162306a36Sopenharmony_ci// SPDX-License-Identifier: GPL-2.0 262306a36Sopenharmony_ci#include <linux/moduleloader.h> 362306a36Sopenharmony_ci#include <linux/workqueue.h> 462306a36Sopenharmony_ci#include <linux/netdevice.h> 562306a36Sopenharmony_ci#include <linux/filter.h> 662306a36Sopenharmony_ci#include <linux/cache.h> 762306a36Sopenharmony_ci#include <linux/if_vlan.h> 862306a36Sopenharmony_ci 962306a36Sopenharmony_ci#include <asm/cacheflush.h> 1062306a36Sopenharmony_ci#include <asm/ptrace.h> 1162306a36Sopenharmony_ci 1262306a36Sopenharmony_ci#include "bpf_jit_32.h" 1362306a36Sopenharmony_ci 1462306a36Sopenharmony_cistatic inline bool is_simm13(unsigned int value) 1562306a36Sopenharmony_ci{ 1662306a36Sopenharmony_ci return value + 0x1000 < 0x2000; 1762306a36Sopenharmony_ci} 1862306a36Sopenharmony_ci 1962306a36Sopenharmony_ci#define SEEN_DATAREF 1 /* might call external helpers */ 2062306a36Sopenharmony_ci#define SEEN_XREG 2 /* ebx is used */ 2162306a36Sopenharmony_ci#define SEEN_MEM 4 /* use mem[] for temporary storage */ 2262306a36Sopenharmony_ci 2362306a36Sopenharmony_ci#define S13(X) ((X) & 0x1fff) 2462306a36Sopenharmony_ci#define IMMED 0x00002000 2562306a36Sopenharmony_ci#define RD(X) ((X) << 25) 2662306a36Sopenharmony_ci#define RS1(X) ((X) << 14) 2762306a36Sopenharmony_ci#define RS2(X) ((X)) 2862306a36Sopenharmony_ci#define OP(X) ((X) << 30) 2962306a36Sopenharmony_ci#define OP2(X) ((X) << 22) 3062306a36Sopenharmony_ci#define OP3(X) ((X) << 19) 3162306a36Sopenharmony_ci#define COND(X) ((X) << 25) 3262306a36Sopenharmony_ci#define F1(X) OP(X) 3362306a36Sopenharmony_ci#define F2(X, Y) (OP(X) | OP2(Y)) 3462306a36Sopenharmony_ci#define F3(X, Y) (OP(X) | OP3(Y)) 3562306a36Sopenharmony_ci 3662306a36Sopenharmony_ci#define CONDN COND(0x0) 3762306a36Sopenharmony_ci#define CONDE COND(0x1) 3862306a36Sopenharmony_ci#define CONDLE COND(0x2) 3962306a36Sopenharmony_ci#define CONDL COND(0x3) 4062306a36Sopenharmony_ci#define CONDLEU COND(0x4) 4162306a36Sopenharmony_ci#define CONDCS COND(0x5) 4262306a36Sopenharmony_ci#define CONDNEG COND(0x6) 4362306a36Sopenharmony_ci#define CONDVC COND(0x7) 4462306a36Sopenharmony_ci#define CONDA COND(0x8) 4562306a36Sopenharmony_ci#define CONDNE COND(0x9) 4662306a36Sopenharmony_ci#define CONDG COND(0xa) 4762306a36Sopenharmony_ci#define CONDGE COND(0xb) 4862306a36Sopenharmony_ci#define CONDGU COND(0xc) 4962306a36Sopenharmony_ci#define CONDCC COND(0xd) 5062306a36Sopenharmony_ci#define CONDPOS COND(0xe) 5162306a36Sopenharmony_ci#define CONDVS COND(0xf) 5262306a36Sopenharmony_ci 5362306a36Sopenharmony_ci#define CONDGEU CONDCC 5462306a36Sopenharmony_ci#define CONDLU CONDCS 5562306a36Sopenharmony_ci 5662306a36Sopenharmony_ci#define WDISP22(X) (((X) >> 2) & 0x3fffff) 5762306a36Sopenharmony_ci 5862306a36Sopenharmony_ci#define BA (F2(0, 2) | CONDA) 5962306a36Sopenharmony_ci#define BGU (F2(0, 2) | CONDGU) 6062306a36Sopenharmony_ci#define BLEU (F2(0, 2) | CONDLEU) 6162306a36Sopenharmony_ci#define BGEU (F2(0, 2) | CONDGEU) 6262306a36Sopenharmony_ci#define BLU (F2(0, 2) | CONDLU) 6362306a36Sopenharmony_ci#define BE (F2(0, 2) | CONDE) 6462306a36Sopenharmony_ci#define BNE (F2(0, 2) | CONDNE) 6562306a36Sopenharmony_ci 6662306a36Sopenharmony_ci#define BE_PTR BE 6762306a36Sopenharmony_ci 6862306a36Sopenharmony_ci#define SETHI(K, REG) \ 6962306a36Sopenharmony_ci (F2(0, 0x4) | RD(REG) | (((K) >> 10) & 0x3fffff)) 7062306a36Sopenharmony_ci#define OR_LO(K, REG) \ 7162306a36Sopenharmony_ci (F3(2, 0x02) | IMMED | RS1(REG) | ((K) & 0x3ff) | RD(REG)) 7262306a36Sopenharmony_ci 7362306a36Sopenharmony_ci#define ADD F3(2, 0x00) 7462306a36Sopenharmony_ci#define AND F3(2, 0x01) 7562306a36Sopenharmony_ci#define ANDCC F3(2, 0x11) 7662306a36Sopenharmony_ci#define OR F3(2, 0x02) 7762306a36Sopenharmony_ci#define XOR F3(2, 0x03) 7862306a36Sopenharmony_ci#define SUB F3(2, 0x04) 7962306a36Sopenharmony_ci#define SUBCC F3(2, 0x14) 8062306a36Sopenharmony_ci#define MUL F3(2, 0x0a) /* umul */ 8162306a36Sopenharmony_ci#define DIV F3(2, 0x0e) /* udiv */ 8262306a36Sopenharmony_ci#define SLL F3(2, 0x25) 8362306a36Sopenharmony_ci#define SRL F3(2, 0x26) 8462306a36Sopenharmony_ci#define JMPL F3(2, 0x38) 8562306a36Sopenharmony_ci#define CALL F1(1) 8662306a36Sopenharmony_ci#define BR F2(0, 0x01) 8762306a36Sopenharmony_ci#define RD_Y F3(2, 0x28) 8862306a36Sopenharmony_ci#define WR_Y F3(2, 0x30) 8962306a36Sopenharmony_ci 9062306a36Sopenharmony_ci#define LD32 F3(3, 0x00) 9162306a36Sopenharmony_ci#define LD8 F3(3, 0x01) 9262306a36Sopenharmony_ci#define LD16 F3(3, 0x02) 9362306a36Sopenharmony_ci#define LD64 F3(3, 0x0b) 9462306a36Sopenharmony_ci#define ST32 F3(3, 0x04) 9562306a36Sopenharmony_ci 9662306a36Sopenharmony_ci#define LDPTR LD32 9762306a36Sopenharmony_ci#define BASE_STACKFRAME 96 9862306a36Sopenharmony_ci 9962306a36Sopenharmony_ci#define LD32I (LD32 | IMMED) 10062306a36Sopenharmony_ci#define LD8I (LD8 | IMMED) 10162306a36Sopenharmony_ci#define LD16I (LD16 | IMMED) 10262306a36Sopenharmony_ci#define LD64I (LD64 | IMMED) 10362306a36Sopenharmony_ci#define LDPTRI (LDPTR | IMMED) 10462306a36Sopenharmony_ci#define ST32I (ST32 | IMMED) 10562306a36Sopenharmony_ci 10662306a36Sopenharmony_ci#define emit_nop() \ 10762306a36Sopenharmony_cido { \ 10862306a36Sopenharmony_ci *prog++ = SETHI(0, G0); \ 10962306a36Sopenharmony_ci} while (0) 11062306a36Sopenharmony_ci 11162306a36Sopenharmony_ci#define emit_neg() \ 11262306a36Sopenharmony_cido { /* sub %g0, r_A, r_A */ \ 11362306a36Sopenharmony_ci *prog++ = SUB | RS1(G0) | RS2(r_A) | RD(r_A); \ 11462306a36Sopenharmony_ci} while (0) 11562306a36Sopenharmony_ci 11662306a36Sopenharmony_ci#define emit_reg_move(FROM, TO) \ 11762306a36Sopenharmony_cido { /* or %g0, FROM, TO */ \ 11862306a36Sopenharmony_ci *prog++ = OR | RS1(G0) | RS2(FROM) | RD(TO); \ 11962306a36Sopenharmony_ci} while (0) 12062306a36Sopenharmony_ci 12162306a36Sopenharmony_ci#define emit_clear(REG) \ 12262306a36Sopenharmony_cido { /* or %g0, %g0, REG */ \ 12362306a36Sopenharmony_ci *prog++ = OR | RS1(G0) | RS2(G0) | RD(REG); \ 12462306a36Sopenharmony_ci} while (0) 12562306a36Sopenharmony_ci 12662306a36Sopenharmony_ci#define emit_set_const(K, REG) \ 12762306a36Sopenharmony_cido { /* sethi %hi(K), REG */ \ 12862306a36Sopenharmony_ci *prog++ = SETHI(K, REG); \ 12962306a36Sopenharmony_ci /* or REG, %lo(K), REG */ \ 13062306a36Sopenharmony_ci *prog++ = OR_LO(K, REG); \ 13162306a36Sopenharmony_ci} while (0) 13262306a36Sopenharmony_ci 13362306a36Sopenharmony_ci /* Emit 13462306a36Sopenharmony_ci * 13562306a36Sopenharmony_ci * OP r_A, r_X, r_A 13662306a36Sopenharmony_ci */ 13762306a36Sopenharmony_ci#define emit_alu_X(OPCODE) \ 13862306a36Sopenharmony_cido { \ 13962306a36Sopenharmony_ci seen |= SEEN_XREG; \ 14062306a36Sopenharmony_ci *prog++ = OPCODE | RS1(r_A) | RS2(r_X) | RD(r_A); \ 14162306a36Sopenharmony_ci} while (0) 14262306a36Sopenharmony_ci 14362306a36Sopenharmony_ci /* Emit either: 14462306a36Sopenharmony_ci * 14562306a36Sopenharmony_ci * OP r_A, K, r_A 14662306a36Sopenharmony_ci * 14762306a36Sopenharmony_ci * or 14862306a36Sopenharmony_ci * 14962306a36Sopenharmony_ci * sethi %hi(K), r_TMP 15062306a36Sopenharmony_ci * or r_TMP, %lo(K), r_TMP 15162306a36Sopenharmony_ci * OP r_A, r_TMP, r_A 15262306a36Sopenharmony_ci * 15362306a36Sopenharmony_ci * depending upon whether K fits in a signed 13-bit 15462306a36Sopenharmony_ci * immediate instruction field. Emit nothing if K 15562306a36Sopenharmony_ci * is zero. 15662306a36Sopenharmony_ci */ 15762306a36Sopenharmony_ci#define emit_alu_K(OPCODE, K) \ 15862306a36Sopenharmony_cido { \ 15962306a36Sopenharmony_ci if (K || OPCODE == AND || OPCODE == MUL) { \ 16062306a36Sopenharmony_ci unsigned int _insn = OPCODE; \ 16162306a36Sopenharmony_ci _insn |= RS1(r_A) | RD(r_A); \ 16262306a36Sopenharmony_ci if (is_simm13(K)) { \ 16362306a36Sopenharmony_ci *prog++ = _insn | IMMED | S13(K); \ 16462306a36Sopenharmony_ci } else { \ 16562306a36Sopenharmony_ci emit_set_const(K, r_TMP); \ 16662306a36Sopenharmony_ci *prog++ = _insn | RS2(r_TMP); \ 16762306a36Sopenharmony_ci } \ 16862306a36Sopenharmony_ci } \ 16962306a36Sopenharmony_ci} while (0) 17062306a36Sopenharmony_ci 17162306a36Sopenharmony_ci#define emit_loadimm(K, DEST) \ 17262306a36Sopenharmony_cido { \ 17362306a36Sopenharmony_ci if (is_simm13(K)) { \ 17462306a36Sopenharmony_ci /* or %g0, K, DEST */ \ 17562306a36Sopenharmony_ci *prog++ = OR | IMMED | RS1(G0) | S13(K) | RD(DEST); \ 17662306a36Sopenharmony_ci } else { \ 17762306a36Sopenharmony_ci emit_set_const(K, DEST); \ 17862306a36Sopenharmony_ci } \ 17962306a36Sopenharmony_ci} while (0) 18062306a36Sopenharmony_ci 18162306a36Sopenharmony_ci#define emit_loadptr(BASE, STRUCT, FIELD, DEST) \ 18262306a36Sopenharmony_cido { unsigned int _off = offsetof(STRUCT, FIELD); \ 18362306a36Sopenharmony_ci BUILD_BUG_ON(sizeof_field(STRUCT, FIELD) != sizeof(void *)); \ 18462306a36Sopenharmony_ci *prog++ = LDPTRI | RS1(BASE) | S13(_off) | RD(DEST); \ 18562306a36Sopenharmony_ci} while (0) 18662306a36Sopenharmony_ci 18762306a36Sopenharmony_ci#define emit_load32(BASE, STRUCT, FIELD, DEST) \ 18862306a36Sopenharmony_cido { unsigned int _off = offsetof(STRUCT, FIELD); \ 18962306a36Sopenharmony_ci BUILD_BUG_ON(sizeof_field(STRUCT, FIELD) != sizeof(u32)); \ 19062306a36Sopenharmony_ci *prog++ = LD32I | RS1(BASE) | S13(_off) | RD(DEST); \ 19162306a36Sopenharmony_ci} while (0) 19262306a36Sopenharmony_ci 19362306a36Sopenharmony_ci#define emit_load16(BASE, STRUCT, FIELD, DEST) \ 19462306a36Sopenharmony_cido { unsigned int _off = offsetof(STRUCT, FIELD); \ 19562306a36Sopenharmony_ci BUILD_BUG_ON(sizeof_field(STRUCT, FIELD) != sizeof(u16)); \ 19662306a36Sopenharmony_ci *prog++ = LD16I | RS1(BASE) | S13(_off) | RD(DEST); \ 19762306a36Sopenharmony_ci} while (0) 19862306a36Sopenharmony_ci 19962306a36Sopenharmony_ci#define __emit_load8(BASE, STRUCT, FIELD, DEST) \ 20062306a36Sopenharmony_cido { unsigned int _off = offsetof(STRUCT, FIELD); \ 20162306a36Sopenharmony_ci *prog++ = LD8I | RS1(BASE) | S13(_off) | RD(DEST); \ 20262306a36Sopenharmony_ci} while (0) 20362306a36Sopenharmony_ci 20462306a36Sopenharmony_ci#define emit_load8(BASE, STRUCT, FIELD, DEST) \ 20562306a36Sopenharmony_cido { BUILD_BUG_ON(sizeof_field(STRUCT, FIELD) != sizeof(u8)); \ 20662306a36Sopenharmony_ci __emit_load8(BASE, STRUCT, FIELD, DEST); \ 20762306a36Sopenharmony_ci} while (0) 20862306a36Sopenharmony_ci 20962306a36Sopenharmony_ci#define BIAS (-4) 21062306a36Sopenharmony_ci 21162306a36Sopenharmony_ci#define emit_ldmem(OFF, DEST) \ 21262306a36Sopenharmony_cido { *prog++ = LD32I | RS1(SP) | S13(BIAS - (OFF)) | RD(DEST); \ 21362306a36Sopenharmony_ci} while (0) 21462306a36Sopenharmony_ci 21562306a36Sopenharmony_ci#define emit_stmem(OFF, SRC) \ 21662306a36Sopenharmony_cido { *prog++ = ST32I | RS1(SP) | S13(BIAS - (OFF)) | RD(SRC); \ 21762306a36Sopenharmony_ci} while (0) 21862306a36Sopenharmony_ci 21962306a36Sopenharmony_ci#ifdef CONFIG_SMP 22062306a36Sopenharmony_ci#define emit_load_cpu(REG) \ 22162306a36Sopenharmony_ci emit_load32(G6, struct thread_info, cpu, REG) 22262306a36Sopenharmony_ci#else 22362306a36Sopenharmony_ci#define emit_load_cpu(REG) emit_clear(REG) 22462306a36Sopenharmony_ci#endif 22562306a36Sopenharmony_ci 22662306a36Sopenharmony_ci#define emit_skb_loadptr(FIELD, DEST) \ 22762306a36Sopenharmony_ci emit_loadptr(r_SKB, struct sk_buff, FIELD, DEST) 22862306a36Sopenharmony_ci#define emit_skb_load32(FIELD, DEST) \ 22962306a36Sopenharmony_ci emit_load32(r_SKB, struct sk_buff, FIELD, DEST) 23062306a36Sopenharmony_ci#define emit_skb_load16(FIELD, DEST) \ 23162306a36Sopenharmony_ci emit_load16(r_SKB, struct sk_buff, FIELD, DEST) 23262306a36Sopenharmony_ci#define __emit_skb_load8(FIELD, DEST) \ 23362306a36Sopenharmony_ci __emit_load8(r_SKB, struct sk_buff, FIELD, DEST) 23462306a36Sopenharmony_ci#define emit_skb_load8(FIELD, DEST) \ 23562306a36Sopenharmony_ci emit_load8(r_SKB, struct sk_buff, FIELD, DEST) 23662306a36Sopenharmony_ci 23762306a36Sopenharmony_ci#define emit_jmpl(BASE, IMM_OFF, LREG) \ 23862306a36Sopenharmony_ci *prog++ = (JMPL | IMMED | RS1(BASE) | S13(IMM_OFF) | RD(LREG)) 23962306a36Sopenharmony_ci 24062306a36Sopenharmony_ci#define emit_call(FUNC) \ 24162306a36Sopenharmony_cido { void *_here = image + addrs[i] - 8; \ 24262306a36Sopenharmony_ci unsigned int _off = (void *)(FUNC) - _here; \ 24362306a36Sopenharmony_ci *prog++ = CALL | (((_off) >> 2) & 0x3fffffff); \ 24462306a36Sopenharmony_ci emit_nop(); \ 24562306a36Sopenharmony_ci} while (0) 24662306a36Sopenharmony_ci 24762306a36Sopenharmony_ci#define emit_branch(BR_OPC, DEST) \ 24862306a36Sopenharmony_cido { unsigned int _here = addrs[i] - 8; \ 24962306a36Sopenharmony_ci *prog++ = BR_OPC | WDISP22((DEST) - _here); \ 25062306a36Sopenharmony_ci} while (0) 25162306a36Sopenharmony_ci 25262306a36Sopenharmony_ci#define emit_branch_off(BR_OPC, OFF) \ 25362306a36Sopenharmony_cido { *prog++ = BR_OPC | WDISP22(OFF); \ 25462306a36Sopenharmony_ci} while (0) 25562306a36Sopenharmony_ci 25662306a36Sopenharmony_ci#define emit_jump(DEST) emit_branch(BA, DEST) 25762306a36Sopenharmony_ci 25862306a36Sopenharmony_ci#define emit_read_y(REG) *prog++ = RD_Y | RD(REG) 25962306a36Sopenharmony_ci#define emit_write_y(REG) *prog++ = WR_Y | IMMED | RS1(REG) | S13(0) 26062306a36Sopenharmony_ci 26162306a36Sopenharmony_ci#define emit_cmp(R1, R2) \ 26262306a36Sopenharmony_ci *prog++ = (SUBCC | RS1(R1) | RS2(R2) | RD(G0)) 26362306a36Sopenharmony_ci 26462306a36Sopenharmony_ci#define emit_cmpi(R1, IMM) \ 26562306a36Sopenharmony_ci *prog++ = (SUBCC | IMMED | RS1(R1) | S13(IMM) | RD(G0)); 26662306a36Sopenharmony_ci 26762306a36Sopenharmony_ci#define emit_btst(R1, R2) \ 26862306a36Sopenharmony_ci *prog++ = (ANDCC | RS1(R1) | RS2(R2) | RD(G0)) 26962306a36Sopenharmony_ci 27062306a36Sopenharmony_ci#define emit_btsti(R1, IMM) \ 27162306a36Sopenharmony_ci *prog++ = (ANDCC | IMMED | RS1(R1) | S13(IMM) | RD(G0)); 27262306a36Sopenharmony_ci 27362306a36Sopenharmony_ci#define emit_sub(R1, R2, R3) \ 27462306a36Sopenharmony_ci *prog++ = (SUB | RS1(R1) | RS2(R2) | RD(R3)) 27562306a36Sopenharmony_ci 27662306a36Sopenharmony_ci#define emit_subi(R1, IMM, R3) \ 27762306a36Sopenharmony_ci *prog++ = (SUB | IMMED | RS1(R1) | S13(IMM) | RD(R3)) 27862306a36Sopenharmony_ci 27962306a36Sopenharmony_ci#define emit_add(R1, R2, R3) \ 28062306a36Sopenharmony_ci *prog++ = (ADD | RS1(R1) | RS2(R2) | RD(R3)) 28162306a36Sopenharmony_ci 28262306a36Sopenharmony_ci#define emit_addi(R1, IMM, R3) \ 28362306a36Sopenharmony_ci *prog++ = (ADD | IMMED | RS1(R1) | S13(IMM) | RD(R3)) 28462306a36Sopenharmony_ci 28562306a36Sopenharmony_ci#define emit_and(R1, R2, R3) \ 28662306a36Sopenharmony_ci *prog++ = (AND | RS1(R1) | RS2(R2) | RD(R3)) 28762306a36Sopenharmony_ci 28862306a36Sopenharmony_ci#define emit_andi(R1, IMM, R3) \ 28962306a36Sopenharmony_ci *prog++ = (AND | IMMED | RS1(R1) | S13(IMM) | RD(R3)) 29062306a36Sopenharmony_ci 29162306a36Sopenharmony_ci#define emit_alloc_stack(SZ) \ 29262306a36Sopenharmony_ci *prog++ = (SUB | IMMED | RS1(SP) | S13(SZ) | RD(SP)) 29362306a36Sopenharmony_ci 29462306a36Sopenharmony_ci#define emit_release_stack(SZ) \ 29562306a36Sopenharmony_ci *prog++ = (ADD | IMMED | RS1(SP) | S13(SZ) | RD(SP)) 29662306a36Sopenharmony_ci 29762306a36Sopenharmony_ci/* A note about branch offset calculations. The addrs[] array, 29862306a36Sopenharmony_ci * indexed by BPF instruction, records the address after all the 29962306a36Sopenharmony_ci * sparc instructions emitted for that BPF instruction. 30062306a36Sopenharmony_ci * 30162306a36Sopenharmony_ci * The most common case is to emit a branch at the end of such 30262306a36Sopenharmony_ci * a code sequence. So this would be two instructions, the 30362306a36Sopenharmony_ci * branch and it's delay slot. 30462306a36Sopenharmony_ci * 30562306a36Sopenharmony_ci * Therefore by default the branch emitters calculate the branch 30662306a36Sopenharmony_ci * offset field as: 30762306a36Sopenharmony_ci * 30862306a36Sopenharmony_ci * destination - (addrs[i] - 8) 30962306a36Sopenharmony_ci * 31062306a36Sopenharmony_ci * This "addrs[i] - 8" is the address of the branch itself or 31162306a36Sopenharmony_ci * what "." would be in assembler notation. The "8" part is 31262306a36Sopenharmony_ci * how we take into consideration the branch and it's delay 31362306a36Sopenharmony_ci * slot mentioned above. 31462306a36Sopenharmony_ci * 31562306a36Sopenharmony_ci * Sometimes we need to emit a branch earlier in the code 31662306a36Sopenharmony_ci * sequence. And in these situations we adjust "destination" 31762306a36Sopenharmony_ci * to accommodate this difference. For example, if we needed 31862306a36Sopenharmony_ci * to emit a branch (and it's delay slot) right before the 31962306a36Sopenharmony_ci * final instruction emitted for a BPF opcode, we'd use 32062306a36Sopenharmony_ci * "destination + 4" instead of just plain "destination" above. 32162306a36Sopenharmony_ci * 32262306a36Sopenharmony_ci * This is why you see all of these funny emit_branch() and 32362306a36Sopenharmony_ci * emit_jump() calls with adjusted offsets. 32462306a36Sopenharmony_ci */ 32562306a36Sopenharmony_ci 32662306a36Sopenharmony_civoid bpf_jit_compile(struct bpf_prog *fp) 32762306a36Sopenharmony_ci{ 32862306a36Sopenharmony_ci unsigned int cleanup_addr, proglen, oldproglen = 0; 32962306a36Sopenharmony_ci u32 temp[8], *prog, *func, seen = 0, pass; 33062306a36Sopenharmony_ci const struct sock_filter *filter = fp->insns; 33162306a36Sopenharmony_ci int i, flen = fp->len, pc_ret0 = -1; 33262306a36Sopenharmony_ci unsigned int *addrs; 33362306a36Sopenharmony_ci void *image; 33462306a36Sopenharmony_ci 33562306a36Sopenharmony_ci if (!bpf_jit_enable) 33662306a36Sopenharmony_ci return; 33762306a36Sopenharmony_ci 33862306a36Sopenharmony_ci addrs = kmalloc_array(flen, sizeof(*addrs), GFP_KERNEL); 33962306a36Sopenharmony_ci if (addrs == NULL) 34062306a36Sopenharmony_ci return; 34162306a36Sopenharmony_ci 34262306a36Sopenharmony_ci /* Before first pass, make a rough estimation of addrs[] 34362306a36Sopenharmony_ci * each bpf instruction is translated to less than 64 bytes 34462306a36Sopenharmony_ci */ 34562306a36Sopenharmony_ci for (proglen = 0, i = 0; i < flen; i++) { 34662306a36Sopenharmony_ci proglen += 64; 34762306a36Sopenharmony_ci addrs[i] = proglen; 34862306a36Sopenharmony_ci } 34962306a36Sopenharmony_ci cleanup_addr = proglen; /* epilogue address */ 35062306a36Sopenharmony_ci image = NULL; 35162306a36Sopenharmony_ci for (pass = 0; pass < 10; pass++) { 35262306a36Sopenharmony_ci u8 seen_or_pass0 = (pass == 0) ? (SEEN_XREG | SEEN_DATAREF | SEEN_MEM) : seen; 35362306a36Sopenharmony_ci 35462306a36Sopenharmony_ci /* no prologue/epilogue for trivial filters (RET something) */ 35562306a36Sopenharmony_ci proglen = 0; 35662306a36Sopenharmony_ci prog = temp; 35762306a36Sopenharmony_ci 35862306a36Sopenharmony_ci /* Prologue */ 35962306a36Sopenharmony_ci if (seen_or_pass0) { 36062306a36Sopenharmony_ci if (seen_or_pass0 & SEEN_MEM) { 36162306a36Sopenharmony_ci unsigned int sz = BASE_STACKFRAME; 36262306a36Sopenharmony_ci sz += BPF_MEMWORDS * sizeof(u32); 36362306a36Sopenharmony_ci emit_alloc_stack(sz); 36462306a36Sopenharmony_ci } 36562306a36Sopenharmony_ci 36662306a36Sopenharmony_ci /* Make sure we dont leek kernel memory. */ 36762306a36Sopenharmony_ci if (seen_or_pass0 & SEEN_XREG) 36862306a36Sopenharmony_ci emit_clear(r_X); 36962306a36Sopenharmony_ci 37062306a36Sopenharmony_ci /* If this filter needs to access skb data, 37162306a36Sopenharmony_ci * load %o4 and %o5 with: 37262306a36Sopenharmony_ci * %o4 = skb->len - skb->data_len 37362306a36Sopenharmony_ci * %o5 = skb->data 37462306a36Sopenharmony_ci * And also back up %o7 into r_saved_O7 so we can 37562306a36Sopenharmony_ci * invoke the stubs using 'call'. 37662306a36Sopenharmony_ci */ 37762306a36Sopenharmony_ci if (seen_or_pass0 & SEEN_DATAREF) { 37862306a36Sopenharmony_ci emit_load32(r_SKB, struct sk_buff, len, r_HEADLEN); 37962306a36Sopenharmony_ci emit_load32(r_SKB, struct sk_buff, data_len, r_TMP); 38062306a36Sopenharmony_ci emit_sub(r_HEADLEN, r_TMP, r_HEADLEN); 38162306a36Sopenharmony_ci emit_loadptr(r_SKB, struct sk_buff, data, r_SKB_DATA); 38262306a36Sopenharmony_ci } 38362306a36Sopenharmony_ci } 38462306a36Sopenharmony_ci emit_reg_move(O7, r_saved_O7); 38562306a36Sopenharmony_ci 38662306a36Sopenharmony_ci /* Make sure we dont leak kernel information to the user. */ 38762306a36Sopenharmony_ci if (bpf_needs_clear_a(&filter[0])) 38862306a36Sopenharmony_ci emit_clear(r_A); /* A = 0 */ 38962306a36Sopenharmony_ci 39062306a36Sopenharmony_ci for (i = 0; i < flen; i++) { 39162306a36Sopenharmony_ci unsigned int K = filter[i].k; 39262306a36Sopenharmony_ci unsigned int t_offset; 39362306a36Sopenharmony_ci unsigned int f_offset; 39462306a36Sopenharmony_ci u32 t_op, f_op; 39562306a36Sopenharmony_ci u16 code = bpf_anc_helper(&filter[i]); 39662306a36Sopenharmony_ci int ilen; 39762306a36Sopenharmony_ci 39862306a36Sopenharmony_ci switch (code) { 39962306a36Sopenharmony_ci case BPF_ALU | BPF_ADD | BPF_X: /* A += X; */ 40062306a36Sopenharmony_ci emit_alu_X(ADD); 40162306a36Sopenharmony_ci break; 40262306a36Sopenharmony_ci case BPF_ALU | BPF_ADD | BPF_K: /* A += K; */ 40362306a36Sopenharmony_ci emit_alu_K(ADD, K); 40462306a36Sopenharmony_ci break; 40562306a36Sopenharmony_ci case BPF_ALU | BPF_SUB | BPF_X: /* A -= X; */ 40662306a36Sopenharmony_ci emit_alu_X(SUB); 40762306a36Sopenharmony_ci break; 40862306a36Sopenharmony_ci case BPF_ALU | BPF_SUB | BPF_K: /* A -= K */ 40962306a36Sopenharmony_ci emit_alu_K(SUB, K); 41062306a36Sopenharmony_ci break; 41162306a36Sopenharmony_ci case BPF_ALU | BPF_AND | BPF_X: /* A &= X */ 41262306a36Sopenharmony_ci emit_alu_X(AND); 41362306a36Sopenharmony_ci break; 41462306a36Sopenharmony_ci case BPF_ALU | BPF_AND | BPF_K: /* A &= K */ 41562306a36Sopenharmony_ci emit_alu_K(AND, K); 41662306a36Sopenharmony_ci break; 41762306a36Sopenharmony_ci case BPF_ALU | BPF_OR | BPF_X: /* A |= X */ 41862306a36Sopenharmony_ci emit_alu_X(OR); 41962306a36Sopenharmony_ci break; 42062306a36Sopenharmony_ci case BPF_ALU | BPF_OR | BPF_K: /* A |= K */ 42162306a36Sopenharmony_ci emit_alu_K(OR, K); 42262306a36Sopenharmony_ci break; 42362306a36Sopenharmony_ci case BPF_ANC | SKF_AD_ALU_XOR_X: /* A ^= X; */ 42462306a36Sopenharmony_ci case BPF_ALU | BPF_XOR | BPF_X: 42562306a36Sopenharmony_ci emit_alu_X(XOR); 42662306a36Sopenharmony_ci break; 42762306a36Sopenharmony_ci case BPF_ALU | BPF_XOR | BPF_K: /* A ^= K */ 42862306a36Sopenharmony_ci emit_alu_K(XOR, K); 42962306a36Sopenharmony_ci break; 43062306a36Sopenharmony_ci case BPF_ALU | BPF_LSH | BPF_X: /* A <<= X */ 43162306a36Sopenharmony_ci emit_alu_X(SLL); 43262306a36Sopenharmony_ci break; 43362306a36Sopenharmony_ci case BPF_ALU | BPF_LSH | BPF_K: /* A <<= K */ 43462306a36Sopenharmony_ci emit_alu_K(SLL, K); 43562306a36Sopenharmony_ci break; 43662306a36Sopenharmony_ci case BPF_ALU | BPF_RSH | BPF_X: /* A >>= X */ 43762306a36Sopenharmony_ci emit_alu_X(SRL); 43862306a36Sopenharmony_ci break; 43962306a36Sopenharmony_ci case BPF_ALU | BPF_RSH | BPF_K: /* A >>= K */ 44062306a36Sopenharmony_ci emit_alu_K(SRL, K); 44162306a36Sopenharmony_ci break; 44262306a36Sopenharmony_ci case BPF_ALU | BPF_MUL | BPF_X: /* A *= X; */ 44362306a36Sopenharmony_ci emit_alu_X(MUL); 44462306a36Sopenharmony_ci break; 44562306a36Sopenharmony_ci case BPF_ALU | BPF_MUL | BPF_K: /* A *= K */ 44662306a36Sopenharmony_ci emit_alu_K(MUL, K); 44762306a36Sopenharmony_ci break; 44862306a36Sopenharmony_ci case BPF_ALU | BPF_DIV | BPF_K: /* A /= K with K != 0*/ 44962306a36Sopenharmony_ci if (K == 1) 45062306a36Sopenharmony_ci break; 45162306a36Sopenharmony_ci emit_write_y(G0); 45262306a36Sopenharmony_ci /* The Sparc v8 architecture requires 45362306a36Sopenharmony_ci * three instructions between a %y 45462306a36Sopenharmony_ci * register write and the first use. 45562306a36Sopenharmony_ci */ 45662306a36Sopenharmony_ci emit_nop(); 45762306a36Sopenharmony_ci emit_nop(); 45862306a36Sopenharmony_ci emit_nop(); 45962306a36Sopenharmony_ci emit_alu_K(DIV, K); 46062306a36Sopenharmony_ci break; 46162306a36Sopenharmony_ci case BPF_ALU | BPF_DIV | BPF_X: /* A /= X; */ 46262306a36Sopenharmony_ci emit_cmpi(r_X, 0); 46362306a36Sopenharmony_ci if (pc_ret0 > 0) { 46462306a36Sopenharmony_ci t_offset = addrs[pc_ret0 - 1]; 46562306a36Sopenharmony_ci emit_branch(BE, t_offset + 20); 46662306a36Sopenharmony_ci emit_nop(); /* delay slot */ 46762306a36Sopenharmony_ci } else { 46862306a36Sopenharmony_ci emit_branch_off(BNE, 16); 46962306a36Sopenharmony_ci emit_nop(); 47062306a36Sopenharmony_ci emit_jump(cleanup_addr + 20); 47162306a36Sopenharmony_ci emit_clear(r_A); 47262306a36Sopenharmony_ci } 47362306a36Sopenharmony_ci emit_write_y(G0); 47462306a36Sopenharmony_ci /* The Sparc v8 architecture requires 47562306a36Sopenharmony_ci * three instructions between a %y 47662306a36Sopenharmony_ci * register write and the first use. 47762306a36Sopenharmony_ci */ 47862306a36Sopenharmony_ci emit_nop(); 47962306a36Sopenharmony_ci emit_nop(); 48062306a36Sopenharmony_ci emit_nop(); 48162306a36Sopenharmony_ci emit_alu_X(DIV); 48262306a36Sopenharmony_ci break; 48362306a36Sopenharmony_ci case BPF_ALU | BPF_NEG: 48462306a36Sopenharmony_ci emit_neg(); 48562306a36Sopenharmony_ci break; 48662306a36Sopenharmony_ci case BPF_RET | BPF_K: 48762306a36Sopenharmony_ci if (!K) { 48862306a36Sopenharmony_ci if (pc_ret0 == -1) 48962306a36Sopenharmony_ci pc_ret0 = i; 49062306a36Sopenharmony_ci emit_clear(r_A); 49162306a36Sopenharmony_ci } else { 49262306a36Sopenharmony_ci emit_loadimm(K, r_A); 49362306a36Sopenharmony_ci } 49462306a36Sopenharmony_ci fallthrough; 49562306a36Sopenharmony_ci case BPF_RET | BPF_A: 49662306a36Sopenharmony_ci if (seen_or_pass0) { 49762306a36Sopenharmony_ci if (i != flen - 1) { 49862306a36Sopenharmony_ci emit_jump(cleanup_addr); 49962306a36Sopenharmony_ci emit_nop(); 50062306a36Sopenharmony_ci break; 50162306a36Sopenharmony_ci } 50262306a36Sopenharmony_ci if (seen_or_pass0 & SEEN_MEM) { 50362306a36Sopenharmony_ci unsigned int sz = BASE_STACKFRAME; 50462306a36Sopenharmony_ci sz += BPF_MEMWORDS * sizeof(u32); 50562306a36Sopenharmony_ci emit_release_stack(sz); 50662306a36Sopenharmony_ci } 50762306a36Sopenharmony_ci } 50862306a36Sopenharmony_ci /* jmpl %r_saved_O7 + 8, %g0 */ 50962306a36Sopenharmony_ci emit_jmpl(r_saved_O7, 8, G0); 51062306a36Sopenharmony_ci emit_reg_move(r_A, O0); /* delay slot */ 51162306a36Sopenharmony_ci break; 51262306a36Sopenharmony_ci case BPF_MISC | BPF_TAX: 51362306a36Sopenharmony_ci seen |= SEEN_XREG; 51462306a36Sopenharmony_ci emit_reg_move(r_A, r_X); 51562306a36Sopenharmony_ci break; 51662306a36Sopenharmony_ci case BPF_MISC | BPF_TXA: 51762306a36Sopenharmony_ci seen |= SEEN_XREG; 51862306a36Sopenharmony_ci emit_reg_move(r_X, r_A); 51962306a36Sopenharmony_ci break; 52062306a36Sopenharmony_ci case BPF_ANC | SKF_AD_CPU: 52162306a36Sopenharmony_ci emit_load_cpu(r_A); 52262306a36Sopenharmony_ci break; 52362306a36Sopenharmony_ci case BPF_ANC | SKF_AD_PROTOCOL: 52462306a36Sopenharmony_ci emit_skb_load16(protocol, r_A); 52562306a36Sopenharmony_ci break; 52662306a36Sopenharmony_ci case BPF_ANC | SKF_AD_PKTTYPE: 52762306a36Sopenharmony_ci __emit_skb_load8(__pkt_type_offset, r_A); 52862306a36Sopenharmony_ci emit_andi(r_A, PKT_TYPE_MAX, r_A); 52962306a36Sopenharmony_ci emit_alu_K(SRL, 5); 53062306a36Sopenharmony_ci break; 53162306a36Sopenharmony_ci case BPF_ANC | SKF_AD_IFINDEX: 53262306a36Sopenharmony_ci emit_skb_loadptr(dev, r_A); 53362306a36Sopenharmony_ci emit_cmpi(r_A, 0); 53462306a36Sopenharmony_ci emit_branch(BE_PTR, cleanup_addr + 4); 53562306a36Sopenharmony_ci emit_nop(); 53662306a36Sopenharmony_ci emit_load32(r_A, struct net_device, ifindex, r_A); 53762306a36Sopenharmony_ci break; 53862306a36Sopenharmony_ci case BPF_ANC | SKF_AD_MARK: 53962306a36Sopenharmony_ci emit_skb_load32(mark, r_A); 54062306a36Sopenharmony_ci break; 54162306a36Sopenharmony_ci case BPF_ANC | SKF_AD_QUEUE: 54262306a36Sopenharmony_ci emit_skb_load16(queue_mapping, r_A); 54362306a36Sopenharmony_ci break; 54462306a36Sopenharmony_ci case BPF_ANC | SKF_AD_HATYPE: 54562306a36Sopenharmony_ci emit_skb_loadptr(dev, r_A); 54662306a36Sopenharmony_ci emit_cmpi(r_A, 0); 54762306a36Sopenharmony_ci emit_branch(BE_PTR, cleanup_addr + 4); 54862306a36Sopenharmony_ci emit_nop(); 54962306a36Sopenharmony_ci emit_load16(r_A, struct net_device, type, r_A); 55062306a36Sopenharmony_ci break; 55162306a36Sopenharmony_ci case BPF_ANC | SKF_AD_RXHASH: 55262306a36Sopenharmony_ci emit_skb_load32(hash, r_A); 55362306a36Sopenharmony_ci break; 55462306a36Sopenharmony_ci case BPF_ANC | SKF_AD_VLAN_TAG: 55562306a36Sopenharmony_ci emit_skb_load16(vlan_tci, r_A); 55662306a36Sopenharmony_ci break; 55762306a36Sopenharmony_ci case BPF_ANC | SKF_AD_VLAN_TAG_PRESENT: 55862306a36Sopenharmony_ci emit_skb_load32(vlan_all, r_A); 55962306a36Sopenharmony_ci emit_cmpi(r_A, 0); 56062306a36Sopenharmony_ci emit_branch_off(BE, 12); 56162306a36Sopenharmony_ci emit_nop(); 56262306a36Sopenharmony_ci emit_loadimm(1, r_A); 56362306a36Sopenharmony_ci break; 56462306a36Sopenharmony_ci case BPF_LD | BPF_W | BPF_LEN: 56562306a36Sopenharmony_ci emit_skb_load32(len, r_A); 56662306a36Sopenharmony_ci break; 56762306a36Sopenharmony_ci case BPF_LDX | BPF_W | BPF_LEN: 56862306a36Sopenharmony_ci emit_skb_load32(len, r_X); 56962306a36Sopenharmony_ci break; 57062306a36Sopenharmony_ci case BPF_LD | BPF_IMM: 57162306a36Sopenharmony_ci emit_loadimm(K, r_A); 57262306a36Sopenharmony_ci break; 57362306a36Sopenharmony_ci case BPF_LDX | BPF_IMM: 57462306a36Sopenharmony_ci emit_loadimm(K, r_X); 57562306a36Sopenharmony_ci break; 57662306a36Sopenharmony_ci case BPF_LD | BPF_MEM: 57762306a36Sopenharmony_ci seen |= SEEN_MEM; 57862306a36Sopenharmony_ci emit_ldmem(K * 4, r_A); 57962306a36Sopenharmony_ci break; 58062306a36Sopenharmony_ci case BPF_LDX | BPF_MEM: 58162306a36Sopenharmony_ci seen |= SEEN_MEM | SEEN_XREG; 58262306a36Sopenharmony_ci emit_ldmem(K * 4, r_X); 58362306a36Sopenharmony_ci break; 58462306a36Sopenharmony_ci case BPF_ST: 58562306a36Sopenharmony_ci seen |= SEEN_MEM; 58662306a36Sopenharmony_ci emit_stmem(K * 4, r_A); 58762306a36Sopenharmony_ci break; 58862306a36Sopenharmony_ci case BPF_STX: 58962306a36Sopenharmony_ci seen |= SEEN_MEM | SEEN_XREG; 59062306a36Sopenharmony_ci emit_stmem(K * 4, r_X); 59162306a36Sopenharmony_ci break; 59262306a36Sopenharmony_ci 59362306a36Sopenharmony_ci#define CHOOSE_LOAD_FUNC(K, func) \ 59462306a36Sopenharmony_ci ((int)K < 0 ? ((int)K >= SKF_LL_OFF ? func##_negative_offset : func) : func##_positive_offset) 59562306a36Sopenharmony_ci 59662306a36Sopenharmony_ci case BPF_LD | BPF_W | BPF_ABS: 59762306a36Sopenharmony_ci func = CHOOSE_LOAD_FUNC(K, bpf_jit_load_word); 59862306a36Sopenharmony_cicommon_load: seen |= SEEN_DATAREF; 59962306a36Sopenharmony_ci emit_loadimm(K, r_OFF); 60062306a36Sopenharmony_ci emit_call(func); 60162306a36Sopenharmony_ci break; 60262306a36Sopenharmony_ci case BPF_LD | BPF_H | BPF_ABS: 60362306a36Sopenharmony_ci func = CHOOSE_LOAD_FUNC(K, bpf_jit_load_half); 60462306a36Sopenharmony_ci goto common_load; 60562306a36Sopenharmony_ci case BPF_LD | BPF_B | BPF_ABS: 60662306a36Sopenharmony_ci func = CHOOSE_LOAD_FUNC(K, bpf_jit_load_byte); 60762306a36Sopenharmony_ci goto common_load; 60862306a36Sopenharmony_ci case BPF_LDX | BPF_B | BPF_MSH: 60962306a36Sopenharmony_ci func = CHOOSE_LOAD_FUNC(K, bpf_jit_load_byte_msh); 61062306a36Sopenharmony_ci goto common_load; 61162306a36Sopenharmony_ci case BPF_LD | BPF_W | BPF_IND: 61262306a36Sopenharmony_ci func = bpf_jit_load_word; 61362306a36Sopenharmony_cicommon_load_ind: seen |= SEEN_DATAREF | SEEN_XREG; 61462306a36Sopenharmony_ci if (K) { 61562306a36Sopenharmony_ci if (is_simm13(K)) { 61662306a36Sopenharmony_ci emit_addi(r_X, K, r_OFF); 61762306a36Sopenharmony_ci } else { 61862306a36Sopenharmony_ci emit_loadimm(K, r_TMP); 61962306a36Sopenharmony_ci emit_add(r_X, r_TMP, r_OFF); 62062306a36Sopenharmony_ci } 62162306a36Sopenharmony_ci } else { 62262306a36Sopenharmony_ci emit_reg_move(r_X, r_OFF); 62362306a36Sopenharmony_ci } 62462306a36Sopenharmony_ci emit_call(func); 62562306a36Sopenharmony_ci break; 62662306a36Sopenharmony_ci case BPF_LD | BPF_H | BPF_IND: 62762306a36Sopenharmony_ci func = bpf_jit_load_half; 62862306a36Sopenharmony_ci goto common_load_ind; 62962306a36Sopenharmony_ci case BPF_LD | BPF_B | BPF_IND: 63062306a36Sopenharmony_ci func = bpf_jit_load_byte; 63162306a36Sopenharmony_ci goto common_load_ind; 63262306a36Sopenharmony_ci case BPF_JMP | BPF_JA: 63362306a36Sopenharmony_ci emit_jump(addrs[i + K]); 63462306a36Sopenharmony_ci emit_nop(); 63562306a36Sopenharmony_ci break; 63662306a36Sopenharmony_ci 63762306a36Sopenharmony_ci#define COND_SEL(CODE, TOP, FOP) \ 63862306a36Sopenharmony_ci case CODE: \ 63962306a36Sopenharmony_ci t_op = TOP; \ 64062306a36Sopenharmony_ci f_op = FOP; \ 64162306a36Sopenharmony_ci goto cond_branch 64262306a36Sopenharmony_ci 64362306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JGT | BPF_K, BGU, BLEU); 64462306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JGE | BPF_K, BGEU, BLU); 64562306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JEQ | BPF_K, BE, BNE); 64662306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JSET | BPF_K, BNE, BE); 64762306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JGT | BPF_X, BGU, BLEU); 64862306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JGE | BPF_X, BGEU, BLU); 64962306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JEQ | BPF_X, BE, BNE); 65062306a36Sopenharmony_ci COND_SEL(BPF_JMP | BPF_JSET | BPF_X, BNE, BE); 65162306a36Sopenharmony_ci 65262306a36Sopenharmony_cicond_branch: f_offset = addrs[i + filter[i].jf]; 65362306a36Sopenharmony_ci t_offset = addrs[i + filter[i].jt]; 65462306a36Sopenharmony_ci 65562306a36Sopenharmony_ci /* same targets, can avoid doing the test :) */ 65662306a36Sopenharmony_ci if (filter[i].jt == filter[i].jf) { 65762306a36Sopenharmony_ci emit_jump(t_offset); 65862306a36Sopenharmony_ci emit_nop(); 65962306a36Sopenharmony_ci break; 66062306a36Sopenharmony_ci } 66162306a36Sopenharmony_ci 66262306a36Sopenharmony_ci switch (code) { 66362306a36Sopenharmony_ci case BPF_JMP | BPF_JGT | BPF_X: 66462306a36Sopenharmony_ci case BPF_JMP | BPF_JGE | BPF_X: 66562306a36Sopenharmony_ci case BPF_JMP | BPF_JEQ | BPF_X: 66662306a36Sopenharmony_ci seen |= SEEN_XREG; 66762306a36Sopenharmony_ci emit_cmp(r_A, r_X); 66862306a36Sopenharmony_ci break; 66962306a36Sopenharmony_ci case BPF_JMP | BPF_JSET | BPF_X: 67062306a36Sopenharmony_ci seen |= SEEN_XREG; 67162306a36Sopenharmony_ci emit_btst(r_A, r_X); 67262306a36Sopenharmony_ci break; 67362306a36Sopenharmony_ci case BPF_JMP | BPF_JEQ | BPF_K: 67462306a36Sopenharmony_ci case BPF_JMP | BPF_JGT | BPF_K: 67562306a36Sopenharmony_ci case BPF_JMP | BPF_JGE | BPF_K: 67662306a36Sopenharmony_ci if (is_simm13(K)) { 67762306a36Sopenharmony_ci emit_cmpi(r_A, K); 67862306a36Sopenharmony_ci } else { 67962306a36Sopenharmony_ci emit_loadimm(K, r_TMP); 68062306a36Sopenharmony_ci emit_cmp(r_A, r_TMP); 68162306a36Sopenharmony_ci } 68262306a36Sopenharmony_ci break; 68362306a36Sopenharmony_ci case BPF_JMP | BPF_JSET | BPF_K: 68462306a36Sopenharmony_ci if (is_simm13(K)) { 68562306a36Sopenharmony_ci emit_btsti(r_A, K); 68662306a36Sopenharmony_ci } else { 68762306a36Sopenharmony_ci emit_loadimm(K, r_TMP); 68862306a36Sopenharmony_ci emit_btst(r_A, r_TMP); 68962306a36Sopenharmony_ci } 69062306a36Sopenharmony_ci break; 69162306a36Sopenharmony_ci } 69262306a36Sopenharmony_ci if (filter[i].jt != 0) { 69362306a36Sopenharmony_ci if (filter[i].jf) 69462306a36Sopenharmony_ci t_offset += 8; 69562306a36Sopenharmony_ci emit_branch(t_op, t_offset); 69662306a36Sopenharmony_ci emit_nop(); /* delay slot */ 69762306a36Sopenharmony_ci if (filter[i].jf) { 69862306a36Sopenharmony_ci emit_jump(f_offset); 69962306a36Sopenharmony_ci emit_nop(); 70062306a36Sopenharmony_ci } 70162306a36Sopenharmony_ci break; 70262306a36Sopenharmony_ci } 70362306a36Sopenharmony_ci emit_branch(f_op, f_offset); 70462306a36Sopenharmony_ci emit_nop(); /* delay slot */ 70562306a36Sopenharmony_ci break; 70662306a36Sopenharmony_ci 70762306a36Sopenharmony_ci default: 70862306a36Sopenharmony_ci /* hmm, too complex filter, give up with jit compiler */ 70962306a36Sopenharmony_ci goto out; 71062306a36Sopenharmony_ci } 71162306a36Sopenharmony_ci ilen = (void *) prog - (void *) temp; 71262306a36Sopenharmony_ci if (image) { 71362306a36Sopenharmony_ci if (unlikely(proglen + ilen > oldproglen)) { 71462306a36Sopenharmony_ci pr_err("bpb_jit_compile fatal error\n"); 71562306a36Sopenharmony_ci kfree(addrs); 71662306a36Sopenharmony_ci module_memfree(image); 71762306a36Sopenharmony_ci return; 71862306a36Sopenharmony_ci } 71962306a36Sopenharmony_ci memcpy(image + proglen, temp, ilen); 72062306a36Sopenharmony_ci } 72162306a36Sopenharmony_ci proglen += ilen; 72262306a36Sopenharmony_ci addrs[i] = proglen; 72362306a36Sopenharmony_ci prog = temp; 72462306a36Sopenharmony_ci } 72562306a36Sopenharmony_ci /* last bpf instruction is always a RET : 72662306a36Sopenharmony_ci * use it to give the cleanup instruction(s) addr 72762306a36Sopenharmony_ci */ 72862306a36Sopenharmony_ci cleanup_addr = proglen - 8; /* jmpl; mov r_A,%o0; */ 72962306a36Sopenharmony_ci if (seen_or_pass0 & SEEN_MEM) 73062306a36Sopenharmony_ci cleanup_addr -= 4; /* add %sp, X, %sp; */ 73162306a36Sopenharmony_ci 73262306a36Sopenharmony_ci if (image) { 73362306a36Sopenharmony_ci if (proglen != oldproglen) 73462306a36Sopenharmony_ci pr_err("bpb_jit_compile proglen=%u != oldproglen=%u\n", 73562306a36Sopenharmony_ci proglen, oldproglen); 73662306a36Sopenharmony_ci break; 73762306a36Sopenharmony_ci } 73862306a36Sopenharmony_ci if (proglen == oldproglen) { 73962306a36Sopenharmony_ci image = module_alloc(proglen); 74062306a36Sopenharmony_ci if (!image) 74162306a36Sopenharmony_ci goto out; 74262306a36Sopenharmony_ci } 74362306a36Sopenharmony_ci oldproglen = proglen; 74462306a36Sopenharmony_ci } 74562306a36Sopenharmony_ci 74662306a36Sopenharmony_ci if (bpf_jit_enable > 1) 74762306a36Sopenharmony_ci bpf_jit_dump(flen, proglen, pass + 1, image); 74862306a36Sopenharmony_ci 74962306a36Sopenharmony_ci if (image) { 75062306a36Sopenharmony_ci fp->bpf_func = (void *)image; 75162306a36Sopenharmony_ci fp->jited = 1; 75262306a36Sopenharmony_ci } 75362306a36Sopenharmony_ciout: 75462306a36Sopenharmony_ci kfree(addrs); 75562306a36Sopenharmony_ci return; 75662306a36Sopenharmony_ci} 75762306a36Sopenharmony_ci 75862306a36Sopenharmony_civoid bpf_jit_free(struct bpf_prog *fp) 75962306a36Sopenharmony_ci{ 76062306a36Sopenharmony_ci if (fp->jited) 76162306a36Sopenharmony_ci module_memfree(fp->bpf_func); 76262306a36Sopenharmony_ci 76362306a36Sopenharmony_ci bpf_prog_unlock_free(fp); 76462306a36Sopenharmony_ci} 765