lopcodes.h 8.3 KB

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  1. /*
  2. ** $Id: lopcodes.h,v 1.131 2009/09/28 16:32:50 roberto Exp roberto $
  3. ** Opcodes for Lua virtual machine
  4. ** See Copyright Notice in lua.h
  5. */
  6. #ifndef lopcodes_h
  7. #define lopcodes_h
  8. #include "llimits.h"
  9. /*===========================================================================
  10. We assume that instructions are unsigned numbers.
  11. All instructions have an opcode in the first 6 bits.
  12. Instructions can have the following fields:
  13. `A' : 8 bits
  14. `B' : 9 bits
  15. `C' : 9 bits
  16. `Bx' : 18 bits (`B' and `C' together)
  17. `sBx' : signed Bx
  18. A signed argument is represented in excess K; that is, the number
  19. value is the unsigned value minus K. K is exactly the maximum value
  20. for that argument (so that -max is represented by 0, and +max is
  21. represented by 2*max), which is half the maximum for the corresponding
  22. unsigned argument.
  23. ===========================================================================*/
  24. enum OpMode {iABC, iABx, iAsBx, iAx}; /* basic instruction format */
  25. /*
  26. ** size and position of opcode arguments.
  27. */
  28. #define SIZE_C 9
  29. #define SIZE_B 9
  30. #define SIZE_Bx (SIZE_C + SIZE_B)
  31. #define SIZE_A 8
  32. #define SIZE_Ax (SIZE_C + SIZE_B + SIZE_A)
  33. #define SIZE_OP 6
  34. #define POS_OP 0
  35. #define POS_A (POS_OP + SIZE_OP)
  36. #define POS_C (POS_A + SIZE_A)
  37. #define POS_B (POS_C + SIZE_C)
  38. #define POS_Bx POS_C
  39. #define POS_Ax POS_A
  40. /*
  41. ** limits for opcode arguments.
  42. ** we use (signed) int to manipulate most arguments,
  43. ** so they must fit in LUAI_BITSINT-1 bits (-1 for sign)
  44. */
  45. #if SIZE_Bx < LUAI_BITSINT-1
  46. #define MAXARG_Bx ((1<<SIZE_Bx)-1)
  47. #define MAXARG_sBx (MAXARG_Bx>>1) /* `sBx' is signed */
  48. #else
  49. #define MAXARG_Bx MAX_INT
  50. #define MAXARG_sBx MAX_INT
  51. #endif
  52. #if SIZE_Ax < LUAI_BITSINT-1
  53. #define MAXARG_Ax ((1<<SIZE_Ax)-1)
  54. #else
  55. #define MAXARG_Ax MAX_INT
  56. #endif
  57. #define MAXARG_A ((1<<SIZE_A)-1)
  58. #define MAXARG_B ((1<<SIZE_B)-1)
  59. #define MAXARG_C ((1<<SIZE_C)-1)
  60. /* creates a mask with `n' 1 bits at position `p' */
  61. #define MASK1(n,p) ((~((~(Instruction)0)<<(n)))<<(p))
  62. /* creates a mask with `n' 0 bits at position `p' */
  63. #define MASK0(n,p) (~MASK1(n,p))
  64. /*
  65. ** the following macros help to manipulate instructions
  66. */
  67. #define GET_OPCODE(i) (cast(OpCode, ((i)>>POS_OP) & MASK1(SIZE_OP,0)))
  68. #define SET_OPCODE(i,o) ((i) = (((i)&MASK0(SIZE_OP,POS_OP)) | \
  69. ((cast(Instruction, o)<<POS_OP)&MASK1(SIZE_OP,POS_OP))))
  70. #define getarg(i,pos,size) (cast(int, ((i)>>pos) & MASK1(size,0)))
  71. #define setarg(i,v,pos,size) ((i) = (((i)&MASK0(size,pos)) | \
  72. ((cast(Instruction, v)<<pos)&MASK1(size,pos))))
  73. #define GETARG_A(i) getarg(i, POS_A, SIZE_A)
  74. #define SETARG_A(i,v) setarg(i, v, POS_A, SIZE_A)
  75. #define GETARG_B(i) getarg(i, POS_B, SIZE_B)
  76. #define SETARG_B(i,v) setarg(i, v, POS_B, SIZE_B)
  77. #define GETARG_C(i) getarg(i, POS_C, SIZE_C)
  78. #define SETARG_C(i,v) setarg(i, v, POS_C, SIZE_C)
  79. #define GETARG_Bx(i) getarg(i, POS_Bx, SIZE_Bx)
  80. #define SETARG_Bx(i,v) setarg(i, v, POS_Bx, SIZE_Bx)
  81. #define GETARG_Ax(i) getarg(i, POS_Ax, SIZE_Ax)
  82. #define SETARG_Ax(i,v) setarg(i, v, POS_Ax, SIZE_Ax)
  83. #define GETARG_sBx(i) (GETARG_Bx(i)-MAXARG_sBx)
  84. #define SETARG_sBx(i,b) SETARG_Bx((i),cast(unsigned int, (b)+MAXARG_sBx))
  85. #define CREATE_ABC(o,a,b,c) ((cast(Instruction, o)<<POS_OP) \
  86. | (cast(Instruction, a)<<POS_A) \
  87. | (cast(Instruction, b)<<POS_B) \
  88. | (cast(Instruction, c)<<POS_C))
  89. #define CREATE_ABx(o,a,bc) ((cast(Instruction, o)<<POS_OP) \
  90. | (cast(Instruction, a)<<POS_A) \
  91. | (cast(Instruction, bc)<<POS_Bx))
  92. #define CREATE_Ax(o,a) ((cast(Instruction, o)<<POS_OP) \
  93. | (cast(Instruction, a)<<POS_A))
  94. /*
  95. ** Macros to operate RK indices
  96. */
  97. /* this bit 1 means constant (0 means register) */
  98. #define BITRK (1 << (SIZE_B - 1))
  99. /* test whether value is a constant */
  100. #define ISK(x) ((x) & BITRK)
  101. /* gets the index of the constant */
  102. #define INDEXK(r) ((int)(r) & ~BITRK)
  103. #define MAXINDEXRK (BITRK - 1)
  104. /* code a constant index as a RK value */
  105. #define RKASK(x) ((x) | BITRK)
  106. /*
  107. ** invalid register that fits in 8 bits
  108. */
  109. #define NO_REG MAXARG_A
  110. /*
  111. ** R(x) - register
  112. ** Kst(x) - constant (in constant table)
  113. ** RK(x) == if ISK(x) then Kst(INDEXK(x)) else R(x)
  114. */
  115. /*
  116. ** grep "ORDER OP" if you change these enums
  117. */
  118. typedef enum {
  119. /*----------------------------------------------------------------------
  120. name args description
  121. ------------------------------------------------------------------------*/
  122. OP_MOVE,/* A B R(A) := R(B) */
  123. OP_LOADK,/* A Bx R(A) := Kst(Bx - 1) */
  124. OP_LOADBOOL,/* A B C R(A) := (Bool)B; if (C) pc++ */
  125. OP_LOADNIL,/* A B R(A) := ... := R(B) := nil */
  126. OP_GETUPVAL,/* A B R(A) := UpValue[B] */
  127. OP_GETGLOBAL,/* A Bx R(A) := Gbl[Kst(Bx - 1)] */
  128. OP_GETTABLE,/* A B C R(A) := R(B)[RK(C)] */
  129. OP_SETGLOBAL,/* A Bx Gbl[Kst(Bx - 1)] := R(A) */
  130. OP_SETUPVAL,/* A B UpValue[B] := R(A) */
  131. OP_SETTABLE,/* A B C R(A)[RK(B)] := RK(C) */
  132. OP_NEWTABLE,/* A B C R(A) := {} (size = B,C) */
  133. OP_SELF,/* A B C R(A+1) := R(B); R(A) := R(B)[RK(C)] */
  134. OP_ADD,/* A B C R(A) := RK(B) + RK(C) */
  135. OP_SUB,/* A B C R(A) := RK(B) - RK(C) */
  136. OP_MUL,/* A B C R(A) := RK(B) * RK(C) */
  137. OP_DIV,/* A B C R(A) := RK(B) / RK(C) */
  138. OP_MOD,/* A B C R(A) := RK(B) % RK(C) */
  139. OP_POW,/* A B C R(A) := RK(B) ^ RK(C) */
  140. OP_UNM,/* A B R(A) := -R(B) */
  141. OP_NOT,/* A B R(A) := not R(B) */
  142. OP_LEN,/* A B R(A) := length of R(B) */
  143. OP_CONCAT,/* A B C R(A) := R(B).. ... ..R(C) */
  144. OP_JMP,/* sBx pc+=sBx */
  145. OP_EQ,/* A B C if ((RK(B) == RK(C)) ~= A) then pc++ */
  146. OP_LT,/* A B C if ((RK(B) < RK(C)) ~= A) then pc++ */
  147. OP_LE,/* A B C if ((RK(B) <= RK(C)) ~= A) then pc++ */
  148. OP_TEST,/* A C if not (R(A) <=> C) then pc++ */
  149. OP_TESTSET,/* A B C if (R(B) <=> C) then R(A) := R(B) else pc++ */
  150. OP_CALL,/* A B C R(A), ... ,R(A+C-2) := R(A)(R(A+1), ... ,R(A+B-1)) */
  151. OP_TAILCALL,/* A B C return R(A)(R(A+1), ... ,R(A+B-1)) */
  152. OP_RETURN,/* A B return R(A), ... ,R(A+B-2) (see note) */
  153. OP_FORLOOP,/* A sBx R(A)+=R(A+2);
  154. if R(A) <?= R(A+1) then { pc+=sBx; R(A+3)=R(A) }*/
  155. OP_FORPREP,/* A sBx R(A)-=R(A+2); pc+=sBx */
  156. OP_TFORCALL,/* A C R(A+3), ... ,R(A+2+C) := R(A)(R(A+1), R(A+2)); */
  157. OP_SETLIST,/* A B C R(A)[(C-1)*FPF+i] := R(A+i), 1 <= i <= B */
  158. OP_CLOSE,/* A close all variables in the stack up to (>=) R(A)*/
  159. OP_CLOSURE,/* A Bx R(A) := closure(KPROTO[Bx]) */
  160. OP_VARARG,/* A B R(A), R(A+1), ..., R(A+B-2) = vararg */
  161. OP_TFORLOOP,/* A sBx if R(A+1) ~= nil then { R(A)=R(A+1); pc += sBx }*/
  162. OP_EXTRAARG/* Ax extra (larger) argument for previous opcode */
  163. } OpCode;
  164. #define NUM_OPCODES (cast(int, OP_EXTRAARG) + 1)
  165. /*===========================================================================
  166. Notes:
  167. (*) In OP_CALL, if (B == 0) then B = top. If (C == 0), then `top' is
  168. set to last_result+1, so next open instruction (OP_CALL, OP_RETURN,
  169. OP_SETLIST) may use `top'.
  170. (*) In OP_VARARG, if (B == 0) then use actual number of varargs and
  171. set top (like in OP_CALL with C == 0).
  172. (*) In OP_RETURN, if (B == 0) then return up to `top'.
  173. (*) In OP_SETLIST, if (B == 0) then B = `top'; if (C == 0) then next
  174. 'instruction' is EXTRAARG(real C).
  175. (*) In OP_LOADK, OP_GETGLOBAL, and OP_SETGLOBAL, if (Bx == 0) then next
  176. 'instruction' is EXTRAARG(real Bx).
  177. (*) For comparisons, A specifies what condition the test should accept
  178. (true or false).
  179. (*) All `skips' (pc++) assume that next instruction is a jump.
  180. ===========================================================================*/
  181. /*
  182. ** masks for instruction properties. The format is:
  183. ** bits 0-1: op mode
  184. ** bits 2-3: C arg mode
  185. ** bits 4-5: B arg mode
  186. ** bit 6: instruction set register A
  187. ** bit 7: operator is a test (next instruction must be a jump)
  188. */
  189. enum OpArgMask {
  190. OpArgN, /* argument is not used */
  191. OpArgU, /* argument is used */
  192. OpArgR, /* argument is a register or a jump offset */
  193. OpArgK /* argument is a constant or register/constant */
  194. };
  195. LUAI_DATA const lu_byte luaP_opmodes[NUM_OPCODES];
  196. #define getOpMode(m) (cast(enum OpMode, luaP_opmodes[m] & 3))
  197. #define getBMode(m) (cast(enum OpArgMask, (luaP_opmodes[m] >> 4) & 3))
  198. #define getCMode(m) (cast(enum OpArgMask, (luaP_opmodes[m] >> 2) & 3))
  199. #define testAMode(m) (luaP_opmodes[m] & (1 << 6))
  200. #define testTMode(m) (luaP_opmodes[m] & (1 << 7))
  201. LUAI_DATA const char *const luaP_opnames[NUM_OPCODES+1]; /* opcode names */
  202. /* number of list items to accumulate before a SETLIST instruction */
  203. #define LFIELDS_PER_FLUSH 50
  204. #endif