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1 use std::iter;
2
3 use rustc::hir;
4 use rustc_target::spec::abi::Abi;
5
6 use crate::prelude::*;
7
8 #[derive(Debug)]
9 enum PassMode {
10     NoPass,
11     ByVal(Type),
12     ByRef,
13 }
14
15 impl PassMode {
16     fn get_param_ty(self, fx: &FunctionCx<impl Backend>) -> Type {
17         match self {
18             PassMode::NoPass => unimplemented!("pass mode nopass"),
19             PassMode::ByVal(cton_type) => cton_type,
20             PassMode::ByRef => fx.module.pointer_type(),
21         }
22     }
23 }
24
25 fn get_pass_mode<'a, 'tcx: 'a>(
26     tcx: TyCtxt<'a, 'tcx, 'tcx>,
27     abi: Abi,
28     ty: Ty<'tcx>,
29     is_return: bool,
30 ) -> PassMode {
31     if ty.sty == tcx.mk_nil().sty {
32         if is_return {
33             //if false {
34             PassMode::NoPass
35         } else {
36             PassMode::ByRef
37         }
38     } else if let Some(ret_ty) = crate::common::cton_type_from_ty(tcx, ty) {
39         PassMode::ByVal(ret_ty)
40     } else {
41         if abi == Abi::C {
42             unimplemented!("Non scalars are not yet supported for \"C\" abi");
43         }
44         PassMode::ByRef
45     }
46 }
47
48 pub fn cton_sig_from_fn_ty<'a, 'tcx: 'a>(
49     tcx: TyCtxt<'a, 'tcx, 'tcx>,
50     fn_ty: Ty<'tcx>,
51 ) -> Signature {
52     let sig = ty_fn_sig(tcx, fn_ty);
53     assert!(!sig.variadic, "Variadic function are not yet supported");
54     let (call_conv, inputs, output): (CallConv, Vec<Ty>, Ty) = match sig.abi {
55         Abi::Rust => (CallConv::Fast, sig.inputs().to_vec(), sig.output()),
56         Abi::C => (CallConv::SystemV, sig.inputs().to_vec(), sig.output()),
57         Abi::RustCall => {
58             assert_eq!(sig.inputs().len(), 2);
59             let extra_args = match sig.inputs().last().unwrap().sty {
60                 ty::TyTuple(ref tupled_arguments) => tupled_arguments,
61                 _ => bug!("argument to function with \"rust-call\" ABI is not a tuple"),
62             };
63             let mut inputs: Vec<Ty> = vec![sig.inputs()[0]];
64             inputs.extend(extra_args.into_iter());
65             (CallConv::Fast, inputs, sig.output())
66         }
67         Abi::System => bug!("system abi should be selected elsewhere"),
68         Abi::RustIntrinsic => (CallConv::SystemV, sig.inputs().to_vec(), sig.output()),
69         _ => unimplemented!("unsupported abi {:?}", sig.abi),
70     };
71
72     let inputs = inputs
73         .into_iter()
74         .filter_map(|ty| match get_pass_mode(tcx, sig.abi, ty, false) {
75             PassMode::ByVal(cton_ty) => Some(cton_ty),
76             PassMode::NoPass => unimplemented!("pass mode nopass"),
77             PassMode::ByRef => Some(pointer_ty(tcx)),
78         });
79
80     let (params, returns) = match get_pass_mode(tcx, sig.abi, output, true) {
81         PassMode::NoPass => (inputs.map(AbiParam::new).collect(), vec![]),
82         PassMode::ByVal(ret_ty) => (
83             inputs.map(AbiParam::new).collect(),
84             vec![AbiParam::new(ret_ty)],
85         ),
86         PassMode::ByRef => {
87             (
88                 Some(pointer_ty(tcx)).into_iter() // First param is place to put return val
89                     .chain(inputs)
90                     .map(AbiParam::new)
91                     .collect(),
92                 vec![],
93             )
94         }
95     };
96
97     Signature {
98         params,
99         returns,
100         call_conv,
101         argument_bytes: None,
102     }
103 }
104
105 fn ty_fn_sig<'a, 'tcx>(tcx: TyCtxt<'a, 'tcx, 'tcx>, ty: Ty<'tcx>) -> ty::FnSig<'tcx> {
106     let sig = match ty.sty {
107         ty::TyFnDef(..) |
108         // Shims currently have type TyFnPtr. Not sure this should remain.
109         ty::TyFnPtr(_) => ty.fn_sig(tcx),
110         ty::TyClosure(def_id, substs) => {
111             let sig = substs.closure_sig(def_id, tcx);
112
113             let env_ty = tcx.closure_env_ty(def_id, substs).unwrap();
114             sig.map_bound(|sig| tcx.mk_fn_sig(
115                 iter::once(*env_ty.skip_binder()).chain(sig.inputs().iter().cloned()),
116                 sig.output(),
117                 sig.variadic,
118                 sig.unsafety,
119                 sig.abi
120             ))
121         }
122         ty::TyGenerator(def_id, substs, _) => {
123             let sig = substs.poly_sig(def_id, tcx);
124
125             let env_region = ty::ReLateBound(ty::INNERMOST, ty::BrEnv);
126             let env_ty = tcx.mk_mut_ref(tcx.mk_region(env_region), ty);
127
128             sig.map_bound(|sig| {
129                 let state_did = tcx.lang_items().gen_state().unwrap();
130                 let state_adt_ref = tcx.adt_def(state_did);
131                 let state_substs = tcx.intern_substs(&[
132                     sig.yield_ty.into(),
133                     sig.return_ty.into(),
134                 ]);
135                 let ret_ty = tcx.mk_adt(state_adt_ref, state_substs);
136
137                 tcx.mk_fn_sig(iter::once(env_ty),
138                     ret_ty,
139                     false,
140                     hir::Unsafety::Normal,
141                     Abi::Rust
142                 )
143             })
144         }
145         _ => bug!("unexpected type {:?} to ty_fn_sig", ty)
146     };
147     tcx.normalize_erasing_late_bound_regions(ParamEnv::reveal_all(), &sig)
148 }
149
150 pub fn get_function_name_and_sig<'a, 'tcx>(
151     tcx: TyCtxt<'a, 'tcx, 'tcx>,
152     inst: Instance<'tcx>,
153 ) -> (String, Signature) {
154     assert!(!inst.substs.needs_infer() && !inst.substs.has_param_types());
155     let fn_ty = inst.ty(tcx);
156     let sig = cton_sig_from_fn_ty(tcx, fn_ty);
157     (tcx.symbol_name(inst).as_str().to_string(), sig)
158 }
159
160 impl<'a, 'tcx: 'a, B: Backend + 'a> FunctionCx<'a, 'tcx, B> {
161     /// Instance must be monomorphized
162     pub fn get_function_ref(&mut self, inst: Instance<'tcx>) -> FuncRef {
163         let (name, sig) = get_function_name_and_sig(self.tcx, inst);
164         let func_id = self
165             .module
166             .declare_function(&name, Linkage::Import, &sig)
167             .unwrap();
168         self.module
169             .declare_func_in_func(func_id, &mut self.bcx.func)
170     }
171
172     fn lib_call(
173         &mut self,
174         name: &str,
175         input_tys: Vec<types::Type>,
176         output_ty: Option<types::Type>,
177         args: &[Value],
178     ) -> Option<Value> {
179         let sig = Signature {
180             params: input_tys.iter().cloned().map(AbiParam::new).collect(),
181             returns: vec![AbiParam::new(output_ty.unwrap_or(types::VOID))],
182             call_conv: CallConv::SystemV,
183             argument_bytes: None,
184         };
185         let func_id = self
186             .module
187             .declare_function(&name, Linkage::Import, &sig)
188             .unwrap();
189         let func_ref = self
190             .module
191             .declare_func_in_func(func_id, &mut self.bcx.func);
192         let call_inst = self.bcx.ins().call(func_ref, args);
193         if output_ty.is_none() {
194             return None;
195         }
196         let results = self.bcx.inst_results(call_inst);
197         assert_eq!(results.len(), 1);
198         Some(results[0])
199     }
200
201     pub fn easy_call(
202         &mut self,
203         name: &str,
204         args: &[CValue<'tcx>],
205         return_ty: Ty<'tcx>,
206     ) -> CValue<'tcx> {
207         let (input_tys, args): (Vec<_>, Vec<_>) = args
208             .into_iter()
209             .map(|arg| {
210                 (
211                     self.cton_type(arg.layout().ty).unwrap(),
212                     arg.load_value(self),
213                 )
214             }).unzip();
215         let return_layout = self.layout_of(return_ty);
216         let return_ty = if let TypeVariants::TyTuple(tup) = return_ty.sty {
217             if !tup.is_empty() {
218                 bug!("easy_call( (...) -> <non empty tuple> ) is not allowed");
219             }
220             None
221         } else {
222             Some(self.cton_type(return_ty).unwrap())
223         };
224         if let Some(val) = self.lib_call(name, input_tys, return_ty, &args) {
225             CValue::ByVal(val, return_layout)
226         } else {
227             CValue::ByRef(
228                 self.bcx.ins().iconst(self.module.pointer_type(), 0),
229                 return_layout,
230             )
231         }
232     }
233
234     fn self_sig(&self) -> FnSig<'tcx> {
235         ty_fn_sig(self.tcx, self.instance.ty(self.tcx))
236     }
237
238     fn return_type(&self) -> Ty<'tcx> {
239         self.self_sig().output()
240     }
241 }
242
243 pub fn codegen_fn_prelude<'a, 'tcx: 'a>(
244     fx: &mut FunctionCx<'a, 'tcx, impl Backend>,
245     start_ebb: Ebb,
246 ) {
247     let ssa_analyzed = crate::analyze::analyze(fx);
248
249     match fx.self_sig().abi {
250         Abi::Rust | Abi::RustCall => {}
251         _ => unimplemented!("declared function with non \"rust\" or \"rust-call\" abi"),
252     }
253
254     let ret_layout = fx.layout_of(fx.return_type());
255     let output_pass_mode = get_pass_mode(fx.tcx, fx.self_sig().abi, fx.return_type(), true);
256     let ret_param = match output_pass_mode {
257         PassMode::NoPass => None,
258         PassMode::ByVal(_) => None,
259         PassMode::ByRef => Some(fx.bcx.append_ebb_param(start_ebb, fx.module.pointer_type())),
260     };
261
262     enum ArgKind {
263         Normal(Value),
264         Spread(Vec<Value>),
265     }
266
267     let func_params = fx
268         .mir
269         .args_iter()
270         .map(|local| {
271             let arg_ty = fx.monomorphize(&fx.mir.local_decls[local].ty);
272
273             // Adapted from https://github.com/rust-lang/rust/blob/145155dc96757002c7b2e9de8489416e2fdbbd57/src/librustc_codegen_llvm/mir/mod.rs#L442-L482
274             if Some(local) == fx.mir.spread_arg {
275                 // This argument (e.g. the last argument in the "rust-call" ABI)
276                 // is a tuple that was spread at the ABI level and now we have
277                 // to reconstruct it into a tuple local variable, from multiple
278                 // individual function arguments.
279
280                 let tupled_arg_tys = match arg_ty.sty {
281                     ty::TyTuple(ref tys) => tys,
282                     _ => bug!("spread argument isn't a tuple?! but {:?}", arg_ty),
283                 };
284
285                 let mut ebb_params = Vec::new();
286                 for arg_ty in tupled_arg_tys.iter() {
287                     let cton_type =
288                         get_pass_mode(fx.tcx, fx.self_sig().abi, arg_ty, false).get_param_ty(fx);
289                     ebb_params.push(fx.bcx.append_ebb_param(start_ebb, cton_type));
290                 }
291
292                 (local, ArgKind::Spread(ebb_params), arg_ty)
293             } else {
294                 let cton_type =
295                     get_pass_mode(fx.tcx, fx.self_sig().abi, arg_ty, false).get_param_ty(fx);
296                 (
297                     local,
298                     ArgKind::Normal(fx.bcx.append_ebb_param(start_ebb, cton_type)),
299                     arg_ty,
300                 )
301             }
302         }).collect::<Vec<(Local, ArgKind, Ty)>>();
303
304     fx.bcx.switch_to_block(start_ebb);
305
306     fx.top_nop = Some(fx.bcx.ins().nop());
307     fx.add_global_comment(format!("ssa {:?}", ssa_analyzed));
308
309     match output_pass_mode {
310         PassMode::NoPass => {
311             let null = fx.bcx.ins().iconst(fx.module.pointer_type(), 0);
312             //unimplemented!("pass mode nopass");
313             fx.local_map.insert(
314                 RETURN_PLACE,
315                 CPlace::Addr(null, fx.layout_of(fx.return_type())),
316             );
317         }
318         PassMode::ByVal(ret_ty) => {
319             fx.bcx.declare_var(mir_var(RETURN_PLACE), ret_ty);
320             fx.local_map
321                 .insert(RETURN_PLACE, CPlace::Var(RETURN_PLACE, ret_layout));
322         }
323         PassMode::ByRef => {
324             fx.local_map
325                 .insert(RETURN_PLACE, CPlace::Addr(ret_param.unwrap(), ret_layout));
326         }
327     }
328
329     for (local, arg_kind, ty) in func_params {
330         let layout = fx.layout_of(ty);
331
332         if let ArgKind::Normal(ebb_param) = arg_kind {
333             if !ssa_analyzed
334                 .get(&local)
335                 .unwrap()
336                 .contains(crate::analyze::Flags::NOT_SSA)
337             {
338                 fx.bcx
339                     .declare_var(mir_var(local), fx.cton_type(ty).unwrap());
340                 match get_pass_mode(fx.tcx, fx.self_sig().abi, ty, false) {
341                     PassMode::NoPass => unimplemented!("pass mode nopass"),
342                     PassMode::ByVal(_) => fx.bcx.def_var(mir_var(local), ebb_param),
343                     PassMode::ByRef => {
344                         let val = CValue::ByRef(ebb_param, fx.layout_of(ty)).load_value(fx);
345                         fx.bcx.def_var(mir_var(local), val);
346                     }
347                 }
348                 fx.local_map.insert(local, CPlace::Var(local, layout));
349                 continue;
350             }
351         }
352
353         let stack_slot = fx.bcx.create_stack_slot(StackSlotData {
354             kind: StackSlotKind::ExplicitSlot,
355             size: layout.size.bytes() as u32,
356             offset: None,
357         });
358
359         let place = CPlace::from_stack_slot(fx, stack_slot, ty);
360
361         match arg_kind {
362             ArgKind::Normal(ebb_param) => match get_pass_mode(fx.tcx, fx.self_sig().abi, ty, false)
363             {
364                 PassMode::NoPass => unimplemented!("pass mode nopass"),
365                 PassMode::ByVal(_) => {
366                     place.write_cvalue(fx, CValue::ByVal(ebb_param, place.layout()))
367                 }
368                 PassMode::ByRef => place.write_cvalue(fx, CValue::ByRef(ebb_param, place.layout())),
369             },
370             ArgKind::Spread(ebb_params) => {
371                 for (i, ebb_param) in ebb_params.into_iter().enumerate() {
372                     let sub_place = place.place_field(fx, mir::Field::new(i));
373                     match get_pass_mode(fx.tcx, fx.self_sig().abi, sub_place.layout().ty, false) {
374                         PassMode::NoPass => unimplemented!("pass mode nopass"),
375                         PassMode::ByVal(_) => {
376                             sub_place.write_cvalue(fx, CValue::ByVal(ebb_param, sub_place.layout()))
377                         }
378                         PassMode::ByRef => {
379                             sub_place.write_cvalue(fx, CValue::ByRef(ebb_param, sub_place.layout()))
380                         }
381                     }
382                 }
383             }
384         }
385         fx.local_map.insert(local, place);
386     }
387
388     for local in fx.mir.vars_and_temps_iter() {
389         let ty = fx.mir.local_decls[local].ty;
390         let layout = fx.layout_of(ty);
391
392         let place = if ssa_analyzed
393             .get(&local)
394             .unwrap()
395             .contains(crate::analyze::Flags::NOT_SSA)
396         {
397             let stack_slot = fx.bcx.create_stack_slot(StackSlotData {
398                 kind: StackSlotKind::ExplicitSlot,
399                 size: layout.size.bytes() as u32,
400                 offset: None,
401             });
402             CPlace::from_stack_slot(fx, stack_slot, ty)
403         } else {
404             fx.bcx
405                 .declare_var(mir_var(local), fx.cton_type(ty).unwrap());
406             CPlace::Var(local, layout)
407         };
408
409         fx.local_map.insert(local, place);
410     }
411
412     fx.bcx
413         .ins()
414         .jump(*fx.ebb_map.get(&START_BLOCK).unwrap(), &[]);
415 }
416
417 pub fn codegen_call<'a, 'tcx: 'a>(
418     fx: &mut FunctionCx<'a, 'tcx, impl Backend>,
419     func: &Operand<'tcx>,
420     args: &[Operand<'tcx>],
421     destination: &Option<(Place<'tcx>, BasicBlock)>,
422 ) {
423     let fn_ty = fx.monomorphize(&func.ty(&fx.mir.local_decls, fx.tcx));
424     let sig = ty_fn_sig(fx.tcx, fn_ty);
425
426     // Unpack arguments tuple for closures
427     let args = if sig.abi == Abi::RustCall {
428         assert_eq!(args.len(), 2, "rust-call abi requires two arguments");
429         let self_arg = trans_operand(fx, &args[0]);
430         let pack_arg = trans_operand(fx, &args[1]);
431         let mut args = Vec::new();
432         args.push(self_arg);
433         match pack_arg.layout().ty.sty {
434             ty::TyTuple(ref tupled_arguments) => {
435                 for (i, _) in tupled_arguments.iter().enumerate() {
436                     args.push(pack_arg.value_field(fx, mir::Field::new(i)));
437                 }
438             }
439             _ => bug!("argument to function with \"rust-call\" ABI is not a tuple"),
440         }
441         args
442     } else {
443         args.into_iter()
444             .map(|arg| trans_operand(fx, arg))
445             .collect::<Vec<_>>()
446     };
447
448     let destination = destination
449         .as_ref()
450         .map(|(place, bb)| (trans_place(fx, place), *bb));
451
452     if codegen_intrinsic_call(fx, fn_ty, sig, &args, destination) {
453         return;
454     }
455
456     let ret_layout = fx.layout_of(sig.output());
457
458     let output_pass_mode = get_pass_mode(fx.tcx, sig.abi, sig.output(), true);
459     let return_ptr = match output_pass_mode {
460         PassMode::NoPass => None,
461         PassMode::ByRef => match destination {
462             Some((place, _)) => Some(place.expect_addr()),
463             None => Some(fx.bcx.ins().iconst(fx.module.pointer_type(), 0)),
464         },
465         PassMode::ByVal(_) => None,
466     };
467
468     let call_args: Vec<Value> = return_ptr
469         .into_iter()
470         .chain(args.into_iter().map(|arg| {
471             match get_pass_mode(fx.tcx, sig.abi, arg.layout().ty, false) {
472                 PassMode::NoPass => unimplemented!("pass mode nopass"),
473                 PassMode::ByVal(_) => arg.load_value(fx),
474                 PassMode::ByRef => arg.force_stack(fx),
475             }
476         })).collect::<Vec<_>>();
477
478     let call_inst = match fn_ty.sty {
479         TypeVariants::TyFnDef(def_id, substs) => {
480             let func_ref = fx.get_function_ref(
481                 Instance::resolve(fx.tcx, ParamEnv::reveal_all(), def_id, substs).unwrap(),
482             );
483             fx.bcx.ins().call(func_ref, &call_args)
484         }
485         _ => {
486             let func = trans_operand(fx, func);
487             let func = func.load_value(fx);
488             let sig = fx.bcx.import_signature(cton_sig_from_fn_ty(fx.tcx, fn_ty));
489             fx.bcx.ins().call_indirect(sig, func, &call_args)
490         }
491     };
492
493     match output_pass_mode {
494         PassMode::NoPass => {}
495         PassMode::ByVal(_) => {
496             if let Some((ret_place, _)) = destination {
497                 let results = fx.bcx.inst_results(call_inst);
498                 ret_place.write_cvalue(fx, CValue::ByVal(results[0], ret_layout));
499             }
500         }
501         PassMode::ByRef => {}
502     }
503     if let Some((_, dest)) = destination {
504         let ret_ebb = fx.get_ebb(dest);
505         fx.bcx.ins().jump(ret_ebb, &[]);
506     } else {
507         fx.bcx.ins().trap(TrapCode::User(!0));
508     }
509 }
510
511 pub fn codegen_return(fx: &mut FunctionCx<impl Backend>) {
512     match get_pass_mode(fx.tcx, fx.self_sig().abi, fx.return_type(), true) {
513         PassMode::NoPass | PassMode::ByRef => {
514             fx.bcx.ins().return_(&[]);
515         }
516         PassMode::ByVal(_) => {
517             let place = fx.get_local_place(RETURN_PLACE);
518             let ret_val = place.to_cvalue(fx).load_value(fx);
519             fx.bcx.ins().return_(&[ret_val]);
520         }
521     }
522 }
523
524 fn codegen_intrinsic_call<'a, 'tcx: 'a>(
525     fx: &mut FunctionCx<'a, 'tcx, impl Backend>,
526     fn_ty: Ty<'tcx>,
527     sig: FnSig<'tcx>,
528     args: &[CValue<'tcx>],
529     destination: Option<(CPlace<'tcx>, BasicBlock)>,
530 ) -> bool {
531     if let TypeVariants::TyFnDef(def_id, substs) = fn_ty.sty {
532         if sig.abi == Abi::RustIntrinsic {
533             let intrinsic = fx.tcx.item_name(def_id).as_str();
534             let intrinsic = &intrinsic[..];
535
536             let ret = match destination {
537                 Some((place, _)) => place,
538                 None => {
539                     // Insert non returning intrinsics here
540                     match intrinsic {
541                         "abort" => {
542                             fx.bcx.ins().trap(TrapCode::User(!0 - 1));
543                         }
544                         "unreachable" => {
545                             fx.bcx.ins().trap(TrapCode::User(!0 - 1));
546                         }
547                         _ => unimplemented!("unsupported instrinsic {}", intrinsic),
548                     }
549                     return true;
550                 }
551             };
552
553             let nil_ty = fx.tcx.mk_nil();
554             let u64_layout = fx.layout_of(fx.tcx.types.u64);
555             let usize_layout = fx.layout_of(fx.tcx.types.usize);
556
557             match intrinsic {
558                 "assume" => {
559                     assert_eq!(args.len(), 1);
560                 }
561                 "arith_offset" => {
562                     assert_eq!(args.len(), 2);
563                     let base = args[0].load_value(fx);
564                     let offset = args[1].load_value(fx);
565                     let res = fx.bcx.ins().iadd(base, offset);
566                     let res = CValue::ByVal(res, ret.layout());
567                     ret.write_cvalue(fx, res);
568                 }
569                 "likely" | "unlikely" => {
570                     assert_eq!(args.len(), 1);
571                     ret.write_cvalue(fx, args[0]);
572                 }
573                 "copy" | "copy_nonoverlapping" => {
574                     let elem_ty = substs.type_at(0);
575                     let elem_size: u64 = fx.layout_of(elem_ty).size.bytes();
576                     let elem_size = fx
577                         .bcx
578                         .ins()
579                         .iconst(fx.module.pointer_type(), elem_size as i64);
580                     assert_eq!(args.len(), 3);
581                     let src = args[0];
582                     let dst = args[1];
583                     let count = args[2].load_value(fx);
584                     let byte_amount = fx.bcx.ins().imul(count, elem_size);
585                     fx.easy_call(
586                         "memmove",
587                         &[dst, src, CValue::ByVal(byte_amount, usize_layout)],
588                         nil_ty,
589                     );
590                 }
591                 "discriminant_value" => {
592                     assert_eq!(args.len(), 1);
593                     let discr = crate::base::trans_get_discriminant(fx, args[0], ret.layout());
594                     ret.write_cvalue(fx, discr);
595                 }
596                 "size_of" => {
597                     assert_eq!(args.len(), 0);
598                     let size_of = fx.layout_of(substs.type_at(0)).size.bytes();
599                     let size_of = CValue::const_val(fx, usize_layout.ty, size_of as i64);
600                     ret.write_cvalue(fx, size_of);
601                 }
602                 "type_id" => {
603                     assert_eq!(args.len(), 0);
604                     let type_id = fx.tcx.type_id_hash(substs.type_at(0));
605                     let type_id = CValue::const_val(fx, u64_layout.ty, type_id as i64);
606                     ret.write_cvalue(fx, type_id);
607                 }
608                 "min_align_of" => {
609                     assert_eq!(args.len(), 0);
610                     let min_align = fx.layout_of(substs.type_at(0)).align.abi();
611                     let min_align = CValue::const_val(fx, usize_layout.ty, min_align as i64);
612                     ret.write_cvalue(fx, min_align);
613                 }
614                 _ if intrinsic.starts_with("unchecked_") => {
615                     assert_eq!(args.len(), 2);
616                     let bin_op = match intrinsic {
617                         "unchecked_div" => BinOp::Div,
618                         "unchecked_rem" => BinOp::Rem,
619                         "unchecked_shl" => BinOp::Shl,
620                         "unchecked_shr" => BinOp::Shr,
621                         _ => unimplemented!("intrinsic {}", intrinsic),
622                     };
623                     let res = match ret.layout().ty.sty {
624                         TypeVariants::TyUint(_) => crate::base::trans_int_binop(
625                             fx,
626                             bin_op,
627                             args[0],
628                             args[1],
629                             ret.layout().ty,
630                             false,
631                         ),
632                         TypeVariants::TyInt(_) => crate::base::trans_int_binop(
633                             fx,
634                             bin_op,
635                             args[0],
636                             args[1],
637                             ret.layout().ty,
638                             true,
639                         ),
640                         _ => panic!(),
641                     };
642                     ret.write_cvalue(fx, res);
643                 }
644                 _ if intrinsic.ends_with("_with_overflow") => {
645                     assert_eq!(args.len(), 2);
646                     assert_eq!(args[0].layout().ty, args[1].layout().ty);
647                     let bin_op = match intrinsic {
648                         "add_with_overflow" => BinOp::Add,
649                         "sub_with_overflow" => BinOp::Sub,
650                         "mul_with_overflow" => BinOp::Mul,
651                         _ => unimplemented!("intrinsic {}", intrinsic),
652                     };
653                     let res = match args[0].layout().ty.sty {
654                         TypeVariants::TyUint(_) => crate::base::trans_checked_int_binop(
655                             fx,
656                             bin_op,
657                             args[0],
658                             args[1],
659                             ret.layout().ty,
660                             false,
661                         ),
662                         TypeVariants::TyInt(_) => crate::base::trans_checked_int_binop(
663                             fx,
664                             bin_op,
665                             args[0],
666                             args[1],
667                             ret.layout().ty,
668                             true,
669                         ),
670                         _ => panic!(),
671                     };
672                     ret.write_cvalue(fx, res);
673                 }
674                 _ if intrinsic.starts_with("overflowing_") => {
675                     assert_eq!(args.len(), 2);
676                     assert_eq!(args[0].layout().ty, args[1].layout().ty);
677                     let bin_op = match intrinsic {
678                         "overflowing_add" => BinOp::Add,
679                         "overflowing_sub" => BinOp::Sub,
680                         "overflowing_mul" => BinOp::Mul,
681                         _ => unimplemented!("intrinsic {}", intrinsic),
682                     };
683                     let res = match args[0].layout().ty.sty {
684                         TypeVariants::TyUint(_) => crate::base::trans_int_binop(
685                             fx,
686                             bin_op,
687                             args[0],
688                             args[1],
689                             ret.layout().ty,
690                             false,
691                         ),
692                         TypeVariants::TyInt(_) => crate::base::trans_int_binop(
693                             fx,
694                             bin_op,
695                             args[0],
696                             args[1],
697                             ret.layout().ty,
698                             true,
699                         ),
700                         _ => panic!(),
701                     };
702                     ret.write_cvalue(fx, res);
703                 }
704                 "offset" => {
705                     assert_eq!(args.len(), 2);
706                     let base = args[0].load_value(fx);
707                     let offset = args[1].load_value(fx);
708                     let res = fx.bcx.ins().iadd(base, offset);
709                     ret.write_cvalue(fx, CValue::ByVal(res, args[0].layout()));
710                 }
711                 "transmute" => {
712                     assert_eq!(args.len(), 1);
713                     let src_ty = substs.type_at(0);
714                     let dst_ty = substs.type_at(1);
715                     assert_eq!(args[0].layout().ty, src_ty);
716                     let addr = args[0].force_stack(fx);
717                     let dst_layout = fx.layout_of(dst_ty);
718                     ret.write_cvalue(fx, CValue::ByRef(addr, dst_layout))
719                 }
720                 "uninit" => {
721                     assert_eq!(args.len(), 0);
722                     let ty = substs.type_at(0);
723                     let layout = fx.layout_of(ty);
724                     let stack_slot = fx.bcx.create_stack_slot(StackSlotData {
725                         kind: StackSlotKind::ExplicitSlot,
726                         size: layout.size.bytes() as u32,
727                         offset: None,
728                     });
729
730                     let uninit_place = CPlace::from_stack_slot(fx, stack_slot, ty);
731                     let uninit_val = uninit_place.to_cvalue(fx);
732                     ret.write_cvalue(fx, uninit_val);
733                 }
734                 "ctlz" | "ctlz_nonzero" => {
735                     assert_eq!(args.len(), 1);
736                     let arg = args[0].load_value(fx);
737                     let res = CValue::ByVal(fx.bcx.ins().clz(arg), args[0].layout());
738                     ret.write_cvalue(fx, res);
739                 }
740                 "cttz" | "cttz_nonzero" => {
741                     assert_eq!(args.len(), 1);
742                     let arg = args[0].load_value(fx);
743                     let res = CValue::ByVal(fx.bcx.ins().clz(arg), args[0].layout());
744                     ret.write_cvalue(fx, res);
745                 }
746                 "ctpop" => {
747                     assert_eq!(args.len(), 1);
748                     let arg = args[0].load_value(fx);
749                     let res = CValue::ByVal(fx.bcx.ins().popcnt(arg), args[0].layout());
750                     ret.write_cvalue(fx, res);
751                 }
752                 _ => unimpl!("unsupported intrinsic {}", intrinsic),
753             }
754
755             if let Some((_, dest)) = destination {
756                 let ret_ebb = fx.get_ebb(dest);
757                 fx.bcx.ins().jump(ret_ebb, &[]);
758             } else {
759                 fx.bcx.ins().trap(TrapCode::User(!0));
760             }
761             return true;
762         }
763     }
764
765     false
766 }