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Change-Id: I765b246b44210612a8d7d0484beab07a86fa79c5 Reviewed-on: https://go-review.googlesource.com/9243 Reviewed-by: Robert Griesemer <gri@golang.org>
255 lines
9.5 KiB
HTML
255 lines
9.5 KiB
HTML
<!--{
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"Title": "Static analysis features of godoc"
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<!-- Images were grabbed from Chrome/Linux at 150% zoom, and are
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<p>
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When invoked with the <code>-analysis</code> flag, godoc performs
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static analysis on the Go packages it indexes and displays the
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results in the source and package views. This document provides a
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brief tour of these features.
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</p>
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<h2>Type analysis features</h2>
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<p>
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<code>godoc -analysis=type</code> performs static checking similar
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to that done by a compiler: it detects ill-formed programs, resolves
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each identifier to the entity it denotes, computes the type of each
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expression and the method set of each type, and determines which
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types are assignable to each interface type.
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<b>Type analysis</b> is relatively quick, requiring about 10 seconds for
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the >200 packages of the standard library, for example.
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</p>
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<h3>Compiler errors</h3>
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<p>
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If any source file contains a compilation error, the source view
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will highlight the errant location in red. Hovering over it
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displays the error message.
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</p>
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<img class="ss" width='811' src='error1.png'><br/>
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<h3>Identifier resolution</h3>
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<p>
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In the source view, every referring identifier is annotated with
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information about the language entity it refers to: a package,
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constant, variable, type, function or statement label.
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Hovering over the identifier reveals the entity's kind and type
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(e.g. <code>var x int</code> or <code>func f
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func(int) string</code>).
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</p>
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<img class="ss" width='652' src='ident-field.png'><br/>
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<br/>
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<img class="ss" width='652' src='ident-func.png'>
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<p>
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Clicking the link takes you to the entity's definition.
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</p>
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<img class="ss" width='652' src='ident-def.png'><br/>
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<h3>Type information: size/alignment, method set, interfaces</h3>
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<p>
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Clicking on the identifier that defines a named type causes a panel
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to appear, displaying information about the named type, including
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its size and alignment in bytes, its
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<a href='http://golang.org/ref/spec#Method_sets'>method set</a>, and its
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<i>implements</i> relation: the set of types T that are assignable to
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or from this type U where at least one of T or U is an interface.
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This example shows information about <code>net/rpc.methodType</code>.
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</p>
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<img class="ss" width='470' src='typeinfo-src.png'>
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<p>
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The method set includes not only the declared methods of the type,
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but also any methods "promoted" from anonymous fields of structs,
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such as <code>sync.Mutex</code> in this example.
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In addition, the receiver type is displayed as <code>*T</code> or
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<code>T</code> depending on whether it requires the address or just
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a copy of the receiver value.
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</p>
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<p>
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The method set and <i>implements</i> relation are also available
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via the package view.
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</p>
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<img class="ss dotted" width='716' src='typeinfo-pkg.png'>
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<h2>Pointer analysis features</h2>
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<p>
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<code>godoc -analysis=pointer</code> additionally performs a precise
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whole-program <b>pointer analysis</b>. In other words, it
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approximates the set of memory locations to which each
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reference—not just vars of kind <code>*T</code>, but also
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<code>[]T</code>, <code>func</code>, <code>map</code>,
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<code>chan</code>, and <code>interface</code>—may refer. This
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information reveals the possible destinations of each dynamic call
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(via a <code>func</code> variable or interface method), and the
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relationship between send and receive operations on the same
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channel.
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</p>
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<p>
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Compared to type analysis, pointer analysis requires more time and
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memory, and is impractical for code bases exceeding a million lines.
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</p>
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<h3>Call graph navigation</h3>
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<p>
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When pointer analysis is complete, the source view annotates the
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code with <b>callers</b> and <b>callees</b> information: callers
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information is associated with the <code>func</code> keyword that
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declares a function, and callees information is associated with the
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open paren '<span style="color: dark-blue"><code>(</code></span>' of
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a function call.
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</p>
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<p>
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In this example, hovering over the declaration of the
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<code>rot13</code> function (defined in strings/strings_test.go)
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reveals that it is called in exactly one place.
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</p>
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<img class="ss" width='612' src='callers1.png'>
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<p>
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Clicking the link navigates to the sole caller. (If there were
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multiple callers, a list of choices would be displayed first.)
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</p>
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<img class="ss" width='680' src='callers2.png'>
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<p>
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Notice that hovering over this call reveals that there are 19
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possible callees at this site, of which our <code>rot13</code>
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function was just one: this is a dynamic call through a variable of
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type <code>func(rune) rune</code>.
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Clicking on the call brings up the list of all 19 potential callees,
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shown truncated. Many of them are anonymous functions.
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</p>
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<img class="ss" width='564' src='call3.png'>
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<p>
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Pointer analysis gives a very precise approximation of the call
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graph compared to type-based techniques.
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As a case in point, the next example shows the dynamic call inside
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the <code>testing</code> package responsible for calling all
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user-defined functions named <code>Example<i>XYZ</i></code>.
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</p>
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<img class="ss" width='361' src='call-eg.png'>
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<p>
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Recall that all such functions have type <code>func()</code>,
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i.e. no arguments and no results. A type-based approximation could
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only conclude that this call might dispatch to any function matching
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that type—and these are very numerous in most
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programs—but pointer analysis can track the flow of specific
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<code>func</code> values through the testing package.
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As an indication of its precision, the result contains only
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functions whose name starts with <code>Example</code>.
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</p>
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<h3>Intra-package call graph</h3>
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<p>
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The same call graph information is presented in a very different way
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in the package view. For each package, an interactive tree view
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allows exploration of the call graph as it relates to just that
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package; all functions from other packages are elided.
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The roots of the tree are the external entry points of the package:
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not only its exported functions, but also any unexported or
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anonymous functions that are called (dynamically) from outside the
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package.
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</p>
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<p>
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This example shows the entry points of the
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<code>path/filepath</code> package, with the call graph for
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<code>Glob</code> expanded several levels
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</p>
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<img class="ss dotted" width='501' src='ipcg-pkg.png'>
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<p>
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Notice that the nodes for Glob and Join appear multiple times: the
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tree is a partial unrolling of a cyclic graph; the full unrolling
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is in general infinite.
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</p>
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<p>
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For each function documented in the package view, another
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interactive tree view allows exploration of the same graph starting
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at that function.
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This is a portion of the internal graph of
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<code>net/http.ListenAndServe</code>.
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</p>
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<img class="ss dotted" width='455' src='ipcg-func.png'>
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<h3>Channel peers (send ↔ receive)</h3>
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<p>
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Because concurrent Go programs use channels to pass not just values
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but also control between different goroutines, it is natural when
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reading Go code to want to navigate from a channel send to the
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corresponding receive so as to understand the sequence of events.
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</p>
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<p>
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Godoc annotates every channel operation—make, send, range,
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receive, close—with a link to a panel displaying information
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about other operations that might alias the same channel.
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</p>
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<p>
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This example, from the tests of <code>net/http</code>, shows a send
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operation on a <code>chan bool</code>.
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</p>
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<img class="ss" width='811' src='chan1.png'>
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<p>
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Clicking on the <code><-</code> send operator reveals that this
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channel is made at a unique location (line 332) and that there are
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three receive operations that might read this value.
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It hardly needs pointing out that some channel element types are
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very widely used (e.g. struct{}, bool, int, interface{}) and that a
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typical Go program might contain dozens of receive operations on a
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value of type <code>chan bool</code>; yet the pointer analysis is
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able to distinguish operations on channels at a much finer precision
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than based on their type alone.
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</p>
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<p>
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Notice also that the send occurs in a different (anonymous) function
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from the outer one containing the <code>make</code> and the receive
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operations.
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</p>
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<p>
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Here's another example of send on a different <code>chan
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bool</code>, also in package <code>net/http</code>:
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</p>
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<img class="ss" width='774' src='chan2a.png'>
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<p>
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The analysis finds just one receive operation that might receive
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from this channel, in the test for this feature.
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</p>
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<img class="ss" width='737' src='chan2b.png'>
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<h2>Known issues</h2>
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<p>
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All analysis results pertain to exactly
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one configuration (e.g. amd64 linux). Files that are conditionally
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compiled based on different platforms or build tags are not visible
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to the analysis.
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</p>
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<p>
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Files that <code>import "C"</code> require
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preprocessing by the cgo tool. The file offsets after preprocessing
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do not align with the unpreprocessed file, so markup is misaligned.
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</p>
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<p>
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Files are not periodically re-analyzed.
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If the files change underneath the running server, the displayed
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markup is misaligned.
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</p>
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<p>
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Additional issues are listed at
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<a href='https://go.googlesource.com/tools/+/master/godoc/analysis/README'>tools/godoc/analysis/README</a>.
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</p>
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