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268 lines
12 KiB
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<title>Open Projects</title>
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<link type="text/css" rel="stylesheet" href="content.css">
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<h1>Open Projects</h1>
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<p>This page lists several projects that would boost analyzer's usability and
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power. Most of the projects listed here are infrastructure-related so this list
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is an addition to the <a href="potential_checkers.html">potential checkers
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list</a>. If you are interested in tackling one of these, please send an email
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to the <a href=https://lists.llvm.org/mailman/listinfo/cfe-dev>cfe-dev
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mailing list</a> to notify other members of the community.</p>
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<ul>
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<li>Release checkers from "alpha"
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<p>New checkers which were contributed to the analyzer,
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but have not passed a rigorous evaluation process,
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are committed as "alpha checkers" (from "alpha version"),
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and are not enabled by default.</p>
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<p>Ideally, only the checkers which are actively being worked on should be in
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"alpha",
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but over the years the development of many of those has stalled.
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Such checkers should either be improved
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up to a point where they can be enabled by default,
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or removed from the analyzer entirely.
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<ul>
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<li><code>alpha.security.ArrayBound</code> and
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<code>alpha.security.ArrayBoundV2</code>
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<p>Array bounds checking is a desired feature,
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but having an acceptable rate of false positives might not be possible
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without a proper
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<a href="https://en.wikipedia.org/wiki/Widening_(computer_science)">loop widening</a> support.
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Additionally, it might be more promising to perform index checking based on
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<a href="https://en.wikipedia.org/wiki/Taint_checking">tainted</a> index values.
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<p><i>(Difficulty: Medium)</i></p></p>
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</li>
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<li><code>alpha.unix.StreamChecker</code>
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<p>A SimpleStreamChecker has been presented in the Building a Checker in 24
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Hours talk
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(<a href="https://llvm.org/devmtg/2012-11/Zaks-Rose-Checker24Hours.pdf">slides</a>
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<a href="https://youtu.be/kdxlsP5QVPw">video</a>).</p>
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<p>This alpha checker is an attempt to write a production grade stream checker.
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However, it was found to have an unacceptably high false positive rate.
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One of the found problems was that eagerly splitting the state
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based on whether the system call may fail leads to too many reports.
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A <em>delayed</em> split where the implication is stored in the state
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(similarly to nullability implications in <code>TrustNonnullChecker</code>)
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may produce much better results.</p>
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<p><i>(Difficulty: Medium)</i></p>
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</li>
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</ul>
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</li>
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<li>Improve C++ support
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<ul>
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<li>Handle construction as part of aggregate initialization.
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<p><a href="https://en.cppreference.com/w/cpp/language/aggregate_initialization">Aggregates</a>
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are objects that can be brace-initialized without calling a
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constructor (that is, <code><a href="https://clang.llvm.org/doxygen/classclang_1_1CXXConstructExpr.html">
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CXXConstructExpr</a></code> does not occur in the AST),
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but potentially calling
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constructors for their fields and base classes
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These
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constructors of sub-objects need to know what object they are constructing.
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Moreover, if the aggregate contains
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references, lifetime extension needs to be properly modeled.
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One can start untangling this problem by trying to replace the
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current ad-hoc <code><a href="https://clang.llvm.org/doxygen/classclang_1_1ParentMap.html">
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ParentMap</a></code> lookup in <a href="https://clang.llvm.org/doxygen/ExprEngineCXX_8cpp_source.html#l00430">
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<code>CXXConstructExpr::CK_NonVirtualBase</code></a> branch of
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<code>ExprEngine::VisitCXXConstructExpr()</code>
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with proper support for the feature.
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<p><i>(Difficulty: Medium) </i></p></p>
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</li>
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<li>Handle array constructors.
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<p>When an array of objects is allocated (say, using the
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<code>operator new[]</code> or defining a stack array),
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constructors for all elements of the array are called.
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We should model (potentially some of) such evaluations,
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and the same applies for destructors called from
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<code>operator delete[]</code>.
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See tests cases in <a href="https://github.com/llvm/llvm-project/tree/master/clang/test/Analysis/handle_constructors_with_new_array.cpp">handle_constructors_with_new_array.cpp</a>.
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</p>
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<p>
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Constructing an array requires invoking multiple (potentially unknown)
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amount of constructors with the same construct-expression.
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Apart from the technical difficulties of juggling program points around
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correctly to avoid accidentally merging paths together, we'll have to
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be a judge on when to exit the loop and how to widen it.
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Given that the constructor is going to be a default constructor,
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a nice 95% solution might be to execute exactly one constructor and
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then default-bind the resulting LazyCompoundVal to the whole array;
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it'll work whenever the default constructor doesn't touch global state
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but only initializes the object to various default values.
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But if, say, we're making an array of strings,
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depending on the implementation you might have to allocate a new buffer
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for each string, and in this case default-binding won't cut it.
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We might want to come up with an auxiliary analysis in order to perform
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widening of these simple loops more precisely.
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</p>
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</li>
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<li>Handle constructors that can be elided due to Named Return Value Optimization (NRVO)
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<p>Local variables which are returned by values on all return statements
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may be stored directly at the address for the return value,
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eliding the copy or move constructor call.
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Such variables can be identified using the AST call <code>VarDecl::isNRVOVariable</code>.
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</p>
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</li>
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<li>Handle constructors of lambda captures
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<p>Variables which are captured by value into a lambda require a call to
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a copy constructor.
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This call is not currently modeled.
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</p>
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</li>
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<li>Handle constructors for default arguments
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<p>Default arguments in C++ are recomputed at every call,
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and are therefore local, and not static, variables.
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See tests cases in <a href="https://github.com/llvm/llvm-project/tree/master/clang/test/Analysis/handle_constructors_for_default_arguments.cpp">handle_constructors_for_default_arguments.cpp</a>.
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</p>
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<p>
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Default arguments are annoying because the initializer expression is
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evaluated at the call site but doesn't syntactically belong to the
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caller's AST; instead it belongs to the ParmVarDecl for the default
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parameter. This can lead to situations when the same expression has to
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carry different values simultaneously -
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when multiple instances of the same function are evaluated as part of the
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same full-expression without specifying the default arguments.
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Even simply calling the function twice (not necessarily within the
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same full-expression) may lead to program points agglutinating because
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it's the same expression. There are some nasty test cases already
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in temporaries.cpp (struct DefaultParam and so on). I recommend adding a
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new LocationContext kind specifically to deal with this problem. It'll
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also help you figure out the construction context when you evaluate the
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construct-expression (though you might still need to do some additional
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CFG work to get construction contexts right).
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</p>
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</li>
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<li>Enhance the modeling of the standard library.
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<p>The analyzer needs a better understanding of STL in order to be more
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useful on C++ codebases.
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While full library modeling is not an easy task,
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large gains can be achieved by supporting only a few cases:
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e.g. calling <code>.length()</code> on an empty
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<code>std::string</code> always yields zero.
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<p><i>(Difficulty: Medium)</i></p><p>
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</li>
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<li>Enhance CFG to model exception-handling.
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<p>Currently exceptions are treated as "black holes", and exception-handling
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control structures are poorly modeled in order to be conservative.
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This could be improved for both C++ and Objective-C exceptions.
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<p><i>(Difficulty: Hard)</i></p></p>
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</li>
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</ul>
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</li>
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<li>Core Analyzer Infrastructure
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<ul>
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<li>Handle unions.
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<p>Currently in the analyzer the value of a union is always regarded as
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an unknown.
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This problem was
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previously <a href="https://lists.llvm.org/pipermail/cfe-dev/2017-March/052864.html">discussed</a>
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on the mailing list, but no solution was implemented.
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<p><i> (Difficulty: Medium) </i></p></p>
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</li>
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<li>Floating-point support.
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<p>Currently, the analyzer treats all floating-point values as unknown.
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This project would involve adding a new <code>SVal</code> kind
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for constant floats, generalizing the constraint manager to handle floats,
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and auditing existing code to make sure it doesn't
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make incorrect assumptions (most notably, that <code>X == X</code>
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is always true, since it does not hold for <code>NaN</code>).
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<p><i> (Difficulty: Medium)</i></p></p>
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</li>
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<li>Improved loop execution modeling.
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<p>The analyzer simply unrolls each loop <tt>N</tt> times before
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dropping the path, for a fixed constant <tt>N</tt>.
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However, that results in lost coverage in cases where the loop always
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executes more than <tt>N</tt> times.
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A Google Summer Of Code
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<a href="https://summerofcode.withgoogle.com/archive/2017/projects/6071606019358720/">project</a>
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was completed to make the loop bound parameterizable,
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but the <a href="https://en.wikipedia.org/wiki/Widening_(computer_science)">widening</a>
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problem still remains open.
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<p><i> (Difficulty: Hard)</i></p></p>
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</li>
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<li>Basic function summarization support
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<p>The analyzer performs inter-procedural analysis using
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either inlining or "conservative evaluation" (invalidating all data
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passed to the function).
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Often, a very simple summary
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(e.g. "this function is <a href="https://en.wikipedia.org/wiki/Pure_function">pure</a>") would be
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enough to be a large improvement over conservative evaluation.
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Such summaries could be obtained either syntactically,
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or using a dataflow framework.
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<p><i>(Difficulty: Hard)</i></p><p>
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</li>
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<li>Implement a dataflow flamework.
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<p>The analyzer core
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implements a <a href="https://en.wikipedia.org/wiki/Symbolic_execution">symbolic execution</a>
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engine, which performs checks
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(use-after-free, uninitialized value read, etc.)
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over a <em>single</em> program path.
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However, many useful properties
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(dead code, check-after-use, etc.) require
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reasoning over <em>all</em> possible in a program.
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Such reasoning requires a
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<a href="https://en.wikipedia.org/wiki/Data-flow_analysis">dataflow analysis</a> framework.
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Clang already implements
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a few dataflow analyses (most notably, liveness),
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but they implemented in an ad-hoc fashion.
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A proper framework would enable us writing many more useful checkers.
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<p><i> (Difficulty: Hard) </i></p></p>
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</li>
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<li>Track type information through casts more precisely.
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<p>The <code>DynamicTypePropagation</code>
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checker is in charge of inferring a region's
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dynamic type based on what operations the code is performing.
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Casts are a rich source of type information that the analyzer currently ignores.
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<p><i>(Difficulty: Medium)</i></p></p>
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</li>
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</ul>
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</li>
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<li>Fixing miscellaneous bugs
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<p>Apart from the open projects listed above,
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contributors are welcome to fix any of the outstanding
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<a href="https://bugs.llvm.org/buglist.cgi?component=Static%20Analyzer&list_id=147756&product=clang&resolution=---">bugs</a>
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in the Bugzilla.
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<p><i>(Difficulty: Anything)</i></p></p>
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</li>
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</ul>
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</div>
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</div>
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