1 use crate::config::Config;
2 use crate::cranelift_arbitrary::CraneliftArbitrary;
3 use crate::target_isa_extras::TargetIsaExtras;
4 use anyhow::Result;
5 use arbitrary::{Arbitrary, Unstructured};
6 use cranelift::codegen::data_value::DataValue;
7 use cranelift::codegen::ir::immediates::Offset32;
8 use cranelift::codegen::ir::instructions::{InstructionFormat, ResolvedConstraint};
9 use cranelift::codegen::ir::stackslot::StackSize;
10 
11 use cranelift::codegen::ir::{
12     AliasRegion, AtomicRmwOp, Block, BlockArg, ConstantData, Endianness, ExternalName, FuncRef,
13     Function, LibCall, Opcode, SigRef, Signature, StackSlot, UserExternalName, UserFuncName, Value,
14     types::*,
15 };
16 use cranelift::codegen::isa::CallConv;
17 use cranelift::frontend::{FunctionBuilder, FunctionBuilderContext, Switch, Variable};
18 use cranelift::prelude::isa::OwnedTargetIsa;
19 use cranelift::prelude::{
20     ExtFuncData, FloatCC, InstBuilder, IntCC, JumpTableData, MemFlags, StackSlotData, StackSlotKind,
21 };
22 use std::collections::HashMap;
23 use std::ops::RangeInclusive;
24 use std::str::FromStr;
25 use std::sync::LazyLock;
26 use target_lexicon::{Architecture, Triple};
27 
28 type BlockSignature = Vec<Type>;
29 
30 fn insert_opcode(
31     fgen: &mut FunctionGenerator,
32     builder: &mut FunctionBuilder,
33     opcode: Opcode,
34     args: &[Type],
35     rets: &[Type],
36 ) -> Result<()> {
37     let mut vals = Vec::with_capacity(args.len());
38     for &arg in args.into_iter() {
39         let var = fgen.get_variable_of_type(arg)?;
40         let val = builder.use_var(var);
41         vals.push(val);
42     }
43 
44     // Some opcodes require us to look at their input arguments to determine the
45     // controlling type. This is not the general case, but we can neatly check this
46     // using `requires_typevar_operand`.
47     let ctrl_type = if opcode.constraints().requires_typevar_operand() {
48         args.first()
49     } else {
50         rets.first()
51     }
52     .copied()
53     .unwrap_or(INVALID);
54 
55     // Choose the appropriate instruction format for this opcode
56     let (inst, dfg) = match opcode.format() {
57         InstructionFormat::NullAry => builder.ins().NullAry(opcode, ctrl_type),
58         InstructionFormat::Unary => builder.ins().Unary(opcode, ctrl_type, vals[0]),
59         InstructionFormat::Binary => builder.ins().Binary(opcode, ctrl_type, vals[0], vals[1]),
60         InstructionFormat::Ternary => builder
61             .ins()
62             .Ternary(opcode, ctrl_type, vals[0], vals[1], vals[2]),
63         _ => unimplemented!(),
64     };
65     let results = dfg.inst_results(inst).to_vec();
66 
67     for (val, &ty) in results.into_iter().zip(rets) {
68         let var = fgen.get_variable_of_type(ty)?;
69         builder.def_var(var, val);
70     }
71     Ok(())
72 }
73 
74 fn insert_call_to_function(
75     fgen: &mut FunctionGenerator,
76     builder: &mut FunctionBuilder,
77     call_opcode: Opcode,
78     sig: &Signature,
79     sig_ref: SigRef,
80     func_ref: FuncRef,
81 ) -> Result<()> {
82     let actuals = fgen.generate_values_for_signature(
83         builder,
84         sig.params.iter().map(|abi_param| abi_param.value_type),
85     )?;
86 
87     let addr_ty = fgen.isa.pointer_type();
88     let call = match call_opcode {
89         Opcode::Call => builder.ins().call(func_ref, &actuals),
90         Opcode::ReturnCall => builder.ins().return_call(func_ref, &actuals),
91         Opcode::CallIndirect => {
92             let addr = builder.ins().func_addr(addr_ty, func_ref);
93             builder.ins().call_indirect(sig_ref, addr, &actuals)
94         }
95         Opcode::ReturnCallIndirect => {
96             let addr = builder.ins().func_addr(addr_ty, func_ref);
97             builder.ins().return_call_indirect(sig_ref, addr, &actuals)
98         }
99         _ => unreachable!(),
100     };
101 
102     // Assign the return values to random variables
103     let ret_values = builder.inst_results(call).to_vec();
104     let ret_types = sig.returns.iter().map(|p| p.value_type);
105     for (ty, val) in ret_types.zip(ret_values) {
106         let var = fgen.get_variable_of_type(ty)?;
107         builder.def_var(var, val);
108     }
109 
110     Ok(())
111 }
112 
113 fn insert_call(
114     fgen: &mut FunctionGenerator,
115     builder: &mut FunctionBuilder,
116     opcode: Opcode,
117     _args: &[Type],
118     _rets: &[Type],
119 ) -> Result<()> {
120     assert!(matches!(opcode, Opcode::Call | Opcode::CallIndirect));
121     let (sig, sig_ref, func_ref) = fgen.u.choose(&fgen.resources.func_refs)?.clone();
122 
123     insert_call_to_function(fgen, builder, opcode, &sig, sig_ref, func_ref)
124 }
125 
126 fn insert_stack_load(
127     fgen: &mut FunctionGenerator,
128     builder: &mut FunctionBuilder,
129     _opcode: Opcode,
130     _args: &[Type],
131     rets: &[Type],
132 ) -> Result<()> {
133     let typevar = rets[0];
134     let type_size = typevar.bytes();
135     let (slot, slot_size, _align, category) = fgen.stack_slot_with_size(type_size)?;
136 
137     // `stack_load` doesn't support setting MemFlags, and it does not set any
138     // alias analysis bits, so we can only emit it for `Other` slots.
139     if category != AACategory::Other {
140         return Err(arbitrary::Error::IncorrectFormat.into());
141     }
142 
143     let offset = fgen.u.int_in_range(0..=(slot_size - type_size))? as i32;
144 
145     let val = builder.ins().stack_load(typevar, slot, offset);
146     let var = fgen.get_variable_of_type(typevar)?;
147     builder.def_var(var, val);
148 
149     Ok(())
150 }
151 
152 fn insert_stack_store(
153     fgen: &mut FunctionGenerator,
154     builder: &mut FunctionBuilder,
155     _opcode: Opcode,
156     args: &[Type],
157     _rets: &[Type],
158 ) -> Result<()> {
159     let typevar = args[0];
160     let type_size = typevar.bytes();
161 
162     let (slot, slot_size, _align, category) = fgen.stack_slot_with_size(type_size)?;
163 
164     // `stack_store` doesn't support setting MemFlags, and it does not set any
165     // alias analysis bits, so we can only emit it for `Other` slots.
166     if category != AACategory::Other {
167         return Err(arbitrary::Error::IncorrectFormat.into());
168     }
169 
170     let offset = fgen.u.int_in_range(0..=(slot_size - type_size))? as i32;
171 
172     let arg0 = fgen.get_variable_of_type(typevar)?;
173     let arg0 = builder.use_var(arg0);
174 
175     builder.ins().stack_store(arg0, slot, offset);
176     Ok(())
177 }
178 
179 fn insert_cmp(
180     fgen: &mut FunctionGenerator,
181     builder: &mut FunctionBuilder,
182     opcode: Opcode,
183     args: &[Type],
184     rets: &[Type],
185 ) -> Result<()> {
186     let lhs = fgen.get_variable_of_type(args[0])?;
187     let lhs = builder.use_var(lhs);
188 
189     let rhs = fgen.get_variable_of_type(args[1])?;
190     let rhs = builder.use_var(rhs);
191 
192     let res = if opcode == Opcode::Fcmp {
193         let cc = *fgen.u.choose(FloatCC::all())?;
194 
195         // We filter out condition codes that aren't supported by the target at
196         // this point after randomly choosing one, instead of randomly choosing a
197         // supported one, to avoid invalidating the corpus when these get implemented.
198         let unimplemented_cc = match (fgen.isa.triple().architecture, cc) {
199             // Some FloatCC's are not implemented on AArch64, see:
200             // https://github.com/bytecodealliance/wasmtime/issues/4850
201             (Architecture::Aarch64(_), FloatCC::OrderedNotEqual) => true,
202             (Architecture::Aarch64(_), FloatCC::UnorderedOrEqual) => true,
203             (Architecture::Aarch64(_), FloatCC::UnorderedOrLessThan) => true,
204             (Architecture::Aarch64(_), FloatCC::UnorderedOrLessThanOrEqual) => true,
205             (Architecture::Aarch64(_), FloatCC::UnorderedOrGreaterThan) => true,
206             (Architecture::Aarch64(_), FloatCC::UnorderedOrGreaterThanOrEqual) => true,
207 
208             // These are not implemented on x86_64, for vectors.
209             (Architecture::X86_64, FloatCC::UnorderedOrEqual | FloatCC::OrderedNotEqual) => {
210                 args[0].is_vector()
211             }
212             _ => false,
213         };
214         if unimplemented_cc {
215             return Err(arbitrary::Error::IncorrectFormat.into());
216         }
217 
218         builder.ins().fcmp(cc, lhs, rhs)
219     } else {
220         let cc = *fgen.u.choose(IntCC::all())?;
221         builder.ins().icmp(cc, lhs, rhs)
222     };
223 
224     let var = fgen.get_variable_of_type(rets[0])?;
225     builder.def_var(var, res);
226 
227     Ok(())
228 }
229 
230 fn insert_const(
231     fgen: &mut FunctionGenerator,
232     builder: &mut FunctionBuilder,
233     _opcode: Opcode,
234     _args: &[Type],
235     rets: &[Type],
236 ) -> Result<()> {
237     let typevar = rets[0];
238     let var = fgen.get_variable_of_type(typevar)?;
239     let val = fgen.generate_const(builder, typevar)?;
240     builder.def_var(var, val);
241     Ok(())
242 }
243 
244 fn insert_bitcast(
245     fgen: &mut FunctionGenerator,
246     builder: &mut FunctionBuilder,
247     args: &[Type],
248     rets: &[Type],
249 ) -> Result<()> {
250     let from_var = fgen.get_variable_of_type(args[0])?;
251     let from_val = builder.use_var(from_var);
252 
253     let to_var = fgen.get_variable_of_type(rets[0])?;
254 
255     // TODO: We can generate little/big endian flags here.
256     let mut memflags = MemFlags::new();
257 
258     // When bitcasting between vectors of different lane counts, we need to
259     // specify the endianness.
260     if args[0].lane_count() != rets[0].lane_count() {
261         memflags.set_endianness(Endianness::Little);
262     }
263 
264     let res = builder.ins().bitcast(rets[0], memflags, from_val);
265     builder.def_var(to_var, res);
266     Ok(())
267 }
268 
269 fn insert_load_store(
270     fgen: &mut FunctionGenerator,
271     builder: &mut FunctionBuilder,
272     opcode: Opcode,
273     args: &[Type],
274     rets: &[Type],
275 ) -> Result<()> {
276     if opcode == Opcode::Bitcast {
277         return insert_bitcast(fgen, builder, args, rets);
278     }
279 
280     let ctrl_type = *rets.first().or(args.first()).unwrap();
281     let type_size = ctrl_type.bytes();
282 
283     let is_atomic = [Opcode::AtomicLoad, Opcode::AtomicStore].contains(&opcode);
284     let (address, flags, offset) =
285         fgen.generate_address_and_memflags(builder, type_size, is_atomic)?;
286 
287     // The variable being loaded or stored into
288     let var = fgen.get_variable_of_type(ctrl_type)?;
289 
290     match opcode.format() {
291         InstructionFormat::LoadNoOffset => {
292             let (inst, dfg) = builder
293                 .ins()
294                 .LoadNoOffset(opcode, ctrl_type, flags, address);
295 
296             let new_val = dfg.first_result(inst);
297             builder.def_var(var, new_val);
298         }
299         InstructionFormat::StoreNoOffset => {
300             let val = builder.use_var(var);
301 
302             builder
303                 .ins()
304                 .StoreNoOffset(opcode, ctrl_type, flags, val, address);
305         }
306         InstructionFormat::Store => {
307             let val = builder.use_var(var);
308 
309             builder
310                 .ins()
311                 .Store(opcode, ctrl_type, flags, offset, val, address);
312         }
313         InstructionFormat::Load => {
314             let (inst, dfg) = builder
315                 .ins()
316                 .Load(opcode, ctrl_type, flags, offset, address);
317 
318             let new_val = dfg.first_result(inst);
319             builder.def_var(var, new_val);
320         }
321         _ => unimplemented!(),
322     }
323 
324     Ok(())
325 }
326 
327 fn insert_atomic_rmw(
328     fgen: &mut FunctionGenerator,
329     builder: &mut FunctionBuilder,
330     _: Opcode,
331     _: &[Type],
332     rets: &[Type],
333 ) -> Result<()> {
334     let ctrl_type = *rets.first().unwrap();
335     let type_size = ctrl_type.bytes();
336 
337     let rmw_op = *fgen.u.choose(AtomicRmwOp::all())?;
338 
339     let (address, flags, offset) = fgen.generate_address_and_memflags(builder, type_size, true)?;
340 
341     // AtomicRMW does not directly support offsets, so add the offset to the address separately.
342     let address = builder.ins().iadd_imm(address, i64::from(offset));
343 
344     // Load and store target variables
345     let source_var = fgen.get_variable_of_type(ctrl_type)?;
346     let target_var = fgen.get_variable_of_type(ctrl_type)?;
347 
348     let source_val = builder.use_var(source_var);
349     let new_val = builder
350         .ins()
351         .atomic_rmw(ctrl_type, flags, rmw_op, address, source_val);
352 
353     builder.def_var(target_var, new_val);
354     Ok(())
355 }
356 
357 fn insert_atomic_cas(
358     fgen: &mut FunctionGenerator,
359     builder: &mut FunctionBuilder,
360     _: Opcode,
361     _: &[Type],
362     rets: &[Type],
363 ) -> Result<()> {
364     let ctrl_type = *rets.first().unwrap();
365     let type_size = ctrl_type.bytes();
366 
367     let (address, flags, offset) = fgen.generate_address_and_memflags(builder, type_size, true)?;
368 
369     // AtomicCas does not directly support offsets, so add the offset to the address separately.
370     let address = builder.ins().iadd_imm(address, i64::from(offset));
371 
372     // Source and Target variables
373     let expected_var = fgen.get_variable_of_type(ctrl_type)?;
374     let store_var = fgen.get_variable_of_type(ctrl_type)?;
375     let loaded_var = fgen.get_variable_of_type(ctrl_type)?;
376 
377     let expected_val = builder.use_var(expected_var);
378     let store_val = builder.use_var(store_var);
379     let new_val = builder
380         .ins()
381         .atomic_cas(flags, address, expected_val, store_val);
382 
383     builder.def_var(loaded_var, new_val);
384     Ok(())
385 }
386 
387 fn insert_shuffle(
388     fgen: &mut FunctionGenerator,
389     builder: &mut FunctionBuilder,
390     opcode: Opcode,
391     _: &[Type],
392     rets: &[Type],
393 ) -> Result<()> {
394     let ctrl_type = *rets.first().unwrap();
395 
396     let lhs = builder.use_var(fgen.get_variable_of_type(ctrl_type)?);
397     let rhs = builder.use_var(fgen.get_variable_of_type(ctrl_type)?);
398 
399     let mask = {
400         let mut lanes = [0u8; 16];
401         for lane in lanes.iter_mut() {
402             *lane = fgen.u.int_in_range(0..=31)?;
403         }
404         let lanes = ConstantData::from(lanes.as_ref());
405         builder.func.dfg.immediates.push(lanes)
406     };
407 
408     // This function is called for any `InstructionFormat::Shuffle`. Which today is just
409     // `shuffle`, but lets assert that, just to be sure we don't accidentally insert
410     // something else.
411     assert_eq!(opcode, Opcode::Shuffle);
412     let res = builder.ins().shuffle(lhs, rhs, mask);
413 
414     let target_var = fgen.get_variable_of_type(ctrl_type)?;
415     builder.def_var(target_var, res);
416 
417     Ok(())
418 }
419 
420 fn insert_ins_ext_lane(
421     fgen: &mut FunctionGenerator,
422     builder: &mut FunctionBuilder,
423     opcode: Opcode,
424     args: &[Type],
425     rets: &[Type],
426 ) -> Result<()> {
427     let vector_type = *args.first().unwrap();
428     let ret_type = *rets.first().unwrap();
429 
430     let lhs = builder.use_var(fgen.get_variable_of_type(vector_type)?);
431     let max_lane = (vector_type.lane_count() as u8) - 1;
432     let lane = fgen.u.int_in_range(0..=max_lane)?;
433 
434     let res = match opcode {
435         Opcode::Insertlane => {
436             let rhs = builder.use_var(fgen.get_variable_of_type(args[1])?);
437             builder.ins().insertlane(lhs, rhs, lane)
438         }
439         Opcode::Extractlane => builder.ins().extractlane(lhs, lane),
440         _ => todo!(),
441     };
442 
443     let target_var = fgen.get_variable_of_type(ret_type)?;
444     builder.def_var(target_var, res);
445 
446     Ok(())
447 }
448 
449 type OpcodeInserter = fn(
450     fgen: &mut FunctionGenerator,
451     builder: &mut FunctionBuilder,
452     Opcode,
453     &[Type],
454     &[Type],
455 ) -> Result<()>;
456 
457 macro_rules! exceptions {
458     ($op:expr, $args:expr, $rets:expr, $(($($cases:pat),*)),* $(,)?) => {
459         match ($op, $args, $rets) {
460             $( ($($cases,)* ..) => return false, )*
461             _ => true,
462         }
463     }
464 }
465 
466 /// Returns true if we believe this `OpcodeSignature` should compile correctly
467 /// for the given target triple. We currently have a range of known issues
468 /// with specific lowerings on specific backends, and we don't want to get
469 /// fuzz bug reports for those. Over time our goal is to eliminate all of these
470 /// exceptions.
471 fn valid_for_target(triple: &Triple, op: Opcode, args: &[Type], rets: &[Type]) -> bool {
472     // Rule out invalid combinations that we don't yet have a good way of rejecting with the
473     // instruction DSL type constraints.
474     match op {
475         Opcode::FcvtToUintSat | Opcode::FcvtToSintSat => {
476             assert_eq!(args.len(), 1);
477             assert_eq!(rets.len(), 1);
478 
479             let arg = args[0];
480             let ret = rets[0];
481 
482             // Vector arguments must produce vector results, and scalar arguments must produce
483             // scalar results.
484             if arg.is_vector() != ret.is_vector() {
485                 return false;
486             }
487 
488             if arg.is_vector() && ret.is_vector() {
489                 // Vector conversions must have the same number of lanes, and the lanes must be the
490                 // same bit-width.
491                 if arg.lane_count() != ret.lane_count() {
492                     return false;
493                 }
494 
495                 if arg.lane_of().bits() != ret.lane_of().bits() {
496                     return false;
497                 }
498             }
499         }
500 
501         Opcode::Bitcast => {
502             assert_eq!(args.len(), 1);
503             assert_eq!(rets.len(), 1);
504 
505             let arg = args[0];
506             let ret = rets[0];
507 
508             // The opcode generator still allows bitcasts between different sized types, but these
509             // are rejected in the verifier.
510             if arg.bits() != ret.bits() {
511                 return false;
512             }
513         }
514 
515         // This requires precise runtime integration so it's not supported at
516         // all in fuzzgen just yet.
517         Opcode::StackSwitch => return false,
518 
519         _ => {}
520     }
521 
522     match triple.architecture {
523         Architecture::X86_64 => {
524             exceptions!(
525                 op,
526                 args,
527                 rets,
528                 (Opcode::UmulOverflow | Opcode::SmulOverflow, &[I128, I128]),
529                 (Opcode::Imul, &[I8X16, I8X16]),
530                 // https://github.com/bytecodealliance/wasmtime/issues/4756
531                 (Opcode::Udiv | Opcode::Sdiv, &[I128, I128]),
532                 // https://github.com/bytecodealliance/wasmtime/issues/5474
533                 (Opcode::Urem | Opcode::Srem, &[I128, I128]),
534                 // https://github.com/bytecodealliance/wasmtime/issues/3370
535                 (
536                     Opcode::Smin | Opcode::Umin | Opcode::Smax | Opcode::Umax,
537                     &[I128, I128]
538                 ),
539                 // https://github.com/bytecodealliance/wasmtime/issues/5107
540                 (Opcode::Cls, &[I8], &[I8]),
541                 (Opcode::Cls, &[I16], &[I16]),
542                 (Opcode::Cls, &[I32], &[I32]),
543                 (Opcode::Cls, &[I64], &[I64]),
544                 (Opcode::Cls, &[I128], &[I128]),
545                 // TODO
546                 (Opcode::Bitselect, &[_, _, _], &[F32 | F64]),
547                 // https://github.com/bytecodealliance/wasmtime/issues/4897
548                 // https://github.com/bytecodealliance/wasmtime/issues/4899
549                 (
550                     Opcode::FcvtToUint
551                         | Opcode::FcvtToUintSat
552                         | Opcode::FcvtToSint
553                         | Opcode::FcvtToSintSat,
554                     &[F32 | F64],
555                     &[I8 | I16 | I128]
556                 ),
557                 (Opcode::FcvtToUint | Opcode::FcvtToSint, &[F32X4], &[I32X4]),
558                 (
559                     Opcode::FcvtToUint
560                         | Opcode::FcvtToUintSat
561                         | Opcode::FcvtToSint
562                         | Opcode::FcvtToSintSat,
563                     &[F64X2],
564                     &[I64X2]
565                 ),
566                 // https://github.com/bytecodealliance/wasmtime/issues/4900
567                 (Opcode::FcvtFromUint, &[I128], &[F32 | F64]),
568                 // This has a lowering, but only when preceded by `uwiden_low`.
569                 (Opcode::FcvtFromUint, &[I64X2], &[F64X2]),
570                 // https://github.com/bytecodealliance/wasmtime/issues/4900
571                 (Opcode::FcvtFromSint, &[I128], &[F32 | F64]),
572                 (Opcode::FcvtFromSint, &[I64X2], &[F64X2]),
573                 (
574                     Opcode::Umulhi | Opcode::Smulhi,
575                     &([I8X16, I8X16] | [I16X8, I16X8] | [I32X4, I32X4] | [I64X2, I64X2])
576                 ),
577                 (
578                     Opcode::UaddSat | Opcode::SaddSat | Opcode::UsubSat | Opcode::SsubSat,
579                     &([I32X4, I32X4] | [I64X2, I64X2])
580                 ),
581                 (Opcode::Fcopysign, &([F32X4, F32X4] | [F64X2, F64X2])),
582                 (Opcode::Popcnt, &([I8X16] | [I16X8] | [I32X4] | [I64X2])),
583                 (
584                     Opcode::Umax | Opcode::Smax | Opcode::Umin | Opcode::Smin,
585                     &[I64X2, I64X2]
586                 ),
587                 // https://github.com/bytecodealliance/wasmtime/issues/6104
588                 (Opcode::Bitcast, &[I128], &[_]),
589                 (Opcode::Bitcast, &[_], &[I128]),
590                 (Opcode::Uunarrow),
591                 (Opcode::Snarrow | Opcode::Unarrow, &[I64X2, I64X2]),
592                 (Opcode::SqmulRoundSat, &[I32X4, I32X4]),
593                 // This Icmp is not implemented: #5529
594                 (Opcode::Icmp, &[I64X2, I64X2]),
595                 // IaddPairwise is implemented, but only for some types, and with some preceding ops.
596                 (Opcode::IaddPairwise),
597                 // Nothing wrong with this select. But we have an isle rule that can optimize it
598                 // into a `min`/`max` instructions, which we don't have implemented yet.
599                 (Opcode::Select, &[_, I128, I128]),
600                 // These stack accesses can cause segfaults if they are merged into an SSE instruction.
601                 // See: #5922
602                 (
603                     Opcode::StackStore,
604                     &[I8X16 | I16X8 | I32X4 | I64X2 | F32X4 | F64X2]
605                 ),
606                 (
607                     Opcode::StackLoad,
608                     &[],
609                     &[I8X16 | I16X8 | I32X4 | I64X2 | F32X4 | F64X2]
610                 ),
611                 // TODO
612                 (
613                     Opcode::Sshr | Opcode::Ushr | Opcode::Ishl,
614                     &[I8X16 | I16X8 | I32X4 | I64X2, I128]
615                 ),
616                 (
617                     Opcode::Rotr | Opcode::Rotl,
618                     &[I8X16 | I16X8 | I32X4 | I64X2, _]
619                 ),
620             )
621         }
622 
623         Architecture::Aarch64(_) => {
624             exceptions!(
625                 op,
626                 args,
627                 rets,
628                 (Opcode::UmulOverflow | Opcode::SmulOverflow, &[I128, I128]),
629                 // https://github.com/bytecodealliance/wasmtime/issues/4864
630                 (Opcode::Udiv | Opcode::Sdiv, &[I128, I128]),
631                 // https://github.com/bytecodealliance/wasmtime/issues/5472
632                 (Opcode::Urem | Opcode::Srem, &[I128, I128]),
633                 // https://github.com/bytecodealliance/wasmtime/issues/4313
634                 (
635                     Opcode::Smin | Opcode::Umin | Opcode::Smax | Opcode::Umax,
636                     &[I128, I128]
637                 ),
638                 // https://github.com/bytecodealliance/wasmtime/issues/4870
639                 (Opcode::Bnot, &[F32 | F64]),
640                 (
641                     Opcode::Band
642                         | Opcode::Bor
643                         | Opcode::Bxor
644                         | Opcode::BandNot
645                         | Opcode::BorNot
646                         | Opcode::BxorNot,
647                     &([F32, F32] | [F64, F64])
648                 ),
649                 // https://github.com/bytecodealliance/wasmtime/issues/5198
650                 (Opcode::Bitselect, &[I128, I128, I128]),
651                 // https://github.com/bytecodealliance/wasmtime/issues/4934
652                 (
653                     Opcode::FcvtToUint
654                         | Opcode::FcvtToUintSat
655                         | Opcode::FcvtToSint
656                         | Opcode::FcvtToSintSat,
657                     &[F32 | F64],
658                     &[I128]
659                 ),
660                 // https://github.com/bytecodealliance/wasmtime/issues/4933
661                 (
662                     Opcode::FcvtFromUint | Opcode::FcvtFromSint,
663                     &[I128],
664                     &[F32 | F64]
665                 ),
666                 (
667                     Opcode::Umulhi | Opcode::Smulhi,
668                     &([I8X16, I8X16] | [I16X8, I16X8] | [I32X4, I32X4] | [I64X2, I64X2])
669                 ),
670                 (Opcode::Popcnt, &[I16X8 | I32X4 | I64X2]),
671                 // Nothing wrong with this select. But we have an isle rule that can optimize it
672                 // into a `min`/`max` instructions, which we don't have implemented yet.
673                 (Opcode::Select, &[I8, I128, I128]),
674                 // https://github.com/bytecodealliance/wasmtime/issues/6104
675                 (Opcode::Bitcast, &[I128], &[_]),
676                 (Opcode::Bitcast, &[_], &[I128]),
677                 // TODO
678                 (
679                     Opcode::Sshr | Opcode::Ushr | Opcode::Ishl,
680                     &[I8X16 | I16X8 | I32X4 | I64X2, I128]
681                 ),
682                 (
683                     Opcode::Rotr | Opcode::Rotl,
684                     &[I8X16 | I16X8 | I32X4 | I64X2, _]
685                 ),
686                 // TODO
687                 (Opcode::Bitselect, &[_, _, _], &[F32 | F64]),
688                 (Opcode::VhighBits, &[F32X4 | F64X2]),
689             )
690         }
691 
692         Architecture::S390x => {
693             exceptions!(
694                 op,
695                 args,
696                 rets,
697                 (Opcode::UaddOverflow | Opcode::SaddOverflow),
698                 (Opcode::UsubOverflow | Opcode::SsubOverflow),
699                 (Opcode::UmulOverflow | Opcode::SmulOverflow),
700                 (
701                     Opcode::Udiv | Opcode::Sdiv | Opcode::Urem | Opcode::Srem,
702                     &[I128, I128]
703                 ),
704                 (Opcode::Bnot, &[F32 | F64]),
705                 (
706                     Opcode::Band
707                         | Opcode::Bor
708                         | Opcode::Bxor
709                         | Opcode::BandNot
710                         | Opcode::BorNot
711                         | Opcode::BxorNot,
712                     &([F32, F32] | [F64, F64])
713                 ),
714                 (
715                     Opcode::FcvtToUint
716                         | Opcode::FcvtToUintSat
717                         | Opcode::FcvtToSint
718                         | Opcode::FcvtToSintSat,
719                     &[F32 | F64],
720                     &[I128]
721                 ),
722                 (
723                     Opcode::FcvtFromUint | Opcode::FcvtFromSint,
724                     &[I128],
725                     &[F32 | F64]
726                 ),
727                 (Opcode::SsubSat | Opcode::SaddSat, &[I64X2, I64X2]),
728                 // https://github.com/bytecodealliance/wasmtime/issues/6104
729                 (Opcode::Bitcast, &[I128], &[_]),
730                 (Opcode::Bitcast, &[_], &[I128]),
731                 // TODO
732                 (Opcode::Bitselect, &[_, _, _], &[F32 | F64]),
733             )
734         }
735 
736         Architecture::Riscv64(_) => {
737             exceptions!(
738                 op,
739                 args,
740                 rets,
741                 // TODO
742                 (Opcode::UaddOverflow | Opcode::SaddOverflow),
743                 (Opcode::UsubOverflow | Opcode::SsubOverflow),
744                 (Opcode::UmulOverflow | Opcode::SmulOverflow),
745                 // TODO
746                 (
747                     Opcode::Udiv | Opcode::Sdiv | Opcode::Urem | Opcode::Srem,
748                     &[I128, I128]
749                 ),
750                 // TODO
751                 (Opcode::Iabs, &[I128]),
752                 // TODO
753                 (Opcode::Bitselect, &[I128, I128, I128]),
754                 // https://github.com/bytecodealliance/wasmtime/issues/5528
755                 (
756                     Opcode::FcvtToUint | Opcode::FcvtToSint,
757                     [F32 | F64],
758                     &[I128]
759                 ),
760                 (
761                     Opcode::FcvtToUintSat | Opcode::FcvtToSintSat,
762                     &[F32 | F64],
763                     &[I128]
764                 ),
765                 // https://github.com/bytecodealliance/wasmtime/issues/5528
766                 (
767                     Opcode::FcvtFromUint | Opcode::FcvtFromSint,
768                     &[I128],
769                     &[F32 | F64]
770                 ),
771                 // TODO
772                 (
773                     Opcode::SelectSpectreGuard,
774                     &[_, _, _],
775                     &[F32 | F64 | I8X16 | I16X8 | I32X4 | I64X2 | F64X2 | F32X4]
776                 ),
777                 // TODO
778                 (Opcode::Bitselect, &[_, _, _], &[F32 | F64]),
779                 (
780                     Opcode::Rotr | Opcode::Rotl,
781                     &[I8X16 | I16X8 | I32X4 | I64X2, _]
782                 ),
783             )
784         }
785 
786         _ => true,
787     }
788 }
789 
790 type OpcodeSignature = (Opcode, Vec<Type>, Vec<Type>);
791 
792 static OPCODE_SIGNATURES: LazyLock<Vec<OpcodeSignature>> = LazyLock::new(|| {
793     let types = &[
794         I8, I16, I32, I64, I128, // Scalar Integers
795         F32, F64, // Scalar Floats
796         I8X16, I16X8, I32X4, I64X2, // SIMD Integers
797         F32X4, F64X2, // SIMD Floats
798     ];
799 
800     // When this env variable is passed, we only generate instructions for the opcodes listed in
801     // the comma-separated list. This is useful for debugging, as it allows us to focus on a few
802     // specific opcodes.
803     let allowed_opcodes = std::env::var("FUZZGEN_ALLOWED_OPS").ok().map(|s| {
804         s.split(',')
805             .map(|s| s.trim())
806             .filter(|s| !s.is_empty())
807             .map(|s| Opcode::from_str(s).expect("Unrecoginzed opcode"))
808             .collect::<Vec<_>>()
809     });
810 
811     Opcode::all()
812         .iter()
813         .filter(|op| {
814             match op {
815                 // Control flow opcodes should not be generated through `generate_instructions`.
816                 Opcode::BrTable
817                 | Opcode::Brif
818                 | Opcode::Jump
819                 | Opcode::Return
820                 | Opcode::ReturnCall
821                 | Opcode::ReturnCallIndirect
822                 | Opcode::TryCall
823                 | Opcode::TryCallIndirect => false,
824 
825                 // Constants are generated outside of `generate_instructions`
826                 Opcode::Iconst => false,
827 
828                 // TODO: extract_vector raises exceptions during return type generation because it
829                 // uses dynamic vectors.
830                 Opcode::ExtractVector => false,
831 
832                 _ => true,
833             }
834         })
835         .flat_map(|op| {
836             let constraints = op.constraints();
837 
838             let ctrl_types = if let Some(ctrls) = constraints.ctrl_typeset() {
839                 Vec::from_iter(types.iter().copied().filter(|ty| ctrls.contains(*ty)))
840             } else {
841                 vec![INVALID]
842             };
843 
844             ctrl_types.into_iter().flat_map(move |ctrl_type| {
845                 let rets = Vec::from_iter(
846                     (0..constraints.num_fixed_results())
847                         .map(|i| constraints.result_type(i, ctrl_type)),
848                 );
849 
850                 // Cols is a vector whose length will match `num_fixed_value_arguments`, and whose
851                 // elements will be vectors of types that are valid for that fixed argument
852                 // position.
853                 let mut cols = vec![];
854 
855                 for i in 0..constraints.num_fixed_value_arguments() {
856                     match constraints.value_argument_constraint(i, ctrl_type) {
857                         ResolvedConstraint::Bound(ty) => cols.push(Vec::from([ty])),
858                         ResolvedConstraint::Free(tys) => cols.push(Vec::from_iter(
859                             types.iter().copied().filter(|ty| tys.contains(*ty)),
860                         )),
861                     }
862                 }
863 
864                 // Generate the cartesian product of cols to produce a vector of argument lists,
865                 // argss. The argss vector is seeded with the empty argument list, so there's an
866                 // initial value to be extended in the loop below.
867                 let mut argss = vec![vec![]];
868                 let mut cols = cols.as_slice();
869                 while let Some((col, rest)) = cols.split_last() {
870                     cols = rest;
871 
872                     let mut next = vec![];
873                     for current in argss.iter() {
874                         // Extend the front of each argument candidate with every type in `col`.
875                         for ty in col {
876                             let mut args = vec![*ty];
877                             args.extend_from_slice(&current);
878                             next.push(args);
879                         }
880                     }
881 
882                     let _ = std::mem::replace(&mut argss, next);
883                 }
884 
885                 argss.into_iter().map(move |args| (*op, args, rets.clone()))
886             })
887         })
888         .filter(|(op, args, rets)| {
889             // These op/signature combinations need to be vetted
890             exceptions!(
891                 op,
892                 args.as_slice(),
893                 rets.as_slice(),
894                 (Opcode::Debugtrap),
895                 (Opcode::Trap),
896                 (Opcode::Trapz),
897                 (Opcode::Trapnz),
898                 (Opcode::CallIndirect, &[I32]),
899                 (Opcode::FuncAddr),
900                 (Opcode::X86Pshufb),
901                 (Opcode::AvgRound),
902                 (Opcode::Uload8x8),
903                 (Opcode::Sload8x8),
904                 (Opcode::Uload16x4),
905                 (Opcode::Sload16x4),
906                 (Opcode::Uload32x2),
907                 (Opcode::Sload32x2),
908                 (Opcode::StackAddr),
909                 (Opcode::DynamicStackLoad),
910                 (Opcode::DynamicStackStore),
911                 (Opcode::DynamicStackAddr),
912                 (Opcode::GlobalValue),
913                 (Opcode::SymbolValue),
914                 (Opcode::TlsValue),
915                 (Opcode::GetPinnedReg),
916                 (Opcode::SetPinnedReg),
917                 (Opcode::GetFramePointer),
918                 (Opcode::GetStackPointer),
919                 (Opcode::GetReturnAddress),
920                 (Opcode::X86Blendv),
921                 (Opcode::IcmpImm),
922                 (Opcode::X86Pmulhrsw),
923                 (Opcode::IaddImm),
924                 (Opcode::ImulImm),
925                 (Opcode::UdivImm),
926                 (Opcode::SdivImm),
927                 (Opcode::UremImm),
928                 (Opcode::SremImm),
929                 (Opcode::IrsubImm),
930                 (Opcode::UaddOverflowCin),
931                 (Opcode::SaddOverflowCin),
932                 (Opcode::UaddOverflowTrap),
933                 (Opcode::UsubOverflowBin),
934                 (Opcode::SsubOverflowBin),
935                 (Opcode::BandImm),
936                 (Opcode::BorImm),
937                 (Opcode::BxorImm),
938                 (Opcode::RotlImm),
939                 (Opcode::RotrImm),
940                 (Opcode::IshlImm),
941                 (Opcode::UshrImm),
942                 (Opcode::SshrImm),
943                 (Opcode::ScalarToVector),
944                 (Opcode::X86Pmaddubsw),
945                 (Opcode::X86Cvtt2dq),
946                 (Opcode::Umulhi, &[I128, I128], &[I128]),
947                 (Opcode::Smulhi, &[I128, I128], &[I128]),
948                 // https://github.com/bytecodealliance/wasmtime/issues/6073
949                 (Opcode::Iconcat, &[I32, I32], &[I64]),
950                 (Opcode::Iconcat, &[I16, I16], &[I32]),
951                 (Opcode::Iconcat, &[I8, I8], &[I16]),
952                 // https://github.com/bytecodealliance/wasmtime/issues/6073
953                 (Opcode::Isplit, &[I64], &[I32, I32]),
954                 (Opcode::Isplit, &[I32], &[I16, I16]),
955                 (Opcode::Isplit, &[I16], &[I8, I8]),
956                 (Opcode::Fmin, &[F32X4, F32X4], &[F32X4]),
957                 (Opcode::Fmin, &[F64X2, F64X2], &[F64X2]),
958                 (Opcode::Fmax, &[F32X4, F32X4], &[F32X4]),
959                 (Opcode::Fmax, &[F64X2, F64X2], &[F64X2]),
960                 (Opcode::FcvtToUintSat, &[F32X4], &[I8]),
961                 (Opcode::FcvtToUintSat, &[F64X2], &[I8]),
962                 (Opcode::FcvtToUintSat, &[F32X4], &[I16]),
963                 (Opcode::FcvtToUintSat, &[F64X2], &[I16]),
964                 (Opcode::FcvtToUintSat, &[F32X4], &[I32]),
965                 (Opcode::FcvtToUintSat, &[F64X2], &[I32]),
966                 (Opcode::FcvtToUintSat, &[F32X4], &[I64]),
967                 (Opcode::FcvtToUintSat, &[F64X2], &[I64]),
968                 (Opcode::FcvtToUintSat, &[F32X4], &[I128]),
969                 (Opcode::FcvtToUintSat, &[F64X2], &[I128]),
970                 (Opcode::FcvtToUintSat, &[F32], &[I8X16]),
971                 (Opcode::FcvtToUintSat, &[F64], &[I8X16]),
972                 (Opcode::FcvtToUintSat, &[F32X4], &[I8X16]),
973                 (Opcode::FcvtToUintSat, &[F64X2], &[I8X16]),
974                 (Opcode::FcvtToUintSat, &[F32], &[I16X8]),
975                 (Opcode::FcvtToUintSat, &[F64], &[I16X8]),
976                 (Opcode::FcvtToUintSat, &[F32X4], &[I16X8]),
977                 (Opcode::FcvtToUintSat, &[F64X2], &[I16X8]),
978                 (Opcode::FcvtToUintSat, &[F32], &[I32X4]),
979                 (Opcode::FcvtToUintSat, &[F64], &[I32X4]),
980                 (Opcode::FcvtToUintSat, &[F64X2], &[I32X4]),
981                 (Opcode::FcvtToUintSat, &[F32], &[I64X2]),
982                 (Opcode::FcvtToUintSat, &[F64], &[I64X2]),
983                 (Opcode::FcvtToUintSat, &[F32X4], &[I64X2]),
984                 (Opcode::FcvtToSintSat, &[F32X4], &[I8]),
985                 (Opcode::FcvtToSintSat, &[F64X2], &[I8]),
986                 (Opcode::FcvtToSintSat, &[F32X4], &[I16]),
987                 (Opcode::FcvtToSintSat, &[F64X2], &[I16]),
988                 (Opcode::FcvtToSintSat, &[F32X4], &[I32]),
989                 (Opcode::FcvtToSintSat, &[F64X2], &[I32]),
990                 (Opcode::FcvtToSintSat, &[F32X4], &[I64]),
991                 (Opcode::FcvtToSintSat, &[F64X2], &[I64]),
992                 (Opcode::FcvtToSintSat, &[F32X4], &[I128]),
993                 (Opcode::FcvtToSintSat, &[F64X2], &[I128]),
994                 (Opcode::FcvtToSintSat, &[F32], &[I8X16]),
995                 (Opcode::FcvtToSintSat, &[F64], &[I8X16]),
996                 (Opcode::FcvtToSintSat, &[F32X4], &[I8X16]),
997                 (Opcode::FcvtToSintSat, &[F64X2], &[I8X16]),
998                 (Opcode::FcvtToSintSat, &[F32], &[I16X8]),
999                 (Opcode::FcvtToSintSat, &[F64], &[I16X8]),
1000                 (Opcode::FcvtToSintSat, &[F32X4], &[I16X8]),
1001                 (Opcode::FcvtToSintSat, &[F64X2], &[I16X8]),
1002                 (Opcode::FcvtToSintSat, &[F32], &[I32X4]),
1003                 (Opcode::FcvtToSintSat, &[F64], &[I32X4]),
1004                 (Opcode::FcvtToSintSat, &[F64X2], &[I32X4]),
1005                 (Opcode::FcvtToSintSat, &[F32], &[I64X2]),
1006                 (Opcode::FcvtToSintSat, &[F64], &[I64X2]),
1007                 (Opcode::FcvtToSintSat, &[F32X4], &[I64X2]),
1008                 (Opcode::FcvtFromUint, &[I8X16], &[F32]),
1009                 (Opcode::FcvtFromUint, &[I16X8], &[F32]),
1010                 (Opcode::FcvtFromUint, &[I32X4], &[F32]),
1011                 (Opcode::FcvtFromUint, &[I64X2], &[F32]),
1012                 (Opcode::FcvtFromUint, &[I8X16], &[F64]),
1013                 (Opcode::FcvtFromUint, &[I16X8], &[F64]),
1014                 (Opcode::FcvtFromUint, &[I32X4], &[F64]),
1015                 (Opcode::FcvtFromUint, &[I64X2], &[F64]),
1016                 (Opcode::FcvtFromUint, &[I8], &[F32X4]),
1017                 (Opcode::FcvtFromUint, &[I16], &[F32X4]),
1018                 (Opcode::FcvtFromUint, &[I32], &[F32X4]),
1019                 (Opcode::FcvtFromUint, &[I64], &[F32X4]),
1020                 (Opcode::FcvtFromUint, &[I128], &[F32X4]),
1021                 (Opcode::FcvtFromUint, &[I8X16], &[F32X4]),
1022                 (Opcode::FcvtFromUint, &[I16X8], &[F32X4]),
1023                 (Opcode::FcvtFromUint, &[I64X2], &[F32X4]),
1024                 (Opcode::FcvtFromUint, &[I8], &[F64X2]),
1025                 (Opcode::FcvtFromUint, &[I16], &[F64X2]),
1026                 (Opcode::FcvtFromUint, &[I32], &[F64X2]),
1027                 (Opcode::FcvtFromUint, &[I64], &[F64X2]),
1028                 (Opcode::FcvtFromUint, &[I128], &[F64X2]),
1029                 (Opcode::FcvtFromUint, &[I8X16], &[F64X2]),
1030                 (Opcode::FcvtFromUint, &[I16X8], &[F64X2]),
1031                 (Opcode::FcvtFromUint, &[I32X4], &[F64X2]),
1032                 (Opcode::FcvtFromSint, &[I8X16], &[F32]),
1033                 (Opcode::FcvtFromSint, &[I16X8], &[F32]),
1034                 (Opcode::FcvtFromSint, &[I32X4], &[F32]),
1035                 (Opcode::FcvtFromSint, &[I64X2], &[F32]),
1036                 (Opcode::FcvtFromSint, &[I8X16], &[F64]),
1037                 (Opcode::FcvtFromSint, &[I16X8], &[F64]),
1038                 (Opcode::FcvtFromSint, &[I32X4], &[F64]),
1039                 (Opcode::FcvtFromSint, &[I64X2], &[F64]),
1040                 (Opcode::FcvtFromSint, &[I8], &[F32X4]),
1041                 (Opcode::FcvtFromSint, &[I16], &[F32X4]),
1042                 (Opcode::FcvtFromSint, &[I32], &[F32X4]),
1043                 (Opcode::FcvtFromSint, &[I64], &[F32X4]),
1044                 (Opcode::FcvtFromSint, &[I128], &[F32X4]),
1045                 (Opcode::FcvtFromSint, &[I8X16], &[F32X4]),
1046                 (Opcode::FcvtFromSint, &[I16X8], &[F32X4]),
1047                 (Opcode::FcvtFromSint, &[I64X2], &[F32X4]),
1048                 (Opcode::FcvtFromSint, &[I8], &[F64X2]),
1049                 (Opcode::FcvtFromSint, &[I16], &[F64X2]),
1050                 (Opcode::FcvtFromSint, &[I32], &[F64X2]),
1051                 (Opcode::FcvtFromSint, &[I64], &[F64X2]),
1052                 (Opcode::FcvtFromSint, &[I128], &[F64X2]),
1053                 (Opcode::FcvtFromSint, &[I8X16], &[F64X2]),
1054                 (Opcode::FcvtFromSint, &[I16X8], &[F64X2]),
1055                 (Opcode::FcvtFromSint, &[I32X4], &[F64X2]),
1056                 // Only supported on x64 with a feature at this time, so 128-bit
1057                 // atomics are not suitable to fuzz yet.
1058                 (Opcode::AtomicRmw, _, &[I128]),
1059                 (Opcode::AtomicCas, _, &[I128]),
1060                 (Opcode::AtomicLoad, _, &[I128]),
1061                 (Opcode::AtomicStore, &[I128, _], _),
1062             )
1063         })
1064         .filter(|(op, ..)| {
1065             allowed_opcodes
1066                 .as_ref()
1067                 .map_or(true, |opcodes| opcodes.contains(op))
1068         })
1069         .collect()
1070 });
1071 
1072 fn inserter_for_format(fmt: InstructionFormat) -> OpcodeInserter {
1073     match fmt {
1074         InstructionFormat::AtomicCas => insert_atomic_cas,
1075         InstructionFormat::AtomicRmw => insert_atomic_rmw,
1076         InstructionFormat::Binary => insert_opcode,
1077         InstructionFormat::BinaryImm64 => todo!(),
1078         InstructionFormat::BinaryImm8 => insert_ins_ext_lane,
1079         InstructionFormat::Call => insert_call,
1080         InstructionFormat::CallIndirect => insert_call,
1081         InstructionFormat::CondTrap => todo!(),
1082         InstructionFormat::DynamicStackLoad => todo!(),
1083         InstructionFormat::DynamicStackStore => todo!(),
1084         InstructionFormat::FloatCompare => insert_cmp,
1085         InstructionFormat::FuncAddr => todo!(),
1086         InstructionFormat::IntAddTrap => todo!(),
1087         InstructionFormat::IntCompare => insert_cmp,
1088         InstructionFormat::IntCompareImm => todo!(),
1089         InstructionFormat::Load => insert_load_store,
1090         InstructionFormat::LoadNoOffset => insert_load_store,
1091         InstructionFormat::NullAry => insert_opcode,
1092         InstructionFormat::Shuffle => insert_shuffle,
1093         InstructionFormat::StackLoad => insert_stack_load,
1094         InstructionFormat::StackStore => insert_stack_store,
1095         InstructionFormat::Store => insert_load_store,
1096         InstructionFormat::StoreNoOffset => insert_load_store,
1097         InstructionFormat::Ternary => insert_opcode,
1098         InstructionFormat::TernaryImm8 => insert_ins_ext_lane,
1099         InstructionFormat::Trap => todo!(),
1100         InstructionFormat::Unary => insert_opcode,
1101         InstructionFormat::UnaryConst => insert_const,
1102         InstructionFormat::UnaryGlobalValue => todo!(),
1103         InstructionFormat::UnaryIeee16 => insert_const,
1104         InstructionFormat::UnaryIeee32 => insert_const,
1105         InstructionFormat::UnaryIeee64 => insert_const,
1106         InstructionFormat::UnaryImm => insert_const,
1107         InstructionFormat::ExceptionHandlerAddress => insert_const,
1108 
1109         InstructionFormat::BranchTable
1110         | InstructionFormat::Brif
1111         | InstructionFormat::Jump
1112         | InstructionFormat::MultiAry
1113         | InstructionFormat::TryCall
1114         | InstructionFormat::TryCallIndirect => {
1115             panic!("Control-flow instructions should be handled by 'insert_terminator': {fmt:?}")
1116         }
1117     }
1118 }
1119 
1120 pub struct FunctionGenerator<'r, 'data>
1121 where
1122     'data: 'r,
1123 {
1124     u: &'r mut Unstructured<'data>,
1125     config: &'r Config,
1126     resources: Resources,
1127     isa: OwnedTargetIsa,
1128     name: UserFuncName,
1129     signature: Signature,
1130 }
1131 
1132 #[derive(Debug, Clone)]
1133 enum BlockTerminator {
1134     Return,
1135     Jump(Block),
1136     Br(Block, Block),
1137     BrTable(Block, Vec<Block>),
1138     Switch(Type, Block, HashMap<u128, Block>),
1139     TailCall(FuncRef),
1140     TailCallIndirect(FuncRef),
1141 }
1142 
1143 #[derive(Debug, Clone)]
1144 enum BlockTerminatorKind {
1145     Return,
1146     Jump,
1147     Br,
1148     BrTable,
1149     Switch,
1150     TailCall,
1151     TailCallIndirect,
1152 }
1153 
1154 /// Alias Analysis Category
1155 ///
1156 /// Our alias analysis pass supports 4 categories of accesses to distinguish
1157 /// different regions. The "Other" region is the general case, and is the default
1158 /// Although they have highly suggestive names there is no difference between any
1159 /// of the categories.
1160 ///
1161 /// We assign each stack slot a category when we first generate them, and then
1162 /// ensure that all accesses to that stack slot are correctly tagged. We already
1163 /// ensure that memory accesses never cross stack slots, so there is no risk
1164 /// of a memory access being tagged with the wrong category.
1165 #[derive(Debug, PartialEq, Clone, Copy)]
1166 enum AACategory {
1167     Other,
1168     Heap,
1169     Table,
1170     VmCtx,
1171 }
1172 
1173 impl AACategory {
1174     pub fn all() -> &'static [Self] {
1175         &[
1176             AACategory::Other,
1177             AACategory::Heap,
1178             AACategory::Table,
1179             AACategory::VmCtx,
1180         ]
1181     }
1182 
1183     pub fn update_memflags(&self, flags: &mut MemFlags) {
1184         flags.set_alias_region(match self {
1185             AACategory::Other => None,
1186             AACategory::Heap => Some(AliasRegion::Heap),
1187             AACategory::Table => Some(AliasRegion::Table),
1188             AACategory::VmCtx => Some(AliasRegion::Vmctx),
1189         })
1190     }
1191 }
1192 
1193 pub type StackAlignment = StackSize;
1194 
1195 #[derive(Default)]
1196 struct Resources {
1197     vars: HashMap<Type, Vec<Variable>>,
1198     blocks: Vec<(Block, BlockSignature)>,
1199     blocks_without_params: Vec<Block>,
1200     block_terminators: Vec<BlockTerminator>,
1201     func_refs: Vec<(Signature, SigRef, FuncRef)>,
1202     /// This field is required to be sorted by stack slot size at all times.
1203     /// We use this invariant when searching for stack slots with a given size.
1204     /// See [FunctionGenerator::stack_slot_with_size]
1205     stack_slots: Vec<(StackSlot, StackSize, StackAlignment, AACategory)>,
1206     usercalls: Vec<(UserExternalName, Signature)>,
1207     libcalls: Vec<LibCall>,
1208 }
1209 
1210 impl Resources {
1211     /// Partitions blocks at `block`. Only blocks that can be targeted by branches are considered.
1212     ///
1213     /// The first slice includes all blocks up to and including `block`.
1214     /// The second slice includes all remaining blocks.
1215     fn partition_target_blocks(
1216         &self,
1217         block: Block,
1218     ) -> (&[(Block, BlockSignature)], &[(Block, BlockSignature)]) {
1219         // Blocks are stored in-order and have no gaps, this means that we can simply index them by
1220         // their number. We also need to exclude the entry block since it isn't a valid target.
1221         let target_blocks = &self.blocks[1..];
1222         target_blocks.split_at(block.as_u32() as usize)
1223     }
1224 
1225     /// Returns blocks forward of `block`. Only blocks that can be targeted by branches are considered.
1226     fn forward_blocks(&self, block: Block) -> &[(Block, BlockSignature)] {
1227         let (_, forward_blocks) = self.partition_target_blocks(block);
1228         forward_blocks
1229     }
1230 
1231     /// Generates a slice of `blocks_without_params` ahead of `block`
1232     fn forward_blocks_without_params(&self, block: Block) -> &[Block] {
1233         let partition_point = self.blocks_without_params.partition_point(|b| *b <= block);
1234         &self.blocks_without_params[partition_point..]
1235     }
1236 
1237     /// Generates an iterator of all valid tail call targets. This includes all functions with both
1238     ///  the `tail` calling convention and the same return values as the caller.
1239     fn tail_call_targets<'a>(
1240         &'a self,
1241         caller_sig: &'a Signature,
1242     ) -> impl Iterator<Item = &'a (Signature, SigRef, FuncRef)> {
1243         self.func_refs.iter().filter(|(sig, _, _)| {
1244             sig.call_conv == CallConv::Tail && sig.returns == caller_sig.returns
1245         })
1246     }
1247 }
1248 
1249 impl<'r, 'data> FunctionGenerator<'r, 'data>
1250 where
1251     'data: 'r,
1252 {
1253     pub fn new(
1254         u: &'r mut Unstructured<'data>,
1255         config: &'r Config,
1256         isa: OwnedTargetIsa,
1257         name: UserFuncName,
1258         signature: Signature,
1259         usercalls: Vec<(UserExternalName, Signature)>,
1260         libcalls: Vec<LibCall>,
1261     ) -> Self {
1262         Self {
1263             u,
1264             config,
1265             resources: Resources {
1266                 usercalls,
1267                 libcalls,
1268                 ..Resources::default()
1269             },
1270             isa,
1271             name,
1272             signature,
1273         }
1274     }
1275 
1276     /// Generates a random value for config `param`
1277     fn param(&mut self, param: &RangeInclusive<usize>) -> Result<usize> {
1278         Ok(self.u.int_in_range(param.clone())?)
1279     }
1280 
1281     fn system_callconv(&mut self) -> CallConv {
1282         // TODO: This currently only runs on linux, so this is the only choice
1283         // We should improve this once we generate flags and targets
1284         CallConv::SystemV
1285     }
1286 
1287     /// Finds a stack slot with size of at least n bytes
1288     fn stack_slot_with_size(
1289         &mut self,
1290         n: u32,
1291     ) -> Result<(StackSlot, StackSize, StackAlignment, AACategory)> {
1292         let first = self
1293             .resources
1294             .stack_slots
1295             .partition_point(|&(_slot, size, _align, _category)| size < n);
1296         Ok(*self.u.choose(&self.resources.stack_slots[first..])?)
1297     }
1298 
1299     /// Generates an address that should allow for a store or a load.
1300     ///
1301     /// Addresses aren't generated like other values. They are never stored in variables so that
1302     /// we don't run the risk of returning them from a function, which would make the fuzzer
1303     /// complain since they are different from the interpreter to the backend.
1304     ///
1305     /// `min_size`: Controls the amount of space that the address should have.
1306     ///
1307     /// `aligned`: When passed as true, the resulting address is guaranteed to be aligned
1308     /// on an 8 byte boundary.
1309     ///
1310     /// Returns a valid address and the maximum possible offset that still respects `min_size`.
1311     fn generate_load_store_address(
1312         &mut self,
1313         builder: &mut FunctionBuilder,
1314         min_size: u32,
1315         aligned: bool,
1316     ) -> Result<(Value, u32, AACategory)> {
1317         // TODO: Currently our only source of addresses is stack_addr, but we
1318         // should add global_value, symbol_value eventually
1319         let (addr, available_size, category) = {
1320             let (ss, slot_size, _align, category) = self.stack_slot_with_size(min_size)?;
1321 
1322             // stack_slot_with_size guarantees that slot_size >= min_size
1323             let max_offset = slot_size - min_size;
1324             let offset = if aligned {
1325                 self.u.int_in_range(0..=max_offset / min_size)? * min_size
1326             } else {
1327                 self.u.int_in_range(0..=max_offset)?
1328             };
1329 
1330             let base_addr = builder.ins().stack_addr(I64, ss, offset as i32);
1331             let available_size = slot_size.saturating_sub(offset);
1332             (base_addr, available_size, category)
1333         };
1334 
1335         // TODO: Insert a bunch of amode opcodes here to modify the address!
1336 
1337         // Now that we have an address and a size, we just choose a random offset to return to the
1338         // caller. Preserving min_size bytes.
1339         let max_offset = available_size.saturating_sub(min_size);
1340         Ok((addr, max_offset, category))
1341     }
1342 
1343     // Generates an address and memflags for a load or store.
1344     fn generate_address_and_memflags(
1345         &mut self,
1346         builder: &mut FunctionBuilder,
1347         min_size: u32,
1348         is_atomic: bool,
1349     ) -> Result<(Value, MemFlags, Offset32)> {
1350         // Should we generate an aligned address
1351         // Some backends have issues with unaligned atomics.
1352         // AArch64: https://github.com/bytecodealliance/wasmtime/issues/5483
1353         // RISCV: https://github.com/bytecodealliance/wasmtime/issues/5882
1354         let requires_aligned_atomics = matches!(
1355             self.isa.triple().architecture,
1356             Architecture::Aarch64(_) | Architecture::Riscv64(_)
1357         );
1358         let aligned = if is_atomic && requires_aligned_atomics {
1359             true
1360         } else if min_size > 8 {
1361             // TODO: We currently can't guarantee that a stack_slot will be aligned on a 16 byte
1362             // boundary. We don't have a way to specify alignment when creating stack slots, and
1363             // cranelift only guarantees 8 byte alignment between stack slots.
1364             // See: https://github.com/bytecodealliance/wasmtime/issues/5922#issuecomment-1457926624
1365             false
1366         } else {
1367             bool::arbitrary(self.u)?
1368         };
1369 
1370         let mut flags = MemFlags::new();
1371         // Even if we picked an aligned address, we can always generate unaligned memflags
1372         if aligned && bool::arbitrary(self.u)? {
1373             flags.set_aligned();
1374         }
1375         // If the address is aligned, then we know it won't trap
1376         if aligned && bool::arbitrary(self.u)? {
1377             flags.set_notrap();
1378         }
1379 
1380         let (address, max_offset, category) =
1381             self.generate_load_store_address(builder, min_size, aligned)?;
1382 
1383         // Set the Alias Analysis bits on the memflags
1384         category.update_memflags(&mut flags);
1385 
1386         // Pick an offset to pass into the load/store.
1387         let offset = if aligned {
1388             0
1389         } else {
1390             self.u.int_in_range(0..=max_offset)? as i32
1391         }
1392         .into();
1393 
1394         Ok((address, flags, offset))
1395     }
1396 
1397     /// Get a variable of type `ty` from the current function
1398     fn get_variable_of_type(&mut self, ty: Type) -> Result<Variable> {
1399         let opts = self.resources.vars.get(&ty).map_or(&[][..], Vec::as_slice);
1400         let var = self.u.choose(opts)?;
1401         Ok(*var)
1402     }
1403 
1404     /// Generates an instruction(`iconst`/`fconst`/etc...) to introduce a constant value
1405     fn generate_const(&mut self, builder: &mut FunctionBuilder, ty: Type) -> Result<Value> {
1406         Ok(match self.u.datavalue(ty)? {
1407             DataValue::I8(i) => builder.ins().iconst(ty, i as u8 as i64),
1408             DataValue::I16(i) => builder.ins().iconst(ty, i as u16 as i64),
1409             DataValue::I32(i) => builder.ins().iconst(ty, i as u32 as i64),
1410             DataValue::I64(i) => builder.ins().iconst(ty, i),
1411             DataValue::I128(i) => {
1412                 let hi = builder.ins().iconst(I64, (i >> 64) as i64);
1413                 let lo = builder.ins().iconst(I64, i as i64);
1414                 builder.ins().iconcat(lo, hi)
1415             }
1416             DataValue::F16(f) => builder.ins().f16const(f),
1417             DataValue::F32(f) => builder.ins().f32const(f),
1418             DataValue::F64(f) => builder.ins().f64const(f),
1419             DataValue::F128(f) => {
1420                 let handle = builder.func.dfg.constants.insert(f.into());
1421                 builder.ins().f128const(handle)
1422             }
1423             DataValue::V128(bytes) => {
1424                 let data = bytes.to_vec().into();
1425                 let handle = builder.func.dfg.constants.insert(data);
1426                 builder.ins().vconst(ty, handle)
1427             }
1428             _ => unimplemented!(),
1429         })
1430     }
1431 
1432     /// Chooses a random block which can be targeted by a jump / branch.
1433     /// This means any block that is not the first block.
1434     fn generate_target_block(&mut self, source_block: Block) -> Result<Block> {
1435         // We try to mostly generate forward branches to avoid generating an excessive amount of
1436         // infinite loops. But they are still important, so give them a small chance of existing.
1437         let (backwards_blocks, forward_blocks) =
1438             self.resources.partition_target_blocks(source_block);
1439         let ratio = self.config.backwards_branch_ratio;
1440         let block_targets = if !backwards_blocks.is_empty() && self.u.ratio(ratio.0, ratio.1)? {
1441             backwards_blocks
1442         } else {
1443             forward_blocks
1444         };
1445         assert!(!block_targets.is_empty());
1446 
1447         let (block, _) = self.u.choose(block_targets)?.clone();
1448         Ok(block)
1449     }
1450 
1451     fn generate_values_for_block(
1452         &mut self,
1453         builder: &mut FunctionBuilder,
1454         block: Block,
1455     ) -> Result<Vec<BlockArg>> {
1456         let (_, sig) = self.resources.blocks[block.as_u32() as usize].clone();
1457         Ok(self
1458             .generate_values_for_signature(builder, sig.iter().copied())?
1459             .into_iter()
1460             .map(|val| BlockArg::Value(val))
1461             .collect::<Vec<_>>())
1462     }
1463 
1464     fn generate_values_for_signature<I: Iterator<Item = Type>>(
1465         &mut self,
1466         builder: &mut FunctionBuilder,
1467         signature: I,
1468     ) -> Result<Vec<Value>> {
1469         signature
1470             .map(|ty| {
1471                 let var = self.get_variable_of_type(ty)?;
1472                 let val = builder.use_var(var);
1473                 Ok(val)
1474             })
1475             .collect()
1476     }
1477 
1478     /// The terminator that we need to insert has already been picked ahead of time
1479     /// we just need to build the instructions for it
1480     fn insert_terminator(
1481         &mut self,
1482         builder: &mut FunctionBuilder,
1483         source_block: Block,
1484     ) -> Result<()> {
1485         let terminator = self.resources.block_terminators[source_block.as_u32() as usize].clone();
1486 
1487         match terminator {
1488             BlockTerminator::Return => {
1489                 let types: Vec<Type> = {
1490                     let rets = &builder.func.signature.returns;
1491                     rets.iter().map(|p| p.value_type).collect()
1492                 };
1493                 let vals = self.generate_values_for_signature(builder, types.into_iter())?;
1494 
1495                 builder.ins().return_(&vals[..]);
1496             }
1497             BlockTerminator::Jump(target) => {
1498                 let args = self.generate_values_for_block(builder, target)?;
1499                 builder.ins().jump(target, &args[..]);
1500             }
1501             BlockTerminator::Br(left, right) => {
1502                 let left_args = self.generate_values_for_block(builder, left)?;
1503                 let right_args = self.generate_values_for_block(builder, right)?;
1504 
1505                 let condbr_types = [I8, I16, I32, I64, I128];
1506                 let _type = *self.u.choose(&condbr_types[..])?;
1507                 let val = builder.use_var(self.get_variable_of_type(_type)?);
1508                 builder
1509                     .ins()
1510                     .brif(val, left, &left_args[..], right, &right_args[..]);
1511             }
1512             BlockTerminator::BrTable(default, targets) => {
1513                 // Create jump tables on demand
1514                 let mut jt = Vec::with_capacity(targets.len());
1515                 for block in targets {
1516                     let args = self.generate_values_for_block(builder, block)?;
1517                     jt.push(builder.func.dfg.block_call(block, &args))
1518                 }
1519 
1520                 let args = self.generate_values_for_block(builder, default)?;
1521                 let jt_data = JumpTableData::new(builder.func.dfg.block_call(default, &args), &jt);
1522                 let jt = builder.create_jump_table(jt_data);
1523 
1524                 // br_table only supports I32
1525                 let val = builder.use_var(self.get_variable_of_type(I32)?);
1526 
1527                 builder.ins().br_table(val, jt);
1528             }
1529             BlockTerminator::Switch(_type, default, entries) => {
1530                 let mut switch = Switch::new();
1531                 for (&entry, &block) in entries.iter() {
1532                     switch.set_entry(entry, block);
1533                 }
1534 
1535                 let switch_val = builder.use_var(self.get_variable_of_type(_type)?);
1536 
1537                 switch.emit(builder, switch_val, default);
1538             }
1539             BlockTerminator::TailCall(target) | BlockTerminator::TailCallIndirect(target) => {
1540                 let (sig, sig_ref, func_ref) = self
1541                     .resources
1542                     .func_refs
1543                     .iter()
1544                     .find(|(_, _, f)| *f == target)
1545                     .expect("Failed to find previously selected function")
1546                     .clone();
1547 
1548                 let opcode = match terminator {
1549                     BlockTerminator::TailCall(_) => Opcode::ReturnCall,
1550                     BlockTerminator::TailCallIndirect(_) => Opcode::ReturnCallIndirect,
1551                     _ => unreachable!(),
1552                 };
1553 
1554                 insert_call_to_function(self, builder, opcode, &sig, sig_ref, func_ref)?;
1555             }
1556         }
1557 
1558         Ok(())
1559     }
1560 
1561     /// Fills the current block with random instructions
1562     fn generate_instructions(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1563         for _ in 0..self.param(&self.config.instructions_per_block)? {
1564             let (op, args, rets) = self.u.choose(&OPCODE_SIGNATURES)?;
1565 
1566             // We filter out instructions that aren't supported by the target at this point instead
1567             // of building a single vector of valid instructions at the beginning of function
1568             // generation, to avoid invalidating the corpus when instructions are enabled/disabled.
1569             if !valid_for_target(&self.isa.triple(), *op, &args, &rets) {
1570                 return Err(arbitrary::Error::IncorrectFormat.into());
1571             }
1572 
1573             let inserter = inserter_for_format(op.format());
1574             inserter(self, builder, *op, &args, &rets)?;
1575         }
1576 
1577         Ok(())
1578     }
1579 
1580     fn generate_funcrefs(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1581         let usercalls: Vec<_> = self
1582             .resources
1583             .usercalls
1584             .iter()
1585             .map(|(name, signature)| {
1586                 let user_func_ref = builder.func.declare_imported_user_function(name.clone());
1587                 let name = ExternalName::User(user_func_ref);
1588                 let never_colocated = false;
1589                 (name, signature.clone(), never_colocated)
1590             })
1591             .collect();
1592 
1593         let lib_callconv = self.system_callconv();
1594         let libcalls: Vec<_> = self
1595             .resources
1596             .libcalls
1597             .iter()
1598             .map(|libcall| {
1599                 let pointer_type = Type::int_with_byte_size(
1600                     self.isa.triple().pointer_width().unwrap().bytes().into(),
1601                 )
1602                 .unwrap();
1603                 let signature = libcall.signature(lib_callconv, pointer_type);
1604                 let name = ExternalName::LibCall(*libcall);
1605                 // libcalls can't be colocated to generated code because we
1606                 // don't know where in the address space the function will go
1607                 // relative to where the libcall is.
1608                 let never_colocated = true;
1609                 (name, signature, never_colocated)
1610             })
1611             .collect();
1612 
1613         for (name, signature, never_colocated) in usercalls.into_iter().chain(libcalls) {
1614             let sig_ref = builder.import_signature(signature.clone());
1615             let func_ref = builder.import_function(ExtFuncData {
1616                 name,
1617                 signature: sig_ref,
1618                 colocated: if never_colocated {
1619                     false
1620                 } else {
1621                     self.u.arbitrary()?
1622                 },
1623             });
1624 
1625             self.resources
1626                 .func_refs
1627                 .push((signature, sig_ref, func_ref));
1628         }
1629 
1630         Ok(())
1631     }
1632 
1633     fn generate_stack_slots(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1634         for _ in 0..self.param(&self.config.static_stack_slots_per_function)? {
1635             let bytes = self.param(&self.config.static_stack_slot_size)? as u32;
1636             let alignment = self.param(&self.config.stack_slot_alignment_log2)? as u8;
1637             let alignment_bytes = 1 << alignment;
1638 
1639             let ss_data = StackSlotData::new(StackSlotKind::ExplicitSlot, bytes, alignment);
1640             let slot = builder.create_sized_stack_slot(ss_data);
1641 
1642             // Generate one Alias Analysis Category for each slot
1643             let category = *self.u.choose(AACategory::all())?;
1644 
1645             self.resources
1646                 .stack_slots
1647                 .push((slot, bytes, alignment_bytes, category));
1648         }
1649 
1650         self.resources
1651             .stack_slots
1652             .sort_unstable_by_key(|&(_slot, bytes, _align, _category)| bytes);
1653 
1654         Ok(())
1655     }
1656 
1657     /// Zero initializes the stack slot by inserting `stack_store`'s.
1658     fn initialize_stack_slots(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1659         let i8_zero = builder.ins().iconst(I8, 0);
1660         let i16_zero = builder.ins().iconst(I16, 0);
1661         let i32_zero = builder.ins().iconst(I32, 0);
1662         let i64_zero = builder.ins().iconst(I64, 0);
1663         let i128_zero = builder.ins().uextend(I128, i64_zero);
1664 
1665         for &(slot, init_size, _align, category) in self.resources.stack_slots.iter() {
1666             let mut size = init_size;
1667 
1668             // Insert the largest available store for the remaining size.
1669             while size != 0 {
1670                 let offset = (init_size - size) as i32;
1671                 let (val, filled) = match size {
1672                     sz if sz / 16 > 0 => (i128_zero, 16),
1673                     sz if sz / 8 > 0 => (i64_zero, 8),
1674                     sz if sz / 4 > 0 => (i32_zero, 4),
1675                     sz if sz / 2 > 0 => (i16_zero, 2),
1676                     _ => (i8_zero, 1),
1677                 };
1678                 let addr = builder.ins().stack_addr(I64, slot, offset);
1679 
1680                 // Each stack slot has an associated category, that means we have to set the
1681                 // correct memflags for it. So we can't use `stack_store` directly.
1682                 let mut flags = MemFlags::new();
1683                 flags.set_notrap();
1684                 category.update_memflags(&mut flags);
1685 
1686                 builder.ins().store(flags, val, addr, 0);
1687 
1688                 size -= filled;
1689             }
1690         }
1691         Ok(())
1692     }
1693 
1694     /// Creates a random amount of blocks in this function
1695     fn generate_blocks(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1696         let extra_block_count = self.param(&self.config.blocks_per_function)?;
1697 
1698         // We must always have at least one block, so we generate the "extra" blocks and add 1 for
1699         // the entry block.
1700         let block_count = 1 + extra_block_count;
1701 
1702         // Blocks need to be sorted in ascending order
1703         self.resources.blocks = (0..block_count)
1704             .map(|i| {
1705                 let is_entry = i == 0;
1706                 let block = builder.create_block();
1707 
1708                 // Optionally mark blocks that are not the entry block as cold
1709                 if !is_entry {
1710                     if bool::arbitrary(self.u)? {
1711                         builder.set_cold_block(block);
1712                     }
1713                 }
1714 
1715                 // The first block has to have the function signature, but for the rest of them we generate
1716                 // a random signature;
1717                 if is_entry {
1718                     builder.append_block_params_for_function_params(block);
1719                     Ok((
1720                         block,
1721                         self.signature.params.iter().map(|a| a.value_type).collect(),
1722                     ))
1723                 } else {
1724                     let sig = self.generate_block_signature()?;
1725                     sig.iter().for_each(|ty| {
1726                         builder.append_block_param(block, *ty);
1727                     });
1728                     Ok((block, sig))
1729                 }
1730             })
1731             .collect::<Result<Vec<_>>>()?;
1732 
1733         // Valid blocks for jump tables have to have no parameters in the signature, and must also
1734         // not be the first block.
1735         self.resources.blocks_without_params = self.resources.blocks[1..]
1736             .iter()
1737             .filter(|(_, sig)| sig.len() == 0)
1738             .map(|(b, _)| *b)
1739             .collect();
1740 
1741         // Compute the block CFG
1742         //
1743         // cranelift-frontend requires us to never generate unreachable blocks
1744         // To ensure this property we start by constructing a main "spine" of blocks. So block1 can
1745         // always jump to block2, and block2 can always jump to block3, etc...
1746         //
1747         // That is not a very interesting CFG, so we introduce variations on that, but always
1748         // ensuring that the property of pointing to the next block is maintained whatever the
1749         // branching mechanism we use.
1750         let blocks = self.resources.blocks.clone();
1751         self.resources.block_terminators = blocks
1752             .iter()
1753             .map(|&(block, _)| {
1754                 let next_block = Block::with_number(block.as_u32() + 1).unwrap();
1755                 let forward_blocks = self.resources.forward_blocks(block);
1756                 let paramless_targets = self.resources.forward_blocks_without_params(block);
1757                 let has_paramless_targets = !paramless_targets.is_empty();
1758                 let next_block_is_paramless = paramless_targets.contains(&next_block);
1759 
1760                 let mut valid_terminators = vec![];
1761 
1762                 if forward_blocks.is_empty() {
1763                     // Return is only valid on the last block.
1764                     valid_terminators.push(BlockTerminatorKind::Return);
1765                 } else {
1766                     // If we have more than one block we can allow terminators that target blocks.
1767                     // TODO: We could add some kind of BrReturn here, to explore edges where we
1768                     // exit in the middle of the function
1769                     valid_terminators.extend_from_slice(&[
1770                         BlockTerminatorKind::Jump,
1771                         BlockTerminatorKind::Br,
1772                         BlockTerminatorKind::BrTable,
1773                     ]);
1774                 }
1775 
1776                 // As the Switch interface only allows targeting blocks without params we need
1777                 // to ensure that the next block has no params, since that one is guaranteed to be
1778                 // picked in either case.
1779                 if has_paramless_targets && next_block_is_paramless {
1780                     valid_terminators.push(BlockTerminatorKind::Switch);
1781                 }
1782 
1783                 // Tail Calls are a block terminator, so we should insert them as any other block
1784                 // terminator. We should ensure that we can select at least one target before considering
1785                 // them as candidate instructions.
1786                 let has_tail_callees = self
1787                     .resources
1788                     .tail_call_targets(&self.signature)
1789                     .next()
1790                     .is_some();
1791                 let is_tail_caller = self.signature.call_conv == CallConv::Tail;
1792 
1793                 let supports_tail_calls = match self.isa.triple().architecture {
1794                     Architecture::Aarch64(_) | Architecture::Riscv64(_) => true,
1795                     // TODO: x64 currently requires frame pointers for tail calls.
1796                     Architecture::X86_64 => self.isa.flags().preserve_frame_pointers(),
1797                     // TODO: Other platforms do not support tail calls yet.
1798                     _ => false,
1799                 };
1800 
1801                 if is_tail_caller && has_tail_callees && supports_tail_calls {
1802                     valid_terminators.extend([
1803                         BlockTerminatorKind::TailCall,
1804                         BlockTerminatorKind::TailCallIndirect,
1805                     ]);
1806                 }
1807 
1808                 let terminator = self.u.choose(&valid_terminators)?;
1809 
1810                 // Choose block targets for the terminators that we picked above
1811                 Ok(match terminator {
1812                     BlockTerminatorKind::Return => BlockTerminator::Return,
1813                     BlockTerminatorKind::Jump => BlockTerminator::Jump(next_block),
1814                     BlockTerminatorKind::Br => {
1815                         BlockTerminator::Br(next_block, self.generate_target_block(block)?)
1816                     }
1817                     // TODO: Allow generating backwards branches here
1818                     BlockTerminatorKind::BrTable => {
1819                         // Make the default the next block, and then we don't have to worry
1820                         // that we can reach it via the targets
1821                         let default = next_block;
1822 
1823                         let target_count = self.param(&self.config.jump_table_entries)?;
1824                         let targets = Result::from_iter(
1825                             (0..target_count).map(|_| self.generate_target_block(block)),
1826                         )?;
1827 
1828                         BlockTerminator::BrTable(default, targets)
1829                     }
1830                     BlockTerminatorKind::Switch => {
1831                         // Make the default the next block, and then we don't have to worry
1832                         // that we can reach it via the entries below
1833                         let default_block = next_block;
1834 
1835                         let _type = *self.u.choose(&[I8, I16, I32, I64, I128][..])?;
1836 
1837                         // Build this into a HashMap since we cannot have duplicate entries.
1838                         let mut entries = HashMap::new();
1839                         for _ in 0..self.param(&self.config.switch_cases)? {
1840                             // The Switch API only allows for entries that are addressable by the index type
1841                             // so we need to limit the range of values that we generate.
1842                             let (ty_min, ty_max) = _type.bounds(false);
1843                             let range_start = self.u.int_in_range(ty_min..=ty_max)?;
1844 
1845                             // We can either insert a contiguous range of blocks or a individual block
1846                             // This is done because the Switch API specializes contiguous ranges.
1847                             let range_size = if bool::arbitrary(self.u)? {
1848                                 1
1849                             } else {
1850                                 self.param(&self.config.switch_max_range_size)?
1851                             } as u128;
1852 
1853                             // Build the switch entries
1854                             for i in 0..range_size {
1855                                 let index = range_start.wrapping_add(i) % ty_max;
1856                                 let block = *self
1857                                     .u
1858                                     .choose(self.resources.forward_blocks_without_params(block))?;
1859 
1860                                 entries.insert(index, block);
1861                             }
1862                         }
1863 
1864                         BlockTerminator::Switch(_type, default_block, entries)
1865                     }
1866                     BlockTerminatorKind::TailCall => {
1867                         let targets = self
1868                             .resources
1869                             .tail_call_targets(&self.signature)
1870                             .collect::<Vec<_>>();
1871                         let (_, _, funcref) = *self.u.choose(&targets[..])?;
1872                         BlockTerminator::TailCall(*funcref)
1873                     }
1874                     BlockTerminatorKind::TailCallIndirect => {
1875                         let targets = self
1876                             .resources
1877                             .tail_call_targets(&self.signature)
1878                             .collect::<Vec<_>>();
1879                         let (_, _, funcref) = *self.u.choose(&targets[..])?;
1880                         BlockTerminator::TailCallIndirect(*funcref)
1881                     }
1882                 })
1883             })
1884             .collect::<Result<_>>()?;
1885 
1886         Ok(())
1887     }
1888 
1889     fn generate_block_signature(&mut self) -> Result<BlockSignature> {
1890         let param_count = self.param(&self.config.block_signature_params)?;
1891 
1892         let mut params = Vec::with_capacity(param_count);
1893         for _ in 0..param_count {
1894             params.push(self.u._type((&*self.isa).supports_simd())?);
1895         }
1896         Ok(params)
1897     }
1898 
1899     fn build_variable_pool(&mut self, builder: &mut FunctionBuilder) -> Result<()> {
1900         let block = builder.current_block().unwrap();
1901 
1902         // Define variables for the function signature
1903         let mut vars: Vec<_> = builder
1904             .func
1905             .signature
1906             .params
1907             .iter()
1908             .map(|param| param.value_type)
1909             .zip(builder.block_params(block).iter().copied())
1910             .collect();
1911 
1912         // Create a pool of vars that are going to be used in this function
1913         for _ in 0..self.param(&self.config.vars_per_function)? {
1914             let ty = self.u._type((&*self.isa).supports_simd())?;
1915             let value = self.generate_const(builder, ty)?;
1916             vars.push((ty, value));
1917         }
1918 
1919         for (ty, value) in vars.into_iter() {
1920             let var = builder.declare_var(ty);
1921             builder.def_var(var, value);
1922 
1923             // Randomly declare variables as needing a stack map.
1924             // We limit these to only types that have fewer than 16 bytes
1925             // since the stack map mechanism does not support larger types.
1926             if ty.bytes() <= 16 && self.u.arbitrary()? {
1927                 builder.declare_var_needs_stack_map(var);
1928             }
1929 
1930             self.resources
1931                 .vars
1932                 .entry(ty)
1933                 .or_insert_with(Vec::new)
1934                 .push(var);
1935         }
1936 
1937         Ok(())
1938     }
1939 
1940     /// We generate a function in multiple stages:
1941     ///
1942     /// * First we generate a random number of empty blocks
1943     /// * Then we generate a random pool of variables to be used throughout the function
1944     /// * We then visit each block and generate random instructions
1945     ///
1946     /// Because we generate all blocks and variables up front we already know everything that
1947     /// we need when generating instructions (i.e. jump targets / variables)
1948     pub fn generate(mut self) -> Result<Function> {
1949         let mut fn_builder_ctx = FunctionBuilderContext::new();
1950         let mut func = Function::with_name_signature(self.name.clone(), self.signature.clone());
1951 
1952         let mut builder = FunctionBuilder::new(&mut func, &mut fn_builder_ctx);
1953 
1954         // Build the function references before generating the block CFG since we store
1955         // function references in the CFG.
1956         self.generate_funcrefs(&mut builder)?;
1957         self.generate_blocks(&mut builder)?;
1958 
1959         // Function preamble
1960         self.generate_stack_slots(&mut builder)?;
1961 
1962         // Main instruction generation loop
1963         for (block, block_sig) in self.resources.blocks.clone().into_iter() {
1964             let is_block0 = block.as_u32() == 0;
1965             builder.switch_to_block(block);
1966 
1967             if is_block0 {
1968                 // The first block is special because we must create variables both for the
1969                 // block signature and for the variable pool. Additionally, we must also define
1970                 // initial values for all variables that are not the function signature.
1971                 self.build_variable_pool(&mut builder)?;
1972 
1973                 // Stack slots have random bytes at the beginning of the function
1974                 // initialize them to a constant value so that execution stays predictable.
1975                 self.initialize_stack_slots(&mut builder)?;
1976             } else {
1977                 // Define variables for the block params
1978                 for (i, ty) in block_sig.iter().enumerate() {
1979                     let var = self.get_variable_of_type(*ty)?;
1980                     let block_param = builder.block_params(block)[i];
1981                     builder.def_var(var, block_param);
1982                 }
1983             }
1984 
1985             // Generate block instructions
1986             self.generate_instructions(&mut builder)?;
1987 
1988             // Insert a terminator to safely exit the block
1989             self.insert_terminator(&mut builder, block)?;
1990         }
1991 
1992         builder.seal_all_blocks();
1993         builder.finalize();
1994 
1995         Ok(func)
1996     }
1997 }
1998