. 235 * 236 * vptr = MEMBER_VPTR(my_array, [i][j]); 237 * if (!vptr) 238 * return error; 239 * *vptr = new_value; 240 * 241 * sizeof(@base) should encompass the memory area to be accessed and thus can't 242 * be a pointer to the area. Use `MEMBER_VPTR(*ptr, .member)` instead of 243 * `MEMBER_VPTR(ptr, ->member)`. 244 */ 245 #ifndef MEMBER_VPTR 246 #define MEMBER_VPTR(base, member) (typeof((base) member) *) \ 247 ({ \ 248 u64 __base = (u64)&(base); \ 249 u64 __addr = (u64)&((base) member) - __base; \ 250 _Static_assert(sizeof(base) >= sizeof((base) member), \ 251 "@base is smaller than @member, is @base a pointer?"); \ 252 asm volatile ( \ 253 "if %0 <= %[max] goto +2\n" \ 254 "%0 = 0\n" \ 255 "goto +1\n" \ 256 "%0 += %1\n" \ 257 : "+r"(__addr) \ 258 : "r"(__base), \ 259 [max]"i"(sizeof(base) - sizeof((base) member))); \ 260 __addr; \ 261 }) 262 #endif /* MEMBER_VPTR */ 263 264 /** 265 * ARRAY_ELEM_PTR - Obtain the verified pointer to an array element 266 * @arr: array to index into 267 * @i: array index 268 * @n: number of elements in array 269 * 270 * Similar to MEMBER_VPTR() but is intended for use with arrays where the 271 * element count needs to be explicit. 272 * It can be used in cases where a global array is defined with an initial 273 * size but is intended to be be resized before loading the BPF program. 274 * Without this version of the macro, MEMBER_VPTR() will use the compile time 275 * size of the array to compute the max, which will result in rejection by 276 * the verifier. 277 */ 278 #ifndef ARRAY_ELEM_PTR 279 #define ARRAY_ELEM_PTR(arr, i, n) (typeof(arr[i]) *) \ 280 ({ \ 281 u64 __base = (u64)arr; \ 282 u64 __addr = (u64)&(arr[i]) - __base; \ 283 asm volatile ( \ 284 "if %0 <= %[max] goto +2\n" \ 285 "%0 = 0\n" \ 286 "goto +1\n" \ 287 "%0 += %1\n" \ 288 : "+r"(__addr) \ 289 : "r"(__base), \ 290 [max]"r"(sizeof(arr[0]) * ((n) - 1))); \ 291 __addr; \ 292 }) 293 #endif /* ARRAY_ELEM_PTR */ 294 295 /* 296 * BPF declarations and helpers 297 */ 298 299 /* list and rbtree */ 300 #define __contains(name, node) __attribute__((btf_decl_tag("contains:" #name ":" #node))) 301 #define private(name) SEC(".data." #name) __hidden __attribute__((aligned(8))) 302 303 void *bpf_obj_new_impl(__u64 local_type_id, void *meta) __ksym; 304 void bpf_obj_drop_impl(void *kptr, void *meta) __ksym; 305 306 #define bpf_obj_new(type) ((type *)bpf_obj_new_impl(bpf_core_type_id_local(type), NULL)) 307 #define bpf_obj_drop(kptr) bpf_obj_drop_impl(kptr, NULL) 308 309 int bpf_list_push_front_impl(struct bpf_list_head *head, 310 struct bpf_list_node *node, 311 void *meta, __u64 off) __ksym; 312 #define bpf_list_push_front(head, node) bpf_list_push_front_impl(head, node, NULL, 0) 313 314 int bpf_list_push_back_impl(struct bpf_list_head *head, 315 struct bpf_list_node *node, 316 void *meta, __u64 off) __ksym; 317 #define bpf_list_push_back(head, node) bpf_list_push_back_impl(head, node, NULL, 0) 318 319 struct bpf_list_node *bpf_list_pop_front(struct bpf_list_head *head) __ksym; 320 struct bpf_list_node *bpf_list_pop_back(struct bpf_list_head *head) __ksym; 321 struct bpf_rb_node *bpf_rbtree_remove(struct bpf_rb_root *root, 322 struct bpf_rb_node *node) __ksym; 323 int bpf_rbtree_add_impl(struct bpf_rb_root *root, struct bpf_rb_node *node, 324 bool (less)(struct bpf_rb_node *a, const struct bpf_rb_node *b), 325 void *meta, __u64 off) __ksym; 326 #define bpf_rbtree_add(head, node, less) bpf_rbtree_add_impl(head, node, less, NULL, 0) 327 328 struct bpf_rb_node *bpf_rbtree_first(struct bpf_rb_root *root) __ksym; 329 330 void *bpf_refcount_acquire_impl(void *kptr, void *meta) __ksym; 331 #define bpf_refcount_acquire(kptr) bpf_refcount_acquire_impl(kptr, NULL) 332 333 /* task */ 334 struct task_struct *bpf_task_from_pid(s32 pid) __ksym; 335 struct task_struct *bpf_task_acquire(struct task_struct *p) __ksym; 336 void bpf_task_release(struct task_struct *p) __ksym; 337 338 /* cgroup */ 339 struct cgroup *bpf_cgroup_ancestor(struct cgroup *cgrp, int level) __ksym; 340 void bpf_cgroup_release(struct cgroup *cgrp) __ksym; 341 struct cgroup *bpf_cgroup_from_id(u64 cgid) __ksym; 342 343 /* css iteration */ 344 struct bpf_iter_css; 345 struct cgroup_subsys_state; 346 extern int bpf_iter_css_new(struct bpf_iter_css *it, 347 struct cgroup_subsys_state *start, 348 unsigned int flags) __weak __ksym; 349 extern struct cgroup_subsys_state * 350 bpf_iter_css_next(struct bpf_iter_css *it) __weak __ksym; 351 extern void bpf_iter_css_destroy(struct bpf_iter_css *it) __weak __ksym; 352 353 /* cpumask */ 354 struct bpf_cpumask *bpf_cpumask_create(void) __ksym; 355 struct bpf_cpumask *bpf_cpumask_acquire(struct bpf_cpumask *cpumask) __ksym; 356 void bpf_cpumask_release(struct bpf_cpumask *cpumask) __ksym; 357 u32 bpf_cpumask_first(const struct cpumask *cpumask) __ksym; 358 u32 bpf_cpumask_first_zero(const struct cpumask *cpumask) __ksym; 359 void bpf_cpumask_set_cpu(u32 cpu, struct bpf_cpumask *cpumask) __ksym; 360 void bpf_cpumask_clear_cpu(u32 cpu, struct bpf_cpumask *cpumask) __ksym; 361 bool bpf_cpumask_test_cpu(u32 cpu, const struct cpumask *cpumask) __ksym; 362 bool bpf_cpumask_test_and_set_cpu(u32 cpu, struct bpf_cpumask *cpumask) __ksym; 363 bool bpf_cpumask_test_and_clear_cpu(u32 cpu, struct bpf_cpumask *cpumask) __ksym; 364 void bpf_cpumask_setall(struct bpf_cpumask *cpumask) __ksym; 365 void bpf_cpumask_clear(struct bpf_cpumask *cpumask) __ksym; 366 bool bpf_cpumask_and(struct bpf_cpumask *dst, const struct cpumask *src1, 367 const struct cpumask *src2) __ksym; 368 void bpf_cpumask_or(struct bpf_cpumask *dst, const struct cpumask *src1, 369 const struct cpumask *src2) __ksym; 370 void bpf_cpumask_xor(struct bpf_cpumask *dst, const struct cpumask *src1, 371 const struct cpumask *src2) __ksym; 372 bool bpf_cpumask_equal(const struct cpumask *src1, const struct cpumask *src2) __ksym; 373 bool bpf_cpumask_intersects(const struct cpumask *src1, const struct cpumask *src2) __ksym; 374 bool bpf_cpumask_subset(const struct cpumask *src1, const struct cpumask *src2) __ksym; 375 bool bpf_cpumask_empty(const struct cpumask *cpumask) __ksym; 376 bool bpf_cpumask_full(const struct cpumask *cpumask) __ksym; 377 void bpf_cpumask_copy(struct bpf_cpumask *dst, const struct cpumask *src) __ksym; 378 u32 bpf_cpumask_any_distribute(const struct cpumask *cpumask) __ksym; 379 u32 bpf_cpumask_any_and_distribute(const struct cpumask *src1, 380 const struct cpumask *src2) __ksym; 381 u32 bpf_cpumask_weight(const struct cpumask *cpumask) __ksym; 382 383 int bpf_iter_bits_new(struct bpf_iter_bits *it, const u64 *unsafe_ptr__ign, u32 nr_words) __ksym; 384 int *bpf_iter_bits_next(struct bpf_iter_bits *it) __ksym; 385 void bpf_iter_bits_destroy(struct bpf_iter_bits *it) __ksym; 386 387 #define def_iter_struct(name) \ 388 struct bpf_iter_##name { \ 389 struct bpf_iter_bits it; \ 390 const struct cpumask *bitmap; \ 391 }; 392 393 #define def_iter_new(name) \ 394 static inline int bpf_iter_##name##_new( \ 395 struct bpf_iter_##name *it, const u64 *unsafe_ptr__ign, u32 nr_words) \ 396 { \ 397 it->bitmap = scx_bpf_get_##name##_cpumask(); \ 398 return bpf_iter_bits_new(&it->it, (const u64 *)it->bitmap, \ 399 sizeof(struct cpumask) / 8); \ 400 } 401 402 #define def_iter_next(name) \ 403 static inline int *bpf_iter_##name##_next(struct bpf_iter_##name *it) { \ 404 return bpf_iter_bits_next(&it->it); \ 405 } 406 407 #define def_iter_destroy(name) \ 408 static inline void bpf_iter_##name##_destroy(struct bpf_iter_##name *it) { \ 409 scx_bpf_put_cpumask(it->bitmap); \ 410 bpf_iter_bits_destroy(&it->it); \ 411 } 412 #define def_for_each_cpu(cpu, name) for_each_##name##_cpu(cpu) 413 414 /// Provides iterator for possible and online cpus. 415 /// 416 /// # Example 417 /// 418 /// ``` 419 /// static inline void example_use() { 420 /// int *cpu; 421 /// 422 /// for_each_possible_cpu(cpu){ 423 /// bpf_printk("CPU %d is possible", *cpu); 424 /// } 425 /// 426 /// for_each_online_cpu(cpu){ 427 /// bpf_printk("CPU %d is online", *cpu); 428 /// } 429 /// } 430 /// ``` 431 def_iter_struct(possible); 432 def_iter_new(possible); 433 def_iter_next(possible); 434 def_iter_destroy(possible); 435 #define for_each_possible_cpu(cpu) bpf_for_each(possible, cpu, NULL, 0) 436 437 def_iter_struct(online); 438 def_iter_new(online); 439 def_iter_next(online); 440 def_iter_destroy(online); 441 #define for_each_online_cpu(cpu) bpf_for_each(online, cpu, NULL, 0) 442 443 /* 444 * Access a cpumask in read-only mode (typically to check bits). 445 */ 446 static __always_inline const struct cpumask *cast_mask(struct bpf_cpumask *mask) 447 { 448 return (const struct cpumask *)mask; 449 } 450 451 /* 452 * Return true if task @p cannot migrate to a different CPU, false 453 * otherwise. 454 */ 455 static inline bool is_migration_disabled(const struct task_struct *p) 456 { 457 /* 458 * Testing p->migration_disabled in a BPF code is tricky because the 459 * migration is _always_ disabled while running the BPF code. 460 * The prolog (__bpf_prog_enter) and epilog (__bpf_prog_exit) for BPF 461 * code execution disable and re-enable the migration of the current 462 * task, respectively. So, the _current_ task of the sched_ext ops is 463 * always migration-disabled. Moreover, p->migration_disabled could be 464 * two or greater when a sched_ext ops BPF code (e.g., ops.tick) is 465 * executed in the middle of the other BPF code execution. 466 * 467 * Therefore, we should decide that the _current_ task is 468 * migration-disabled only when its migration_disabled count is greater 469 * than one. In other words, when p->migration_disabled == 1, there is 470 * an ambiguity, so we should check if @p is the current task or not. 471 */ 472 if (bpf_core_field_exists(p->migration_disabled)) { 473 if (p->migration_disabled == 1) 474 return bpf_get_current_task_btf() != p; 475 else 476 return p->migration_disabled; 477 } 478 return false; 479 } 480 481 /* rcu */ 482 void bpf_rcu_read_lock(void) __ksym; 483 void bpf_rcu_read_unlock(void) __ksym; 484 485 /* 486 * Time helpers, most of which are from jiffies.h. 487 */ 488 489 /** 490 * time_delta - Calculate the delta between new and old time stamp 491 * @after: first comparable as u64 492 * @before: second comparable as u64 493 * 494 * Return: the time difference, which is >= 0 495 */ 496 static inline s64 time_delta(u64 after, u64 before) 497 { 498 return (s64)(after - before) > 0 ? (s64)(after - before) : 0; 499 } 500 501 /** 502 * time_after - returns true if the time a is after time b. 503 * @a: first comparable as u64 504 * @b: second comparable as u64 505 * 506 * Do this with "<0" and ">=0" to only test the sign of the result. A 507 * good compiler would generate better code (and a really good compiler 508 * wouldn't care). Gcc is currently neither. 509 * 510 * Return: %true is time a is after time b, otherwise %false. 511 */ 512 static inline bool time_after(u64 a, u64 b) 513 { 514 return (s64)(b - a) < 0; 515 } 516 517 /** 518 * time_before - returns true if the time a is before time b. 519 * @a: first comparable as u64 520 * @b: second comparable as u64 521 * 522 * Return: %true is time a is before time b, otherwise %false. 523 */ 524 static inline bool time_before(u64 a, u64 b) 525 { 526 return time_after(b, a); 527 } 528 529 /** 530 * time_after_eq - returns true if the time a is after or the same as time b. 531 * @a: first comparable as u64 532 * @b: second comparable as u64 533 * 534 * Return: %true is time a is after or the same as time b, otherwise %false. 535 */ 536 static inline bool time_after_eq(u64 a, u64 b) 537 { 538 return (s64)(a - b) >= 0; 539 } 540 541 /** 542 * time_before_eq - returns true if the time a is before or the same as time b. 543 * @a: first comparable as u64 544 * @b: second comparable as u64 545 * 546 * Return: %true is time a is before or the same as time b, otherwise %false. 547 */ 548 static inline bool time_before_eq(u64 a, u64 b) 549 { 550 return time_after_eq(b, a); 551 } 552 553 /** 554 * time_in_range - Calculate whether a is in the range of [b, c]. 555 * @a: time to test 556 * @b: beginning of the range 557 * @c: end of the range 558 * 559 * Return: %true is time a is in the range [b, c], otherwise %false. 560 */ 561 static inline bool time_in_range(u64 a, u64 b, u64 c) 562 { 563 return time_after_eq(a, b) && time_before_eq(a, c); 564 } 565 566 /** 567 * time_in_range_open - Calculate whether a is in the range of [b, c). 568 * @a: time to test 569 * @b: beginning of the range 570 * @c: end of the range 571 * 572 * Return: %true is time a is in the range [b, c), otherwise %false. 573 */ 574 static inline bool time_in_range_open(u64 a, u64 b, u64 c) 575 { 576 return time_after_eq(a, b) && time_before(a, c); 577 } 578 579 580 /* 581 * Other helpers 582 */ 583 584 /* useful compiler attributes */ 585 #ifndef likely 586 #define likely(x) __builtin_expect(!!(x), 1) 587 #endif 588 #ifndef unlikely 589 #define unlikely(x) __builtin_expect(!!(x), 0) 590 #endif 591 #ifndef __maybe_unused 592 #define __maybe_unused __attribute__((__unused__)) 593 #endif 594 595 /* 596 * READ/WRITE_ONCE() are from kernel (include/asm-generic/rwonce.h). They 597 * prevent compiler from caching, redoing or reordering reads or writes. 598 */ 599 typedef __u8 __attribute__((__may_alias__)) __u8_alias_t; 600 typedef __u16 __attribute__((__may_alias__)) __u16_alias_t; 601 typedef __u32 __attribute__((__may_alias__)) __u32_alias_t; 602 typedef __u64 __attribute__((__may_alias__)) __u64_alias_t; 603 604 static __always_inline void __read_once_size(const volatile void *p, void *res, int size) 605 { 606 switch (size) { 607 case 1: *(__u8_alias_t *) res = *(volatile __u8_alias_t *) p; break; 608 case 2: *(__u16_alias_t *) res = *(volatile __u16_alias_t *) p; break; 609 case 4: *(__u32_alias_t *) res = *(volatile __u32_alias_t *) p; break; 610 case 8: *(__u64_alias_t *) res = *(volatile __u64_alias_t *) p; break; 611 default: 612 barrier(); 613 __builtin_memcpy((void *)res, (const void *)p, size); 614 barrier(); 615 } 616 } 617 618 static __always_inline void __write_once_size(volatile void *p, void *res, int size) 619 { 620 switch (size) { 621 case 1: *(volatile __u8_alias_t *) p = *(__u8_alias_t *) res; break; 622 case 2: *(volatile __u16_alias_t *) p = *(__u16_alias_t *) res; break; 623 case 4: *(volatile __u32_alias_t *) p = *(__u32_alias_t *) res; break; 624 case 8: *(volatile __u64_alias_t *) p = *(__u64_alias_t *) res; break; 625 default: 626 barrier(); 627 __builtin_memcpy((void *)p, (const void *)res, size); 628 barrier(); 629 } 630 } 631 632 /* 633 * __unqual_typeof(x) - Declare an unqualified scalar type, leaving 634 * non-scalar types unchanged, 635 * 636 * Prefer C11 _Generic for better compile-times and simpler code. Note: 'char' 637 * is not type-compatible with 'signed char', and we define a separate case. 638 * 639 * This is copied verbatim from kernel's include/linux/compiler_types.h, but 640 * with default expression (for pointers) changed from (x) to (typeof(x)0). 641 * 642 * This is because LLVM has a bug where for lvalue (x), it does not get rid of 643 * an extra address_space qualifier, but does in case of rvalue (typeof(x)0). 644 * Hence, for pointers, we need to create an rvalue expression to get the 645 * desired type. See https://github.com/llvm/llvm-project/issues/53400. 646 */ 647 #define __scalar_type_to_expr_cases(type) \ 648 unsigned type : (unsigned type)0, signed type : (signed type)0 649 650 #define __unqual_typeof(x) \ 651 typeof(_Generic((x), \ 652 char: (char)0, \ 653 __scalar_type_to_expr_cases(char), \ 654 __scalar_type_to_expr_cases(short), \ 655 __scalar_type_to_expr_cases(int), \ 656 __scalar_type_to_expr_cases(long), \ 657 __scalar_type_to_expr_cases(long long), \ 658 default: (typeof(x))0)) 659 660 #define READ_ONCE(x) \ 661 ({ \ 662 union { __unqual_typeof(x) __val; char __c[1]; } __u = \ 663 { .__c = { 0 } }; \ 664 __read_once_size((__unqual_typeof(x) *)&(x), __u.__c, sizeof(x)); \ 665 __u.__val; \ 666 }) 667 668 #define WRITE_ONCE(x, val) \ 669 ({ \ 670 union { __unqual_typeof(x) __val; char __c[1]; } __u = \ 671 { .__val = (val) }; \ 672 __write_once_size((__unqual_typeof(x) *)&(x), __u.__c, sizeof(x)); \ 673 __u.__val; \ 674 }) 675 676 /* 677 * __calc_avg - Calculate exponential weighted moving average (EWMA) with 678 * @old and @new values. @decay represents how large the @old value remains. 679 * With a larger @decay value, the moving average changes slowly, exhibiting 680 * fewer fluctuations. 681 */ 682 #define __calc_avg(old, new, decay) ({ \ 683 typeof(decay) thr = 1 << (decay); \ 684 typeof(old) ret; \ 685 if (((old) < thr) || ((new) < thr)) { \ 686 if (((old) == 1) && ((new) == 0)) \ 687 ret = 0; \ 688 else \ 689 ret = ((old) - ((old) >> 1)) + ((new) >> 1); \ 690 } else { \ 691 ret = ((old) - ((old) >> (decay))) + ((new) >> (decay)); \ 692 } \ 693 ret; \ 694 }) 695 696 /* 697 * log2_u32 - Compute the base 2 logarithm of a 32-bit exponential value. 698 * @v: The value for which we're computing the base 2 logarithm. 699 */ 700 static inline u32 log2_u32(u32 v) 701 { 702 u32 r; 703 u32 shift; 704 705 r = (v > 0xFFFF) << 4; v >>= r; 706 shift = (v > 0xFF) << 3; v >>= shift; r |= shift; 707 shift = (v > 0xF) << 2; v >>= shift; r |= shift; 708 shift = (v > 0x3) << 1; v >>= shift; r |= shift; 709 r |= (v >> 1); 710 return r; 711 } 712 713 /* 714 * log2_u64 - Compute the base 2 logarithm of a 64-bit exponential value. 715 * @v: The value for which we're computing the base 2 logarithm. 716 */ 717 static inline u32 log2_u64(u64 v) 718 { 719 u32 hi = v >> 32; 720 if (hi) 721 return log2_u32(hi) + 32 + 1; 722 else 723 return log2_u32(v) + 1; 724 } 725 726 /* 727 * sqrt_u64 - Calculate the square root of value @x using Newton's method. 728 */ 729 static inline u64 __sqrt_u64(u64 x) 730 { 731 if (x == 0 || x == 1) 732 return x; 733 734 u64 r = ((1ULL << 32) > x) ? x : (1ULL << 32); 735 736 for (int i = 0; i < 8; ++i) { 737 u64 q = x / r; 738 if (r <= q) 739 break; 740 r = (r + q) >> 1; 741 } 742 return r; 743 } 744 745 /* 746 * Return a value proportionally scaled to the task's weight. 747 */ 748 static inline u64 scale_by_task_weight(const struct task_struct *p, u64 value) 749 { 750 return (value * p->scx.weight) / 100; 751 } 752 753 /* 754 * Return a value inversely proportional to the task's weight. 755 */ 756 static inline u64 scale_by_task_weight_inverse(const struct task_struct *p, u64 value) 757 { 758 return value * 100 / p->scx.weight; 759 } 760 761 762 #include "compat.bpf.h" 763 #include "enums.bpf.h" 764 765 #endif /* __SCX_COMMON_BPF_H */ 766