annotate src/fftw-3.3.5/genfft/genutil.ml @ 84:08ae793730bd

Add null config files
author Chris Cannam
date Mon, 02 Mar 2020 14:03:47 +0000
parents 2cd0e3b3e1fd
children
rev   line source
Chris@42 1 (*
Chris@42 2 * Copyright (c) 1997-1999 Massachusetts Institute of Technology
Chris@42 3 * Copyright (c) 2003, 2007-14 Matteo Frigo
Chris@42 4 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
Chris@42 5 *
Chris@42 6 * This program is free software; you can redistribute it and/or modify
Chris@42 7 * it under the terms of the GNU General Public License as published by
Chris@42 8 * the Free Software Foundation; either version 2 of the License, or
Chris@42 9 * (at your option) any later version.
Chris@42 10 *
Chris@42 11 * This program is distributed in the hope that it will be useful,
Chris@42 12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
Chris@42 13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
Chris@42 14 * GNU General Public License for more details.
Chris@42 15 *
Chris@42 16 * You should have received a copy of the GNU General Public License
Chris@42 17 * along with this program; if not, write to the Free Software
Chris@42 18 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
Chris@42 19 *
Chris@42 20 *)
Chris@42 21
Chris@42 22 (* utilities common to all generators *)
Chris@42 23 open Util
Chris@42 24
Chris@42 25 let choose_simd a b = if !Simdmagic.simd_mode then b else a
Chris@42 26
Chris@42 27 let unique_array n = array n (fun _ -> Unique.make ())
Chris@42 28 let unique_array_c n =
Chris@42 29 array n (fun _ ->
Chris@42 30 (Unique.make (), Unique.make ()))
Chris@42 31
Chris@42 32 let unique_v_array_c veclen n =
Chris@42 33 array veclen (fun _ ->
Chris@42 34 unique_array_c n)
Chris@42 35
Chris@42 36 let locative_array_c n rarr iarr loc vs =
Chris@42 37 array n (fun i ->
Chris@42 38 let klass = Unique.make () in
Chris@42 39 let (rloc, iloc) = loc i in
Chris@42 40 (Variable.make_locative rloc klass rarr i vs,
Chris@42 41 Variable.make_locative iloc klass iarr i vs))
Chris@42 42
Chris@42 43 let locative_v_array_c veclen n rarr iarr loc vs =
Chris@42 44 array veclen (fun v ->
Chris@42 45 array n (fun i ->
Chris@42 46 let klass = Unique.make () in
Chris@42 47 let (rloc, iloc) = loc v i in
Chris@42 48 (Variable.make_locative rloc klass (rarr v) i vs,
Chris@42 49 Variable.make_locative iloc klass (iarr v) i vs)))
Chris@42 50
Chris@42 51 let temporary_array n =
Chris@42 52 array n (fun i -> Variable.make_temporary ())
Chris@42 53
Chris@42 54 let temporary_array_c n =
Chris@42 55 let tmpr = temporary_array n
Chris@42 56 and tmpi = temporary_array n
Chris@42 57 in
Chris@42 58 array n (fun i -> (tmpr i, tmpi i))
Chris@42 59
Chris@42 60 let temporary_v_array_c veclen n =
Chris@42 61 array veclen (fun v -> temporary_array_c n)
Chris@42 62
Chris@42 63 let temporary_array_c n =
Chris@42 64 let tmpr = temporary_array n
Chris@42 65 and tmpi = temporary_array n
Chris@42 66 in
Chris@42 67 array n (fun i -> (tmpr i, tmpi i))
Chris@42 68
Chris@42 69 let load_c (vr, vi) = Complex.make (Expr.Load vr, Expr.Load vi)
Chris@42 70 let load_r (vr, vi) = Complex.make (Expr.Load vr, Expr.Num (Number.zero))
Chris@42 71
Chris@42 72 let twiddle_array nt w =
Chris@42 73 array (nt/2) (fun i ->
Chris@42 74 let stride = choose_simd (C.SInteger 1) (C.SConst "TWVL")
Chris@42 75 and klass = Unique.make () in
Chris@42 76 let (refr, refi) = (C.array_subscript w stride (2 * i),
Chris@42 77 C.array_subscript w stride (2 * i + 1))
Chris@42 78 in
Chris@42 79 let (kr, ki) = (Variable.make_constant klass refr,
Chris@42 80 Variable.make_constant klass refi)
Chris@42 81 in
Chris@42 82 load_c (kr, ki))
Chris@42 83
Chris@42 84
Chris@42 85 let load_array_c n var = array n (fun i -> load_c (var i))
Chris@42 86 let load_array_r n var = array n (fun i -> load_r (var i))
Chris@42 87 let load_array_hc n var =
Chris@42 88 array n (fun i ->
Chris@42 89 if (i < n - i) then
Chris@42 90 load_c (var i)
Chris@42 91 else if (i > n - i) then
Chris@42 92 Complex.times Complex.i (load_c (var (n - i)))
Chris@42 93 else
Chris@42 94 load_r (var i))
Chris@42 95
Chris@42 96 let load_v_array_c veclen n var =
Chris@42 97 array veclen (fun v -> load_array_c n (var v))
Chris@42 98
Chris@42 99 let store_c (vr, vi) x = [Complex.store_real vr x; Complex.store_imag vi x]
Chris@42 100 let store_r (vr, vi) x = Complex.store_real vr x
Chris@42 101 let store_i (vr, vi) x = Complex.store_imag vi x
Chris@42 102
Chris@42 103 let assign_array_c n dst src =
Chris@42 104 List.flatten
Chris@42 105 (rmap (iota n)
Chris@42 106 (fun i ->
Chris@42 107 let (ar, ai) = Complex.assign (dst i) (src i)
Chris@42 108 in [ar; ai]))
Chris@42 109 let assign_v_array_c veclen n dst src =
Chris@42 110 List.flatten
Chris@42 111 (rmap (iota veclen)
Chris@42 112 (fun v ->
Chris@42 113 assign_array_c n (dst v) (src v)))
Chris@42 114
Chris@42 115 let vassign_v_array_c veclen n dst src =
Chris@42 116 List.flatten
Chris@42 117 (rmap (iota n) (fun i ->
Chris@42 118 List.flatten
Chris@42 119 (rmap (iota veclen)
Chris@42 120 (fun v ->
Chris@42 121 let (ar, ai) = Complex.assign (dst v i) (src v i)
Chris@42 122 in [ar; ai]))))
Chris@42 123
Chris@42 124 let store_array_r n dst src =
Chris@42 125 rmap (iota n)
Chris@42 126 (fun i -> store_r (dst i) (src i))
Chris@42 127
Chris@42 128 let store_array_c n dst src =
Chris@42 129 List.flatten
Chris@42 130 (rmap (iota n)
Chris@42 131 (fun i -> store_c (dst i) (src i)))
Chris@42 132
Chris@42 133 let store_array_hc n dst src =
Chris@42 134 List.flatten
Chris@42 135 (rmap (iota n)
Chris@42 136 (fun i ->
Chris@42 137 if (i < n - i) then
Chris@42 138 store_c (dst i) (src i)
Chris@42 139 else if (i > n - i) then
Chris@42 140 []
Chris@42 141 else
Chris@42 142 [store_r (dst i) (Complex.real (src i))]))
Chris@42 143
Chris@42 144
Chris@42 145 let store_v_array_c veclen n dst src =
Chris@42 146 List.flatten
Chris@42 147 (rmap (iota veclen)
Chris@42 148 (fun v ->
Chris@42 149 store_array_c n (dst v) (src v)))
Chris@42 150
Chris@42 151
Chris@42 152 let elementwise f n a = array n (fun i -> f (a i))
Chris@42 153 let conj_array_c = elementwise Complex.conj
Chris@42 154 let real_array_c = elementwise Complex.real
Chris@42 155 let imag_array_c = elementwise Complex.imag
Chris@42 156
Chris@42 157 let elementwise_v f veclen n a =
Chris@42 158 array veclen (fun v ->
Chris@42 159 array n (fun i -> f (a v i)))
Chris@42 160 let conj_v_array_c = elementwise_v Complex.conj
Chris@42 161 let real_v_array_c = elementwise_v Complex.real
Chris@42 162 let imag_v_array_c = elementwise_v Complex.imag
Chris@42 163
Chris@42 164
Chris@42 165 let transpose f i j = f j i
Chris@42 166 let symmetrize f i j = if i <= j then f i j else f j i
Chris@42 167
Chris@42 168 (* utilities for command-line parsing *)
Chris@42 169 let standard_arg_parse_fail _ = failwith "too many arguments"
Chris@42 170
Chris@42 171 let dump_dag alist =
Chris@42 172 let fnam = !Magic.dag_dump_file in
Chris@42 173 if (String.length fnam > 0) then
Chris@42 174 let ochan = open_out fnam in
Chris@42 175 begin
Chris@42 176 To_alist.dump (output_string ochan) alist;
Chris@42 177 close_out ochan;
Chris@42 178 end
Chris@42 179
Chris@42 180 let dump_alist alist =
Chris@42 181 let fnam = !Magic.alist_dump_file in
Chris@42 182 if (String.length fnam > 0) then
Chris@42 183 let ochan = open_out fnam in
Chris@42 184 begin
Chris@42 185 Expr.dump (output_string ochan) alist;
Chris@42 186 close_out ochan;
Chris@42 187 end
Chris@42 188
Chris@42 189 let dump_asched asched =
Chris@42 190 let fnam = !Magic.asched_dump_file in
Chris@42 191 if (String.length fnam > 0) then
Chris@42 192 let ochan = open_out fnam in
Chris@42 193 begin
Chris@42 194 Annotate.dump (output_string ochan) asched;
Chris@42 195 close_out ochan;
Chris@42 196 end
Chris@42 197
Chris@42 198 (* utilities for optimization *)
Chris@42 199 let standard_scheduler dag =
Chris@42 200 let optim = Algsimp.algsimp dag in
Chris@42 201 let alist = To_alist.to_assignments optim in
Chris@42 202 let _ = dump_alist alist in
Chris@42 203 let _ = dump_dag alist in
Chris@42 204 if !Magic.precompute_twiddles then
Chris@42 205 Schedule.isolate_precomputations_and_schedule alist
Chris@42 206 else
Chris@42 207 Schedule.schedule alist
Chris@42 208
Chris@42 209 let standard_optimizer dag =
Chris@42 210 let sched = standard_scheduler dag in
Chris@42 211 let annot = Annotate.annotate [] sched in
Chris@42 212 let _ = dump_asched annot in
Chris@42 213 annot
Chris@42 214
Chris@42 215 let size = ref None
Chris@42 216 let sign = ref (-1)
Chris@42 217
Chris@42 218 let speclist = [
Chris@42 219 "-n", Arg.Int(fun i -> size := Some i), " generate a codelet of size <n>";
Chris@42 220 "-sign",
Chris@42 221 Arg.Int(fun i ->
Chris@42 222 if (i > 0) then
Chris@42 223 sign := 1
Chris@42 224 else
Chris@42 225 sign := (-1)),
Chris@42 226 " sign of transform";
Chris@42 227 ]
Chris@42 228
Chris@42 229 let check_size () =
Chris@42 230 match !size with
Chris@42 231 | Some i -> i
Chris@42 232 | None -> failwith "must specify -n"
Chris@42 233
Chris@42 234 let expand_name name = if name = "" then "noname" else name
Chris@42 235
Chris@42 236 let declare_register_fcn name =
Chris@42 237 if name = "" then
Chris@42 238 "void NAME(planner *p)\n"
Chris@42 239 else
Chris@42 240 "void " ^ (choose_simd "X" "XSIMD") ^
Chris@42 241 "(codelet_" ^ name ^ ")(planner *p)\n"
Chris@42 242
Chris@42 243 let stringify name =
Chris@42 244 if name = "" then "STRINGIZE(NAME)" else
Chris@42 245 choose_simd ("\"" ^ name ^ "\"")
Chris@42 246 ("XSIMD_STRING(\"" ^ name ^ "\")")
Chris@42 247
Chris@42 248 let parse user_speclist usage =
Chris@42 249 Arg.parse
Chris@42 250 (user_speclist @ speclist @ Magic.speclist @ Simdmagic.speclist)
Chris@42 251 standard_arg_parse_fail
Chris@42 252 usage
Chris@42 253
Chris@42 254 let rec list_to_c = function
Chris@42 255 [] -> ""
Chris@42 256 | [a] -> (string_of_int a)
Chris@42 257 | a :: b -> (string_of_int a) ^ ", " ^ (list_to_c b)
Chris@42 258
Chris@42 259 let rec list_to_comma = function
Chris@42 260 | [a; b] -> C.Comma (a, b)
Chris@42 261 | a :: b -> C.Comma (a, list_to_comma b)
Chris@42 262 | _ -> failwith "list_to_comma"
Chris@42 263
Chris@42 264
Chris@42 265 type stride = Stride_variable | Fixed_int of int | Fixed_string of string
Chris@42 266
Chris@42 267 let either_stride a b =
Chris@42 268 match a with
Chris@42 269 Fixed_int x -> C.SInteger x
Chris@42 270 | Fixed_string x -> C.SConst x
Chris@42 271 | _ -> b
Chris@42 272
Chris@42 273 let stride_fixed = function
Chris@42 274 Stride_variable -> false
Chris@42 275 | _ -> true
Chris@42 276
Chris@42 277 let arg_to_stride s =
Chris@42 278 try
Chris@42 279 Fixed_int (int_of_string s)
Chris@42 280 with Failure "int_of_string" ->
Chris@42 281 Fixed_string s
Chris@42 282
Chris@42 283 let stride_to_solverparm = function
Chris@42 284 Stride_variable -> "0"
Chris@42 285 | Fixed_int x -> string_of_int x
Chris@42 286 | Fixed_string x -> x
Chris@42 287
Chris@42 288 let stride_to_string s = function
Chris@42 289 Stride_variable -> s
Chris@42 290 | Fixed_int x -> string_of_int x
Chris@42 291 | Fixed_string x -> x
Chris@42 292
Chris@42 293 (* output the command line *)
Chris@42 294 let cmdline () =
Chris@42 295 List.fold_right (fun a b -> a ^ " " ^ b) (Array.to_list Sys.argv) ""
Chris@42 296
Chris@42 297 let unparse tree =
Chris@42 298 "/* Generated by: " ^ (cmdline ()) ^ "*/\n\n" ^
Chris@42 299 (C.print_cost tree) ^
Chris@42 300 (if String.length !Magic.inklude > 0
Chris@42 301 then
Chris@42 302 (Printf.sprintf "#include \"%s\"\n\n" !Magic.inklude)
Chris@42 303 else "") ^
Chris@42 304 (if !Simdmagic.simd_mode then
Chris@42 305 Simd.unparse_function tree
Chris@42 306 else
Chris@42 307 C.unparse_function tree)
Chris@42 308
Chris@42 309 let finalize_fcn ast =
Chris@42 310 let mergedecls = function
Chris@42 311 C.Block (d1, [C.Block (d2, s)]) -> C.Block (d1 @ d2, s)
Chris@42 312 | x -> x
Chris@42 313 and extract_constants =
Chris@42 314 if !Simdmagic.simd_mode then
Chris@42 315 Simd.extract_constants
Chris@42 316 else
Chris@42 317 C.extract_constants
Chris@42 318
Chris@42 319 in mergedecls (C.Block (extract_constants ast, [ast; C.Simd_leavefun]))
Chris@42 320
Chris@42 321 let twinstr_to_string vl x =
Chris@42 322 if !Simdmagic.simd_mode then
Chris@42 323 Twiddle.twinstr_to_simd_string vl x
Chris@42 324 else
Chris@42 325 Twiddle.twinstr_to_c_string x
Chris@42 326
Chris@42 327 let make_volatile_stride n x =
Chris@42 328 C.CCall ("MAKE_VOLATILE_STRIDE", C.Comma((C.Integer n), x))