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//===--- Format.cpp - Format C++ code -------------------------------------===//
//
// The LLVM Compiler Infrastructure
//
// This file is distributed under the University of Illinois Open Source
// License. See LICENSE.TXT for details.
//
//===----------------------------------------------------------------------===//
///
/// \file
/// \brief This file implements functions declared in Format.h. This will be
/// split into separate files as we go.
///
/// This is EXPERIMENTAL code under heavy development. It is not in a state yet,
/// where it can be used to format real code.
///
//===----------------------------------------------------------------------===//
#define DEBUG_TYPE "format-formatter"
#include "UnwrappedLineParser.h"
#include "clang/Basic/Diagnostic.h"
#include "clang/Basic/OperatorPrecedence.h"
#include "clang/Basic/SourceManager.h"
#include "clang/Format/Format.h"
#include "clang/Frontend/TextDiagnosticPrinter.h"
#include "clang/Lex/Lexer.h"
#include "llvm/Support/Debug.h"
#include <string>
// Uncomment to get debug output from tests:
// #define DEBUG_WITH_TYPE(T, X) do { X; } while(0)
namespace clang {
namespace format {
enum TokenType {
TT_BinaryOperator,
TT_BlockComment,
TT_CastRParen,
TT_ConditionalExpr,
TT_CtorInitializerColon,
TT_ImplicitStringLiteral,
TT_LineComment,
TT_ObjCBlockLParen,
TT_ObjCDecl,
TT_ObjCMethodSpecifier,
TT_ObjCMethodExpr,
TT_ObjCProperty,
TT_OverloadedOperator,
TT_PointerOrReference,
TT_PureVirtualSpecifier,
TT_RangeBasedForLoopColon,
TT_StartOfName,
TT_TemplateCloser,
TT_TemplateOpener,
TT_TrailingUnaryOperator,
TT_UnaryOperator,
TT_Unknown
};
enum LineType {
LT_Invalid,
LT_Other,
LT_BuilderTypeCall,
LT_PreprocessorDirective,
LT_VirtualFunctionDecl,
LT_ObjCDecl, // An @interface, @implementation, or @protocol line.
LT_ObjCMethodDecl,
LT_ObjCProperty // An @property line.
};
class AnnotatedToken {
public:
explicit AnnotatedToken(const FormatToken &FormatTok)
: FormatTok(FormatTok), Type(TT_Unknown), SpaceRequiredBefore(false),
CanBreakBefore(false), MustBreakBefore(false),
ClosesTemplateDeclaration(false), MatchingParen(NULL),
ParameterCount(1), Parent(NULL) {
}
bool is(tok::TokenKind Kind) const { return FormatTok.Tok.is(Kind); }
bool isNot(tok::TokenKind Kind) const { return FormatTok.Tok.isNot(Kind); }
bool isObjCAtKeyword(tok::ObjCKeywordKind Kind) const {
return FormatTok.Tok.isObjCAtKeyword(Kind);
}
FormatToken FormatTok;
TokenType Type;
bool SpaceRequiredBefore;
bool CanBreakBefore;
bool MustBreakBefore;
bool ClosesTemplateDeclaration;
AnnotatedToken *MatchingParen;
/// \brief Number of parameters, if this is "(", "[" or "<".
///
/// This is initialized to 1 as we don't need to distinguish functions with
/// 0 parameters from functions with 1 parameter. Thus, we can simply count
/// the number of commas.
unsigned ParameterCount;
/// \brief The total length of the line up to and including this token.
unsigned TotalLength;
/// \brief Penalty for inserting a line break before this token.
unsigned SplitPenalty;
std::vector<AnnotatedToken> Children;
AnnotatedToken *Parent;
const AnnotatedToken *getPreviousNoneComment() const {
AnnotatedToken *Tok = Parent;
while (Tok != NULL && Tok->is(tok::comment))
Tok = Tok->Parent;
return Tok;
}
};
class AnnotatedLine {
public:
AnnotatedLine(const UnwrappedLine &Line)
: First(Line.Tokens.front()), Level(Line.Level),
InPPDirective(Line.InPPDirective),
MustBeDeclaration(Line.MustBeDeclaration) {
assert(!Line.Tokens.empty());
AnnotatedToken *Current = &First;
for (std::list<FormatToken>::const_iterator I = ++Line.Tokens.begin(),
E = Line.Tokens.end();
I != E; ++I) {
Current->Children.push_back(AnnotatedToken(*I));
Current->Children[0].Parent = Current;
Current = &Current->Children[0];
}
Last = Current;
}
AnnotatedLine(const AnnotatedLine &Other)
: First(Other.First), Type(Other.Type), Level(Other.Level),
InPPDirective(Other.InPPDirective),
MustBeDeclaration(Other.MustBeDeclaration) {
Last = &First;
while (!Last->Children.empty()) {
Last->Children[0].Parent = Last;
Last = &Last->Children[0];
}
}
AnnotatedToken First;
AnnotatedToken *Last;
LineType Type;
unsigned Level;
bool InPPDirective;
bool MustBeDeclaration;
};
static prec::Level getPrecedence(const AnnotatedToken &Tok) {
return getBinOpPrecedence(Tok.FormatTok.Tok.getKind(), true, true);
}
bool isBinaryOperator(const AnnotatedToken &Tok) {
// Comma is a binary operator, but does not behave as such wrt. formatting.
return getPrecedence(Tok) > prec::Comma;
}
FormatStyle getLLVMStyle() {
FormatStyle LLVMStyle;
LLVMStyle.ColumnLimit = 80;
LLVMStyle.MaxEmptyLinesToKeep = 1;
LLVMStyle.PointerAndReferenceBindToType = false;
LLVMStyle.AccessModifierOffset = -2;
LLVMStyle.SplitTemplateClosingGreater = true;
LLVMStyle.IndentCaseLabels = false;
LLVMStyle.SpacesBeforeTrailingComments = 1;
LLVMStyle.BinPackParameters = true;
LLVMStyle.AllowAllParametersOfDeclarationOnNextLine = true;
LLVMStyle.AllowReturnTypeOnItsOwnLine = true;
LLVMStyle.ConstructorInitializerAllOnOneLineOrOnePerLine = false;
LLVMStyle.AllowShortIfStatementsOnASingleLine = false;
LLVMStyle.ObjCSpaceBeforeProtocolList = true;
return LLVMStyle;
}
FormatStyle getGoogleStyle() {
FormatStyle GoogleStyle;
GoogleStyle.ColumnLimit = 80;
GoogleStyle.MaxEmptyLinesToKeep = 1;
GoogleStyle.PointerAndReferenceBindToType = true;
GoogleStyle.AccessModifierOffset = -1;
GoogleStyle.SplitTemplateClosingGreater = false;
GoogleStyle.IndentCaseLabels = true;
GoogleStyle.SpacesBeforeTrailingComments = 2;
GoogleStyle.BinPackParameters = false;
GoogleStyle.AllowAllParametersOfDeclarationOnNextLine = true;
GoogleStyle.AllowReturnTypeOnItsOwnLine = false;
GoogleStyle.ConstructorInitializerAllOnOneLineOrOnePerLine = true;
GoogleStyle.AllowShortIfStatementsOnASingleLine = false;
GoogleStyle.ObjCSpaceBeforeProtocolList = false;
return GoogleStyle;
}
FormatStyle getChromiumStyle() {
FormatStyle ChromiumStyle = getGoogleStyle();
ChromiumStyle.AllowAllParametersOfDeclarationOnNextLine = false;
ChromiumStyle.SplitTemplateClosingGreater = true;
return ChromiumStyle;
}
struct OptimizationParameters {
unsigned PenaltyIndentLevel;
unsigned PenaltyExcessCharacter;
};
/// \brief Manages the whitespaces around tokens and their replacements.
///
/// This includes special handling for certain constructs, e.g. the alignment of
/// trailing line comments.
class WhitespaceManager {
public:
WhitespaceManager(SourceManager &SourceMgr) : SourceMgr(SourceMgr) {}
/// \brief Replaces the whitespace in front of \p Tok. Only call once for
/// each \c AnnotatedToken.
void replaceWhitespace(const AnnotatedToken &Tok, unsigned NewLines,
unsigned Spaces, unsigned WhitespaceStartColumn,
const FormatStyle &Style) {
// 2+ newlines mean an empty line separating logic scopes.
if (NewLines >= 2)
alignComments();
// Align line comments if they are trailing or if they continue other
// trailing comments.
if (Tok.Type == TT_LineComment &&
(Tok.Parent != NULL || !Comments.empty())) {
if (Style.ColumnLimit >=
Spaces + WhitespaceStartColumn + Tok.FormatTok.TokenLength) {
Comments.push_back(StoredComment());
Comments.back().Tok = Tok.FormatTok;
Comments.back().Spaces = Spaces;
Comments.back().NewLines = NewLines;
Comments.back().MinColumn = WhitespaceStartColumn + Spaces;
Comments.back().MaxColumn =
Style.ColumnLimit - Spaces - Tok.FormatTok.TokenLength;
return;
}
}
// If this line does not have a trailing comment, align the stored comments.
if (Tok.Children.empty() && Tok.Type != TT_LineComment)
alignComments();
storeReplacement(Tok.FormatTok,
std::string(NewLines, '\n') + std::string(Spaces, ' '));
}
/// \brief Like \c replaceWhitespace, but additionally adds right-aligned
/// backslashes to escape newlines inside a preprocessor directive.
///
/// This function and \c replaceWhitespace have the same behavior if
/// \c Newlines == 0.
void replacePPWhitespace(const AnnotatedToken &Tok, unsigned NewLines,
unsigned Spaces, unsigned WhitespaceStartColumn,
const FormatStyle &Style) {
std::string NewLineText;
if (NewLines > 0) {
unsigned Offset =
std::min<int>(Style.ColumnLimit - 1, WhitespaceStartColumn);
for (unsigned i = 0; i < NewLines; ++i) {
NewLineText += std::string(Style.ColumnLimit - Offset - 1, ' ');
NewLineText += "\\\n";
Offset = 0;
}
}
storeReplacement(Tok.FormatTok, NewLineText + std::string(Spaces, ' '));
}
/// \brief Returns all the \c Replacements created during formatting.
const tooling::Replacements &generateReplacements() {
alignComments();
return Replaces;
}
private:
/// \brief Structure to store a comment for later layout and alignment.
struct StoredComment {
FormatToken Tok;
unsigned MinColumn;
unsigned MaxColumn;
unsigned NewLines;
unsigned Spaces;
};
SmallVector<StoredComment, 16> Comments;
typedef SmallVector<StoredComment, 16>::iterator comment_iterator;
/// \brief Try to align all stashed comments.
void alignComments() {
unsigned MinColumn = 0;
unsigned MaxColumn = UINT_MAX;
comment_iterator Start = Comments.begin();
for (comment_iterator I = Comments.begin(), E = Comments.end(); I != E;
++I) {
if (I->MinColumn > MaxColumn || I->MaxColumn < MinColumn) {
alignComments(Start, I, MinColumn);
MinColumn = I->MinColumn;
MaxColumn = I->MaxColumn;
Start = I;
} else {
MinColumn = std::max(MinColumn, I->MinColumn);
MaxColumn = std::min(MaxColumn, I->MaxColumn);
}
}
alignComments(Start, Comments.end(), MinColumn);
Comments.clear();
}
/// \brief Put all the comments between \p I and \p E into \p Column.
void alignComments(comment_iterator I, comment_iterator E, unsigned Column) {
while (I != E) {
unsigned Spaces = I->Spaces + Column - I->MinColumn;
storeReplacement(I->Tok, std::string(I->NewLines, '\n') +
std::string(Spaces, ' '));
++I;
}
}
/// \brief Stores \p Text as the replacement for the whitespace in front of
/// \p Tok.
void storeReplacement(const FormatToken &Tok, const std::string Text) {
Replaces.insert(tooling::Replacement(SourceMgr, Tok.WhiteSpaceStart,
Tok.WhiteSpaceLength, Text));
}
SourceManager &SourceMgr;
tooling::Replacements Replaces;
};
/// \brief Returns if a token is an Objective-C selector name.
///
/// For example, "bar" is a selector name in [foo bar:(4 + 5)].
static bool isObjCSelectorName(const AnnotatedToken &Tok) {
return Tok.is(tok::identifier) && !Tok.Children.empty() &&
Tok.Children[0].is(tok::colon) &&
Tok.Children[0].Type == TT_ObjCMethodExpr;
}
class UnwrappedLineFormatter {
public:
UnwrappedLineFormatter(const FormatStyle &Style, SourceManager &SourceMgr,
const AnnotatedLine &Line, unsigned FirstIndent,
const AnnotatedToken &RootToken,
WhitespaceManager &Whitespaces, bool StructuralError)
: Style(Style), SourceMgr(SourceMgr), Line(Line),
FirstIndent(FirstIndent), RootToken(RootToken),
Whitespaces(Whitespaces) {
Parameters.PenaltyIndentLevel = 20;
Parameters.PenaltyExcessCharacter = 1000000;
}
/// \brief Formats an \c UnwrappedLine.
///
/// \returns The column after the last token in the last line of the
/// \c UnwrappedLine.
unsigned format() {
// Initialize state dependent on indent.
LineState State;
State.Column = FirstIndent;
State.NextToken = &RootToken;
State.Stack.push_back(ParenState(FirstIndent + 4, FirstIndent));
State.VariablePos = 0;
State.LineContainsContinuedForLoopSection = false;
DEBUG({
DebugTokenState(*State.NextToken);
});
// The first token has already been indented and thus consumed.
moveStateToNextToken(State);
// Start iterating at 1 as we have correctly formatted of Token #0 above.
while (State.NextToken != NULL) {
if (State.NextToken->Type == TT_ImplicitStringLiteral) {
// Calculating the column is important for aligning trailing comments.
// FIXME: This does not seem to happen in conjunction with escaped
// newlines. If it does, fix!
State.Column += State.NextToken->FormatTok.WhiteSpaceLength +
State.NextToken->FormatTok.TokenLength;
State.NextToken = State.NextToken->Children.empty()
? NULL : &State.NextToken->Children[0];
} else if (Line.Last->TotalLength <= getColumnLimit() - FirstIndent) {
addTokenToState(false, false, State);
} else {
unsigned NoBreak = calcPenalty(State, false, UINT_MAX);
unsigned Break = calcPenalty(State, true, NoBreak);
DEBUG({
if (Break < NoBreak)
llvm::errs() << "\n";
else
llvm::errs() << " ";
llvm::errs() << "<";
DebugPenalty(Break, Break < NoBreak);
llvm::errs() << "/";
DebugPenalty(NoBreak, !(Break < NoBreak));
llvm::errs() << "> ";
DebugTokenState(*State.NextToken);
});
addTokenToState(Break < NoBreak, false, State);
if (State.NextToken != NULL &&
State.NextToken->Parent->Type == TT_CtorInitializerColon) {
if (Style.ConstructorInitializerAllOnOneLineOrOnePerLine &&
Line.Last->TotalLength > getColumnLimit() - State.Column - 1)
State.Stack.back().BreakAfterComma = true;
}
}
}
DEBUG(llvm::errs() << "\n");
return State.Column;
}
private:
void DebugTokenState(const AnnotatedToken &AnnotatedTok) {
const Token &Tok = AnnotatedTok.FormatTok.Tok;
llvm::errs() << StringRef(SourceMgr.getCharacterData(Tok.getLocation()),
Tok.getLength());
llvm::errs();
}
void DebugPenalty(unsigned Penalty, bool Winner) {
llvm::errs().changeColor(Winner ? raw_ostream::GREEN : raw_ostream::RED);
if (Penalty == UINT_MAX)
llvm::errs() << "MAX";
else
llvm::errs() << Penalty;
llvm::errs().resetColor();
}
struct ParenState {
ParenState(unsigned Indent, unsigned LastSpace)
: Indent(Indent), LastSpace(LastSpace), AssignmentColumn(0),
FirstLessLess(0), BreakBeforeClosingBrace(false), QuestionColumn(0),
BreakAfterComma(false), HasMultiParameterLine(false) {
}
/// \brief The position to which a specific parenthesis level needs to be
/// indented.
unsigned Indent;
/// \brief The position of the last space on each level.
///
/// Used e.g. to break like:
/// functionCall(Parameter, otherCall(
/// OtherParameter));
unsigned LastSpace;
/// \brief This is the column of the first token after an assignment.
unsigned AssignmentColumn;
/// \brief The position the first "<<" operator encountered on each level.
///
/// Used to align "<<" operators. 0 if no such operator has been encountered
/// on a level.
unsigned FirstLessLess;
/// \brief Whether a newline needs to be inserted before the block's closing
/// brace.
///
/// We only want to insert a newline before the closing brace if there also
/// was a newline after the beginning left brace.
bool BreakBeforeClosingBrace;
/// \brief The column of a \c ? in a conditional expression;
unsigned QuestionColumn;
bool BreakAfterComma;
bool HasMultiParameterLine;
bool operator<(const ParenState &Other) const {
if (Indent != Other.Indent)
return Indent < Other.Indent;
if (LastSpace != Other.LastSpace)
return LastSpace < Other.LastSpace;
if (AssignmentColumn != Other.AssignmentColumn)
return AssignmentColumn < Other.AssignmentColumn;
if (FirstLessLess != Other.FirstLessLess)
return FirstLessLess < Other.FirstLessLess;
if (BreakBeforeClosingBrace != Other.BreakBeforeClosingBrace)
return BreakBeforeClosingBrace;
if (QuestionColumn != Other.QuestionColumn)
return QuestionColumn < Other.QuestionColumn;
if (BreakAfterComma != Other.BreakAfterComma)
return BreakAfterComma;
if (HasMultiParameterLine != Other.HasMultiParameterLine)
return HasMultiParameterLine;
return false;
}
};
/// \brief The current state when indenting a unwrapped line.
///
/// As the indenting tries different combinations this is copied by value.
struct LineState {
/// \brief The number of used columns in the current line.
unsigned Column;
/// \brief The token that needs to be next formatted.
const AnnotatedToken *NextToken;
/// \brief The column of the first variable name in a variable declaration.
///
/// Used to align further variables if necessary.
unsigned VariablePos;
/// \brief \c true if this line contains a continued for-loop section.
bool LineContainsContinuedForLoopSection;
/// \brief A stack keeping track of properties applying to parenthesis
/// levels.
std::vector<ParenState> Stack;
/// \brief Comparison operator to be able to used \c LineState in \c map.
bool operator<(const LineState &Other) const {
if (Other.NextToken != NextToken)
return Other.NextToken > NextToken;
if (Other.Column != Column)
return Other.Column > Column;
if (Other.VariablePos != VariablePos)
return Other.VariablePos < VariablePos;
if (Other.LineContainsContinuedForLoopSection !=
LineContainsContinuedForLoopSection)
return LineContainsContinuedForLoopSection;
return Other.Stack < Stack;
}
};
/// \brief Appends the next token to \p State and updates information
/// necessary for indentation.
///
/// Puts the token on the current line if \p Newline is \c true and adds a
/// line break and necessary indentation otherwise.
///
/// If \p DryRun is \c false, also creates and stores the required
/// \c Replacement.
void addTokenToState(bool Newline, bool DryRun, LineState &State) {
const AnnotatedToken &Current = *State.NextToken;
const AnnotatedToken &Previous = *State.NextToken->Parent;
assert(State.Stack.size());
unsigned ParenLevel = State.Stack.size() - 1;
if (Newline) {
unsigned WhitespaceStartColumn = State.Column;
if (Current.is(tok::r_brace)) {
State.Column = Line.Level * 2;
} else if (Current.is(tok::string_literal) &&
Previous.is(tok::string_literal)) {
State.Column = State.Column - Previous.FormatTok.TokenLength;
} else if (Current.is(tok::lessless) &&
State.Stack[ParenLevel].FirstLessLess != 0) {
State.Column = State.Stack[ParenLevel].FirstLessLess;
} else if (ParenLevel != 0 &&
(Previous.is(tok::equal) || Previous.is(tok::coloncolon) ||
Current.is(tok::period) || Current.is(tok::arrow) ||
Current.is(tok::question))) {
// Indent and extra 4 spaces after if we know the current expression is
// continued. Don't do that on the top level, as we already indent 4
// there.
State.Column = std::max(State.Stack.back().LastSpace,
State.Stack.back().Indent) + 4;
} else if (Current.Type == TT_ConditionalExpr) {
State.Column = State.Stack.back().QuestionColumn;
} else if (Previous.is(tok::comma) && State.VariablePos != 0 &&
((RootToken.is(tok::kw_for) && ParenLevel == 1) ||
ParenLevel == 0)) {
State.Column = State.VariablePos;
} else if (State.NextToken->Parent->ClosesTemplateDeclaration ||
Current.Type == TT_StartOfName) {
State.Column = State.Stack[ParenLevel].Indent - 4;
} else if (Previous.Type == TT_BinaryOperator &&
State.Stack.back().AssignmentColumn != 0) {
State.Column = State.Stack.back().AssignmentColumn;
} else {
State.Column = State.Stack[ParenLevel].Indent;
}
if (RootToken.is(tok::kw_for))
State.LineContainsContinuedForLoopSection = Previous.isNot(tok::semi);
if (!DryRun) {
if (!Line.InPPDirective)
Whitespaces.replaceWhitespace(Current, 1, State.Column,
WhitespaceStartColumn, Style);
else
Whitespaces.replacePPWhitespace(Current, 1, State.Column,
WhitespaceStartColumn, Style);
}
State.Stack[ParenLevel].LastSpace = State.Column;
if (Current.is(tok::colon) && Current.Type != TT_ConditionalExpr)
State.Stack[ParenLevel].Indent += 2;
} else {
if (Current.is(tok::equal) &&
(RootToken.is(tok::kw_for) || ParenLevel == 0))
State.VariablePos = State.Column - Previous.FormatTok.TokenLength;
unsigned Spaces = State.NextToken->SpaceRequiredBefore ? 1 : 0;
if (State.NextToken->Type == TT_LineComment)
Spaces = Style.SpacesBeforeTrailingComments;
if (!DryRun)
Whitespaces.replaceWhitespace(Current, 0, Spaces, State.Column, Style);
// FIXME: Do we need to do this for assignments nested in other
// expressions?
if (RootToken.isNot(tok::kw_for) && ParenLevel == 0 &&
(getPrecedence(Previous) == prec::Assignment ||
Previous.is(tok::kw_return)))
State.Stack.back().AssignmentColumn = State.Column + Spaces;
if (Previous.is(tok::l_paren) || Previous.is(tok::l_brace) ||
State.NextToken->Parent->Type == TT_TemplateOpener)
State.Stack[ParenLevel].Indent = State.Column + Spaces;
if (Current.getPreviousNoneComment() != NULL &&
Current.getPreviousNoneComment()->is(tok::comma) &&
Current.isNot(tok::comment))
State.Stack[ParenLevel].HasMultiParameterLine = true;
State.Column += Spaces;
if (Current.is(tok::l_paren) && Previous.is(tok::kw_if))
// Treat the condition inside an if as if it was a second function
// parameter, i.e. let nested calls have an indent of 4.
State.Stack.back().LastSpace = State.Column + 1; // 1 is length of "(".
else if (Previous.is(tok::comma) && ParenLevel != 0)
// Top-level spaces are exempt as that mostly leads to better results.
State.Stack.back().LastSpace = State.Column;
else if ((Previous.Type == TT_BinaryOperator ||
Previous.Type == TT_ConditionalExpr ||
Previous.Type == TT_CtorInitializerColon) &&
getPrecedence(Previous) != prec::Assignment)
State.Stack.back().LastSpace = State.Column;
else if (Previous.ParameterCount > 1 &&
(Previous.is(tok::l_paren) || Previous.is(tok::l_square) ||
Previous.Type == TT_TemplateOpener))
// If this function has multiple parameters, indent nested calls from
// the start of the first parameter.
State.Stack.back().LastSpace = State.Column;
}
// If we break after an {, we should also break before the corresponding }.
if (Newline && Previous.is(tok::l_brace))
State.Stack.back().BreakBeforeClosingBrace = true;
if (!Style.BinPackParameters && Newline) {
// If we are breaking after '(', '{', '<', this is not bin packing unless
// AllowAllParametersOfDeclarationOnNextLine is false.
if ((Previous.isNot(tok::l_paren) && Previous.isNot(tok::l_brace) &&
Previous.Type != TT_TemplateOpener) ||
(!Style.AllowAllParametersOfDeclarationOnNextLine &&
Line.MustBeDeclaration))
State.Stack.back().BreakAfterComma = true;
// Any break on this level means that the parent level has been broken
// and we need to avoid bin packing there.
for (unsigned i = 0, e = State.Stack.size() - 1; i != e; ++i) {
State.Stack[i].BreakAfterComma = true;
}
}
moveStateToNextToken(State);
}
/// \brief Mark the next token as consumed in \p State and modify its stacks
/// accordingly.
void moveStateToNextToken(LineState &State) {
const AnnotatedToken &Current = *State.NextToken;
assert(State.Stack.size());
if (Current.is(tok::lessless) && State.Stack.back().FirstLessLess == 0)
State.Stack.back().FirstLessLess = State.Column;
if (Current.is(tok::question))
State.Stack.back().QuestionColumn = State.Column;
// If we encounter an opening (, [, { or <, we add a level to our stacks to
// prepare for the following tokens.
if (Current.is(tok::l_paren) || Current.is(tok::l_square) ||
Current.is(tok::l_brace) ||
State.NextToken->Type == TT_TemplateOpener) {
unsigned NewIndent;
if (Current.is(tok::l_brace)) {
// FIXME: This does not work with nested static initializers.
// Implement a better handling for static initializers and similar
// constructs.
NewIndent = Line.Level * 2 + 2;
} else {
NewIndent = 4 + State.Stack.back().LastSpace;
}
State.Stack.push_back(ParenState(NewIndent,
State.Stack.back().LastSpace));
}
// If we encounter a closing ), ], } or >, we can remove a level from our
// stacks.
if (Current.is(tok::r_paren) || Current.is(tok::r_square) ||
(Current.is(tok::r_brace) && State.NextToken != &RootToken) ||
State.NextToken->Type == TT_TemplateCloser) {
State.Stack.pop_back();
}
if (State.NextToken->Children.empty())
State.NextToken = NULL;
else
State.NextToken = &State.NextToken->Children[0];
State.Column += Current.FormatTok.TokenLength;
}
unsigned getColumnLimit() {
return Style.ColumnLimit - (Line.InPPDirective ? 1 : 0);
}
/// \brief Calculate the number of lines needed to format the remaining part
/// of the unwrapped line.
///
/// Assumes the formatting so far has led to
/// the \c LineSta \p State. If \p NewLine is set, a new line will be
/// added after the previous token.
///
/// \param StopAt is used for optimization. If we can determine that we'll
/// definitely need at least \p StopAt additional lines, we already know of a
/// better solution.
unsigned calcPenalty(LineState State, bool NewLine, unsigned StopAt) {
// We are at the end of the unwrapped line, so we don't need any more lines.
if (State.NextToken == NULL)
return 0;
if (!NewLine && State.NextToken->MustBreakBefore)
return UINT_MAX;
if (NewLine && !State.NextToken->CanBreakBefore &&
!(State.NextToken->is(tok::r_brace) &&
State.Stack.back().BreakBeforeClosingBrace))
return UINT_MAX;
if (!NewLine && State.NextToken->is(tok::r_brace) &&
State.Stack.back().BreakBeforeClosingBrace)
return UINT_MAX;
if (!NewLine && State.NextToken->Parent->is(tok::semi) &&
State.LineContainsContinuedForLoopSection)
return UINT_MAX;
if (!NewLine && State.NextToken->Parent->is(tok::comma) &&
State.NextToken->isNot(tok::comment) &&
State.Stack.back().BreakAfterComma)
return UINT_MAX;
// Trying to insert a parameter on a new line if there are already more than
// one parameter on the current line is bin packing.
if (NewLine && State.NextToken->Parent->is(tok::comma) &&
State.Stack.back().HasMultiParameterLine && !Style.BinPackParameters)
return UINT_MAX;
if (!NewLine && (State.NextToken->Type == TT_CtorInitializerColon ||
(State.NextToken->Parent->ClosesTemplateDeclaration &&
State.Stack.size() == 1)))
return UINT_MAX;
unsigned CurrentPenalty = 0;
if (NewLine)
CurrentPenalty += Parameters.PenaltyIndentLevel * State.Stack.size() +
State.NextToken->SplitPenalty;
addTokenToState(NewLine, true, State);
// Exceeding column limit is bad, assign penalty.
if (State.Column > getColumnLimit()) {
unsigned ExcessCharacters = State.Column - getColumnLimit();
CurrentPenalty += Parameters.PenaltyExcessCharacter * ExcessCharacters;
}
if (StopAt <= CurrentPenalty)
return UINT_MAX;
StopAt -= CurrentPenalty;
StateMap::iterator I = Memory.find(State);
if (I != Memory.end()) {
// If this state has already been examined, we can safely return the
// previous result if we
// - have not hit the optimatization (and thus returned UINT_MAX) OR
// - are now computing for a smaller or equal StopAt.
unsigned SavedResult = I->second.first;
unsigned SavedStopAt = I->second.second;
if (SavedResult != UINT_MAX)
return SavedResult + CurrentPenalty;
else if (StopAt <= SavedStopAt)
return UINT_MAX;
}
unsigned NoBreak = calcPenalty(State, false, StopAt);
unsigned WithBreak = calcPenalty(State, true, std::min(StopAt, NoBreak));
unsigned Result = std::min(NoBreak, WithBreak);
// We have to store 'Result' without adding 'CurrentPenalty' as the latter
// can depend on 'NewLine'.
Memory[State] = std::pair<unsigned, unsigned>(Result, StopAt);
return Result == UINT_MAX ? UINT_MAX : Result + CurrentPenalty;
}
FormatStyle Style;
SourceManager &SourceMgr;
const AnnotatedLine &Line;
const unsigned FirstIndent;
const AnnotatedToken &RootToken;
WhitespaceManager &Whitespaces;
// A map from an indent state to a pair (Result, Used-StopAt).
typedef std::map<LineState, std::pair<unsigned, unsigned> > StateMap;
StateMap Memory;
OptimizationParameters Parameters;
};
/// \brief Determines extra information about the tokens comprising an
/// \c UnwrappedLine.
class TokenAnnotator {
public:
TokenAnnotator(const FormatStyle &Style, SourceManager &SourceMgr, Lexer &Lex,
AnnotatedLine &Line)
: Style(Style), SourceMgr(SourceMgr), Lex(Lex), Line(Line) {
}
/// \brief A parser that gathers additional information about tokens.
///
/// The \c TokenAnnotator tries to matches parenthesis and square brakets and
/// store a parenthesis levels. It also tries to resolve matching "<" and ">"
/// into template parameter lists.
class AnnotatingParser {
public:
AnnotatingParser(AnnotatedToken &RootToken)
: CurrentToken(&RootToken), KeywordVirtualFound(false),
ColonIsObjCMethodExpr(false), ColonIsForRangeExpr(false) {
}
/// \brief A helper class to manage AnnotatingParser::ColonIsObjCMethodExpr.
struct ObjCSelectorRAII {
AnnotatingParser &P;
bool ColonWasObjCMethodExpr;
ObjCSelectorRAII(AnnotatingParser &P)
: P(P), ColonWasObjCMethodExpr(P.ColonIsObjCMethodExpr) {
}
~ObjCSelectorRAII() { P.ColonIsObjCMethodExpr = ColonWasObjCMethodExpr; }
void markStart(AnnotatedToken &Left) {
P.ColonIsObjCMethodExpr = true;
Left.Type = TT_ObjCMethodExpr;
}
void markEnd(AnnotatedToken &Right) { Right.Type = TT_ObjCMethodExpr; }
};
bool parseAngle() {
if (CurrentToken == NULL)
return false;
AnnotatedToken *Left = CurrentToken->Parent;
while (CurrentToken != NULL) {
if (CurrentToken->is(tok::greater)) {
Left->MatchingParen = CurrentToken;
CurrentToken->MatchingParen = Left;
CurrentToken->Type = TT_TemplateCloser;
next();
return true;
}
if (CurrentToken->is(tok::r_paren) || CurrentToken->is(tok::r_square) ||
CurrentToken->is(tok::r_brace))
return false;
if (CurrentToken->is(tok::pipepipe) || CurrentToken->is(tok::ampamp) ||
CurrentToken->is(tok::question) || CurrentToken->is(tok::colon))
return false;
if (CurrentToken->is(tok::comma))
++Left->ParameterCount;
if (!consumeToken())
return false;
}
return false;
}
bool parseParens(bool LookForDecls = false) {
if (CurrentToken == NULL)
return false;
bool StartsObjCMethodExpr = false;
AnnotatedToken *Left = CurrentToken->Parent;
if (CurrentToken->is(tok::caret)) {
// ^( starts a block.
Left->Type = TT_ObjCBlockLParen;
} else if (AnnotatedToken *MaybeSel = Left->Parent) {
// @selector( starts a selector.
if (MaybeSel->isObjCAtKeyword(tok::objc_selector) && MaybeSel->Parent &&
MaybeSel->Parent->is(tok::at)) {
StartsObjCMethodExpr = true;
}
}
ObjCSelectorRAII objCSelector(*this);
if (StartsObjCMethodExpr)
objCSelector.markStart(*Left);
while (CurrentToken != NULL) {
// LookForDecls is set when "if (" has been seen. Check for
// 'identifier' '*' 'identifier' followed by not '=' -- this
// '*' has to be a binary operator but determineStarAmpUsage() will
// categorize it as an unary operator, so set the right type here.
if (LookForDecls && !CurrentToken->Children.empty()) {
AnnotatedToken &Prev = *CurrentToken->Parent;
AnnotatedToken &Next = CurrentToken->Children[0];
if (Prev.Parent->is(tok::identifier) &&
(Prev.is(tok::star) || Prev.is(tok::amp)) &&
CurrentToken->is(tok::identifier) && Next.isNot(tok::equal)) {
Prev.Type = TT_BinaryOperator;
LookForDecls = false;
}
}
if (CurrentToken->is(tok::r_paren)) {
Left->MatchingParen = CurrentToken;
CurrentToken->MatchingParen = Left;
if (StartsObjCMethodExpr)
objCSelector.markEnd(*CurrentToken);
next();
return true;
}
if (CurrentToken->is(tok::r_square) || CurrentToken->is(tok::r_brace))
return false;
if (CurrentToken->is(tok::comma))
++Left->ParameterCount;
if (!consumeToken())
return false;
}
return false;
}
bool parseSquare() {
if (!CurrentToken)
return false;
// A '[' could be an index subscript (after an indentifier or after
// ')' or ']'), or it could be the start of an Objective-C method
// expression.
AnnotatedToken *Left = CurrentToken->Parent;
bool StartsObjCMethodExpr =
!Left->Parent || Left->Parent->is(tok::colon) ||
Left->Parent->is(tok::l_square) || Left->Parent->is(tok::l_paren) ||
Left->Parent->is(tok::kw_return) || Left->Parent->is(tok::kw_throw) ||
getBinOpPrecedence(Left->Parent->FormatTok.Tok.getKind(), true,
true) > prec::Unknown;
ObjCSelectorRAII objCSelector(*this);
if (StartsObjCMethodExpr)
objCSelector.markStart(*Left);
while (CurrentToken != NULL) {
if (CurrentToken->is(tok::r_square)) {
if (!CurrentToken->Children.empty() &&
CurrentToken->Children[0].is(tok::l_paren)) {
// An ObjC method call can't be followed by an open parenthesis.
// FIXME: Do we incorrectly label ":" with this?
StartsObjCMethodExpr = false;
Left->Type = TT_Unknown;
}
if (StartsObjCMethodExpr)
objCSelector.markEnd(*CurrentToken);
Left->MatchingParen = CurrentToken;
CurrentToken->MatchingParen = Left;
next();
return true;
}
if (CurrentToken->is(tok::r_paren) || CurrentToken->is(tok::r_brace))
return false;
if (CurrentToken->is(tok::comma))
++Left->ParameterCount;
if (!consumeToken())
return false;
}
return false;
}
bool parseBrace() {
// Lines are fine to end with '{'.
if (CurrentToken == NULL)
return true;
AnnotatedToken *Left = CurrentToken->Parent;
while (CurrentToken != NULL) {
if (CurrentToken->is(tok::r_brace)) {
Left->MatchingParen = CurrentToken;
CurrentToken->MatchingParen = Left;
next();
return true;
}
if (CurrentToken->is(tok::r_paren) || CurrentToken->is(tok::r_square))
return false;
if (!consumeToken())
return false;
}
return true;
}
bool parseConditional() {
while (CurrentToken != NULL) {
if (CurrentToken->is(tok::colon)) {
CurrentToken->Type = TT_ConditionalExpr;
next();
return true;
}
if (!consumeToken())
return false;
}
return false;
}
bool parseTemplateDeclaration() {
if (CurrentToken != NULL && CurrentToken->is(tok::less)) {
CurrentToken->Type = TT_TemplateOpener;
next();
if (!parseAngle())
return false;
CurrentToken->Parent->ClosesTemplateDeclaration = true;
return true;
}
return false;
}
bool consumeToken() {
AnnotatedToken *Tok = CurrentToken;
next();
switch (Tok->FormatTok.Tok.getKind()) {
case tok::plus:
case tok::minus:
// At the start of the line, +/- specific ObjectiveC method
// declarations.
if (Tok->Parent == NULL)
Tok->Type = TT_ObjCMethodSpecifier;
break;
case tok::colon:
// Colons from ?: are handled in parseConditional().
if (Tok->Parent->is(tok::r_paren))
Tok->Type = TT_CtorInitializerColon;
else if (ColonIsObjCMethodExpr)
Tok->Type = TT_ObjCMethodExpr;
else if (ColonIsForRangeExpr)
Tok->Type = TT_RangeBasedForLoopColon;
break;
case tok::kw_if:
case tok::kw_while:
if (CurrentToken != NULL && CurrentToken->is(tok::l_paren)) {
next();
if (!parseParens(/*LookForDecls=*/ true))
return false;
}
break;
case tok::kw_for:
ColonIsForRangeExpr = true;
next();
if (!parseParens())
return false;
break;
case tok::l_paren:
if (!parseParens())
return false;
break;
case tok::l_square:
if (!parseSquare())
return false;
break;
case tok::l_brace:
if (!parseBrace())
return false;
break;
case tok::less:
if (parseAngle())
Tok->Type = TT_TemplateOpener;
else {
Tok->Type = TT_BinaryOperator;
CurrentToken = Tok;
next();
}
break;
case tok::r_paren:
case tok::r_square:
return false;
case tok::r_brace:
// Lines can start with '}'.
if (Tok->Parent != NULL)
return false;
break;
case tok::greater:
Tok->Type = TT_BinaryOperator;
break;
case tok::kw_operator:
if (CurrentToken != NULL && CurrentToken->is(tok::l_paren)) {
CurrentToken->Type = TT_OverloadedOperator;
next();
if (CurrentToken != NULL && CurrentToken->is(tok::r_paren)) {
CurrentToken->Type = TT_OverloadedOperator;
next();
}
} else {
while (CurrentToken != NULL && CurrentToken->isNot(tok::l_paren)) {
CurrentToken->Type = TT_OverloadedOperator;
next();
}
}
break;
case tok::question:
parseConditional();
break;
case tok::kw_template:
parseTemplateDeclaration();
break;
default:
break;
}
return true;
}
void parseIncludeDirective() {
next();
if (CurrentToken != NULL && CurrentToken->is(tok::less)) {
next();
while (CurrentToken != NULL) {
if (CurrentToken->isNot(tok::comment) ||
!CurrentToken->Children.empty())
CurrentToken->Type = TT_ImplicitStringLiteral;
next();
}
} else {
while (CurrentToken != NULL) {
next();
}
}
}
void parseWarningOrError() {
next();
// We still want to format the whitespace left of the first token of the
// warning or error.
next();
while (CurrentToken != NULL) {
CurrentToken->Type = TT_ImplicitStringLiteral;
next();
}
}
void parsePreprocessorDirective() {
next();
if (CurrentToken == NULL)
return;
// Hashes in the middle of a line can lead to any strange token
// sequence.
if (CurrentToken->FormatTok.Tok.getIdentifierInfo() == NULL)
return;
switch (
CurrentToken->FormatTok.Tok.getIdentifierInfo()->getPPKeywordID()) {
case tok::pp_include:
case tok::pp_import:
parseIncludeDirective();
break;
case tok::pp_error:
case tok::pp_warning:
parseWarningOrError();
break;
default:
break;
}
}
LineType parseLine() {
int PeriodsAndArrows = 0;
bool CanBeBuilderTypeStmt = true;
if (CurrentToken->is(tok::hash)) {
parsePreprocessorDirective();
return LT_PreprocessorDirective;
}
while (CurrentToken != NULL) {
if (CurrentToken->is(tok::kw_virtual))
KeywordVirtualFound = true;
if (CurrentToken->is(tok::period) || CurrentToken->is(tok::arrow))
++PeriodsAndArrows;
if (getPrecedence(*CurrentToken) > prec::Assignment &&
CurrentToken->isNot(tok::less) && CurrentToken->isNot(tok::greater))
CanBeBuilderTypeStmt = false;
if (!consumeToken())
return LT_Invalid;
}
if (KeywordVirtualFound)
return LT_VirtualFunctionDecl;
// Assume a builder-type call if there are 2 or more "." and "->".
if (PeriodsAndArrows >= 2 && CanBeBuilderTypeStmt)
return LT_BuilderTypeCall;
return LT_Other;
}
void next() {
if (CurrentToken != NULL && !CurrentToken->Children.empty())
CurrentToken = &CurrentToken->Children[0];
else
CurrentToken = NULL;
}
private:
AnnotatedToken *CurrentToken;
bool KeywordVirtualFound;
bool ColonIsObjCMethodExpr;
bool ColonIsForRangeExpr;
};
void calculateExtraInformation(AnnotatedToken &Current) {
Current.SpaceRequiredBefore = spaceRequiredBefore(Current);
if (Current.FormatTok.MustBreakBefore) {
Current.MustBreakBefore = true;
} else {
if (Current.Type == TT_LineComment) {
Current.MustBreakBefore = Current.FormatTok.NewlinesBefore > 0;
} else if ((Current.Parent->is(tok::comment) &&
Current.FormatTok.NewlinesBefore > 0) ||
(Current.is(tok::string_literal) &&
Current.Parent->is(tok::string_literal))) {
Current.MustBreakBefore = true;
} else {
Current.MustBreakBefore = false;
}
}
Current.CanBreakBefore = Current.MustBreakBefore || canBreakBefore(Current);
if (Current.MustBreakBefore)
Current.TotalLength = Current.Parent->TotalLength + Style.ColumnLimit;
else
Current.TotalLength =
Current.Parent->TotalLength + Current.FormatTok.TokenLength +
(Current.SpaceRequiredBefore ? 1 : 0);
// FIXME: Only calculate this if CanBreakBefore is true once static
// initializers etc. are sorted out.
Current.SplitPenalty = splitPenalty(Current);
if (!Current.Children.empty())
calculateExtraInformation(Current.Children[0]);
}
void annotate() {
AnnotatingParser Parser(Line.First);
Line.Type = Parser.parseLine();
if (Line.Type == LT_Invalid)
return;
bool LookForFunctionName = Line.MustBeDeclaration;
determineTokenTypes(Line.First, /*IsExpression=*/ false,
LookForFunctionName);
if (Line.First.Type == TT_ObjCMethodSpecifier)
Line.Type = LT_ObjCMethodDecl;
else if (Line.First.Type == TT_ObjCDecl)
Line.Type = LT_ObjCDecl;
else if (Line.First.Type == TT_ObjCProperty)
Line.Type = LT_ObjCProperty;
Line.First.SpaceRequiredBefore = true;
Line.First.MustBreakBefore = Line.First.FormatTok.MustBreakBefore;
Line.First.CanBreakBefore = Line.First.MustBreakBefore;
Line.First.TotalLength = Line.First.FormatTok.TokenLength;
if (!Line.First.Children.empty())
calculateExtraInformation(Line.First.Children[0]);
}
private:
/// \brief Calculate the penalty for splitting before \c Tok.
unsigned splitPenalty(const AnnotatedToken &Tok) {
const AnnotatedToken &Left = *Tok.Parent;
const AnnotatedToken &Right = Tok;
if (Left.is(tok::l_brace) && Right.isNot(tok::l_brace))
return 50;
if (Left.is(tok::equal) && Right.is(tok::l_brace))
return 150;
if (Left.is(tok::coloncolon))
return 500;
if (Left.Type == TT_RangeBasedForLoopColon)
return 5;
if (Right.is(tok::arrow) || Right.is(tok::period)) {
if (Left.is(tok::r_paren) && Line.Type == LT_BuilderTypeCall)
return 5; // Should be smaller than breaking at a nested comma.
return 150;
}
// In for-loops, prefer breaking at ',' and ';'.
if (Line.First.is(tok::kw_for) &&
(Left.isNot(tok::comma) && Left.isNot(tok::semi)))
return 20;
if (Left.is(tok::semi) || Left.is(tok::comma))
return 0;
// In Objective-C method expressions, prefer breaking before "param:" over
// breaking after it.
if (isObjCSelectorName(Right))
return 0;
if (Right.is(tok::colon) && Right.Type == TT_ObjCMethodExpr)
return 20;
if (Left.is(tok::l_paren))
return 20;
// FIXME: The penalty for a trailing "<" or "[" being higher than the
// penalty for a trainling "(" is a temporary workaround until we can
// properly avoid breaking in array subscripts or template parameters.
if (Left.is(tok::l_square) || Left.Type == TT_TemplateOpener)
return 50;
if (Left.Type == TT_ConditionalExpr)
return prec::Assignment;
prec::Level Level = getPrecedence(Left);
if (Level != prec::Unknown)
return Level;
return 3;
}
void determineTokenTypes(AnnotatedToken &Current, bool IsExpression,
bool LookForFunctionName) {
if (getPrecedence(Current) == prec::Assignment) {
IsExpression = true;
AnnotatedToken *Previous = Current.Parent;
while (Previous != NULL) {
if (Previous->Type == TT_BinaryOperator &&
(Previous->is(tok::star) || Previous->is(tok::amp))) {
Previous->Type = TT_PointerOrReference;
}
Previous = Previous->Parent;
}
}
if (Current.is(tok::kw_return) || Current.is(tok::kw_throw) ||
(Current.is(tok::l_paren) && !Line.MustBeDeclaration &&
(Current.Parent == NULL || Current.Parent->isNot(tok::kw_for))))
IsExpression = true;
if (Current.Type == TT_Unknown) {
if (LookForFunctionName && Current.is(tok::l_paren)) {
findFunctionName(&Current);
LookForFunctionName = false;
} else if (Current.is(tok::star) || Current.is(tok::amp)) {
Current.Type = determineStarAmpUsage(Current, IsExpression);
} else if (Current.is(tok::minus) || Current.is(tok::plus) ||
Current.is(tok::caret)) {
Current.Type = determinePlusMinusCaretUsage(Current);
} else if (Current.is(tok::minusminus) || Current.is(tok::plusplus)) {
Current.Type = determineIncrementUsage(Current);
} else if (Current.is(tok::exclaim)) {
Current.Type = TT_UnaryOperator;
} else if (isBinaryOperator(Current)) {
Current.Type = TT_BinaryOperator;
} else if (Current.is(tok::comment)) {
std::string Data(Lexer::getSpelling(Current.FormatTok.Tok, SourceMgr,
Lex.getLangOpts()));
if (StringRef(Data).startswith("//"))
Current.Type = TT_LineComment;
else
Current.Type = TT_BlockComment;
} else if (Current.is(tok::r_paren) &&
(Current.Parent->Type == TT_PointerOrReference ||
Current.Parent->Type == TT_TemplateCloser) &&
(Current.Children.empty() ||
(Current.Children[0].isNot(tok::equal) &&
Current.Children[0].isNot(tok::semi) &&
Current.Children[0].isNot(tok::l_brace)))) {
// FIXME: We need to get smarter and understand more cases of casts.
Current.Type = TT_CastRParen;
} else if (Current.is(tok::at) && Current.Children.size()) {
switch (Current.Children[0].FormatTok.Tok.getObjCKeywordID()) {
case tok::objc_interface:
case tok::objc_implementation:
case tok::objc_protocol:
Current.Type = TT_ObjCDecl;
break;
case tok::objc_property:
Current.Type = TT_ObjCProperty;
break;
default:
break;
}
}
}
if (!Current.Children.empty())
determineTokenTypes(Current.Children[0], IsExpression,
LookForFunctionName);
}
/// \brief Starting from \p Current, this searches backwards for an
/// identifier which could be the start of a function name and marks it.
void findFunctionName(AnnotatedToken *Current) {
AnnotatedToken *Parent = Current->Parent;
while (Parent != NULL && Parent->Parent != NULL) {
if (Parent->is(tok::identifier) &&
(Parent->Parent->is(tok::identifier) ||
Parent->Parent->Type == TT_PointerOrReference ||
Parent->Parent->Type == TT_TemplateCloser)) {
Parent->Type = TT_StartOfName;
break;
}
Parent = Parent->Parent;
}
}
/// \brief Returns the previous token ignoring comments.
const AnnotatedToken *getPreviousToken(const AnnotatedToken &Tok) {
const AnnotatedToken *PrevToken = Tok.Parent;
while (PrevToken != NULL && PrevToken->is(tok::comment))
PrevToken = PrevToken->Parent;
return PrevToken;
}
/// \brief Returns the next token ignoring comments.
const AnnotatedToken *getNextToken(const AnnotatedToken &Tok) {
if (Tok.Children.empty())
return NULL;
const AnnotatedToken *NextToken = &Tok.Children[0];
while (NextToken->is(tok::comment)) {
if (NextToken->Children.empty())
return NULL;
NextToken = &NextToken->Children[0];
}
return NextToken;
}
/// \brief Return the type of the given token assuming it is * or &.
TokenType
determineStarAmpUsage(const AnnotatedToken &Tok, bool IsExpression) {
const AnnotatedToken *PrevToken = getPreviousToken(Tok);
if (PrevToken == NULL)
return TT_UnaryOperator;
const AnnotatedToken *NextToken = getNextToken(Tok);
if (NextToken == NULL)
return TT_Unknown;
if (NextToken->is(tok::l_square) && NextToken->Type != TT_ObjCMethodExpr)
return TT_PointerOrReference;
if (PrevToken->is(tok::l_paren) || PrevToken->is(tok::l_square) ||
PrevToken->is(tok::l_brace) || PrevToken->is(tok::comma) ||
PrevToken->is(tok::kw_return) || PrevToken->is(tok::colon) ||
PrevToken->Type == TT_BinaryOperator ||
PrevToken->Type == TT_UnaryOperator || PrevToken->Type == TT_CastRParen)
return TT_UnaryOperator;
if (PrevToken->FormatTok.Tok.isLiteral() || PrevToken->is(tok::r_paren) ||
PrevToken->is(tok::r_square) || NextToken->FormatTok.Tok.isLiteral() ||
NextToken->is(tok::plus) || NextToken->is(tok::minus) ||
NextToken->is(tok::plusplus) || NextToken->is(tok::minusminus) ||
NextToken->is(tok::tilde) || NextToken->is(tok::exclaim) ||
NextToken->is(tok::l_paren) || NextToken->is(tok::l_square) ||
NextToken->is(tok::kw_alignof) || NextToken->is(tok::kw_sizeof))
return TT_BinaryOperator;
if (NextToken->is(tok::comma) || NextToken->is(tok::r_paren) ||
NextToken->is(tok::greater))
return TT_PointerOrReference;
// It is very unlikely that we are going to find a pointer or reference type
// definition on the RHS of an assignment.
if (IsExpression)
return TT_BinaryOperator;
return TT_PointerOrReference;
}
TokenType determinePlusMinusCaretUsage(const AnnotatedToken &Tok) {
const AnnotatedToken *PrevToken = getPreviousToken(Tok);
if (PrevToken == NULL)
return TT_UnaryOperator;
// Use heuristics to recognize unary operators.
if (PrevToken->is(tok::equal) || PrevToken->is(tok::l_paren) ||
PrevToken->is(tok::comma) || PrevToken->is(tok::l_square) ||
PrevToken->is(tok::question) || PrevToken->is(tok::colon) ||
PrevToken->is(tok::kw_return) || PrevToken->is(tok::kw_case) ||
PrevToken->is(tok::at) || PrevToken->is(tok::l_brace))
return TT_UnaryOperator;
// There can't be to consecutive binary operators.
if (PrevToken->Type == TT_BinaryOperator)
return TT_UnaryOperator;
// Fall back to marking the token as binary operator.
return TT_BinaryOperator;
}
/// \brief Determine whether ++/-- are pre- or post-increments/-decrements.
TokenType determineIncrementUsage(const AnnotatedToken &Tok) {
const AnnotatedToken *PrevToken = getPreviousToken(Tok);
if (PrevToken == NULL)
return TT_UnaryOperator;
if (PrevToken->is(tok::r_paren) || PrevToken->is(tok::r_square) ||
PrevToken->is(tok::identifier))
return TT_TrailingUnaryOperator;
return TT_UnaryOperator;
}
bool spaceRequiredBetween(const AnnotatedToken &Left,
const AnnotatedToken &Right) {
if (Right.is(tok::hashhash))
return Left.is(tok::hash);
if (Left.is(tok::hashhash) || Left.is(tok::hash))
return Right.is(tok::hash);
if (Right.is(tok::r_paren) || Right.is(tok::semi) || Right.is(tok::comma))
return false;
if (Right.is(tok::less) &&
(Left.is(tok::kw_template) ||
(Line.Type == LT_ObjCDecl && Style.ObjCSpaceBeforeProtocolList)))
return true;
if (Left.is(tok::arrow) || Right.is(tok::arrow))
return false;
if (Left.is(tok::exclaim) || Left.is(tok::tilde))
return false;
if (Left.is(tok::at) &&
(Right.is(tok::identifier) || Right.is(tok::string_literal) ||
Right.is(tok::char_constant) || Right.is(tok::numeric_constant) ||
Right.is(tok::l_paren) || Right.is(tok::l_brace) ||
Right.is(tok::kw_true) || Right.is(tok::kw_false)))
return false;
if (Left.is(tok::coloncolon))
return false;
if (Right.is(tok::coloncolon))
return Left.isNot(tok::identifier) && Left.isNot(tok::greater);
if (Left.is(tok::less) || Right.is(tok::greater) || Right.is(tok::less))
return false;
if (Right.is(tok::amp) || Right.is(tok::star))
return Left.FormatTok.Tok.isLiteral() ||
(Left.isNot(tok::star) && Left.isNot(tok::amp) &&
!Style.PointerAndReferenceBindToType);
if (Left.is(tok::amp) || Left.is(tok::star))
return Right.FormatTok.Tok.isLiteral() ||
Style.PointerAndReferenceBindToType;
if (Right.is(tok::star) && Left.is(tok::l_paren))
return false;
if (Left.is(tok::l_square) || Right.is(tok::r_square))
return false;
if (Right.is(tok::l_square) && Right.Type != TT_ObjCMethodExpr)
return false;
if (Left.is(tok::period) || Right.is(tok::period))
return false;
if (Left.is(tok::colon))
return Left.Type != TT_ObjCMethodExpr;
if (Right.is(tok::colon))
return Right.Type != TT_ObjCMethodExpr;
if (Left.is(tok::l_paren))
return false;
if (Right.is(tok::l_paren)) {
return Line.Type == LT_ObjCDecl || Left.is(tok::kw_if) ||
Left.is(tok::kw_for) || Left.is(tok::kw_while) ||
Left.is(tok::kw_switch) || Left.is(tok::kw_return) ||
Left.is(tok::kw_catch) || Left.is(tok::kw_new) ||
Left.is(tok::kw_delete);
}
if (Left.is(tok::at) &&
Right.FormatTok.Tok.getObjCKeywordID() != tok::objc_not_keyword)
return false;
if (Left.is(tok::l_brace) && Right.is(tok::r_brace))
return false;
return true;
}
bool spaceRequiredBefore(const AnnotatedToken &Tok) {
if (Line.Type == LT_ObjCMethodDecl) {
if (Tok.is(tok::identifier) && !Tok.Children.empty() &&
Tok.Children[0].is(tok::colon) && Tok.Parent->is(tok::identifier))
return true;
if (Tok.is(tok::colon))
return false;
if (Tok.Parent->Type == TT_ObjCMethodSpecifier)
return true;
if (Tok.Parent->is(tok::r_paren) && Tok.is(tok::identifier))
// Don't space between ')' and <id>
return false;
if (Tok.Parent->is(tok::colon) && Tok.is(tok::l_paren))
// Don't space between ':' and '('
return false;
}
if (Line.Type == LT_ObjCProperty &&
(Tok.is(tok::equal) || Tok.Parent->is(tok::equal)))
return false;
if (Tok.Parent->is(tok::comma))
return true;
if (Tok.Type == TT_CtorInitializerColon || Tok.Type == TT_ObjCBlockLParen)
return true;
if (Tok.Type == TT_OverloadedOperator)
return Tok.is(tok::identifier) || Tok.is(tok::kw_new) ||
Tok.is(tok::kw_delete) || Tok.is(tok::kw_bool);
if (Tok.Parent->Type == TT_OverloadedOperator)
return false;
if (Tok.is(tok::colon))
return Line.First.isNot(tok::kw_case) && !Tok.Children.empty() &&
Tok.Type != TT_ObjCMethodExpr;
if (Tok.Parent->Type == TT_UnaryOperator ||
Tok.Parent->Type == TT_CastRParen)
return false;
if (Tok.Type == TT_UnaryOperator)
return Tok.Parent->isNot(tok::l_paren) &&
Tok.Parent->isNot(tok::l_square) && Tok.Parent->isNot(tok::at) &&
(Tok.Parent->isNot(tok::colon) ||
Tok.Parent->Type != TT_ObjCMethodExpr);
if (Tok.Parent->is(tok::greater) && Tok.is(tok::greater)) {
return Tok.Type == TT_TemplateCloser && Tok.Parent->Type ==
TT_TemplateCloser && Style.SplitTemplateClosingGreater;
}
if (Tok.Type == TT_BinaryOperator || Tok.Parent->Type == TT_BinaryOperator)
return true;
if (Tok.Parent->Type == TT_TemplateCloser && Tok.is(tok::l_paren))
return false;
if (Tok.is(tok::less) && Line.First.is(tok::hash))
return true;
if (Tok.Type == TT_TrailingUnaryOperator)
return false;
return spaceRequiredBetween(*Tok.Parent, Tok);
}
bool canBreakBefore(const AnnotatedToken &Right) {
const AnnotatedToken &Left = *Right.Parent;
if (Line.Type == LT_ObjCMethodDecl) {
if (Right.is(tok::identifier) && !Right.Children.empty() &&
Right.Children[0].is(tok::colon) && Left.is(tok::identifier))
return true;
if (Right.is(tok::identifier) && Left.is(tok::l_paren) &&
Left.Parent->is(tok::colon))
// Don't break this identifier as ':' or identifier
// before it will break.
return false;
if (Right.is(tok::colon) && Left.is(tok::identifier) &&
Left.CanBreakBefore)
// Don't break at ':' if identifier before it can beak.
return false;
}
if (Right.Type == TT_StartOfName && Style.AllowReturnTypeOnItsOwnLine)
return true;
if (Right.is(tok::colon) && Right.Type == TT_ObjCMethodExpr)
return false;
if (Left.is(tok::colon) && Left.Type == TT_ObjCMethodExpr)
return true;
if (isObjCSelectorName(Right))
return true;
if (Left.ClosesTemplateDeclaration)
return true;
if (Right.Type == TT_ConditionalExpr || Right.is(tok::question))
return true;
if (Left.Type == TT_RangeBasedForLoopColon)
return true;
if (Left.Type == TT_PointerOrReference || Left.Type == TT_TemplateCloser ||
Left.Type == TT_UnaryOperator || Left.Type == TT_ConditionalExpr ||
Left.is(tok::question))
return false;
if (Left.is(tok::equal) && Line.Type == LT_VirtualFunctionDecl)
return false;
if (Right.Type == TT_LineComment)
// We rely on MustBreakBefore being set correctly here as we should not
// change the "binding" behavior of a comment.
return false;
// Allow breaking after a trailing 'const', e.g. after a method declaration,
// unless it is follow by ';', '{' or '='.
if (Left.is(tok::kw_const) && Left.Parent != NULL &&
Left.Parent->is(tok::r_paren))
return Right.isNot(tok::l_brace) && Right.isNot(tok::semi) &&
Right.isNot(tok::equal);
// We only break before r_brace if there was a corresponding break before
// the l_brace, which is tracked by BreakBeforeClosingBrace.
if (Right.is(tok::r_brace))
return false;
if (Right.is(tok::r_paren) || Right.is(tok::greater))
return false;
return (isBinaryOperator(Left) && Left.isNot(tok::lessless)) ||
Left.is(tok::comma) || Right.is(tok::lessless) ||
Right.is(tok::arrow) || Right.is(tok::period) ||
Right.is(tok::colon) || Left.is(tok::coloncolon) ||
Left.is(tok::semi) || Left.is(tok::l_brace) ||
(Left.is(tok::r_paren) && Left.Type != TT_CastRParen &&
Right.is(tok::identifier)) ||
(Left.is(tok::l_paren) && !Right.is(tok::r_paren)) ||
(Left.is(tok::l_square) && !Right.is(tok::r_square));
}
FormatStyle Style;
SourceManager &SourceMgr;
Lexer &Lex;
AnnotatedLine &Line;
};
class LexerBasedFormatTokenSource : public FormatTokenSource {
public:
LexerBasedFormatTokenSource(Lexer &Lex, SourceManager &SourceMgr)
: GreaterStashed(false), Lex(Lex), SourceMgr(SourceMgr),
IdentTable(Lex.getLangOpts()) {
Lex.SetKeepWhitespaceMode(true);
}
virtual FormatToken getNextToken() {
if (GreaterStashed) {
FormatTok.NewlinesBefore = 0;
FormatTok.WhiteSpaceStart =
FormatTok.Tok.getLocation().getLocWithOffset(1);
FormatTok.WhiteSpaceLength = 0;
GreaterStashed = false;
return FormatTok;
}
FormatTok = FormatToken();
Lex.LexFromRawLexer(FormatTok.Tok);
StringRef Text = rawTokenText(FormatTok.Tok);
FormatTok.WhiteSpaceStart = FormatTok.Tok.getLocation();
if (SourceMgr.getFileOffset(FormatTok.WhiteSpaceStart) == 0)
FormatTok.IsFirst = true;
// Consume and record whitespace until we find a significant token.
while (FormatTok.Tok.is(tok::unknown)) {
FormatTok.NewlinesBefore += Text.count('\n');
FormatTok.HasUnescapedNewline =
Text.count("\\\n") != FormatTok.NewlinesBefore;
FormatTok.WhiteSpaceLength += FormatTok.Tok.getLength();
if (FormatTok.Tok.is(tok::eof))
return FormatTok;
Lex.LexFromRawLexer(FormatTok.Tok);
Text = rawTokenText(FormatTok.Tok);
}
// Now FormatTok is the next non-whitespace token.
FormatTok.TokenLength = Text.size();
// In case the token starts with escaped newlines, we want to
// take them into account as whitespace - this pattern is quite frequent
// in macro definitions.
// FIXME: What do we want to do with other escaped spaces, and escaped
// spaces or newlines in the middle of tokens?
// FIXME: Add a more explicit test.
unsigned i = 0;
while (i + 1 < Text.size() && Text[i] == '\\' && Text[i + 1] == '\n') {
// FIXME: ++FormatTok.NewlinesBefore is missing...
FormatTok.WhiteSpaceLength += 2;
FormatTok.TokenLength -= 2;
i += 2;
}
if (FormatTok.Tok.is(tok::raw_identifier)) {
IdentifierInfo &Info = IdentTable.get(Text);
FormatTok.Tok.setIdentifierInfo(&Info);
FormatTok.Tok.setKind(Info.getTokenID());
}
if (FormatTok.Tok.is(tok::greatergreater)) {
FormatTok.Tok.setKind(tok::greater);
GreaterStashed = true;
}
return FormatTok;
}
private:
FormatToken FormatTok;
bool GreaterStashed;
Lexer &Lex;
SourceManager &SourceMgr;
IdentifierTable IdentTable;
/// Returns the text of \c FormatTok.
StringRef rawTokenText(Token &Tok) {
return StringRef(SourceMgr.getCharacterData(Tok.getLocation()),
Tok.getLength());
}
};
class Formatter : public UnwrappedLineConsumer {
public:
Formatter(DiagnosticsEngine &Diag, const FormatStyle &Style, Lexer &Lex,
SourceManager &SourceMgr,
const std::vector<CharSourceRange> &Ranges)
: Diag(Diag), Style(Style), Lex(Lex), SourceMgr(SourceMgr),
Whitespaces(SourceMgr), Ranges(Ranges) {
}
virtual ~Formatter() {}
tooling::Replacements format() {
LexerBasedFormatTokenSource Tokens(Lex, SourceMgr);
UnwrappedLineParser Parser(Diag, Style, Tokens, *this);
StructuralError = Parser.parse();
unsigned PreviousEndOfLineColumn = 0;
for (unsigned i = 0, e = AnnotatedLines.size(); i != e; ++i) {
TokenAnnotator Annotator(Style, SourceMgr, Lex, AnnotatedLines[i]);
Annotator.annotate();
}
for (std::vector<AnnotatedLine>::iterator I = AnnotatedLines.begin(),
E = AnnotatedLines.end();
I != E; ++I) {
const AnnotatedLine &TheLine = *I;
if (touchesRanges(TheLine) && TheLine.Type != LT_Invalid) {
unsigned Indent =
formatFirstToken(TheLine.First, TheLine.Level,
TheLine.InPPDirective, PreviousEndOfLineColumn);
tryFitMultipleLinesInOne(Indent, I, E);
UnwrappedLineFormatter Formatter(Style, SourceMgr, TheLine, Indent,
TheLine.First, Whitespaces,
StructuralError);
PreviousEndOfLineColumn = Formatter.format();
} else {
// If we did not reformat this unwrapped line, the column at the end of
// the last token is unchanged - thus, we can calculate the end of the
// last token, and return the result.
PreviousEndOfLineColumn =
SourceMgr.getSpellingColumnNumber(
TheLine.Last->FormatTok.Tok.getLocation()) +
Lex.MeasureTokenLength(TheLine.Last->FormatTok.Tok.getLocation(),
SourceMgr, Lex.getLangOpts()) - 1;
}
}
return Whitespaces.generateReplacements();
}
private:
/// \brief Tries to merge lines into one.
///
/// This will change \c Line and \c AnnotatedLine to contain the merged line,
/// if possible; note that \c I will be incremented when lines are merged.
///
/// Returns whether the resulting \c Line can fit in a single line.
void tryFitMultipleLinesInOne(unsigned Indent,
std::vector<AnnotatedLine>::iterator &I,
std::vector<AnnotatedLine>::iterator E) {
unsigned Limit = Style.ColumnLimit - (I->InPPDirective ? 1 : 0) - Indent;
// We can never merge stuff if there are trailing line comments.
if (I->Last->Type == TT_LineComment)
return;
// Check whether the UnwrappedLine can be put onto a single line. If
// so, this is bound to be the optimal solution (by definition) and we
// don't need to analyze the entire solution space.
if (I->Last->TotalLength > Limit)
return;
Limit -= I->Last->TotalLength;
if (I + 1 == E || (I + 1)->Type == LT_Invalid)
return;
if (I->Last->is(tok::l_brace)) {
tryMergeSimpleBlock(I, E, Limit);
} else if (I->First.is(tok::kw_if)) {
tryMergeSimpleIf(I, E, Limit);
} else if (I->InPPDirective && (I->First.FormatTok.HasUnescapedNewline ||
I->First.FormatTok.IsFirst)) {
tryMergeSimplePPDirective(I, E, Limit);
}
return;
}
void tryMergeSimplePPDirective(std::vector<AnnotatedLine>::iterator &I,
std::vector<AnnotatedLine>::iterator E,
unsigned Limit) {
AnnotatedLine &Line = *I;
if (!(I + 1)->InPPDirective || (I + 1)->First.FormatTok.HasUnescapedNewline)
return;
if (I + 2 != E && (I + 2)->InPPDirective &&
!(I + 2)->First.FormatTok.HasUnescapedNewline)
return;
if (1 + (I + 1)->Last->TotalLength > Limit)
return;
join(Line, *(++I));
}
void tryMergeSimpleIf(std::vector<AnnotatedLine>::iterator &I,
std::vector<AnnotatedLine>::iterator E,
unsigned Limit) {
if (!Style.AllowShortIfStatementsOnASingleLine)
return;
if ((I + 1)->InPPDirective != I->InPPDirective ||
((I + 1)->InPPDirective &&
(I + 1)->First.FormatTok.HasUnescapedNewline))
return;
AnnotatedLine &Line = *I;
if (Line.Last->isNot(tok::r_paren))
return;
if (1 + (I + 1)->Last->TotalLength > Limit)
return;
if ((I + 1)->First.is(tok::kw_if) || (I + 1)->First.Type == TT_LineComment)
return;
// Only inline simple if's (no nested if or else).
if (I + 2 != E && (I + 2)->First.is(tok::kw_else))
return;
join(Line, *(++I));
}
void tryMergeSimpleBlock(std::vector<AnnotatedLine>::iterator &I,
std::vector<AnnotatedLine>::iterator E,
unsigned Limit) {
// First, check that the current line allows merging. This is the case if
// we're not in a control flow statement and the last token is an opening
// brace.
AnnotatedLine &Line = *I;
bool AllowedTokens =
Line.First.isNot(tok::kw_if) && Line.First.isNot(tok::kw_while) &&
Line.First.isNot(tok::kw_do) && Line.First.isNot(tok::r_brace) &&
Line.First.isNot(tok::kw_else) && Line.First.isNot(tok::kw_try) &&
Line.First.isNot(tok::kw_catch) && Line.First.isNot(tok::kw_for) &&
// This gets rid of all ObjC @ keywords and methods.
Line.First.isNot(tok::at) && Line.First.isNot(tok::minus) &&
Line.First.isNot(tok::plus);
if (!AllowedTokens)
return;
AnnotatedToken *Tok = &(I + 1)->First;
if (Tok->Children.empty() && Tok->is(tok::r_brace) &&
!Tok->MustBreakBefore && Tok->TotalLength <= Limit) {
Tok->SpaceRequiredBefore = false;
join(Line, *(I + 1));
I += 1;
} else {
// Check that we still have three lines and they fit into the limit.
if (I + 2 == E || (I + 2)->Type == LT_Invalid ||
!nextTwoLinesFitInto(I, Limit))
return;
// Second, check that the next line does not contain any braces - if it
// does, readability declines when putting it into a single line.
if ((I + 1)->Last->Type == TT_LineComment || Tok->MustBreakBefore)
return;
do {
if (Tok->is(tok::l_brace) || Tok->is(tok::r_brace))
return;
Tok = Tok->Children.empty() ? NULL : &Tok->Children.back();
} while (Tok != NULL);
// Last, check that the third line contains a single closing brace.
Tok = &(I + 2)->First;
if (!Tok->Children.empty() || Tok->isNot(tok::r_brace) ||
Tok->MustBreakBefore)
return;
join(Line, *(I + 1));
join(Line, *(I + 2));
I += 2;
}
}
bool nextTwoLinesFitInto(std::vector<AnnotatedLine>::iterator I,
unsigned Limit) {
return 1 + (I + 1)->Last->TotalLength + 1 + (I + 2)->Last->TotalLength <=
Limit;
}
void join(AnnotatedLine &A, const AnnotatedLine &B) {
A.Last->Children.push_back(B.First);
while (!A.Last->Children.empty()) {
A.Last->Children[0].Parent = A.Last;
A.Last = &A.Last->Children[0];
}
}
bool touchesRanges(const AnnotatedLine &TheLine) {
const FormatToken *First = &TheLine.First.FormatTok;
const FormatToken *Last = &TheLine.Last->FormatTok;
CharSourceRange LineRange = CharSourceRange::getTokenRange(
First->Tok.getLocation(), Last->Tok.getLocation());
for (unsigned i = 0, e = Ranges.size(); i != e; ++i) {
if (!SourceMgr.isBeforeInTranslationUnit(LineRange.getEnd(),
Ranges[i].getBegin()) &&
!SourceMgr.isBeforeInTranslationUnit(Ranges[i].getEnd(),
LineRange.getBegin()))
return true;
}
return false;
}
virtual void consumeUnwrappedLine(const UnwrappedLine &TheLine) {
AnnotatedLines.push_back(AnnotatedLine(TheLine));
}
/// \brief Add a new line and the required indent before the first Token
/// of the \c UnwrappedLine if there was no structural parsing error.
/// Returns the indent level of the \c UnwrappedLine.
unsigned formatFirstToken(const AnnotatedToken &RootToken, unsigned Level,
bool InPPDirective,
unsigned PreviousEndOfLineColumn) {
const FormatToken &Tok = RootToken.FormatTok;
if (!Tok.WhiteSpaceStart.isValid() || StructuralError)
return SourceMgr.getSpellingColumnNumber(Tok.Tok.getLocation()) - 1;
unsigned Newlines =
std::min(Tok.NewlinesBefore, Style.MaxEmptyLinesToKeep + 1);
if (Newlines == 0 && !Tok.IsFirst)
Newlines = 1;
unsigned Indent = Level * 2;
bool IsAccessModifier = false;
if (RootToken.is(tok::kw_public) || RootToken.is(tok::kw_protected) ||
RootToken.is(tok::kw_private))
IsAccessModifier = true;
else if (RootToken.is(tok::at) && !RootToken.Children.empty() &&
(RootToken.Children[0].isObjCAtKeyword(tok::objc_public) ||
RootToken.Children[0].isObjCAtKeyword(tok::objc_protected) ||
RootToken.Children[0].isObjCAtKeyword(tok::objc_package) ||
RootToken.Children[0].isObjCAtKeyword(tok::objc_private)))
IsAccessModifier = true;
if (IsAccessModifier &&
static_cast<int>(Indent) + Style.AccessModifierOffset >= 0)
Indent += Style.AccessModifierOffset;
if (!InPPDirective || Tok.HasUnescapedNewline) {
Whitespaces.replaceWhitespace(RootToken, Newlines, Indent, 0, Style);
} else {
Whitespaces.replacePPWhitespace(RootToken, Newlines, Indent,
PreviousEndOfLineColumn, Style);
}
return Indent;
}
DiagnosticsEngine &Diag;
FormatStyle Style;
Lexer &Lex;
SourceManager &SourceMgr;
WhitespaceManager Whitespaces;
std::vector<CharSourceRange> Ranges;
std::vector<AnnotatedLine> AnnotatedLines;
bool StructuralError;
};
tooling::Replacements
reformat(const FormatStyle &Style, Lexer &Lex, SourceManager &SourceMgr,
std::vector<CharSourceRange> Ranges, DiagnosticConsumer *DiagClient) {
IntrusiveRefCntPtr<DiagnosticOptions> DiagOpts = new DiagnosticOptions();
OwningPtr<DiagnosticConsumer> DiagPrinter;
if (DiagClient == 0) {
DiagPrinter.reset(new TextDiagnosticPrinter(llvm::errs(), &*DiagOpts));
DiagPrinter->BeginSourceFile(Lex.getLangOpts(), Lex.getPP());
DiagClient = DiagPrinter.get();
}
DiagnosticsEngine Diagnostics(
IntrusiveRefCntPtr<DiagnosticIDs>(new DiagnosticIDs()), &*DiagOpts,
DiagClient, false);
Diagnostics.setSourceManager(&SourceMgr);
Formatter formatter(Diagnostics, Style, Lex, SourceMgr, Ranges);
return formatter.format();
}
LangOptions getFormattingLangOpts() {
LangOptions LangOpts;
LangOpts.CPlusPlus = 1;
LangOpts.CPlusPlus11 = 1;
LangOpts.Bool = 1;
LangOpts.ObjC1 = 1;
LangOpts.ObjC2 = 1;
return LangOpts;
}
} // namespace format
} // namespace clang