src/musashi/m68kcpu.h

Wed, 13 Mar 2013 01:10:34 +0000

author
Philip Pemberton <philpem@philpem.me.uk>
date
Wed, 13 Mar 2013 01:10:34 +0000
branch
experimental_memory_mapper_v2
changeset 135
159f937af10d
parent 128
3246b74d96bc
permissions
-rw-r--r--

merge changes from default

     1 #include <stdio.h>
     2 #include <ctype.h>
     3 /* ======================================================================== */
     4 /* ========================= LICENSING & COPYRIGHT ======================== */
     5 /* ======================================================================== */
     6 /*
     7  *                                  MUSASHI
     8  *                                Version 3.3
     9  *
    10  * A portable Motorola M680x0 processor emulation engine.
    11  * Copyright 1998-2001 Karl Stenerud.  All rights reserved.
    12  *
    13  * This code may be freely used for non-commercial purposes as long as this
    14  * copyright notice remains unaltered in the source code and any binary files
    15  * containing this code in compiled form.
    16  *
    17  * All other lisencing terms must be negotiated with the author
    18  * (Karl Stenerud).
    19  *
    20  * The latest version of this code can be obtained at:
    21  * http://kstenerud.cjb.net
    22  */
    27 #ifndef M68KCPU__HEADER
    28 #define M68KCPU__HEADER
    30 #include "m68k.h"
    31 #include <limits.h>
    33 #if M68K_EMULATE_ADDRESS_ERROR
    34 #include <setjmp.h>
    35 #endif /* M68K_EMULATE_ADDRESS_ERROR */
    37 /* ======================================================================== */
    38 /* ==================== ARCHITECTURE-DEPENDANT DEFINES ==================== */
    39 /* ======================================================================== */
    41 /* Check for > 32bit sizes */
    42 #if UINT_MAX > 0xffffffff
    43 	#define M68K_INT_GT_32_BIT  1
    44 #endif
    46 /* Data types used in this emulation core */
    47 #undef sint8
    48 #undef sint16
    49 #undef sint32
    50 #undef sint64
    51 #undef uint8
    52 #undef uint16
    53 #undef uint32
    54 #undef uint64
    55 #undef sint
    56 #undef uint
    58 #define sint8  signed   char			/* ASG: changed from char to signed char */
    59 #define sint16 signed   short
    60 #define sint32 signed   long
    61 #define uint8  unsigned char
    62 #define uint16 unsigned short
    63 #define uint32 unsigned long
    65 /* signed and unsigned int must be at least 32 bits wide */
    66 #define sint   signed   int
    67 #define uint   unsigned int
    70 #if M68K_USE_64_BIT
    71 #define sint64 signed   long long
    72 #define uint64 unsigned long long
    73 #else
    74 #define sint64 sint32
    75 #define uint64 uint32
    76 #endif /* M68K_USE_64_BIT */
    80 /* Allow for architectures that don't have 8-bit sizes */
    81 #if UCHAR_MAX == 0xff
    82 	#define MAKE_INT_8(A) (sint8)(A)
    83 #else
    84 	#undef  sint8
    85 	#define sint8  signed   int
    86 	#undef  uint8
    87 	#define uint8  unsigned int
    88 	INLINE sint MAKE_INT_8(uint value)
    89 	{
    90 		return (value & 0x80) ? value | ~0xff : value & 0xff;
    91 	}
    92 #endif /* UCHAR_MAX == 0xff */
    95 /* Allow for architectures that don't have 16-bit sizes */
    96 #if USHRT_MAX == 0xffff
    97 	#define MAKE_INT_16(A) (sint16)(A)
    98 #else
    99 	#undef  sint16
   100 	#define sint16 signed   int
   101 	#undef  uint16
   102 	#define uint16 unsigned int
   103 	INLINE sint MAKE_INT_16(uint value)
   104 	{
   105 		return (value & 0x8000) ? value | ~0xffff : value & 0xffff;
   106 	}
   107 #endif /* USHRT_MAX == 0xffff */
   110 /* Allow for architectures that don't have 32-bit sizes */
   111 #if ULONG_MAX == 0xffffffff
   112 	#define MAKE_INT_32(A) (sint32)(A)
   113 #else
   114 	#undef  sint32
   115 	#define sint32  signed   int
   116 	#undef  uint32
   117 	#define uint32  unsigned int
   118 	INLINE sint MAKE_INT_32(uint value)
   119 	{
   120 		return (value & 0x80000000) ? value | ~0xffffffff : value & 0xffffffff;
   121 	}
   122 #endif /* ULONG_MAX == 0xffffffff */
   127 /* ======================================================================== */
   128 /* ============================ GENERAL DEFINES =========================== */
   129 /* ======================================================================== */
   131 /* Exception Vectors handled by emulation */
   132 #define EXCEPTION_BUS_ERROR                2 /* This one is not emulated! */
   133 #define EXCEPTION_ADDRESS_ERROR            3 /* This one is partially emulated (doesn't stack a proper frame yet) */
   134 #define EXCEPTION_ILLEGAL_INSTRUCTION      4
   135 #define EXCEPTION_ZERO_DIVIDE              5
   136 #define EXCEPTION_CHK                      6
   137 #define EXCEPTION_TRAPV                    7
   138 #define EXCEPTION_PRIVILEGE_VIOLATION      8
   139 #define EXCEPTION_TRACE                    9
   140 #define EXCEPTION_1010                    10
   141 #define EXCEPTION_1111                    11
   142 #define EXCEPTION_FORMAT_ERROR            14
   143 #define EXCEPTION_UNINITIALIZED_INTERRUPT 15
   144 #define EXCEPTION_SPURIOUS_INTERRUPT      24
   145 #define EXCEPTION_INTERRUPT_AUTOVECTOR    24
   146 #define EXCEPTION_TRAP_BASE               32
   148 /* Function codes set by CPU during data/address bus activity */
   149 #define FUNCTION_CODE_USER_DATA          1
   150 #define FUNCTION_CODE_USER_PROGRAM       2
   151 #define FUNCTION_CODE_SUPERVISOR_DATA    5
   152 #define FUNCTION_CODE_SUPERVISOR_PROGRAM 6
   153 #define FUNCTION_CODE_CPU_SPACE          7
   155 /* CPU types for deciding what to emulate */
   156 #define CPU_TYPE_000   1
   157 #define CPU_TYPE_010   2
   158 #define CPU_TYPE_EC020 4
   159 #define CPU_TYPE_020   8
   161 /* Different ways to stop the CPU */
   162 #define STOP_LEVEL_STOP 1
   163 #define STOP_LEVEL_HALT 2
   165 #ifndef NULL
   166 #define NULL ((void*)0)
   167 #endif
   169 /* ======================================================================== */
   170 /* ================================ MACROS ================================ */
   171 /* ======================================================================== */
   174 /* ---------------------------- General Macros ---------------------------- */
   176 /* Bit Isolation Macros */
   177 #define BIT_0(A)  ((A) & 0x00000001)
   178 #define BIT_1(A)  ((A) & 0x00000002)
   179 #define BIT_2(A)  ((A) & 0x00000004)
   180 #define BIT_3(A)  ((A) & 0x00000008)
   181 #define BIT_4(A)  ((A) & 0x00000010)
   182 #define BIT_5(A)  ((A) & 0x00000020)
   183 #define BIT_6(A)  ((A) & 0x00000040)
   184 #define BIT_7(A)  ((A) & 0x00000080)
   185 #define BIT_8(A)  ((A) & 0x00000100)
   186 #define BIT_9(A)  ((A) & 0x00000200)
   187 #define BIT_A(A)  ((A) & 0x00000400)
   188 #define BIT_B(A)  ((A) & 0x00000800)
   189 #define BIT_C(A)  ((A) & 0x00001000)
   190 #define BIT_D(A)  ((A) & 0x00002000)
   191 #define BIT_E(A)  ((A) & 0x00004000)
   192 #define BIT_F(A)  ((A) & 0x00008000)
   193 #define BIT_10(A) ((A) & 0x00010000)
   194 #define BIT_11(A) ((A) & 0x00020000)
   195 #define BIT_12(A) ((A) & 0x00040000)
   196 #define BIT_13(A) ((A) & 0x00080000)
   197 #define BIT_14(A) ((A) & 0x00100000)
   198 #define BIT_15(A) ((A) & 0x00200000)
   199 #define BIT_16(A) ((A) & 0x00400000)
   200 #define BIT_17(A) ((A) & 0x00800000)
   201 #define BIT_18(A) ((A) & 0x01000000)
   202 #define BIT_19(A) ((A) & 0x02000000)
   203 #define BIT_1A(A) ((A) & 0x04000000)
   204 #define BIT_1B(A) ((A) & 0x08000000)
   205 #define BIT_1C(A) ((A) & 0x10000000)
   206 #define BIT_1D(A) ((A) & 0x20000000)
   207 #define BIT_1E(A) ((A) & 0x40000000)
   208 #define BIT_1F(A) ((A) & 0x80000000)
   210 /* Get the most significant bit for specific sizes */
   211 #define GET_MSB_8(A)  ((A) & 0x80)
   212 #define GET_MSB_9(A)  ((A) & 0x100)
   213 #define GET_MSB_16(A) ((A) & 0x8000)
   214 #define GET_MSB_17(A) ((A) & 0x10000)
   215 #define GET_MSB_32(A) ((A) & 0x80000000)
   216 #if M68K_USE_64_BIT
   217 #define GET_MSB_33(A) ((A) & 0x100000000)
   218 #endif /* M68K_USE_64_BIT */
   220 /* Isolate nibbles */
   221 #define LOW_NIBBLE(A)  ((A) & 0x0f)
   222 #define HIGH_NIBBLE(A) ((A) & 0xf0)
   224 /* These are used to isolate 8, 16, and 32 bit sizes */
   225 #define MASK_OUT_ABOVE_2(A)  ((A) & 3)
   226 #define MASK_OUT_ABOVE_8(A)  ((A) & 0xff)
   227 #define MASK_OUT_ABOVE_16(A) ((A) & 0xffff)
   228 #define MASK_OUT_BELOW_2(A)  ((A) & ~3)
   229 #define MASK_OUT_BELOW_8(A)  ((A) & ~0xff)
   230 #define MASK_OUT_BELOW_16(A) ((A) & ~0xffff)
   232 /* No need to mask if we are 32 bit */
   233 #if M68K_INT_GT_32BIT || M68K_USE_64_BIT
   234 	#define MASK_OUT_ABOVE_32(A) ((A) & 0xffffffff)
   235 	#define MASK_OUT_BELOW_32(A) ((A) & ~0xffffffff)
   236 #else
   237 	#define MASK_OUT_ABOVE_32(A) (A)
   238 	#define MASK_OUT_BELOW_32(A) 0
   239 #endif /* M68K_INT_GT_32BIT || M68K_USE_64_BIT */
   241 /* Simulate address lines of 68k family */
   242 #define ADDRESS_68K(A) ((A)&CPU_ADDRESS_MASK)
   245 /* Shift & Rotate Macros. */
   246 #define LSL(A, C) ((A) << (C))
   247 #define LSR(A, C) ((A) >> (C))
   249 /* Some > 32-bit optimizations */
   250 #if M68K_INT_GT_32BIT
   251 	/* Shift left and right */
   252 	#define LSR_32(A, C) ((A) >> (C))
   253 	#define LSL_32(A, C) ((A) << (C))
   254 #else
   255 	/* We have to do this because the morons at ANSI decided that shifts
   256 	 * by >= data size are undefined.
   257 	 */
   258 	#define LSR_32(A, C) ((C) < 32 ? (A) >> (C) : 0)
   259 	#define LSL_32(A, C) ((C) < 32 ? (A) << (C) : 0)
   260 #endif /* M68K_INT_GT_32BIT */
   262 #if M68K_USE_64_BIT
   263 	#define LSL_32_64(A, C) ((A) << (C))
   264 	#define LSR_32_64(A, C) ((A) >> (C))
   265 	#define ROL_33_64(A, C) (LSL_32_64(A, C) | LSR_32_64(A, 33-(C)))
   266 	#define ROR_33_64(A, C) (LSR_32_64(A, C) | LSL_32_64(A, 33-(C)))
   267 #endif /* M68K_USE_64_BIT */
   269 #define ROL_8(A, C)      MASK_OUT_ABOVE_8(LSL(A, C) | LSR(A, 8-(C)))
   270 #define ROL_9(A, C)                      (LSL(A, C) | LSR(A, 9-(C)))
   271 #define ROL_16(A, C)    MASK_OUT_ABOVE_16(LSL(A, C) | LSR(A, 16-(C)))
   272 #define ROL_17(A, C)                     (LSL(A, C) | LSR(A, 17-(C)))
   273 #define ROL_32(A, C)    MASK_OUT_ABOVE_32(LSL_32(A, C) | LSR_32(A, 32-(C)))
   274 #define ROL_33(A, C)                     (LSL_32(A, C) | LSR_32(A, 33-(C)))
   276 #define ROR_8(A, C)      MASK_OUT_ABOVE_8(LSR(A, C) | LSL(A, 8-(C)))
   277 #define ROR_9(A, C)                      (LSR(A, C) | LSL(A, 9-(C)))
   278 #define ROR_16(A, C)    MASK_OUT_ABOVE_16(LSR(A, C) | LSL(A, 16-(C)))
   279 #define ROR_17(A, C)                     (LSR(A, C) | LSL(A, 17-(C)))
   280 #define ROR_32(A, C)    MASK_OUT_ABOVE_32(LSR_32(A, C) | LSL_32(A, 32-(C)))
   281 #define ROR_33(A, C)                     (LSR_32(A, C) | LSL_32(A, 33-(C)))
   285 /* ------------------------------ CPU Access ------------------------------ */
   287 /* Access the CPU registers */
   288 #define CPU_TYPE         m68ki_cpu.cpu_type
   290 #define REG_DA           m68ki_cpu.dar /* easy access to data and address regs */
   291 #define REG_D            m68ki_cpu.dar
   292 #define REG_A            (m68ki_cpu.dar+8)
   293 #define REG_PPC 		 m68ki_cpu.ppc
   294 #define REG_PC           m68ki_cpu.pc
   295 #define REG_SP_BASE      m68ki_cpu.sp
   296 #define REG_USP          m68ki_cpu.sp[0]
   297 #define REG_ISP          m68ki_cpu.sp[4]
   298 #define REG_MSP          m68ki_cpu.sp[6]
   299 #define REG_SP           m68ki_cpu.dar[15]
   300 #define REG_VBR          m68ki_cpu.vbr
   301 #define REG_SFC          m68ki_cpu.sfc
   302 #define REG_DFC          m68ki_cpu.dfc
   303 #define REG_CACR         m68ki_cpu.cacr
   304 #define REG_CAAR         m68ki_cpu.caar
   305 #define REG_IR           m68ki_cpu.ir
   307 #define FLAG_T1          m68ki_cpu.t1_flag
   308 #define FLAG_T0          m68ki_cpu.t0_flag
   309 #define FLAG_S           m68ki_cpu.s_flag
   310 #define FLAG_M           m68ki_cpu.m_flag
   311 #define FLAG_X           m68ki_cpu.x_flag
   312 #define FLAG_N           m68ki_cpu.n_flag
   313 #define FLAG_Z           m68ki_cpu.not_z_flag
   314 #define FLAG_V           m68ki_cpu.v_flag
   315 #define FLAG_C           m68ki_cpu.c_flag
   316 #define FLAG_INT_MASK    m68ki_cpu.int_mask
   318 #define CPU_INT_LEVEL    m68ki_cpu.int_level /* ASG: changed from CPU_INTS_PENDING */
   319 #define CPU_INT_CYCLES   m68ki_cpu.int_cycles /* ASG */
   320 #define CPU_STOPPED      m68ki_cpu.stopped
   321 #define CPU_PREF_ADDR    m68ki_cpu.pref_addr
   322 #define CPU_PREF_DATA    m68ki_cpu.pref_data
   323 #define CPU_ADDRESS_MASK m68ki_cpu.address_mask
   324 #define CPU_SR_MASK      m68ki_cpu.sr_mask
   326 #define BUS_ERROR_OCCURRED m68ki_cpu.bus_error_occurred
   328 #define CYC_INSTRUCTION  m68ki_cpu.cyc_instruction
   329 #define CYC_EXCEPTION    m68ki_cpu.cyc_exception
   330 #define CYC_BCC_NOTAKE_B m68ki_cpu.cyc_bcc_notake_b
   331 #define CYC_BCC_NOTAKE_W m68ki_cpu.cyc_bcc_notake_w
   332 #define CYC_DBCC_F_NOEXP m68ki_cpu.cyc_dbcc_f_noexp
   333 #define CYC_DBCC_F_EXP   m68ki_cpu.cyc_dbcc_f_exp
   334 #define CYC_SCC_R_FALSE  m68ki_cpu.cyc_scc_r_false
   335 #define CYC_MOVEM_W      m68ki_cpu.cyc_movem_w
   336 #define CYC_MOVEM_L      m68ki_cpu.cyc_movem_l
   337 #define CYC_SHIFT        m68ki_cpu.cyc_shift
   338 #define CYC_RESET        m68ki_cpu.cyc_reset
   341 #define CALLBACK_INT_ACK     m68ki_cpu.int_ack_callback
   342 #define CALLBACK_BKPT_ACK    m68ki_cpu.bkpt_ack_callback
   343 #define CALLBACK_RESET_INSTR m68ki_cpu.reset_instr_callback
   344 #define CALLBACK_PC_CHANGED  m68ki_cpu.pc_changed_callback
   345 #define CALLBACK_SET_FC      m68ki_cpu.set_fc_callback
   346 #define CALLBACK_INSTR_HOOK  m68ki_cpu.instr_hook_callback
   350 /* ----------------------------- Configuration ---------------------------- */
   352 /* These defines are dependant on the configuration defines in m68kconf.h */
   354 /* Disable certain comparisons if we're not using all CPU types */
   355 #if M68K_EMULATE_020
   356 	#define CPU_TYPE_IS_020_PLUS(A)    ((A) & CPU_TYPE_020)
   357 	#define CPU_TYPE_IS_020_LESS(A)    1
   358 #else
   359 	#define CPU_TYPE_IS_020_PLUS(A)    0
   360 	#define CPU_TYPE_IS_020_LESS(A)    1
   361 #endif
   363 #if M68K_EMULATE_EC020
   364 	#define CPU_TYPE_IS_EC020_PLUS(A)  ((A) & (CPU_TYPE_EC020 | CPU_TYPE_020))
   365 	#define CPU_TYPE_IS_EC020_LESS(A)  ((A) & (CPU_TYPE_000 | CPU_TYPE_010 | CPU_TYPE_EC020))
   366 #else
   367 	#define CPU_TYPE_IS_EC020_PLUS(A)  CPU_TYPE_IS_020_PLUS(A)
   368 	#define CPU_TYPE_IS_EC020_LESS(A)  CPU_TYPE_IS_020_LESS(A)
   369 #endif
   371 #if M68K_EMULATE_010
   372 	#define CPU_TYPE_IS_010(A)         ((A) == CPU_TYPE_010)
   373 	#define CPU_TYPE_IS_010_PLUS(A)    ((A) & (CPU_TYPE_010 | CPU_TYPE_EC020 | CPU_TYPE_020))
   374 	#define CPU_TYPE_IS_010_LESS(A)    ((A) & (CPU_TYPE_000 | CPU_TYPE_010))
   375 #else
   376 	#define CPU_TYPE_IS_010(A)         0
   377 	#define CPU_TYPE_IS_010_PLUS(A)    CPU_TYPE_IS_EC020_PLUS(A)
   378 	#define CPU_TYPE_IS_010_LESS(A)    CPU_TYPE_IS_EC020_LESS(A)
   379 #endif
   381 #if M68K_EMULATE_020 || M68K_EMULATE_EC020
   382 	#define CPU_TYPE_IS_020_VARIANT(A) ((A) & (CPU_TYPE_EC020 | CPU_TYPE_020))
   383 #else
   384 	#define CPU_TYPE_IS_020_VARIANT(A) 0
   385 #endif
   387 #if M68K_EMULATE_020 || M68K_EMULATE_EC020 || M68K_EMULATE_010
   388 	#define CPU_TYPE_IS_000(A)         ((A) == CPU_TYPE_000)
   389 #else
   390 	#define CPU_TYPE_IS_000(A)         1
   391 #endif
   394 #if !M68K_SEPARATE_READS
   395 #define m68k_read_immediate_16(A) m68ki_read_program_16(A)
   396 #define m68k_read_immediate_32(A) m68ki_read_program_32(A)
   398 #define m68k_read_pcrelative_8(A) m68ki_read_program_8(A)
   399 #define m68k_read_pcrelative_16(A) m68ki_read_program_16(A)
   400 #define m68k_read_pcrelative_32(A) m68ki_read_program_32(A)
   401 #endif /* M68K_SEPARATE_READS */
   404 /* Enable or disable callback functions */
   405 #if M68K_EMULATE_INT_ACK
   406 	#if M68K_EMULATE_INT_ACK == OPT_SPECIFY_HANDLER
   407 		#define m68ki_int_ack(A) M68K_INT_ACK_CALLBACK(A)
   408 	#else
   409 		#define m68ki_int_ack(A) CALLBACK_INT_ACK(A)
   410 	#endif
   411 #else
   412 	/* Default action is to used autovector mode, which is most common */
   413 	#define m68ki_int_ack(A) M68K_INT_ACK_AUTOVECTOR
   414 #endif /* M68K_EMULATE_INT_ACK */
   416 #if M68K_EMULATE_BKPT_ACK
   417 	#if M68K_EMULATE_BKPT_ACK == OPT_SPECIFY_HANDLER
   418 		#define m68ki_bkpt_ack(A) M68K_BKPT_ACK_CALLBACK(A)
   419 	#else
   420 		#define m68ki_bkpt_ack(A) CALLBACK_BKPT_ACK(A)
   421 	#endif
   422 #else
   423 	#define m68ki_bkpt_ack(A)
   424 #endif /* M68K_EMULATE_BKPT_ACK */
   426 #if M68K_EMULATE_RESET
   427 	#if M68K_EMULATE_RESET == OPT_SPECIFY_HANDLER
   428 		#define m68ki_output_reset() M68K_RESET_CALLBACK()
   429 	#else
   430 		#define m68ki_output_reset() CALLBACK_RESET_INSTR()
   431 	#endif
   432 #else
   433 	#define m68ki_output_reset()
   434 #endif /* M68K_EMULATE_RESET */
   436 #if M68K_INSTRUCTION_HOOK
   437 	#if M68K_INSTRUCTION_HOOK == OPT_SPECIFY_HANDLER
   438 		#define m68ki_instr_hook() M68K_INSTRUCTION_CALLBACK()
   439 	#else
   440 		#define m68ki_instr_hook() CALLBACK_INSTR_HOOK()
   441 	#endif
   442 #else
   443 	#define m68ki_instr_hook()
   444 #endif /* M68K_INSTRUCTION_HOOK */
   446 #if M68K_MONITOR_PC
   447 	#if M68K_MONITOR_PC == OPT_SPECIFY_HANDLER
   448 		#define m68ki_pc_changed(A) M68K_SET_PC_CALLBACK(ADDRESS_68K(A))
   449 	#else
   450 		#define m68ki_pc_changed(A) CALLBACK_PC_CHANGED(ADDRESS_68K(A))
   451 	#endif
   452 #else
   453 	#define m68ki_pc_changed(A)
   454 #endif /* M68K_MONITOR_PC */
   457 /* Enable or disable function code emulation */
   458 #if M68K_EMULATE_FC
   459 	#if M68K_EMULATE_FC == OPT_SPECIFY_HANDLER
   460 		#define m68ki_set_fc(A) M68K_SET_FC_CALLBACK(A)
   461 	#else
   462 		#define m68ki_set_fc(A) CALLBACK_SET_FC(A)
   463 	#endif
   464 	#define m68ki_use_data_space() m68ki_address_space = FUNCTION_CODE_USER_DATA
   465 	#define m68ki_use_program_space() m68ki_address_space = FUNCTION_CODE_USER_PROGRAM
   466 	#define m68ki_get_address_space() m68ki_address_space
   467 #else
   468 	#define m68ki_set_fc(A)
   469 	#define m68ki_use_data_space()
   470 	#define m68ki_use_program_space()
   471 	#define m68ki_get_address_space() FUNCTION_CODE_USER_DATA
   472 #endif /* M68K_EMULATE_FC */
   475 /* Enable or disable trace emulation */
   476 #if M68K_EMULATE_TRACE
   477 	/* Initiates trace checking before each instruction (t1) */
   478 	#define m68ki_trace_t1() m68ki_tracing = FLAG_T1
   479 	/* adds t0 to trace checking if we encounter change of flow */
   480 	#define m68ki_trace_t0() m68ki_tracing |= FLAG_T0
   481 	/* Clear all tracing */
   482 	#define m68ki_clear_trace() m68ki_tracing = 0
   483 	/* Cause a trace exception if we are tracing */
   484 	#define m68ki_exception_if_trace() if(m68ki_tracing) m68ki_exception_trace()
   485 #else
   486 	#define m68ki_trace_t1()
   487 	#define m68ki_trace_t0()
   488 	#define m68ki_clear_trace()
   489 	#define m68ki_exception_if_trace()
   490 #endif /* M68K_EMULATE_TRACE */
   494 /* Address error */
   495 #if M68K_EMULATE_ADDRESS_ERROR
   496 	extern jmp_buf m68ki_address_error_trap;
   497 	#define m68ki_set_address_error_trap() if(setjmp(m68ki_address_error_trap)) m68ki_exception_address_error();
   498 	#define m68ki_check_address_error(A) if((A)&1) longjmp(m68ki_address_error_jump, 1);
   499 #else
   500 	#define m68ki_set_address_error_trap()
   501 	#define m68ki_check_address_error(A)
   502 #endif /* M68K_ADDRESS_ERROR */
   504 /* Logging */
   505 #if M68K_LOG_ENABLE
   506 	#include <stdio.h>
   507 	extern FILE* M68K_LOG_FILEHANDLE
   508 	extern char* m68ki_cpu_names[];
   510 	#define M68K_DO_LOG(A) if(M68K_LOG_FILEHANDLE) fprintf A
   511 	#if M68K_LOG_1010_1111
   512 		#define M68K_DO_LOG_EMU(A) if(M68K_LOG_FILEHANDLE) fprintf A
   513 	#else
   514 		#define M68K_DO_LOG_EMU(A)
   515 	#endif
   516 #else
   517 	#define M68K_DO_LOG(A)
   518 	#define M68K_DO_LOG_EMU(A)
   519 #endif
   523 /* -------------------------- EA / Operand Access ------------------------- */
   525 /*
   526  * The general instruction format follows this pattern:
   527  * .... XXX. .... .YYY
   528  * where XXX is register X and YYY is register Y
   529  */
   530 /* Data Register Isolation */
   531 #define DX (REG_D[(REG_IR >> 9) & 7])
   532 #define DY (REG_D[REG_IR & 7])
   533 /* Address Register Isolation */
   534 #define AX (REG_A[(REG_IR >> 9) & 7])
   535 #define AY (REG_A[REG_IR & 7])
   538 /* Effective Address Calculations */
   539 #define EA_AY_AI_8()   AY                                    /* address register indirect */
   540 #define EA_AY_AI_16()  EA_AY_AI_8()
   541 #define EA_AY_AI_32()  EA_AY_AI_8()
   542 #define EA_AY_PI_8()   (AY++)                                /* postincrement (size = byte) */
   543 #define EA_AY_PI_16()  ((AY+=2)-2)                           /* postincrement (size = word) */
   544 #define EA_AY_PI_32()  ((AY+=4)-4)                           /* postincrement (size = long) */
   545 #define EA_AY_PD_8()   (--AY)                                /* predecrement (size = byte) */
   546 #define EA_AY_PD_16()  (AY-=2)                               /* predecrement (size = word) */
   547 #define EA_AY_PD_32()  (AY-=4)                               /* predecrement (size = long) */
   548 #define EA_AY_DI_8()   (AY+MAKE_INT_16(m68ki_read_imm_16())) /* displacement */
   549 #define EA_AY_DI_16()  EA_AY_DI_8()
   550 #define EA_AY_DI_32()  EA_AY_DI_8()
   551 #define EA_AY_IX_8()   m68ki_get_ea_ix(AY)                   /* indirect + index */
   552 #define EA_AY_IX_16()  EA_AY_IX_8()
   553 #define EA_AY_IX_32()  EA_AY_IX_8()
   555 #define EA_AX_AI_8()   AX
   556 #define EA_AX_AI_16()  EA_AX_AI_8()
   557 #define EA_AX_AI_32()  EA_AX_AI_8()
   558 #define EA_AX_PI_8()   (AX++)
   559 #define EA_AX_PI_16()  ((AX+=2)-2)
   560 #define EA_AX_PI_32()  ((AX+=4)-4)
   561 #define EA_AX_PD_8()   (--AX)
   562 #define EA_AX_PD_16()  (AX-=2)
   563 #define EA_AX_PD_32()  (AX-=4)
   564 #define EA_AX_DI_8()   (AX+MAKE_INT_16(m68ki_read_imm_16()))
   565 #define EA_AX_DI_16()  EA_AX_DI_8()
   566 #define EA_AX_DI_32()  EA_AX_DI_8()
   567 #define EA_AX_IX_8()   m68ki_get_ea_ix(AX)
   568 #define EA_AX_IX_16()  EA_AX_IX_8()
   569 #define EA_AX_IX_32()  EA_AX_IX_8()
   571 #define EA_A7_PI_8()   ((REG_A[7]+=2)-2)
   572 #define EA_A7_PD_8()   (REG_A[7]-=2)
   574 #define EA_AW_8()      MAKE_INT_16(m68ki_read_imm_16())      /* absolute word */
   575 #define EA_AW_16()     EA_AW_8()
   576 #define EA_AW_32()     EA_AW_8()
   577 #define EA_AL_8()      m68ki_read_imm_32()                   /* absolute long */
   578 #define EA_AL_16()     EA_AL_8()
   579 #define EA_AL_32()     EA_AL_8()
   580 #define EA_PCDI_8()    m68ki_get_ea_pcdi()                   /* pc indirect + displacement */
   581 #define EA_PCDI_16()   EA_PCDI_8()
   582 #define EA_PCDI_32()   EA_PCDI_8()
   583 #define EA_PCIX_8()    m68ki_get_ea_pcix()                   /* pc indirect + index */
   584 #define EA_PCIX_16()   EA_PCIX_8()
   585 #define EA_PCIX_32()   EA_PCIX_8()
   588 #define OPER_I_8()     m68ki_read_imm_8()
   589 #define OPER_I_16()    m68ki_read_imm_16()
   590 #define OPER_I_32()    m68ki_read_imm_32()
   594 /* --------------------------- Status Register ---------------------------- */
   596 /* Flag Calculation Macros */
   597 #define CFLAG_8(A) (A)
   598 #define CFLAG_16(A) ((A)>>8)
   600 #if M68K_INT_GT_32_BIT
   601 	#define CFLAG_ADD_32(S, D, R) ((R)>>24)
   602 	#define CFLAG_SUB_32(S, D, R) ((R)>>24)
   603 #else
   604 	#define CFLAG_ADD_32(S, D, R) (((S & D) | (~R & (S | D)))>>23)
   605 	#define CFLAG_SUB_32(S, D, R) (((S & R) | (~D & (S | R)))>>23)
   606 #endif /* M68K_INT_GT_32_BIT */
   608 #define VFLAG_ADD_8(S, D, R) ((S^R) & (D^R))
   609 #define VFLAG_ADD_16(S, D, R) (((S^R) & (D^R))>>8)
   610 #define VFLAG_ADD_32(S, D, R) (((S^R) & (D^R))>>24)
   612 #define VFLAG_SUB_8(S, D, R) ((S^D) & (R^D))
   613 #define VFLAG_SUB_16(S, D, R) (((S^D) & (R^D))>>8)
   614 #define VFLAG_SUB_32(S, D, R) (((S^D) & (R^D))>>24)
   616 #define NFLAG_8(A) (A)
   617 #define NFLAG_16(A) ((A)>>8)
   618 #define NFLAG_32(A) ((A)>>24)
   619 #define NFLAG_64(A) ((A)>>56)
   621 #define ZFLAG_8(A) MASK_OUT_ABOVE_8(A)
   622 #define ZFLAG_16(A) MASK_OUT_ABOVE_16(A)
   623 #define ZFLAG_32(A) MASK_OUT_ABOVE_32(A)
   626 /* Flag values */
   627 #define NFLAG_SET   0x80
   628 #define NFLAG_CLEAR 0
   629 #define CFLAG_SET   0x100
   630 #define CFLAG_CLEAR 0
   631 #define XFLAG_SET   0x100
   632 #define XFLAG_CLEAR 0
   633 #define VFLAG_SET   0x80
   634 #define VFLAG_CLEAR 0
   635 #define ZFLAG_SET   0
   636 #define ZFLAG_CLEAR 0xffffffff
   638 #define SFLAG_SET   4
   639 #define SFLAG_CLEAR 0
   640 #define MFLAG_SET   2
   641 #define MFLAG_CLEAR 0
   643 /* Turn flag values into 1 or 0 */
   644 #define XFLAG_AS_1() ((FLAG_X>>8)&1)
   645 #define NFLAG_AS_1() ((FLAG_N>>7)&1)
   646 #define VFLAG_AS_1() ((FLAG_V>>7)&1)
   647 #define ZFLAG_AS_1() (!FLAG_Z)
   648 #define CFLAG_AS_1() ((FLAG_C>>8)&1)
   651 /* Conditions */
   652 #define COND_CS() (FLAG_C&0x100)
   653 #define COND_CC() (!COND_CS())
   654 #define COND_VS() (FLAG_V&0x80)
   655 #define COND_VC() (!COND_VS())
   656 #define COND_NE() FLAG_Z
   657 #define COND_EQ() (!COND_NE())
   658 #define COND_MI() (FLAG_N&0x80)
   659 #define COND_PL() (!COND_MI())
   660 #define COND_LT() ((FLAG_N^FLAG_V)&0x80)
   661 #define COND_GE() (!COND_LT())
   662 #define COND_HI() (COND_CC() && COND_NE())
   663 #define COND_LS() (COND_CS() || COND_EQ())
   664 #define COND_GT() (COND_GE() && COND_NE())
   665 #define COND_LE() (COND_LT() || COND_EQ())
   667 /* Reversed conditions */
   668 #define COND_NOT_CS() COND_CC()
   669 #define COND_NOT_CC() COND_CS()
   670 #define COND_NOT_VS() COND_VC()
   671 #define COND_NOT_VC() COND_VS()
   672 #define COND_NOT_NE() COND_EQ()
   673 #define COND_NOT_EQ() COND_NE()
   674 #define COND_NOT_MI() COND_PL()
   675 #define COND_NOT_PL() COND_MI()
   676 #define COND_NOT_LT() COND_GE()
   677 #define COND_NOT_GE() COND_LT()
   678 #define COND_NOT_HI() COND_LS()
   679 #define COND_NOT_LS() COND_HI()
   680 #define COND_NOT_GT() COND_LE()
   681 #define COND_NOT_LE() COND_GT()
   683 /* Not real conditions, but here for convenience */
   684 #define COND_XS() (FLAG_X&0x100)
   685 #define COND_XC() (!COND_XS)
   688 /* Get the condition code register */
   689 #define m68ki_get_ccr() ((COND_XS() >> 4) | \
   690 						 (COND_MI() >> 4) | \
   691 						 (COND_EQ() << 2) | \
   692 						 (COND_VS() >> 6) | \
   693 						 (COND_CS() >> 8))
   695 /* Get the status register */
   696 #define m68ki_get_sr() ( FLAG_T1              | \
   697 						 FLAG_T0              | \
   698 						(FLAG_S        << 11) | \
   699 						(FLAG_M        << 11) | \
   700 						 FLAG_INT_MASK        | \
   701 						 m68ki_get_ccr())
   705 /* ---------------------------- Cycle Counting ---------------------------- */
   707 #define ADD_CYCLES(A)    m68ki_remaining_cycles += (A)
   708 #define USE_CYCLES(A)    m68ki_remaining_cycles -= (A)
   709 #define SET_CYCLES(A)    m68ki_remaining_cycles = A
   710 #define GET_CYCLES()     m68ki_remaining_cycles
   711 #define USE_ALL_CYCLES() m68ki_remaining_cycles = 0
   715 /* ----------------------------- Read / Write ----------------------------- */
   717 /* Read from the current address space */
   718 #define m68ki_read_8(A)  m68ki_read_8_fc (A, FLAG_S | m68ki_get_address_space())
   719 #define m68ki_read_16(A) m68ki_read_16_fc(A, FLAG_S | m68ki_get_address_space())
   720 #define m68ki_read_32(A) m68ki_read_32_fc(A, FLAG_S | m68ki_get_address_space())
   722 /* Write to the current data space */
   723 #define m68ki_write_8(A, V)  m68ki_write_8_fc (A, FLAG_S | FUNCTION_CODE_USER_DATA, V)
   724 #define m68ki_write_16(A, V) m68ki_write_16_fc(A, FLAG_S | FUNCTION_CODE_USER_DATA, V)
   725 #define m68ki_write_32(A, V) m68ki_write_32_fc(A, FLAG_S | FUNCTION_CODE_USER_DATA, V)
   727 /* map read immediate 8 to read immediate 16 */
   728 #define m68ki_read_imm_8() MASK_OUT_ABOVE_8(m68ki_read_imm_16())
   730 /* Map PC-relative reads */
   731 #define m68ki_read_pcrel_8(A) m68k_read_pcrelative_8(A)
   732 #define m68ki_read_pcrel_16(A) m68k_read_pcrelative_16(A)
   733 #define m68ki_read_pcrel_32(A) m68k_read_pcrelative_32(A)
   735 /* Read from the program space */
   736 #define m68ki_read_program_8(A) 	m68ki_read_8_fc(A, FLAG_S | FUNCTION_CODE_USER_PROGRAM)
   737 #define m68ki_read_program_16(A) 	m68ki_read_16_fc(A, FLAG_S | FUNCTION_CODE_USER_PROGRAM)
   738 #define m68ki_read_program_32(A) 	m68ki_read_32_fc(A, FLAG_S | FUNCTION_CODE_USER_PROGRAM)
   740 /* Read from the data space */
   741 #define m68ki_read_data_8(A) 	m68ki_read_8_fc(A, FLAG_S | FUNCTION_CODE_USER_DATA)
   742 #define m68ki_read_data_16(A) 	m68ki_read_16_fc(A, FLAG_S | FUNCTION_CODE_USER_DATA)
   743 #define m68ki_read_data_32(A) 	m68ki_read_32_fc(A, FLAG_S | FUNCTION_CODE_USER_DATA)
   747 /* ======================================================================== */
   748 /* =============================== PROTOTYPES ============================= */
   749 /* ======================================================================== */
   751 typedef struct
   752 {
   753 	uint cpu_type;     /* CPU Type: 68000, 68010, 68EC020, or 68020 */
   754 	uint dar[16];      /* Data and Address Registers */
   755 	uint ppc;		   /* Previous program counter */
   756 	uint pc;           /* Program Counter */
   757 	uint sp[7];        /* User, Interrupt, and Master Stack Pointers */
   758 	uint vbr;          /* Vector Base Register (m68010+) */
   759 	uint sfc;          /* Source Function Code Register (m68010+) */
   760 	uint dfc;          /* Destination Function Code Register (m68010+) */
   761 	uint cacr;         /* Cache Control Register (m68020, unemulated) */
   762 	uint caar;         /* Cache Address Register (m68020, unemulated) */
   763 	uint ir;           /* Instruction Register */
   764 	uint t1_flag;      /* Trace 1 */
   765 	uint t0_flag;      /* Trace 0 */
   766 	uint s_flag;       /* Supervisor */
   767 	uint m_flag;       /* Master/Interrupt state */
   768 	uint x_flag;       /* Extend */
   769 	uint n_flag;       /* Negative */
   770 	uint not_z_flag;   /* Zero, inverted for speedups */
   771 	uint v_flag;       /* Overflow */
   772 	uint c_flag;       /* Carry */
   773 	uint int_mask;     /* I0-I2 */
   774 	uint int_level;    /* State of interrupt pins IPL0-IPL2 -- ASG: changed from ints_pending */
   775 	uint int_cycles;   /* ASG: extra cycles from generated interrupts */
   776 	uint stopped;      /* Stopped state */
   777 	uint pref_addr;    /* Last prefetch address */
   778 	uint pref_data;    /* Data in the prefetch queue */
   779 	uint address_mask; /* Available address pins */
   780 	uint sr_mask;      /* Implemented status register bits */
   782 	uint bus_error_occurred;
   784 	/* Clocks required for instructions / exceptions */
   785 	uint cyc_bcc_notake_b;
   786 	uint cyc_bcc_notake_w;
   787 	uint cyc_dbcc_f_noexp;
   788 	uint cyc_dbcc_f_exp;
   789 	uint cyc_scc_r_false;
   790 	uint cyc_movem_w;
   791 	uint cyc_movem_l;
   792 	uint cyc_shift;
   793 	uint cyc_reset;
   794 	uint8* cyc_instruction;
   795 	uint8* cyc_exception;
   797 	/* Callbacks to host */
   798 	int  (*int_ack_callback)(int int_line);           /* Interrupt Acknowledge */
   799 	void (*bkpt_ack_callback)(unsigned int data);     /* Breakpoint Acknowledge */
   800 	void (*reset_instr_callback)(void);               /* Called when a RESET instruction is encountered */
   801 	void (*pc_changed_callback)(unsigned int new_pc); /* Called when the PC changes by a large amount */
   802 	void (*set_fc_callback)(unsigned int new_fc);     /* Called when the CPU function code changes */
   803 	void (*instr_hook_callback)(void);                /* Called every instruction cycle prior to execution */
   805 } m68ki_cpu_core;
   808 extern m68ki_cpu_core m68ki_cpu;
   809 extern sint           m68ki_remaining_cycles;
   810 extern uint           m68ki_tracing;
   811 extern uint8          m68ki_shift_8_table[];
   812 extern uint16         m68ki_shift_16_table[];
   813 extern uint           m68ki_shift_32_table[];
   814 extern uint8          m68ki_exception_cycle_table[][256];
   815 extern uint           m68ki_address_space;
   816 extern uint8          m68ki_ea_idx_cycle_table[];
   819 /* Read data immediately after the program counter */
   820 INLINE uint m68ki_read_imm_16(void);
   821 INLINE uint m68ki_read_imm_32(void);
   823 /* Read data with specific function code */
   824 INLINE uint m68ki_read_8_fc  (uint address, uint fc);
   825 INLINE uint m68ki_read_16_fc (uint address, uint fc);
   826 INLINE uint m68ki_read_32_fc (uint address, uint fc);
   828 /* Write data with specific function code */
   829 INLINE void m68ki_write_8_fc (uint address, uint fc, uint value);
   830 INLINE void m68ki_write_16_fc(uint address, uint fc, uint value);
   831 INLINE void m68ki_write_32_fc(uint address, uint fc, uint value);
   833 /* Indexed and PC-relative ea fetching */
   834 INLINE uint m68ki_get_ea_pcdi(void);
   835 INLINE uint m68ki_get_ea_pcix(void);
   836 INLINE uint m68ki_get_ea_ix(uint An);
   838 /* Operand fetching */
   839 INLINE uint OPER_AY_AI_8(void);
   840 INLINE uint OPER_AY_AI_16(void);
   841 INLINE uint OPER_AY_AI_32(void);
   842 INLINE uint OPER_AY_PI_8(void);
   843 INLINE uint OPER_AY_PI_16(void);
   844 INLINE uint OPER_AY_PI_32(void);
   845 INLINE uint OPER_AY_PD_8(void);
   846 INLINE uint OPER_AY_PD_16(void);
   847 INLINE uint OPER_AY_PD_32(void);
   848 INLINE uint OPER_AY_DI_8(void);
   849 INLINE uint OPER_AY_DI_16(void);
   850 INLINE uint OPER_AY_DI_32(void);
   851 INLINE uint OPER_AY_IX_8(void);
   852 INLINE uint OPER_AY_IX_16(void);
   853 INLINE uint OPER_AY_IX_32(void);
   855 INLINE uint OPER_AX_AI_8(void);
   856 INLINE uint OPER_AX_AI_16(void);
   857 INLINE uint OPER_AX_AI_32(void);
   858 INLINE uint OPER_AX_PI_8(void);
   859 INLINE uint OPER_AX_PI_16(void);
   860 INLINE uint OPER_AX_PI_32(void);
   861 INLINE uint OPER_AX_PD_8(void);
   862 INLINE uint OPER_AX_PD_16(void);
   863 INLINE uint OPER_AX_PD_32(void);
   864 INLINE uint OPER_AX_DI_8(void);
   865 INLINE uint OPER_AX_DI_16(void);
   866 INLINE uint OPER_AX_DI_32(void);
   867 INLINE uint OPER_AX_IX_8(void);
   868 INLINE uint OPER_AX_IX_16(void);
   869 INLINE uint OPER_AX_IX_32(void);
   871 INLINE uint OPER_A7_PI_8(void);
   872 INLINE uint OPER_A7_PD_8(void);
   874 INLINE uint OPER_AW_8(void);
   875 INLINE uint OPER_AW_16(void);
   876 INLINE uint OPER_AW_32(void);
   877 INLINE uint OPER_AL_8(void);
   878 INLINE uint OPER_AL_16(void);
   879 INLINE uint OPER_AL_32(void);
   880 INLINE uint OPER_PCDI_8(void);
   881 INLINE uint OPER_PCDI_16(void);
   882 INLINE uint OPER_PCDI_32(void);
   883 INLINE uint OPER_PCIX_8(void);
   884 INLINE uint OPER_PCIX_16(void);
   885 INLINE uint OPER_PCIX_32(void);
   887 /* Stack operations */
   888 INLINE void m68ki_push_16(uint value);
   889 INLINE void m68ki_push_32(uint value);
   890 INLINE uint m68ki_pull_16(void);
   891 INLINE uint m68ki_pull_32(void);
   893 /* Program flow operations */
   894 INLINE void m68ki_jump(uint new_pc);
   895 INLINE void m68ki_jump_vector(uint vector);
   896 INLINE void m68ki_branch_8(uint offset);
   897 INLINE void m68ki_branch_16(uint offset);
   898 INLINE void m68ki_branch_32(uint offset);
   900 /* Status register operations. */
   901 INLINE void m68ki_set_s_flag(uint value);            /* Only bit 2 of value should be set (i.e. 4 or 0) */
   902 INLINE void m68ki_set_sm_flag(uint value);           /* only bits 1 and 2 of value should be set */
   903 INLINE void m68ki_set_ccr(uint value);               /* set the condition code register */
   904 INLINE void m68ki_set_sr(uint value);                /* set the status register */
   905 INLINE void m68ki_set_sr_noint(uint value);          /* set the status register */
   907 /* Exception processing */
   908 INLINE uint m68ki_init_exception(void);              /* Initial exception processing */
   910 INLINE void m68ki_stack_frame_3word(uint pc, uint sr); /* Stack various frame types */
   911 INLINE void m68ki_stack_frame_buserr(uint pc, uint sr, uint address, uint write, uint instruction, uint fc);
   913 INLINE void m68ki_stack_frame_0000(uint pc, uint sr, uint vector);
   914 INLINE void m68ki_stack_frame_0001(uint pc, uint sr, uint vector);
   915 INLINE void m68ki_stack_frame_0010(uint sr, uint vector);
   916 INLINE void m68ki_stack_frame_1000(uint pc, uint sr, uint vector);
   917 INLINE void m68ki_stack_frame_1010(uint sr, uint vector, uint pc);
   918 INLINE void m68ki_stack_frame_1011(uint sr, uint vector, uint pc);
   920 INLINE void m68ki_exception_trap(uint vector);
   921 INLINE void m68ki_exception_trapN(uint vector);
   922 INLINE void m68ki_exception_trace(void);
   923 INLINE void m68ki_exception_privilege_violation(void);
   924 INLINE void m68ki_exception_bus_error(void);
   925 INLINE void m68ki_exception_1010(void);
   926 INLINE void m68ki_exception_1111(void);
   927 INLINE void m68ki_exception_illegal(void);
   928 INLINE void m68ki_exception_format_error(void);
   929 INLINE void m68ki_exception_address_error(void);
   930 INLINE void m68ki_exception_interrupt(uint int_level);
   931 INLINE void m68ki_check_interrupts(void);            /* ASG: check for interrupts */
   933 /* quick disassembly (used for logging) */
   934 char* m68ki_disassemble_quick(unsigned int pc, unsigned int cpu_type);
   937 /* ======================================================================== */
   938 /* =========================== UTILITY FUNCTIONS ========================== */
   939 /* ======================================================================== */
   942 /* ---------------------------- Read Immediate ---------------------------- */
   944 /* Handles all immediate reads, does address error check, function code setting,
   945  * and prefetching if they are enabled in m68kconf.h
   946  */
   947 INLINE uint m68ki_read_imm_16(void)
   948 {
   949 	m68ki_set_fc(FLAG_S | FUNCTION_CODE_USER_PROGRAM); /* auto-disable (see m68kcpu.h) */
   950 	m68ki_check_address_error(REG_PC); /* auto-disable (see m68kcpu.h) */
   951 #if M68K_EMULATE_PREFETCH
   952 	if(MASK_OUT_BELOW_2(REG_PC) != CPU_PREF_ADDR)
   953 	{
   954 		CPU_PREF_ADDR = MASK_OUT_BELOW_2(REG_PC);
   955 		CPU_PREF_DATA = m68k_read_immediate_32(ADDRESS_68K(CPU_PREF_ADDR));
   956 	}
   957 	REG_PC += 2;
   958 	return MASK_OUT_ABOVE_16(CPU_PREF_DATA >> ((2-((REG_PC-2)&2))<<3));
   959 #else
   960 	REG_PC += 2;
   961 	return m68k_read_immediate_16(ADDRESS_68K(REG_PC-2));
   962 #endif /* M68K_EMULATE_PREFETCH */
   963 }
   964 INLINE uint m68ki_read_imm_32(void)
   965 {
   966 #if M68K_EMULATE_PREFETCH
   967 	uint temp_val;
   969 	m68ki_set_fc(FLAG_S | FUNCTION_CODE_USER_PROGRAM); /* auto-disable (see m68kcpu.h) */
   970 	m68ki_check_address_error(REG_PC); /* auto-disable (see m68kcpu.h) */
   971 	if(MASK_OUT_BELOW_2(REG_PC) != CPU_PREF_ADDR)
   972 	{
   973 		CPU_PREF_ADDR = MASK_OUT_BELOW_2(REG_PC);
   974 		CPU_PREF_DATA = m68k_read_immediate_32(ADDRESS_68K(CPU_PREF_ADDR));
   975 	}
   976 	temp_val = CPU_PREF_DATA;
   977 	REG_PC += 2;
   978 	if(MASK_OUT_BELOW_2(REG_PC) != CPU_PREF_ADDR)
   979 	{
   980 		CPU_PREF_ADDR = MASK_OUT_BELOW_2(REG_PC);
   981 		CPU_PREF_DATA = m68k_read_immediate_32(ADDRESS_68K(CPU_PREF_ADDR));
   982 		temp_val = MASK_OUT_ABOVE_32((temp_val << 16) | (CPU_PREF_DATA >> 16));
   983 	}
   984 	REG_PC += 2;
   986 	return temp_val;
   987 #else
   988 	m68ki_set_fc(FLAG_S | FUNCTION_CODE_USER_PROGRAM); /* auto-disable (see m68kcpu.h) */
   989 	m68ki_check_address_error(REG_PC); /* auto-disable (see m68kcpu.h) */
   990 	REG_PC += 4;
   991 	return m68k_read_immediate_32(ADDRESS_68K(REG_PC-4));
   992 #endif /* M68K_EMULATE_PREFETCH */
   993 }
   997 /* ------------------------- Top level read/write ------------------------- */
   999 /* Handles all memory accesses (except for immediate reads if they are
  1000  * configured to use separate functions in m68kconf.h).
  1001  * All memory accesses must go through these top level functions.
  1002  * These functions will also check for address error and set the function
  1003  * code if they are enabled in m68kconf.h.
  1004  */
  1005 INLINE uint m68ki_read_8_fc(uint address, uint fc)
  1007 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1008 	return m68k_read_memory_8(ADDRESS_68K(address));
  1010 INLINE uint m68ki_read_16_fc(uint address, uint fc)
  1012 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1013 	m68ki_check_address_error(address); /* auto-disable (see m68kcpu.h) */
  1014 	return m68k_read_memory_16(ADDRESS_68K(address));
  1016 INLINE uint m68ki_read_32_fc(uint address, uint fc)
  1018 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1019 	m68ki_check_address_error(address); /* auto-disable (see m68kcpu.h) */
  1020 	return m68k_read_memory_32(ADDRESS_68K(address));
  1023 INLINE void m68ki_write_8_fc(uint address, uint fc, uint value)
  1025 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1026 	m68k_write_memory_8(ADDRESS_68K(address), value);
  1028 INLINE void m68ki_write_16_fc(uint address, uint fc, uint value)
  1030 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1031 	m68ki_check_address_error(address); /* auto-disable (see m68kcpu.h) */
  1032 	m68k_write_memory_16(ADDRESS_68K(address), value);
  1034 INLINE void m68ki_write_32_fc(uint address, uint fc, uint value)
  1036 	m68ki_set_fc(fc); /* auto-disable (see m68kcpu.h) */
  1037 	m68ki_check_address_error(address); /* auto-disable (see m68kcpu.h) */
  1038 	m68k_write_memory_32(ADDRESS_68K(address), value);
  1043 /* --------------------- Effective Address Calculation -------------------- */
  1045 /* The program counter relative addressing modes cause operands to be
  1046  * retrieved from program space, not data space.
  1047  */
  1048 INLINE uint m68ki_get_ea_pcdi(void)
  1050 	uint old_pc = REG_PC;
  1051 	m68ki_use_program_space(); /* auto-disable */
  1052 	return old_pc + MAKE_INT_16(m68ki_read_imm_16());
  1056 INLINE uint m68ki_get_ea_pcix(void)
  1058 	m68ki_use_program_space(); /* auto-disable */
  1059 	return m68ki_get_ea_ix(REG_PC);
  1062 /* Indexed addressing modes are encoded as follows:
  1064  * Base instruction format:
  1065  * F E D C B A 9 8 7 6 | 5 4 3 | 2 1 0
  1066  * x x x x x x x x x x | 1 1 0 | BASE REGISTER      (An)
  1068  * Base instruction format for destination EA in move instructions:
  1069  * F E D C | B A 9    | 8 7 6 | 5 4 3 2 1 0
  1070  * x x x x | BASE REG | 1 1 0 | X X X X X X       (An)
  1072  * Brief extension format:
  1073  *  F  |  E D C   |  B  |  A 9  | 8 | 7 6 5 4 3 2 1 0
  1074  * D/A | REGISTER | W/L | SCALE | 0 |  DISPLACEMENT
  1076  * Full extension format:
  1077  *  F     E D C      B     A 9    8   7    6    5 4       3   2 1 0
  1078  * D/A | REGISTER | W/L | SCALE | 1 | BS | IS | BD SIZE | 0 | I/IS
  1079  * BASE DISPLACEMENT (0, 16, 32 bit)                (bd)
  1080  * OUTER DISPLACEMENT (0, 16, 32 bit)               (od)
  1082  * D/A:     0 = Dn, 1 = An                          (Xn)
  1083  * W/L:     0 = W (sign extend), 1 = L              (.SIZE)
  1084  * SCALE:   00=1, 01=2, 10=4, 11=8                  (*SCALE)
  1085  * BS:      0=add base reg, 1=suppress base reg     (An suppressed)
  1086  * IS:      0=add index, 1=suppress index           (Xn suppressed)
  1087  * BD SIZE: 00=reserved, 01=NULL, 10=Word, 11=Long  (size of bd)
  1089  * IS I/IS Operation
  1090  * 0  000  No Memory Indirect
  1091  * 0  001  indir prex with null outer
  1092  * 0  010  indir prex with word outer
  1093  * 0  011  indir prex with long outer
  1094  * 0  100  reserved
  1095  * 0  101  indir postx with null outer
  1096  * 0  110  indir postx with word outer
  1097  * 0  111  indir postx with long outer
  1098  * 1  000  no memory indirect
  1099  * 1  001  mem indir with null outer
  1100  * 1  010  mem indir with word outer
  1101  * 1  011  mem indir with long outer
  1102  * 1  100-111  reserved
  1103  */
  1104 INLINE uint m68ki_get_ea_ix(uint An)
  1106 	/* An = base register */
  1107 	uint extension = m68ki_read_imm_16();
  1108 	uint Xn = 0;                        /* Index register */
  1109 	uint bd = 0;                        /* Base Displacement */
  1110 	uint od = 0;                        /* Outer Displacement */
  1112 	if(CPU_TYPE_IS_010_LESS(CPU_TYPE))
  1114 		/* Calculate index */
  1115 		Xn = REG_DA[extension>>12];     /* Xn */
  1116 		if(!BIT_B(extension))           /* W/L */
  1117 			Xn = MAKE_INT_16(Xn);
  1119 		/* Add base register and displacement and return */
  1120 		return An + Xn + MAKE_INT_8(extension);
  1123 	/* Brief extension format */
  1124 	if(!BIT_8(extension))
  1126 		/* Calculate index */
  1127 		Xn = REG_DA[extension>>12];     /* Xn */
  1128 		if(!BIT_B(extension))           /* W/L */
  1129 			Xn = MAKE_INT_16(Xn);
  1130 		/* Add scale if proper CPU type */
  1131 		if(CPU_TYPE_IS_EC020_PLUS(CPU_TYPE))
  1132 			Xn <<= (extension>>9) & 3;  /* SCALE */
  1134 		/* Add base register and displacement and return */
  1135 		return An + Xn + MAKE_INT_8(extension);
  1138 	/* Full extension format */
  1140 	USE_CYCLES(m68ki_ea_idx_cycle_table[extension&0x3f]);
  1142 	/* Check if base register is present */
  1143 	if(BIT_7(extension))                /* BS */
  1144 		An = 0;                         /* An */
  1146 	/* Check if index is present */
  1147 	if(!BIT_6(extension))               /* IS */
  1149 		Xn = REG_DA[extension>>12];     /* Xn */
  1150 		if(!BIT_B(extension))           /* W/L */
  1151 			Xn = MAKE_INT_16(Xn);
  1152 		Xn <<= (extension>>9) & 3;      /* SCALE */
  1155 	/* Check if base displacement is present */
  1156 	if(BIT_5(extension))                /* BD SIZE */
  1157 		bd = BIT_4(extension) ? m68ki_read_imm_32() : MAKE_INT_16(m68ki_read_imm_16());
  1159 	/* If no indirect action, we are done */
  1160 	if(!(extension&7))                  /* No Memory Indirect */
  1161 		return An + bd + Xn;
  1163 	/* Check if outer displacement is present */
  1164 	if(BIT_1(extension))                /* I/IS:  od */
  1165 		od = BIT_0(extension) ? m68ki_read_imm_32() : MAKE_INT_16(m68ki_read_imm_16());
  1167 	/* Postindex */
  1168 	if(BIT_2(extension))                /* I/IS:  0 = preindex, 1 = postindex */
  1169 		return m68ki_read_32(An + bd) + Xn + od;
  1171 	/* Preindex */
  1172 	return m68ki_read_32(An + bd + Xn) + od;
  1176 /* Fetch operands */
  1177 INLINE uint OPER_AY_AI_8(void)  {uint ea = EA_AY_AI_8();  return m68ki_read_8(ea); }
  1178 INLINE uint OPER_AY_AI_16(void) {uint ea = EA_AY_AI_16(); return m68ki_read_16(ea);}
  1179 INLINE uint OPER_AY_AI_32(void) {uint ea = EA_AY_AI_32(); return m68ki_read_32(ea);}
  1180 INLINE uint OPER_AY_PI_8(void)  {uint ea = EA_AY_PI_8();  return m68ki_read_8(ea); }
  1181 INLINE uint OPER_AY_PI_16(void) {uint ea = EA_AY_PI_16(); return m68ki_read_16(ea);}
  1182 INLINE uint OPER_AY_PI_32(void) {uint ea = EA_AY_PI_32(); return m68ki_read_32(ea);}
  1183 INLINE uint OPER_AY_PD_8(void)  {uint ea = EA_AY_PD_8();  return m68ki_read_8(ea); }
  1184 INLINE uint OPER_AY_PD_16(void) {uint ea = EA_AY_PD_16(); return m68ki_read_16(ea);}
  1185 INLINE uint OPER_AY_PD_32(void) {uint ea = EA_AY_PD_32(); return m68ki_read_32(ea);}
  1186 INLINE uint OPER_AY_DI_8(void)  {uint ea = EA_AY_DI_8();  return m68ki_read_8(ea); }
  1187 INLINE uint OPER_AY_DI_16(void) {uint ea = EA_AY_DI_16(); return m68ki_read_16(ea);}
  1188 INLINE uint OPER_AY_DI_32(void) {uint ea = EA_AY_DI_32(); return m68ki_read_32(ea);}
  1189 INLINE uint OPER_AY_IX_8(void)  {uint ea = EA_AY_IX_8();  return m68ki_read_8(ea); }
  1190 INLINE uint OPER_AY_IX_16(void) {uint ea = EA_AY_IX_16(); return m68ki_read_16(ea);}
  1191 INLINE uint OPER_AY_IX_32(void) {uint ea = EA_AY_IX_32(); return m68ki_read_32(ea);}
  1193 INLINE uint OPER_AX_AI_8(void)  {uint ea = EA_AX_AI_8();  return m68ki_read_8(ea); }
  1194 INLINE uint OPER_AX_AI_16(void) {uint ea = EA_AX_AI_16(); return m68ki_read_16(ea);}
  1195 INLINE uint OPER_AX_AI_32(void) {uint ea = EA_AX_AI_32(); return m68ki_read_32(ea);}
  1196 INLINE uint OPER_AX_PI_8(void)  {uint ea = EA_AX_PI_8();  return m68ki_read_8(ea); }
  1197 INLINE uint OPER_AX_PI_16(void) {uint ea = EA_AX_PI_16(); return m68ki_read_16(ea);}
  1198 INLINE uint OPER_AX_PI_32(void) {uint ea = EA_AX_PI_32(); return m68ki_read_32(ea);}
  1199 INLINE uint OPER_AX_PD_8(void)  {uint ea = EA_AX_PD_8();  return m68ki_read_8(ea); }
  1200 INLINE uint OPER_AX_PD_16(void) {uint ea = EA_AX_PD_16(); return m68ki_read_16(ea);}
  1201 INLINE uint OPER_AX_PD_32(void) {uint ea = EA_AX_PD_32(); return m68ki_read_32(ea);}
  1202 INLINE uint OPER_AX_DI_8(void)  {uint ea = EA_AX_DI_8();  return m68ki_read_8(ea); }
  1203 INLINE uint OPER_AX_DI_16(void) {uint ea = EA_AX_DI_16(); return m68ki_read_16(ea);}
  1204 INLINE uint OPER_AX_DI_32(void) {uint ea = EA_AX_DI_32(); return m68ki_read_32(ea);}
  1205 INLINE uint OPER_AX_IX_8(void)  {uint ea = EA_AX_IX_8();  return m68ki_read_8(ea); }
  1206 INLINE uint OPER_AX_IX_16(void) {uint ea = EA_AX_IX_16(); return m68ki_read_16(ea);}
  1207 INLINE uint OPER_AX_IX_32(void) {uint ea = EA_AX_IX_32(); return m68ki_read_32(ea);}
  1209 INLINE uint OPER_A7_PI_8(void)  {uint ea = EA_A7_PI_8();  return m68ki_read_8(ea); }
  1210 INLINE uint OPER_A7_PD_8(void)  {uint ea = EA_A7_PD_8();  return m68ki_read_8(ea); }
  1212 INLINE uint OPER_AW_8(void)     {uint ea = EA_AW_8();     return m68ki_read_8(ea); }
  1213 INLINE uint OPER_AW_16(void)    {uint ea = EA_AW_16();    return m68ki_read_16(ea);}
  1214 INLINE uint OPER_AW_32(void)    {uint ea = EA_AW_32();    return m68ki_read_32(ea);}
  1215 INLINE uint OPER_AL_8(void)     {uint ea = EA_AL_8();     return m68ki_read_8(ea); }
  1216 INLINE uint OPER_AL_16(void)    {uint ea = EA_AL_16();    return m68ki_read_16(ea);}
  1217 INLINE uint OPER_AL_32(void)    {uint ea = EA_AL_32();    return m68ki_read_32(ea);}
  1218 INLINE uint OPER_PCDI_8(void)   {uint ea = EA_PCDI_8();   return m68ki_read_pcrel_8(ea); }
  1219 INLINE uint OPER_PCDI_16(void)  {uint ea = EA_PCDI_16();  return m68ki_read_pcrel_16(ea);}
  1220 INLINE uint OPER_PCDI_32(void)  {uint ea = EA_PCDI_32();  return m68ki_read_pcrel_32(ea);}
  1221 INLINE uint OPER_PCIX_8(void)   {uint ea = EA_PCIX_8();   return m68ki_read_pcrel_8(ea); }
  1222 INLINE uint OPER_PCIX_16(void)  {uint ea = EA_PCIX_16();  return m68ki_read_pcrel_16(ea);}
  1223 INLINE uint OPER_PCIX_32(void)  {uint ea = EA_PCIX_32();  return m68ki_read_pcrel_32(ea);}
  1227 /* ---------------------------- Stack Functions --------------------------- */
  1229 /* Push/pull data from the stack */
  1230 INLINE void m68ki_push_16(uint value)
  1232 	REG_SP = MASK_OUT_ABOVE_32(REG_SP - 2);
  1233 	m68ki_write_16(REG_SP, value);
  1236 INLINE void m68ki_push_32(uint value)
  1238 	REG_SP = MASK_OUT_ABOVE_32(REG_SP - 4);
  1239 	m68ki_write_32(REG_SP, value);
  1242 INLINE uint m68ki_pull_16(void)
  1244 	REG_SP = MASK_OUT_ABOVE_32(REG_SP + 2);
  1245 	return m68ki_read_16(REG_SP-2);
  1248 INLINE uint m68ki_pull_32(void)
  1250 	REG_SP = MASK_OUT_ABOVE_32(REG_SP + 4);
  1251 	return m68ki_read_32(REG_SP-4);
  1255 /* Increment/decrement the stack as if doing a push/pull but
  1256  * don't do any memory access.
  1257  */
  1258 INLINE void m68ki_fake_push_16(void)
  1260 	REG_SP = MASK_OUT_ABOVE_32(REG_SP - 2);
  1263 INLINE void m68ki_fake_push_32(void)
  1265 	REG_SP = MASK_OUT_ABOVE_32(REG_SP - 4);
  1268 INLINE void m68ki_fake_pull_16(void)
  1270 	REG_SP = MASK_OUT_ABOVE_32(REG_SP + 2);
  1273 INLINE void m68ki_fake_pull_32(void)
  1275 	REG_SP = MASK_OUT_ABOVE_32(REG_SP + 4);
  1279 /* ----------------------------- Program Flow ----------------------------- */
  1281 /* Jump to a new program location or vector.
  1282  * These functions will also call the pc_changed callback if it was enabled
  1283  * in m68kconf.h.
  1284  */
  1285 INLINE void m68ki_jump(uint new_pc)
  1287 	REG_PC = new_pc;
  1288 	m68ki_pc_changed(REG_PC);
  1291 INLINE void m68ki_jump_vector(uint vector)
  1293 	REG_PC = (vector<<2) + REG_VBR;
  1294 	REG_PC = m68ki_read_data_32(REG_PC);
  1295 	m68ki_pc_changed(REG_PC);
  1299 /* Branch to a new memory location.
  1300  * The 32-bit branch will call pc_changed if it was enabled in m68kconf.h.
  1301  * So far I've found no problems with not calling pc_changed for 8 or 16
  1302  * bit branches.
  1303  */
  1304 INLINE void m68ki_branch_8(uint offset)
  1306 	REG_PC += MAKE_INT_8(offset);
  1309 INLINE void m68ki_branch_16(uint offset)
  1311 	REG_PC += MAKE_INT_16(offset);
  1314 INLINE void m68ki_branch_32(uint offset)
  1316 	REG_PC += offset;
  1317 	m68ki_pc_changed(REG_PC);
  1322 /* ---------------------------- Status Register --------------------------- */
  1324 /* Set the S flag and change the active stack pointer.
  1325  * Note that value MUST be 4 or 0.
  1326  */
  1327 INLINE void m68ki_set_s_flag(uint value)
  1329 	/* Backup the old stack pointer */
  1330 	REG_SP_BASE[FLAG_S | ((FLAG_S>>1) & FLAG_M)] = REG_SP;
  1331 	/* Set the S flag */
  1332 	FLAG_S = value;
  1333 	/* Set the new stack pointer */
  1334 	REG_SP = REG_SP_BASE[FLAG_S | ((FLAG_S>>1) & FLAG_M)];
  1337 /* Set the S and M flags and change the active stack pointer.
  1338  * Note that value MUST be 0, 2, 4, or 6 (bit2 = S, bit1 = M).
  1339  */
  1340 INLINE void m68ki_set_sm_flag(uint value)
  1342 	/* Backup the old stack pointer */
  1343 	REG_SP_BASE[FLAG_S | ((FLAG_S>>1) & FLAG_M)] = REG_SP;
  1344 	/* Set the S and M flags */
  1345 	FLAG_S = value & SFLAG_SET;
  1346 	FLAG_M = value & MFLAG_SET;
  1347 	/* Set the new stack pointer */
  1348 	REG_SP = REG_SP_BASE[FLAG_S | ((FLAG_S>>1) & FLAG_M)];
  1352 /* Set the condition code register */
  1353 INLINE void m68ki_set_ccr(uint value)
  1355 	FLAG_X = BIT_4(value)  << 4;
  1356 	FLAG_N = BIT_3(value)  << 4;
  1357 	FLAG_Z = !BIT_2(value);
  1358 	FLAG_V = BIT_1(value)  << 6;
  1359 	FLAG_C = BIT_0(value)  << 8;
  1362 /* Set the status register but don't check for interrupts */
  1363 INLINE void m68ki_set_sr_noint(uint value)
  1365 	/* Mask out the "unimplemented" bits */
  1366 	value &= CPU_SR_MASK;
  1368 	/* Now set the status register */
  1369 	FLAG_T1 = BIT_F(value);
  1370 	FLAG_T0 = BIT_E(value);
  1371 	FLAG_INT_MASK = value & 0x0700;
  1372 	m68ki_set_ccr(value);
  1373 	m68ki_set_sm_flag((value >> 11) & 6);
  1376 /* Set the status register and check for interrupts */
  1377 INLINE void m68ki_set_sr(uint value)
  1379 	m68ki_set_sr_noint(value);
  1380 	m68ki_check_interrupts();
  1384 /* ------------------------- Exception Processing ------------------------- */
  1386 /* Initiate exception processing */
  1387 INLINE uint m68ki_init_exception(void)
  1389 	/* Save the old status register */
  1390 	uint sr = m68ki_get_sr();
  1392 	/* Turn off trace flag, clear pending traces */
  1393 	FLAG_T1 = FLAG_T0 = 0;
  1394 	m68ki_clear_trace();
  1395 	/* Enter supervisor mode */
  1396 	m68ki_set_s_flag(SFLAG_SET);
  1398 	return sr;
  1401 /* 3 word stack frame (68000 only) */
  1402 INLINE void m68ki_stack_frame_3word(uint pc, uint sr)
  1404 	m68ki_push_32(pc);
  1405 	m68ki_push_16(sr);
  1408 /* Format 0 stack frame.
  1409  * This is the standard stack frame for 68010+.
  1410  */
  1411 INLINE void m68ki_stack_frame_0000(uint pc, uint sr, uint vector)
  1413 	/* Stack a 3-word frame if we are 68000 */
  1414 	if(CPU_TYPE == CPU_TYPE_000)
  1416 		m68ki_stack_frame_3word(pc, sr);
  1417 		return;
  1419 	m68ki_push_16(vector<<2);
  1420 	m68ki_push_32(pc);
  1421 	m68ki_push_16(sr);
  1424 /* Format 1 stack frame (68020).
  1425  * For 68020, this is the 4 word throwaway frame.
  1426  */
  1427 INLINE void m68ki_stack_frame_0001(uint pc, uint sr, uint vector)
  1429 	m68ki_push_16(0x1000 | (vector<<2));
  1430 	m68ki_push_32(pc);
  1431 	m68ki_push_16(sr);
  1434 /* Format 2 stack frame.
  1435  * This is used only by 68020 for trap exceptions.
  1436  */
  1437 INLINE void m68ki_stack_frame_0010(uint sr, uint vector)
  1439 	m68ki_push_32(REG_PPC);
  1440 	m68ki_push_16(0x2000 | (vector<<2));
  1441 	m68ki_push_32(REG_PC);
  1442 	m68ki_push_16(sr);
  1446 /* Bus error stack frame (68000 only).
  1447  */
  1448 INLINE void m68ki_stack_frame_buserr(uint pc, uint sr, uint address, uint write, uint instruction, uint fc)
  1450 	m68ki_push_32(pc);
  1451 	m68ki_push_16(sr);
  1452 	m68ki_push_16(REG_IR);
  1453 	m68ki_push_32(address);	/* access address */
  1454 	/* 0 0 0 0 0 0 0 0 0 0 0 R/W I/N FC
  1455 	 * R/W  0 = write, 1 = read
  1456 	 * I/N  0 = instruction, 1 = not
  1457 	 * FC   3-bit function code
  1458 	 */
  1459 	m68ki_push_16(((!write)<<4) | ((!instruction)<<3) | fc);
  1462 /* Format 8 stack frame (68010).
  1463  * 68010 only.  This is the 29 word bus/address error frame.
  1464  */
  1465 void m68ki_stack_frame_1000(uint pc, uint sr, uint vector)
  1467 	/* VERSION
  1468 	 * NUMBER
  1469 	 * INTERNAL INFORMATION, 16 WORDS
  1470 	 */
  1471 	m68ki_fake_push_32();
  1472 	m68ki_fake_push_32();
  1473 	m68ki_fake_push_32();
  1474 	m68ki_fake_push_32();
  1475 	m68ki_fake_push_32();
  1476 	m68ki_fake_push_32();
  1477 	m68ki_fake_push_32();
  1478 	m68ki_fake_push_32();
  1480 	/* INSTRUCTION INPUT BUFFER */
  1481 	m68ki_push_16(0);
  1483 	/* UNUSED, RESERVED (not written) */
  1484 	m68ki_fake_push_16();
  1486 	/* DATA INPUT BUFFER */
  1487 	m68ki_push_16(0);
  1489 	/* UNUSED, RESERVED (not written) */
  1490 	m68ki_fake_push_16();
  1492 	/* DATA OUTPUT BUFFER */
  1493 	m68ki_push_16(0);
  1495 	/* UNUSED, RESERVED (not written) */
  1496 	m68ki_fake_push_16();
  1498 	/* FAULT ADDRESS */
  1499 	m68ki_push_32(0);
  1501 	/* SPECIAL STATUS WORD */
  1502 	m68ki_push_16(0);
  1504 	/* 1000, VECTOR OFFSET */
  1505 	m68ki_push_16(0x8000 | (vector<<2));
  1507 	/* PROGRAM COUNTER */
  1508 	m68ki_push_32(pc);
  1510 	/* STATUS REGISTER */
  1511 	m68ki_push_16(sr);
  1514 /* Format A stack frame (short bus fault).
  1515  * This is used only by 68020 for bus fault and address error
  1516  * if the error happens at an instruction boundary.
  1517  * PC stacked is address of next instruction.
  1518  */
  1519 void m68ki_stack_frame_1010(uint sr, uint vector, uint pc)
  1521 	/* INTERNAL REGISTER */
  1522 	m68ki_push_16(0);
  1524 	/* INTERNAL REGISTER */
  1525 	m68ki_push_16(0);
  1527 	/* DATA OUTPUT BUFFER (2 words) */
  1528 	m68ki_push_32(0);
  1530 	/* INTERNAL REGISTER */
  1531 	m68ki_push_16(0);
  1533 	/* INTERNAL REGISTER */
  1534 	m68ki_push_16(0);
  1536 	/* DATA CYCLE FAULT ADDRESS (2 words) */
  1537 	m68ki_push_32(0);
  1539 	/* INSTRUCTION PIPE STAGE B */
  1540 	m68ki_push_16(0);
  1542 	/* INSTRUCTION PIPE STAGE C */
  1543 	m68ki_push_16(0);
  1545 	/* SPECIAL STATUS REGISTER */
  1546 	m68ki_push_16(0);
  1548 	/* INTERNAL REGISTER */
  1549 	m68ki_push_16(0);
  1551 	/* 1010, VECTOR OFFSET */
  1552 	m68ki_push_16(0xa000 | (vector<<2));
  1554 	/* PROGRAM COUNTER */
  1555 	m68ki_push_32(pc);
  1557 	/* STATUS REGISTER */
  1558 	m68ki_push_16(sr);
  1561 /* Format B stack frame (long bus fault).
  1562  * This is used only by 68020 for bus fault and address error
  1563  * if the error happens during instruction execution.
  1564  * PC stacked is address of instruction in progress.
  1565  */
  1566 void m68ki_stack_frame_1011(uint sr, uint vector, uint pc)
  1568 	/* INTERNAL REGISTERS (18 words) */
  1569 	m68ki_push_32(0);
  1570 	m68ki_push_32(0);
  1571 	m68ki_push_32(0);
  1572 	m68ki_push_32(0);
  1573 	m68ki_push_32(0);
  1574 	m68ki_push_32(0);
  1575 	m68ki_push_32(0);
  1576 	m68ki_push_32(0);
  1577 	m68ki_push_32(0);
  1579 	/* VERSION# (4 bits), INTERNAL INFORMATION */
  1580 	m68ki_push_16(0);
  1582 	/* INTERNAL REGISTERS (3 words) */
  1583 	m68ki_push_32(0);
  1584 	m68ki_push_16(0);
  1586 	/* DATA INTPUT BUFFER (2 words) */
  1587 	m68ki_push_32(0);
  1589 	/* INTERNAL REGISTERS (2 words) */
  1590 	m68ki_push_32(0);
  1592 	/* STAGE B ADDRESS (2 words) */
  1593 	m68ki_push_32(0);
  1595 	/* INTERNAL REGISTER (4 words) */
  1596 	m68ki_push_32(0);
  1597 	m68ki_push_32(0);
  1599 	/* DATA OUTPUT BUFFER (2 words) */
  1600 	m68ki_push_32(0);
  1602 	/* INTERNAL REGISTER */
  1603 	m68ki_push_16(0);
  1605 	/* INTERNAL REGISTER */
  1606 	m68ki_push_16(0);
  1608 	/* DATA CYCLE FAULT ADDRESS (2 words) */
  1609 	m68ki_push_32(0);
  1611 	/* INSTRUCTION PIPE STAGE B */
  1612 	m68ki_push_16(0);
  1614 	/* INSTRUCTION PIPE STAGE C */
  1615 	m68ki_push_16(0);
  1617 	/* SPECIAL STATUS REGISTER */
  1618 	m68ki_push_16(0);
  1620 	/* INTERNAL REGISTER */
  1621 	m68ki_push_16(0);
  1623 	/* 1011, VECTOR OFFSET */
  1624 	m68ki_push_16(0xb000 | (vector<<2));
  1626 	/* PROGRAM COUNTER */
  1627 	m68ki_push_32(pc);
  1629 	/* STATUS REGISTER */
  1630 	m68ki_push_16(sr);
  1634 /* Used for Group 2 exceptions.
  1635  * These stack a type 2 frame on the 020.
  1636  */
  1637 INLINE void m68ki_exception_trap(uint vector)
  1639 	uint sr = m68ki_init_exception();
  1641 	if(CPU_TYPE_IS_010_LESS(CPU_TYPE))
  1642 		m68ki_stack_frame_0000(REG_PC, sr, vector);
  1643 	else
  1644 		m68ki_stack_frame_0010(sr, vector);
  1646 	m68ki_jump_vector(vector);
  1648 	/* Use up some clock cycles */
  1649 	USE_CYCLES(CYC_EXCEPTION[vector]);
  1652 /* Trap#n stacks a 0 frame but behaves like group2 otherwise */
  1653 INLINE void m68ki_exception_trapN(uint vector)
  1655 	uint sr = m68ki_init_exception();
  1657 #ifdef MC68K_TRAP_SYSCALLS
  1658 	if (vector == 32) {
  1659 		printf(">>> TRAP #0 = SYSCALL #%d%s\n", REG_D[0] & 63, REG_D[0] > 63 ? "!!!" : "");
  1660 		// d0 = syscall number
  1661 		printf("\t d0:%08X    d1:%08X    d2:%08X    d3:%08X\n", REG_D[0], REG_D[1], REG_D[2], REG_D[3]);
  1662 		printf("\t d4:%08X    d5:%08X    d6:%08X    d7:%08X\n", REG_D[4], REG_D[5], REG_D[6], REG_D[7]);
  1663 		printf("\t a0:%08X    a1:%08X    a2:%08X    a3:%08X\n", REG_A[0], REG_A[1], REG_A[2], REG_A[3]);
  1664 		printf("\t a4:%08X    a5:%08X    a6:%08X    sp:%08X\n", REG_A[4], REG_A[5], REG_A[6], REG_USP);
  1665 		printf("\t pc:%08X    sr:%08X\n", REG_PC, sr);
  1667 		/*
  1668 		// dump stack -- but syscalls use registers to pass parameters
  1669 		for (int i=-128; i<128; i+=4) {
  1670 			printf("  sp%s%02d: %08X\n", i<0?"":"+", i, m68k_read_disassembler_32(REG_SP+i));
  1672 		*/
  1673 		for (int r=0; r<2; r++) {
  1674 			printf("  *a%d: [", r);
  1675 			if (REG_A[r] == 0x00) {
  1676 				printf("NullPointer]\n");
  1677 				continue;
  1679 			for (int i=0; i<32; i++) {
  1680 				unsigned char c = m68k_read_disassembler_8(REG_A[r]+i);
  1681 				if (isprint(c))
  1682 					putchar(c);
  1683 				else
  1684 					putchar('.');
  1686 			printf("]\n");
  1689 #endif // MC68K_TRAP_SYSCALLS
  1691 	m68ki_stack_frame_0000(REG_PC, sr, vector);
  1692 	m68ki_jump_vector(vector);
  1694 	/* Use up some clock cycles */
  1695 	USE_CYCLES(CYC_EXCEPTION[vector]);
  1698 /* Exception for trace mode */
  1699 INLINE void m68ki_exception_trace(void)
  1701 	uint sr = m68ki_init_exception();
  1703 	if(CPU_TYPE_IS_010_LESS(CPU_TYPE))
  1704 		m68ki_stack_frame_0000(REG_PC, sr, EXCEPTION_TRACE);
  1705 	else
  1706 		m68ki_stack_frame_0010(sr, EXCEPTION_TRACE);
  1708 	m68ki_jump_vector(EXCEPTION_TRACE);
  1710 	/* Trace nullifies a STOP instruction */
  1711 	CPU_STOPPED &= ~STOP_LEVEL_STOP;
  1713 	/* Use up some clock cycles */
  1714 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_TRACE]);
  1717 /* Exception for privilege violation */
  1718 INLINE void m68ki_exception_privilege_violation(void)
  1720 	uint sr = m68ki_init_exception();
  1721 	m68ki_stack_frame_0000(REG_PC, sr, EXCEPTION_PRIVILEGE_VIOLATION);
  1722 	m68ki_jump_vector(EXCEPTION_PRIVILEGE_VIOLATION);
  1724 	/* Use up some clock cycles and undo the instruction's cycles */
  1725 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_PRIVILEGE_VIOLATION] - CYC_INSTRUCTION[REG_IR]);
  1728 /* Exception for bus error */
  1729 INLINE void m68ki_exception_bus_error(void)
  1731 	BUS_ERROR_OCCURRED = 1;
  1732 	/* Use up some clock cycles and undo the instruction's cycles */
  1733 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_BUS_ERROR] - CYC_INSTRUCTION[REG_IR]);
  1736 INLINE void m68ki_jump_bus_error_vector(void)
  1738 	uint sr = m68ki_init_exception();
  1739 	m68ki_stack_frame_1000(REG_PPC, sr, EXCEPTION_BUS_ERROR);
  1740 	m68ki_jump_vector(EXCEPTION_BUS_ERROR);
  1743 /* Exception for A-Line instructions */
  1744 INLINE void m68ki_exception_1010(void)
  1746 	uint sr;
  1747 #if M68K_LOG_1010_1111 == OPT_ON
  1748 	M68K_DO_LOG_EMU((M68K_LOG_FILEHANDLE "%s at %08x: called 1010 instruction %04x (%s)\n",
  1749 					 m68ki_cpu_names[CPU_TYPE], ADDRESS_68K(REG_PPC), REG_IR,
  1750 					 m68ki_disassemble_quick(ADDRESS_68K(REG_PPC))));
  1751 #endif
  1753 	sr = m68ki_init_exception();
  1754 	m68ki_stack_frame_0000(REG_PC-2, sr, EXCEPTION_1010);
  1755 	m68ki_jump_vector(EXCEPTION_1010);
  1757 	/* Use up some clock cycles and undo the instruction's cycles */
  1758 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_1010] - CYC_INSTRUCTION[REG_IR]);
  1761 /* Exception for F-Line instructions */
  1762 INLINE void m68ki_exception_1111(void)
  1764 	uint sr;
  1766 #if M68K_LOG_1010_1111 == OPT_ON
  1767 	M68K_DO_LOG_EMU((M68K_LOG_FILEHANDLE "%s at %08x: called 1111 instruction %04x (%s)\n",
  1768 					 m68ki_cpu_names[CPU_TYPE], ADDRESS_68K(REG_PPC), REG_IR,
  1769 					 m68ki_disassemble_quick(ADDRESS_68K(REG_PPC))));
  1770 #endif
  1772 	sr = m68ki_init_exception();
  1773 	m68ki_stack_frame_0000(REG_PC-2, sr, EXCEPTION_1111);
  1774 	m68ki_jump_vector(EXCEPTION_1111);
  1776 	/* Use up some clock cycles and undo the instruction's cycles */
  1777 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_1111] - CYC_INSTRUCTION[REG_IR]);
  1780 /* Exception for illegal instructions */
  1781 INLINE void m68ki_exception_illegal(void)
  1783 	uint sr;
  1785 	M68K_DO_LOG((M68K_LOG_FILEHANDLE "%s at %08x: illegal instruction %04x (%s)\n",
  1786 				 m68ki_cpu_names[CPU_TYPE], ADDRESS_68K(REG_PPC), REG_IR,
  1787 				 m68ki_disassemble_quick(ADDRESS_68K(REG_PPC))));
  1789 	sr = m68ki_init_exception();
  1790 	m68ki_stack_frame_0000(REG_PC, sr, EXCEPTION_ILLEGAL_INSTRUCTION);
  1791 	m68ki_jump_vector(EXCEPTION_ILLEGAL_INSTRUCTION);
  1793 	/* Use up some clock cycles and undo the instruction's cycles */
  1794 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_ILLEGAL_INSTRUCTION] - CYC_INSTRUCTION[REG_IR]);
  1797 /* Exception for format errror in RTE */
  1798 INLINE void m68ki_exception_format_error(void)
  1800 	uint sr = m68ki_init_exception();
  1801 	m68ki_stack_frame_0000(REG_PC, sr, EXCEPTION_FORMAT_ERROR);
  1802 	m68ki_jump_vector(EXCEPTION_FORMAT_ERROR);
  1804 	/* Use up some clock cycles and undo the instruction's cycles */
  1805 	USE_CYCLES(CYC_EXCEPTION[EXCEPTION_FORMAT_ERROR] - CYC_INSTRUCTION[REG_IR]);
  1808 /* Exception for address error */
  1809 INLINE void m68ki_exception_address_error(void)
  1811 	/* Not emulated yet */
  1815 /* Service an interrupt request and start exception processing */
  1816 void m68ki_exception_interrupt(uint int_level)
  1818 	uint vector;
  1819 	uint sr;
  1820 	uint new_pc;
  1822 	/* Turn off the stopped state */
  1823 	CPU_STOPPED &= ~STOP_LEVEL_STOP;
  1825 	/* If we are halted, don't do anything */
  1826 	if(CPU_STOPPED)
  1827 		return;
  1829 	/* Acknowledge the interrupt */
  1830 	vector = m68ki_int_ack(int_level);
  1832 	/* Get the interrupt vector */
  1833 	if(vector == M68K_INT_ACK_AUTOVECTOR)
  1834 		/* Use the autovectors.  This is the most commonly used implementation */
  1835 		vector = EXCEPTION_INTERRUPT_AUTOVECTOR+int_level;
  1836 	else if(vector == M68K_INT_ACK_SPURIOUS)
  1837 		/* Called if no devices respond to the interrupt acknowledge */
  1838 		vector = EXCEPTION_SPURIOUS_INTERRUPT;
  1839 	else if(vector > 255)
  1841 		M68K_DO_LOG_EMU((M68K_LOG_FILEHANDLE "%s at %08x: Interrupt acknowledge returned invalid vector $%x\n",
  1842 				 m68ki_cpu_names[CPU_TYPE], ADDRESS_68K(REG_PC), vector));
  1843 		return;
  1846 	/* Start exception processing */
  1847 	sr = m68ki_init_exception();
  1849 	/* Set the interrupt mask to the level of the one being serviced */
  1850 	FLAG_INT_MASK = int_level<<8;
  1852 	/* Get the new PC */
  1853 	new_pc = m68ki_read_data_32((vector<<2) + REG_VBR);
  1855 	/* If vector is uninitialized, call the uninitialized interrupt vector */
  1856 	if(new_pc == 0)
  1857 		new_pc = m68ki_read_data_32((EXCEPTION_UNINITIALIZED_INTERRUPT<<2) + REG_VBR);
  1859 	/* Generate a stack frame */
  1860 	m68ki_stack_frame_0000(REG_PC, sr, vector);
  1861 	if(FLAG_M && CPU_TYPE_IS_EC020_PLUS(CPU_TYPE))
  1863 		/* Create throwaway frame */
  1864 		m68ki_set_sm_flag(FLAG_S);	/* clear M */
  1865 		sr |= 0x2000; /* Same as SR in master stack frame except S is forced high */
  1866 		m68ki_stack_frame_0001(REG_PC, sr, vector);
  1869 	m68ki_jump(new_pc);
  1871 	/* Defer cycle counting until later */
  1872 	CPU_INT_CYCLES += CYC_EXCEPTION[vector];
  1874 #if !M68K_EMULATE_INT_ACK
  1875 	/* Automatically clear IRQ if we are not using an acknowledge scheme */
  1876 	CPU_INT_LEVEL = 0;
  1877 #endif /* M68K_EMULATE_INT_ACK */
  1881 /* ASG: Check for interrupts */
  1882 INLINE void m68ki_check_interrupts(void)
  1884 	if(CPU_INT_LEVEL > FLAG_INT_MASK)
  1885 		m68ki_exception_interrupt(CPU_INT_LEVEL>>8);
  1890 /* ======================================================================== */
  1891 /* ============================== END OF FILE ============================= */
  1892 /* ======================================================================== */
  1894 #endif /* M68KCPU__HEADER */