This helper function is now able to replace also uses that are inside
`ConstantExpr`s.
Before this commit they were not substituted correctly, causing problems
down the decompilation pipeline.
These are necessary for this iterator to be a forward_iterator according
to the standard.
Missing these causes compilation errors in some cases when using
functions from the Standard Template Library with these iterators.
Rationale: it is a widespread practice, both in revng and in projects
that depend on it, to write verification functions that check specific
properties hold after different transformations on various data
structures.
Often, these verification function are very useful for debugging and
during development, but they can be very costly and we don't want to
always execute them at runtime.
This patch adds a global public Logger, called VerifyLog, that can be
enabled with the --debug-log=verify command line argument.
This Logger is intended to be used in revng and in projects that depend
on it, as a guard for costly calls to verification functions that do not
need to be performed on a typical execution, but only when debugging.
For now the only user is JumpTargetManager, but other uses are already
envisioned.
This commit makes possible to execute the GeneratedCodeBasicInfo (GCBI)
Pass even on LLVM IR where the AnyPC and UnexpectedPC BasicBlocks are
not present.
This makes the GCBI pass more flexible, enabling more other passes to
depend on it and to use it to retrieve informations on the generated
code without architecture-dependent hacks.
As an example, one can now use GCBI to retrieve the CSV representing the
Stack Pointer Register or the Program Counter Register without relying
on the register names (which are architecture-specific), even if some
optimization pass along the decompilation pipeline has removed AnyPC or
UnexpectedPC.
Notice that the contracts of GCBI's methods has not been changed.
Calling anyPC() or unexpectedPC() still asserts that those are not
nullptr.
The contract has just been moved from the execution stage of the pass
(basically runOnModule), to the APIs used to query the results.
This patch adds a two markers for llvm::GraphTraits:
- NodePairFilteredGraph
- EdgeFilteredGraph
Both these markers allow to specify a static predicate that is used to
filter edges.
This predicate is a boolean function such that:
- for NodePairFilteredGraph, it takes a pair of const NodeRef & that
are used to represent an edge, and it evaluates a given property of
that pair;
- for EdgeFilteredGraph, it takes a const EdgeRef & that represents an
edge, and it evaluates a given property on the edge.
The filtered graph contains only the edges for which the predicate
evaluates true.
Notice that the predicate must have static lifetime, meaning that all
the edge properties must be entirely evaluated on the pair of node (for
NodePairFilteredGraph) or on the edge (for EdgeFilteredGraph).
This means that you cannot pass mutable state to the predicate at
runtime.
The new markers are designed to interoperate well with llvm::Inverse and
to allow you to traverse the marked graphs with llvm::depth_first,
llvm::inverse_depth_first, llvm::breadth_first, and to compute dominator
trees and post-dominator trees on filtered graphs.
Add EdgeRef and ChildEdgeIteratorType to GraphTraits<DotNode *> and to
GraphTraits<const DotNode *>.
This allows iterating on edges of DotGraphs, which will be useful for
some testing on edge properties.
This commits fixes a typo, probably a leftover from copy-paste, that
caused `DotGraph::end()` methods to actually return `begin()`.
Nobody was relying on this, which caused this bug to go unnoticed.
AVI and InstCombine are the bottleneck of the lifting process.
This commit introduces a whitelist of jump targets that are considered
by AVI during harvesting.
The whitelist is initialized by the jump targets that are new with
respect to the last run of AVI. Then, it's expanded with all the jump
targets that can reach the initial set of jump targets through direct
jumps.
When translation of code overflows into an unmapped page, we can get a
SIGSEGV. To avoid this, for each set of contiguous pages, we add "guard
page" containing an architecture-specific pattern that ensure basic
block termination.
Unlike the previous iteration of `MetaAddress`, which tried to stuff all
the parts of `MetaAddress` within the existing `PC` CSV, this
implementation adds a set of new CSVs (or marks some existing ones as) to
represent the four portions of the current PC's `MetaAddress`.
* Introduce `ProgramCounterHandler`: a class responsible to maintain the
PC-related CSVs. This class is also used to manipulate the new
dispatcher.
* `AdvancedValueInfo`: update for new MetaAddress.
* External jump handler: do not clobber registers.
When introducing support for dynamic binaries, we didn't realize that
in x86-64 we were clobbering `r11`. To avoid this, we have to jump to
an address stored in memory. However, due to the new `MetaAddress`,
obtaining a *jumpable* address from the PC-related CSVs might require
some computations (and it does in ARM). Therefore, we introduce a new
global variable, `jumpablepc`, whose only role is to contain the
jumpable version of the program counter and then be the target of the
memory-indirect jump instruction.
* Labels care only about absolute addresses.
* CSAA: mark call site, even if no accesses.
`MetaAddress` replaces all the `uint64_t` used to represent a virtual
address. Its main features are:
* It has a non-zero representation of invalid addresses.
* It supports tags to represent code that has different interpretations but
resides at the same address in memory (namely ARM vs Thumb).
* Arithmetic operations cannot overflow.
* It supports epochs, a way we intend to employ to handle self-modifying code
(i.e., different code at the same address at different times).
* It supports "address spaces", which enable handling architectures with
multiple address spaces.
* It fits in two 64-bit registers.
* Drop unused argument names from function prototypes
* Make `static` some methods
* Disable some copy constructors
* Fix casing of Doxygen `\file` directives
* Add some casts to make the compiler happy
* Initialize `hasRelocationAddend` for AArch64
* Use references in range-for where possible
* Drop default for `switch` statements covering all the entries of an `enum`
* Make some global variables `static`
* Drop dead functions
LLVM already implements an analogous `mapped_iterator` type in
`STLExtras.h` header. `llvm::mapped_iterator` has been used to
substitute `TransformIterator` in the project so that we don't need to
reinvent the wheel.
Before this commit, the `dumpToString()` function defined in
`include/revng/Support/IRHelpers.h` was only defined with arguments of
type `const llvm::Module *` and `const llvm::Value *`.
This is not very ergonomic, because lots of types in LLVM have a
`print()` method that dumps the representation on a
`llvm::raw_ostream``.
This commit introduces function templates to handle all possible types
in LLVM that have a method `void print(llvm::raw_ostream &)`.
The templates are defined so that they should work with every possible
combination of references and pointer types, along with const
qualifiers.
To achieve this, the code makes use of `std::enable_if`` to provide
different definitions of the `dumpToString()` template helper function,
which only participate in overload resolution for specific types:
1. for `llvm::Module` and `llvm::Function`, which share the same
prototype for the `print()` method
2. for `llvm::Value` which has yet another prototype for the `print()`
method
3. for all other types that provide a method with the signature
`void print(llvm::raw_ostream &)`.
The last implementation (3) also works for all non-LLVM types provide a
method with the signature `void print(llvm::raw_ostream &)`.
In this sense, if in the future we want our own type to be easily dumped
to string (handy for logging), we can just implement the method
`void print(llvm::raw_ostream &)` and the `dumpToString()` function
template added in this commit will work out ot the box.
Handle `ConstantPointerNull` explicitly in Advanced Value Info, instead
of trying to obtain the analysis result for its operand (which is by
design a `nullptr`).
Before this commit, the header `revng/Support/DebugHelper.h` could only
be included after explicitly including
`llvm/IR/AssemblyAnnotationWriter.h`, since `DebugHelper.h` used the
LLVM class `AssemblyAnnotationWriter`, that is not defined in
`DebugHelper.h`.
This commit includes `llvm/IR/AssemblyAnnotationWriter.h` directly into
`revng/Support/DebugHelper.h`, which can now be included alone without
compilation errors.
A `ConstantRange` such as `[5,0)` was not handled correctly in
`ConstantRangeSet` due to a spurious 0 at the end of the range.
This commit also fixes the testing infrastructure that was not checking
the size of the range before making the comparison with the reference
vector.
LLVM 9 drops the `TerminatorInst` class. This commit replaces it with
`Instruction` where possible and asserts
`Instruction::isTerminator()`. It also switches from
`TerminatorInst::successors` to `successors(TerminatorInst *)`.
This commit restores the old implementation of `getBasicBlockPC` (which
was changed in an incompatible and wrong way) and fixes the bug the
original change tried to fix: in function isolation, jumping from a
function to a basic block that doesn't start with `newpc` now leads to a
basic block containing an `unreachable`.