1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373
|
# 2 "asmcomp/amd64/proc.ml"
(**************************************************************************)
(* *)
(* OCaml *)
(* *)
(* Xavier Leroy, projet Cristal, INRIA Rocquencourt *)
(* *)
(* Copyright 2000 Institut National de Recherche en Informatique et *)
(* en Automatique. *)
(* *)
(* All rights reserved. This file is distributed under the terms of *)
(* the GNU Lesser General Public License version 2.1, with the *)
(* special exception on linking described in the file LICENSE. *)
(* *)
(**************************************************************************)
(* Description of the AMD64 processor *)
open Misc
open Arch
open Cmm
open Reg
open Mach
let fp = Config.with_frame_pointers
(* Which ABI to use *)
let win64 = Arch.win64
(* Registers available for register allocation *)
(* Register map:
rax 0
rbx 1
rdi 2
rsi 3
rdx 4
rcx 5
r8 6
r9 7
r12 8
r13 9
r10 10
r11 11
rbp 12
r14 domain state pointer
r15 allocation pointer
xmm0 - xmm15 100 - 115 *)
(* Conventions:
rax - r13: OCaml function arguments
rax: OCaml and C function results
xmm0 - xmm9: OCaml function arguments
xmm0: OCaml and C function results
Under Unix:
rdi, rsi, rdx, rcx, r8, r9: C function arguments
xmm0 - xmm7: C function arguments
rbx, rbp, r12-r15 are preserved by C
xmm registers are not preserved by C
Under Win64:
rcx, rdx, r8, r9: C function arguments
xmm0 - xmm3: C function arguments
rbx, rbp, rsi, rdi r12-r15 are preserved by C
xmm6-xmm15 are preserved by C
Note (PR#5707, GPR#1304): PLT stubs (used for dynamic resolution of symbols
on Unix-like platforms) may clobber any register except those used for:
1. C parameter passing;
2. C return values;
3. C callee-saved registers.
This translates to the set { r10, r11 }. These registers hence cannot
be used for OCaml parameter passing and must also be marked as
destroyed across [Ialloc] and [Ipoll] (otherwise a call to
caml_call_gc@PLT might clobber these two registers before the assembly
stub saves them into the GC regs block).
*)
let int_reg_name =
match Config.ccomp_type with
| "msvc" ->
[| "rax"; "rbx"; "rdi"; "rsi"; "rdx"; "rcx"; "r8"; "r9";
"r12"; "r13"; "r10"; "r11"; "rbp" |]
| _ ->
[| "%rax"; "%rbx"; "%rdi"; "%rsi"; "%rdx"; "%rcx"; "%r8"; "%r9";
"%r12"; "%r13"; "%r10"; "%r11"; "%rbp" |]
let float_reg_name =
match Config.ccomp_type with
| "msvc" ->
[| "xmm0"; "xmm1"; "xmm2"; "xmm3"; "xmm4"; "xmm5"; "xmm6"; "xmm7";
"xmm8"; "xmm9"; "xmm10"; "xmm11";
"xmm12"; "xmm13"; "xmm14"; "xmm15" |]
| _ ->
[| "%xmm0"; "%xmm1"; "%xmm2"; "%xmm3"; "%xmm4"; "%xmm5"; "%xmm6"; "%xmm7";
"%xmm8"; "%xmm9"; "%xmm10"; "%xmm11";
"%xmm12"; "%xmm13"; "%xmm14"; "%xmm15" |]
let num_register_classes = 2
let register_class r =
match r.typ with
| Val | Int | Addr -> 0
| Float -> 1
let num_available_registers = [| 13; 16 |]
let first_available_register = [| 0; 100 |]
let register_name r =
if r < 100 then int_reg_name.(r) else float_reg_name.(r - 100)
(* Pack registers starting at %rax so as to reduce the number of REX
prefixes and thus improve code density *)
let rotate_registers = false
(* Representation of hard registers by pseudo-registers *)
let hard_int_reg =
let v = Array.make 13 Reg.dummy in
for i = 0 to 12 do v.(i) <- Reg.at_location Int (Reg i) done;
v
let hard_float_reg =
let v = Array.make 16 Reg.dummy in
for i = 0 to 15 do v.(i) <- Reg.at_location Float (Reg (100 + i)) done;
v
let all_phys_regs =
Array.append hard_int_reg hard_float_reg
let phys_reg n =
if n < 100 then hard_int_reg.(n) else hard_float_reg.(n - 100)
let rax = phys_reg 0
let rdx = phys_reg 4
let r10 = phys_reg 10
let r11 = phys_reg 11
let rbp = phys_reg 12
let rxmm15 = phys_reg 115
let destroyed_by_plt_stub =
if not X86_proc.use_plt then [| |] else [| r10; r11 |]
let num_destroyed_by_plt_stub = Array.length destroyed_by_plt_stub
let destroyed_by_plt_stub_set = Reg.set_of_array destroyed_by_plt_stub
let stack_slot slot ty =
Reg.at_location ty (Stack slot)
(* Calling conventions *)
let size_domainstate_args = 64 * size_int
let calling_conventions first_int last_int first_float last_float
make_stack first_stack
arg =
let loc = Array.make (Array.length arg) Reg.dummy in
let int = ref first_int in
let float = ref first_float in
let ofs = ref first_stack in
for i = 0 to Array.length arg - 1 do
match arg.(i) with
| Val | Int | Addr as ty ->
if !int <= last_int then begin
loc.(i) <- phys_reg !int;
incr int
end else begin
loc.(i) <- stack_slot (make_stack !ofs) ty;
ofs := !ofs + size_int
end;
assert (not (Reg.Set.mem loc.(i) destroyed_by_plt_stub_set))
| Float ->
if !float <= last_float then begin
loc.(i) <- phys_reg !float;
incr float
end else begin
loc.(i) <- stack_slot (make_stack !ofs) Float;
ofs := !ofs + size_float
end
done;
(loc, Misc.align (max 0 !ofs) 16) (* keep stack 16-aligned *)
let incoming ofs =
if ofs >= 0
then Incoming ofs
else Domainstate (ofs + size_domainstate_args)
let outgoing ofs =
if ofs >= 0
then Outgoing ofs
else Domainstate (ofs + size_domainstate_args)
let not_supported _ofs = fatal_error "Proc.loc_results: cannot call"
let loc_arguments arg =
calling_conventions 0 9 100 109 outgoing (- size_domainstate_args) arg
let loc_parameters arg =
let (loc, _ofs) =
calling_conventions 0 9 100 109 incoming (- size_domainstate_args) arg
in loc
let loc_results res =
let (loc, _ofs) = calling_conventions 0 0 100 100 not_supported 0 res
in loc
let max_arguments_for_tailcalls = 10 (* in regs *) + 64 (* in domain state *)
(* C calling conventions under Unix:
first integer args in rdi, rsi, rdx, rcx, r8, r9
first float args in xmm0 ... xmm7
remaining args on stack
return value in rax or xmm0.
C calling conventions under Win64:
first integer args in rcx, rdx, r8, r9
first float args in xmm0 ... xmm3
each integer arg consumes a float reg, and conversely
remaining args on stack
always 32 bytes reserved at bottom of stack.
Return value in rax or xmm0. *)
let loc_external_results res =
let (loc, _ofs) = calling_conventions 0 0 100 100 not_supported 0 res in loc
let unix_loc_external_arguments arg =
calling_conventions 2 7 100 107 outgoing 0 arg
let win64_int_external_arguments =
[| 5 (*rcx*); 4 (*rdx*); 6 (*r8*); 7 (*r9*) |]
let win64_float_external_arguments =
[| 100 (*xmm0*); 101 (*xmm1*); 102 (*xmm2*); 103 (*xmm3*) |]
let win64_loc_external_arguments arg =
let loc = Array.make (Array.length arg) Reg.dummy in
let reg = ref 0
and ofs = ref 0 in
for i = 0 to Array.length arg - 1 do
match arg.(i) with
| Val | Int | Addr as ty ->
if !reg < 4 then begin
loc.(i) <- phys_reg win64_int_external_arguments.(!reg);
incr reg
end else begin
loc.(i) <- stack_slot (Outgoing !ofs) ty;
ofs := !ofs + size_int
end
| Float ->
if !reg < 4 then begin
loc.(i) <- phys_reg win64_float_external_arguments.(!reg);
incr reg
end else begin
loc.(i) <- stack_slot (Outgoing !ofs) Float;
ofs := !ofs + size_float
end
done;
(loc, Misc.align !ofs 16) (* keep stack 16-aligned *)
let loc_external_arguments ty_args =
let arg = Cmm.machtype_of_exttype_list ty_args in
let loc, stack_ofs =
if win64
then win64_loc_external_arguments arg
else unix_loc_external_arguments arg
in
Array.map (fun reg -> [|reg|]) loc, stack_ofs
let loc_exn_bucket = rax
(** See "System V Application Binary Interface, AMD64 Architecture Processor
Supplement" (www.x86-64.org/documentation/abi.pdf) page 57, fig. 3.36. *)
let int_dwarf_reg_numbers =
[| 0; 3; 5; 4; 1; 2; 8; 9; 12; 13; 10; 11; 6 |]
let float_dwarf_reg_numbers =
[| 17; 18; 19; 20; 21; 22; 23; 24; 25; 26; 27; 28; 29; 30; 31; 32 |]
let dwarf_register_numbers ~reg_class =
match reg_class with
| 0 -> int_dwarf_reg_numbers
| 1 -> float_dwarf_reg_numbers
| _ -> Misc.fatal_errorf "Bad register class %d" reg_class
let stack_ptr_dwarf_register_number = 7
(* Registers destroyed by operations *)
let destroyed_at_c_call =
(* C calling conventions preserve rbx, but it is clobbered
by the code sequence used for C calls in emit.mlp, so it
is marked as destroyed. *)
if win64 then
(* Win64: rsi, rdi, r12-r15, xmm6-xmm15 preserved *)
Array.of_list(List.map phys_reg
[0;1;4;5;6;7;10;11;12;
100;101;102;103;104;105])
else
(* Unix: r12-r15 preserved *)
Array.of_list(List.map phys_reg
[0;1;2;3;4;5;6;7;10;11;
100;101;102;103;104;105;106;107;
108;109;110;111;112;113;114;115])
let destroyed_at_alloc_or_poll =
if X86_proc.use_plt then
destroyed_by_plt_stub
else
[| r11 |]
let destroyed_at_oper = function
Iop(Icall_ind | Icall_imm _) ->
all_phys_regs
| Iop(Iextcall {alloc; stack_ofs; }) ->
assert (stack_ofs >= 0);
if alloc || stack_ofs > 0 then all_phys_regs
else destroyed_at_c_call
| Iop(Iintop(Idiv | Imod)) | Iop(Iintop_imm((Idiv | Imod), _))
-> [| rax; rdx |]
| Iop(Istore(Single, _, _)) -> [| rxmm15 |]
| Iop(Ialloc _ | Ipoll _) -> destroyed_at_alloc_or_poll
| Iop(Iintop(Imulh | Icomp _) | Iintop_imm((Icomp _), _))
-> [| rax |]
| Iswitch(_, _) -> [| rax; rdx |]
| Itrywith _ -> [| r11 |]
| _ ->
if fp then
(* prevent any use of the frame pointer ! *)
[| rbp |]
else
[||]
let destroyed_at_raise = all_phys_regs
let destroyed_at_reloadretaddr = [| |]
(* Maximal register pressure *)
let safe_register_pressure = function
Iextcall _ -> if win64 then if fp then 7 else 8 else 0
| _ -> if fp then 10 else 11
let max_register_pressure =
let consumes ~int ~float =
if fp
then [| 12 - int; 16 - float |]
else [| 13 - int; 16 - float |]
in
function
Iextcall _ ->
if win64
then consumes ~int:5 ~float:6
else consumes ~int:9 ~float:16
| Iintop(Idiv | Imod) | Iintop_imm((Idiv | Imod), _) ->
consumes ~int:2 ~float:0
| Ialloc _ | Ipoll _ ->
consumes ~int:(1 + num_destroyed_by_plt_stub) ~float:0
| Iintop(Icomp _) | Iintop_imm((Icomp _), _) ->
consumes ~int:1 ~float:0
| Istore(Single, _, _) ->
consumes ~int:0 ~float:1
| Icompf _ ->
consumes ~int:0 ~float:1
| _ -> consumes ~int:0 ~float:0
(* Calling the assembler *)
let assemble_file infile outfile =
X86_proc.assemble_file infile outfile
let init () =
if fp then begin
num_available_registers.(0) <- 12
end else
num_available_registers.(0) <- 13
|