executionengine_ocaml.c 10 KB

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  1. /*===-- analysis_ocaml.c - LLVM Ocaml Glue ----------------------*- C++ -*-===*\
  2. |* *|
  3. |* The LLVM Compiler Infrastructure *|
  4. |* *|
  5. |* This file was developed by Gordon Henriksen and is distributed under the *|
  6. |* University of Illinois Open Source License. See LICENSE.TXT for details. *|
  7. |* *|
  8. |*===----------------------------------------------------------------------===*|
  9. |* *|
  10. |* This file glues LLVM's ocaml interface to its C interface. These functions *|
  11. |* are by and large transparent wrappers to the corresponding C functions. *|
  12. |* *|
  13. |* Note that these functions intentionally take liberties with the CAMLparamX *|
  14. |* macros, since most of the parameters are not GC heap objects. *|
  15. |* *|
  16. \*===----------------------------------------------------------------------===*/
  17. #include "llvm-c/ExecutionEngine.h"
  18. #include "caml/alloc.h"
  19. #include "caml/custom.h"
  20. #include "caml/fail.h"
  21. #include "caml/memory.h"
  22. #include <string.h>
  23. #include <assert.h>
  24. /* Can't use the recommended caml_named_value mechanism for backwards
  25. compatibility reasons. This is largely equivalent. */
  26. static value llvm_ee_error_exn;
  27. CAMLprim value llvm_register_ee_exns(value Error) {
  28. llvm_ee_error_exn = Field(Error, 0);
  29. register_global_root(&llvm_ee_error_exn);
  30. return Val_unit;
  31. }
  32. static void llvm_raise(value Prototype, char *Message) {
  33. CAMLparam1(Prototype);
  34. CAMLlocal1(CamlMessage);
  35. CamlMessage = copy_string(Message);
  36. LLVMDisposeMessage(Message);
  37. raise_with_arg(Prototype, CamlMessage);
  38. abort(); /* NOTREACHED */
  39. CAMLnoreturn;
  40. }
  41. /*--... Operations on generic values .......................................--*/
  42. #define Genericvalue_val(v) (*(LLVMGenericValueRef *)(Data_custom_val(v)))
  43. static void llvm_finalize_generic_value(value GenVal) {
  44. LLVMDisposeGenericValue(Genericvalue_val(GenVal));
  45. }
  46. static struct custom_operations generic_value_ops = {
  47. (char *) "LLVMGenericValue",
  48. llvm_finalize_generic_value,
  49. custom_compare_default,
  50. custom_hash_default,
  51. custom_serialize_default,
  52. custom_deserialize_default
  53. };
  54. static value alloc_generic_value(LLVMGenericValueRef Ref) {
  55. value Val = alloc_custom(&generic_value_ops, sizeof(LLVMGenericValueRef), 0, 1);
  56. Genericvalue_val(Val) = Ref;
  57. return Val;
  58. }
  59. /* Llvm.lltype -> float -> t */
  60. CAMLprim value llvm_genericvalue_of_float(LLVMTypeRef Ty, value N) {
  61. return alloc_generic_value(LLVMCreateGenericValueOfFloat(Ty, Double_val(N)));
  62. }
  63. /* 'a -> t */
  64. CAMLprim value llvm_genericvalue_of_value(value V) {
  65. return alloc_generic_value(LLVMCreateGenericValueOfPointer(Op_val(V)));
  66. }
  67. /* Llvm.lltype -> int -> t */
  68. CAMLprim value llvm_genericvalue_of_int(LLVMTypeRef Ty, value Int) {
  69. return alloc_generic_value(LLVMCreateGenericValueOfInt(Ty, Int_val(Int), 1));
  70. }
  71. /* Llvm.lltype -> int32 -> t */
  72. CAMLprim value llvm_genericvalue_of_int32(LLVMTypeRef Ty, value Int32) {
  73. return alloc_generic_value(LLVMCreateGenericValueOfInt(Ty, Int32_val(Int32),
  74. 1));
  75. }
  76. /* Llvm.lltype -> nativeint -> t */
  77. CAMLprim value llvm_genericvalue_of_nativeint(LLVMTypeRef Ty, value NatInt) {
  78. return alloc_generic_value(LLVMCreateGenericValueOfInt(Ty,
  79. Nativeint_val(NatInt),
  80. 1));
  81. }
  82. /* Llvm.lltype -> int64 -> t */
  83. CAMLprim value llvm_genericvalue_of_int64(LLVMTypeRef Ty, value Int64) {
  84. return alloc_generic_value(LLVMCreateGenericValueOfInt(Ty, Int64_val(Int64),
  85. 1));
  86. }
  87. /* Llvm.lltype -> t -> float */
  88. CAMLprim value llvm_genericvalue_as_float(LLVMTypeRef Ty, value GenVal) {
  89. return copy_double(LLVMGenericValueToFloat(Ty, Genericvalue_val(GenVal)));
  90. }
  91. /* t -> 'a */
  92. CAMLprim value llvm_genericvalue_as_value(value GenVal) {
  93. return Val_op(LLVMGenericValueToPointer(Genericvalue_val(GenVal)));
  94. }
  95. /* t -> int */
  96. CAMLprim value llvm_genericvalue_as_int(value GenVal) {
  97. assert(LLVMGenericValueIntWidth(Genericvalue_val(GenVal)) <= 8 * sizeof(value)
  98. && "Generic value too wide to treat as an int!");
  99. return Val_int(LLVMGenericValueToInt(Genericvalue_val(GenVal), 1));
  100. }
  101. /* t -> int32 */
  102. CAMLprim value llvm_genericvalue_as_int32(value GenVal) {
  103. assert(LLVMGenericValueIntWidth(Genericvalue_val(GenVal)) <= 32
  104. && "Generic value too wide to treat as an int32!");
  105. return copy_int32(LLVMGenericValueToInt(Genericvalue_val(GenVal), 1));
  106. }
  107. /* t -> int64 */
  108. CAMLprim value llvm_genericvalue_as_int64(value GenVal) {
  109. assert(LLVMGenericValueIntWidth(Genericvalue_val(GenVal)) <= 64
  110. && "Generic value too wide to treat as an int64!");
  111. return copy_int64(LLVMGenericValueToInt(Genericvalue_val(GenVal), 1));
  112. }
  113. /* t -> nativeint */
  114. CAMLprim value llvm_genericvalue_as_nativeint(value GenVal) {
  115. assert(LLVMGenericValueIntWidth(Genericvalue_val(GenVal)) <= 8 * sizeof(value)
  116. && "Generic value too wide to treat as a nativeint!");
  117. return copy_nativeint(LLVMGenericValueToInt(Genericvalue_val(GenVal),1));
  118. }
  119. /*--... Operations on execution engines ....................................--*/
  120. /* llmoduleprovider -> ExecutionEngine.t */
  121. CAMLprim LLVMExecutionEngineRef llvm_ee_create(LLVMModuleProviderRef MP) {
  122. LLVMExecutionEngineRef Interp;
  123. char *Error;
  124. if (LLVMCreateExecutionEngine(&Interp, MP, &Error))
  125. llvm_raise(llvm_ee_error_exn, Error);
  126. return Interp;
  127. }
  128. /* llmoduleprovider -> ExecutionEngine.t */
  129. CAMLprim LLVMExecutionEngineRef
  130. llvm_ee_create_interpreter(LLVMModuleProviderRef MP) {
  131. LLVMExecutionEngineRef Interp;
  132. char *Error;
  133. if (LLVMCreateInterpreter(&Interp, MP, &Error))
  134. llvm_raise(llvm_ee_error_exn, Error);
  135. return Interp;
  136. }
  137. /* llmoduleprovider -> ExecutionEngine.t */
  138. CAMLprim LLVMExecutionEngineRef
  139. llvm_ee_create_jit(LLVMModuleProviderRef MP) {
  140. LLVMExecutionEngineRef JIT;
  141. char *Error;
  142. if (LLVMCreateJITCompiler(&JIT, MP, &Error))
  143. llvm_raise(llvm_ee_error_exn, Error);
  144. return JIT;
  145. }
  146. /* ExecutionEngine.t -> unit */
  147. CAMLprim value llvm_ee_dispose(LLVMExecutionEngineRef EE) {
  148. LLVMDisposeExecutionEngine(EE);
  149. return Val_unit;
  150. }
  151. /* llmoduleprovider -> ExecutionEngine.t -> unit */
  152. CAMLprim value llvm_ee_add_mp(LLVMModuleProviderRef MP,
  153. LLVMExecutionEngineRef EE) {
  154. LLVMAddModuleProvider(EE, MP);
  155. return Val_unit;
  156. }
  157. /* llmoduleprovider -> ExecutionEngine.t -> llmodule */
  158. CAMLprim LLVMModuleRef llvm_ee_remove_mp(LLVMModuleProviderRef MP,
  159. LLVMExecutionEngineRef EE) {
  160. LLVMModuleRef RemovedModule;
  161. char *Error;
  162. if (LLVMRemoveModuleProvider(EE, MP, &RemovedModule, &Error))
  163. llvm_raise(llvm_ee_error_exn, Error);
  164. return RemovedModule;
  165. }
  166. /* string -> ExecutionEngine.t -> llvalue option */
  167. CAMLprim value llvm_ee_find_function(value Name, LLVMExecutionEngineRef EE) {
  168. CAMLparam1(Name);
  169. CAMLlocal1(Option);
  170. LLVMValueRef Found;
  171. if (LLVMFindFunction(EE, String_val(Name), &Found))
  172. CAMLreturn(Val_unit);
  173. Option = alloc(1, 1);
  174. Field(Option, 0) = Val_op(Found);
  175. CAMLreturn(Option);
  176. }
  177. /* llvalue -> GenericValue.t array -> ExecutionEngine.t -> GenericValue.t */
  178. CAMLprim value llvm_ee_run_function(LLVMValueRef F, value Args,
  179. LLVMExecutionEngineRef EE) {
  180. unsigned NumArgs;
  181. LLVMGenericValueRef Result, *GVArgs;
  182. unsigned I;
  183. NumArgs = Wosize_val(Args);
  184. GVArgs = (LLVMGenericValueRef*) malloc(NumArgs * sizeof(LLVMGenericValueRef));
  185. for (I = 0; I != NumArgs; ++I)
  186. GVArgs[I] = Genericvalue_val(Field(Args, I));
  187. Result = LLVMRunFunction(EE, F, NumArgs, GVArgs);
  188. free(GVArgs);
  189. return alloc_generic_value(Result);
  190. }
  191. /* ExecutionEngine.t -> unit */
  192. CAMLprim value llvm_ee_run_static_ctors(LLVMExecutionEngineRef EE) {
  193. LLVMRunStaticConstructors(EE);
  194. return Val_unit;
  195. }
  196. /* ExecutionEngine.t -> unit */
  197. CAMLprim value llvm_ee_run_static_dtors(LLVMExecutionEngineRef EE) {
  198. LLVMRunStaticDestructors(EE);
  199. return Val_unit;
  200. }
  201. /* llvalue -> string array -> (string * string) array -> ExecutionEngine.t ->
  202. int */
  203. CAMLprim value llvm_ee_run_function_as_main(LLVMValueRef F,
  204. value Args, value Env,
  205. LLVMExecutionEngineRef EE) {
  206. CAMLparam2(Args, Env);
  207. int I, NumArgs, NumEnv, EnvSize, Result;
  208. const char **CArgs, **CEnv;
  209. char *CEnvBuf, *Pos;
  210. NumArgs = Wosize_val(Args);
  211. NumEnv = Wosize_val(Env);
  212. /* Build the environment. */
  213. CArgs = (const char **) malloc(NumArgs * sizeof(char*));
  214. for (I = 0; I != NumArgs; ++I)
  215. CArgs[I] = String_val(Field(Args, I));
  216. /* Compute the size of the environment string buffer. */
  217. for (I = 0, EnvSize = 0; I != NumEnv; ++I) {
  218. EnvSize += strlen(String_val(Field(Field(Env, I), 0))) + 1;
  219. EnvSize += strlen(String_val(Field(Field(Env, I), 1))) + 1;
  220. }
  221. /* Build the environment. */
  222. CEnv = (const char **) malloc((NumEnv + 1) * sizeof(char*));
  223. CEnvBuf = (char*) malloc(EnvSize);
  224. Pos = CEnvBuf;
  225. for (I = 0; I != NumEnv; ++I) {
  226. char *Name = String_val(Field(Field(Env, I), 0)),
  227. *Value = String_val(Field(Field(Env, I), 1));
  228. int NameLen = strlen(Name),
  229. ValueLen = strlen(Value);
  230. CEnv[I] = Pos;
  231. memcpy(Pos, Name, NameLen);
  232. Pos += NameLen;
  233. *Pos++ = '=';
  234. memcpy(Pos, Value, ValueLen);
  235. Pos += ValueLen;
  236. *Pos++ = '\0';
  237. }
  238. CEnv[NumEnv] = NULL;
  239. Result = LLVMRunFunctionAsMain(EE, F, NumArgs, CArgs, CEnv);
  240. free(CArgs);
  241. free(CEnv);
  242. free(CEnvBuf);
  243. CAMLreturn(Val_int(Result));
  244. }
  245. /* llvalue -> ExecutionEngine.t -> unit */
  246. CAMLprim value llvm_ee_free_machine_code(LLVMValueRef F,
  247. LLVMExecutionEngineRef EE) {
  248. LLVMFreeMachineCodeForFunction(EE, F);
  249. return Val_unit;
  250. }