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https://github.com/WinampDesktop/winamp.git
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682 lines
18 KiB
C++
682 lines
18 KiB
C++
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#include "filenameMetadata.h"
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#include "metadata.h"
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#include "stl/stringUtils.h"
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#include "macros.h"
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#include <functional>
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#include <algorithm>
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#include <string>
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#include <list>
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#include <assert.h>
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using namespace std;
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using namespace uniString;
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using namespace stringUtil;
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/*
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Overview of how it works:
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The setPattern() method looks at the pattern string and builds a stack of parseState objects.
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Each of these objects are responsible for finding their associated pattern within a text range.
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parsing is done right to left.
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the parseState_optional object is used to encapsulate other state objects that are
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optional (bracketed by [] in the pattern).
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*/
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class filenameMetadata::impl
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{
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// to make unicode compatibility easier, we're just going to store things as utf32
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utf32 m_pattern;
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utf32 m_data;
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// put the map will be in utf 8
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typedef map<utf8,utf8> tokenMap_t;
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tokenMap_t m_tokens;
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class parseState;
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typedef list<parseState*> parseStack_t;
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parseStack_t m_parseStack;
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static void clearparseStack(parseStack_t &ps) throw()
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{
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while (!ps.empty())
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{
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delete ps.back();
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ps.pop_back();
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}
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}
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void clearparseStack() throw() { clearparseStack(m_parseStack); }
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///////////// parse states //////////////////////////
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class parseState // virtual base
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{
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public:
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typedef utf32::const_reverse_iterator range_e;
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typedef pair<range_e, range_e> range_t;
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virtual ~parseState() throw() {}
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virtual range_t findRange(range_e rbegin, range_e rend) throw() { return make_pair(rbegin, rend); }
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virtual void setFromRange(range_e /*rbegin*/, range_e /*rend*/) throw() {}
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virtual void reportValue(tokenMap_t &/*tm*/) const throw() {}
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virtual utf8 describe() const throw() = 0; // for diagnostics
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virtual void reset() throw() {}
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virtual bool optional() const throw() { return false; }
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virtual bool finite() const throw() { return false; } // fixed width match
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};
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class parseState_optional: public parseState
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{
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parseStack_t m_parseStack;
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public:
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parseState_optional(){}
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~parseState_optional() throw() { clearparseStack(m_parseStack); }
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parseStack_t* stack() throw() { return &m_parseStack; }
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virtual bool optional() const throw() { return true; }
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virtual void reset() throw()
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{
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for_each(m_parseStack.begin(), m_parseStack.end(), mem_fun(&parseState::reset));
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}
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virtual utf8 describe() const throw()
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{
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utf8 result("[");
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for (parseStack_t::const_iterator i = m_parseStack.begin(); i != m_parseStack.end(); ++i)
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{
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result += (*i)->describe();
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}
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result = result + utf8("]");
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return result;
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}
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virtual range_t findRange(range_e rbegin,range_e rend) throw()
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{
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const range_t NOTFOUND(make_pair(rend, rend));
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range_t result;
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reset();
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if (m_parseStack.empty())
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{
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return NOTFOUND;
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}
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parseStack_t::reverse_iterator s_cur = m_parseStack.rbegin();
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parseStack_t::reverse_iterator s_nxt = s_cur;
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++s_nxt;
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range_e data_start = rbegin;
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range_e data_end = rend;
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range_e last_restart = rbegin;
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bool first(true);
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while (s_cur != m_parseStack.rend())
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{
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if (data_start == data_end)
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{
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reset();
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return NOTFOUND;
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}
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range_t curR(NOTFOUND);
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range_t nxtR(NOTFOUND);
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curR = (*s_cur)->findRange(data_start,data_end);
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if (curR.first == data_end)
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{
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reset();
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return NOTFOUND;
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}
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if ((!first) && (curR.first != data_start))
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{
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// must abut. Try moving forward again
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reset();
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s_cur = m_parseStack.rbegin();
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s_nxt = s_cur;
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++s_nxt;
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++last_restart;
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data_start = last_restart;
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first = true;
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continue;
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}
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if (first)
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{
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result.first = curR.first;
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}
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first = false;
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// don't do this if we have a single character state followed
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// by anything (in particular, a string which eats all
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if (curR.first + 1 != curR.second)
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{
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if (s_nxt != m_parseStack.rend())
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{
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nxtR = (*s_nxt)->findRange(data_start,data_end);
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}
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if (nxtR.first < curR.second)
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{
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curR.second = nxtR.first;
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}
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}
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(*s_cur)->setFromRange(curR.first,curR.second);
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s_cur = s_nxt;
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if (s_nxt != m_parseStack.rend())
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{
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++s_nxt;
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}
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data_start = curR.second;
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}
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result.second = data_start;
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return result;
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}
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virtual void setFromRange(utf32::const_reverse_iterator rbegin, utf32::const_reverse_iterator rend) throw()
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{
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findRange(rbegin, rend); // resets to restricted range if necessary
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}
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virtual void reportValue(tokenMap_t &tm) const throw()
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{
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for (parseStack_t::const_iterator i = m_parseStack.begin(); i != m_parseStack.end(); ++i)
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{
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(*i)->reportValue(tm);
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}
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}
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virtual bool finite() const throw()
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{
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bool result = true;
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for (parseStack_t::const_iterator i = m_parseStack.begin(); i != m_parseStack.end(); ++i)
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{
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result &= (*i)->finite();
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}
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return result;
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}
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};
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class parseState_char: public parseState
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{
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utf32::value_type m_char;
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public:
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explicit parseState_char(utf32::value_type c) : m_char(c){}
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virtual pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator>
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findRange(utf32::const_reverse_iterator rbegin,utf32::const_reverse_iterator rend) throw()
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{
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for (utf32::const_reverse_iterator i = rbegin; i != rend; ++i)
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{
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if ((*i) == m_char)
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{
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return make_pair(i, i + 1);
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}
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}
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return make_pair(rend,rend);
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}
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virtual utf8 describe() const throw()
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{
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utf32 u32; u32.push_back(m_char);
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return u32.toUtf8();
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}
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virtual bool finite() const throw() { return true; }
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};
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class parseState_stringSymbol: public parseState
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{
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utf8 m_symbolName; // can be empty for any string
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utf32 m_value;
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public:
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parseState_stringSymbol() throw(){}
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explicit parseState_stringSymbol(const string &s) throw() : m_symbolName(s){}
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~parseState_stringSymbol() throw(){}
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void reset() throw() { m_value.clear(); }
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void setFromRange(utf32::const_reverse_iterator rbegin,utf32::const_reverse_iterator rend) throw()
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{
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if (!m_symbolName.empty())
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{
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m_value.clear();
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m_value.insert(m_value.begin(),rbegin,rend);
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reverse(m_value.begin(),m_value.end());
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m_value = stripWhitespace(m_value);
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}
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}
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virtual void reportValue(tokenMap_t &tm) const throw()
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{
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if (!m_symbolName.empty() && !m_value.empty())
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{
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tm[m_symbolName] = m_value.toUtf8();
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}
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}
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virtual utf8 describe() const throw()
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{
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if (m_symbolName.empty()) return utf8("*");
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return utf8("%") + m_symbolName;
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}
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};
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class parseState_digits: public parseState
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{
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public:
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parseState_digits() throw(){}
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virtual range_t findRange(range_e rbegin,range_e rend) throw()
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{
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range_t result(make_pair(rend,rend));
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bool got_start = false;
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for (utf32::const_reverse_iterator i = rbegin; i != rend; ++i)
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{
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if (uniString::is_a_number(*i))
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{
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if (!got_start)
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{
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got_start = true;
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result.first = i;
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}
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}
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else
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{
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if (got_start)
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{
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result.second = i;
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return result;
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}
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}
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}
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return result;
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}
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virtual utf8 describe() const throw() { return utf8("%#"); }
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};
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class parseState_year: public parseState
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{
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utf32 m_value;
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public:
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parseState_year() throw(){}
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~parseState_year() throw(){}
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void reset() throw() { m_value.clear(); }
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virtual pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator>
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findRange(utf32::const_reverse_iterator rbegin,utf32::const_reverse_iterator rend) throw()
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{
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int count = 4;
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pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator> result(make_pair(rend,rend));
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bool got_start = false;
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for (utf32::const_reverse_iterator i = rbegin; i != rend; ++i)
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{
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if (uniString::is_a_number(*i))
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{
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if (!got_start)
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{
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got_start = true;
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result.first = i;
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}
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count -= 1;
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if (count == 0)
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{
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result.second = ++i;
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return result;
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}
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}
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else
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{
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if (got_start)
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{
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got_start = false;
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result.first = rend;
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}
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}
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}
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return make_pair(rend,rend);
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}
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void setFromRange(utf32::const_reverse_iterator rbegin,utf32::const_reverse_iterator rend) throw()
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{
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m_value.clear();
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m_value.insert(m_value.begin(),rbegin,rend);
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reverse(m_value.begin(),m_value.end());
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}
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virtual void reportValue(tokenMap_t &tm) const throw()
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{
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if (!m_value.empty())
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{
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tm[utf8(metadata::YEAR())] = m_value.toUtf8();
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}
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}
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virtual utf8 describe() const throw() { return utf8("%YEAR"); }
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virtual bool finite() const throw() { return true; }
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};
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class parseState_fixed: public parseState
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{
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utf32 m_value;
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public:
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// fixed string
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explicit parseState_fixed(const utf32 &val) throw() : m_value(val) {}
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~parseState_fixed() throw(){}
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virtual pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator>
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findRange(utf32::const_reverse_iterator rbegin,utf32::const_reverse_iterator rend) throw()
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{
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assert(!m_value.empty());
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if (m_value.empty()) return make_pair(rend,rend);
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for (utf32::const_reverse_iterator i = rbegin; i != rend; ++i)
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{
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if ((*i) == (*(m_value.rbegin())))
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{
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utf32::const_reverse_iterator t_i = i;
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utf32::const_reverse_iterator v_i = m_value.rbegin();
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utf32::const_reverse_iterator v_i_end = m_value.rend();
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bool match(true);
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for (; match && (v_i != v_i_end); ++t_i, ++v_i)
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{
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if ((t_i == rend) || ((*t_i) != (*v_i)))
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{
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match = false;
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}
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}
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if (match)
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{
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return make_pair(i, i + m_value.size());
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}
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}
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}
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return make_pair(rend,rend);
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}
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virtual utf8 describe() const throw()
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{
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return m_value.toUtf8();
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}
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virtual bool finite() const throw() { return true; }
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};
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static string stringify(utf32::value_type v) throw()
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{
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if (v >= '0' && v <= 'z') return string(1,(string::value_type)v);
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return tos((int)v);
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}
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public:
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impl(){}
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~impl() throw()
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{
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clearparseStack();
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}
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void deleteToken(const utf8 &token) throw()
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{
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tokenMap_t::iterator i = m_tokens.find(token);
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if (i != m_tokens.end()) m_tokens.erase(i);
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}
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const tokenMap_t::size_type countTokens() const throw() { return m_tokens.size(); }
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utf8& operator[](const utf8 &key) throw() { return m_tokens[key]; }
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const map<utf8,utf8>& getTokens() const throw() { return m_tokens; }
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void setPattern(const utf8 &pattern) throw(runtime_error)
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{
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parseState_optional *opt = 0;
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parseStack_t *stack = &m_parseStack;
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try
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{
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utf32 fixedAccumulator; // fixed string value
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#define DUMPACCUMULATOR { if (!fixedAccumulator.empty()) { stack->push_back(new parseState_fixed(fixedAccumulator)); fixedAccumulator.clear(); } }
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clearparseStack();
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m_pattern.assign(pattern);
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for (utf32::const_iterator i = m_pattern.begin(); i != m_pattern.end(); ++i)
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{
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if ((*i) == ']')
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{
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DUMPACCUMULATOR
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if (!opt) throw runtime_error("Unmatched ']' in pattern");
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stack = &m_parseStack;
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stack->push_back(opt);
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opt = 0;
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}
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else if ((*i) == '[')
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{
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DUMPACCUMULATOR
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if (opt) throw runtime_error("Optional sequences cannot be nested in pattern");
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opt = new parseState_optional;
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stack = opt->stack();
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}
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else if ((*i) == '%')
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{
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++i;
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if (i == m_pattern.end()) throw runtime_error("Bad pattern. Trailing %");
|
||
|
switch (*i)
|
||
|
{
|
||
|
case 'N': DUMPACCUMULATOR stack->push_back(new parseState_stringSymbol(metadata::NAME())); break;
|
||
|
case 'G': DUMPACCUMULATOR stack->push_back(new parseState_stringSymbol(metadata::GENRE())); break;
|
||
|
case 'A': DUMPACCUMULATOR stack->push_back(new parseState_stringSymbol(metadata::ALBUM())); break;
|
||
|
case 'R': DUMPACCUMULATOR stack->push_back(new parseState_stringSymbol(metadata::ARTIST()));break;
|
||
|
case 'Y': DUMPACCUMULATOR stack->push_back(new parseState_year); break;
|
||
|
case '#': DUMPACCUMULATOR stack->push_back(new parseState_digits); break;
|
||
|
case '%': fixedAccumulator.push_back('%'); break;
|
||
|
default: throw runtime_error("Unknown symbol %" + stringify(*i));
|
||
|
}
|
||
|
}
|
||
|
else if ((*i) == '*')
|
||
|
{
|
||
|
DUMPACCUMULATOR
|
||
|
stack->push_back(new parseState_stringSymbol);
|
||
|
}
|
||
|
else
|
||
|
{
|
||
|
fixedAccumulator.push_back(*i);
|
||
|
}
|
||
|
}
|
||
|
if (opt)
|
||
|
{
|
||
|
throw runtime_error("Unterminated optional sequence in pattern");
|
||
|
}
|
||
|
DUMPACCUMULATOR
|
||
|
}
|
||
|
catch(...)
|
||
|
{
|
||
|
delete opt;
|
||
|
throw;
|
||
|
}
|
||
|
}
|
||
|
|
||
|
static utf8 describeStackRange(parseStack_t::const_reverse_iterator begin,parseStack_t::const_reverse_iterator end) throw()
|
||
|
{
|
||
|
parseStack_t stck(begin,end);
|
||
|
reverse(stck.begin(),stck.end());
|
||
|
utf8 result;
|
||
|
for (parseStack_t::const_iterator i = stck.begin(); i != stck.end(); ++i)
|
||
|
{
|
||
|
result = result + (*i)->describe();
|
||
|
}
|
||
|
return result;
|
||
|
}
|
||
|
|
||
|
static utf8 describeRemainingData(utf32::const_reverse_iterator begin,utf32::const_reverse_iterator end) throw()
|
||
|
{
|
||
|
utf32 u32(begin,end);
|
||
|
reverse(u32.begin(),u32.end());
|
||
|
return u32.toUtf8();
|
||
|
}
|
||
|
|
||
|
void parse(const utf8 &data) throw(runtime_error)
|
||
|
{
|
||
|
m_data.assign(data);
|
||
|
|
||
|
// beginning and end of data string
|
||
|
utf32::const_reverse_iterator data_start = m_data.rbegin();
|
||
|
utf32::const_reverse_iterator data_end = m_data.rend();
|
||
|
|
||
|
// current and next object pointers from the parse stack
|
||
|
parseStack_t::reverse_iterator s_cur = m_parseStack.rbegin();
|
||
|
parseStack_t::reverse_iterator s_nxt = s_cur;
|
||
|
++s_nxt;
|
||
|
|
||
|
while(s_cur != m_parseStack.rend())
|
||
|
{
|
||
|
// if we haven't finished the parse stack, and we're out of data then it's an error
|
||
|
if (data_start == data_end)
|
||
|
{
|
||
|
throw runtime_error("Premature end of data (" + describeStackRange(s_cur,m_parseStack.rend()).hideAsString() + ")");
|
||
|
}
|
||
|
|
||
|
// we do one lookahead. Get the range match for the current parse object and
|
||
|
// the next parse object. Note that there is some added complexity due to optional objects
|
||
|
pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator> curR(make_pair(data_end,data_end));
|
||
|
pair<utf32::const_reverse_iterator,utf32::const_reverse_iterator> nxtR(make_pair(data_end,data_end));
|
||
|
|
||
|
// find widest possible match for current state
|
||
|
curR = (*s_cur)->findRange(data_start,data_end);
|
||
|
|
||
|
// if no match, and the object is optional, just move on to the next (continue)
|
||
|
if ((curR.first == data_end) && (*s_cur)->optional())
|
||
|
{
|
||
|
s_cur = s_nxt;
|
||
|
if (s_nxt != m_parseStack.rend())
|
||
|
{
|
||
|
++s_nxt;
|
||
|
}
|
||
|
continue;
|
||
|
}
|
||
|
|
||
|
// if no match, but object is not optional, then we have an error
|
||
|
if (curR.first == data_end)
|
||
|
{
|
||
|
throw runtime_error("Parse error, symbol not found (" + describeStackRange(s_cur,m_parseStack.rend()).hideAsString() + ") (" + describeRemainingData(data_start,data_end).hideAsString() + ")");
|
||
|
}
|
||
|
|
||
|
// if match was not found at our current starting point, then we have an error
|
||
|
if (curR.first != data_start)
|
||
|
{
|
||
|
throw runtime_error("Parse error, data skipped to find symbol (" + describeStackRange(s_cur,m_parseStack.rend()).hideAsString() + ") (" + describeRemainingData(data_start,data_end).hideAsString() + ")");
|
||
|
}
|
||
|
|
||
|
// restrict match range by one lookahead. Do not do lookahead
|
||
|
// if our current state is a single character match
|
||
|
if (!(*s_cur)->finite()) //curR.first + 1 != curR.second)
|
||
|
{
|
||
|
// we must loop in case the followup objects are optional and we must
|
||
|
// continue to look ahead
|
||
|
while (true)
|
||
|
{
|
||
|
if (s_nxt == m_parseStack.rend()) break;
|
||
|
// to handle the case of two optional string elements in a row, we
|
||
|
// repeat this if the range of the current and follow up objects match by
|
||
|
// incrementing the start
|
||
|
nxtR = (*s_nxt)->findRange(data_start,data_end);
|
||
|
if ((nxtR.first == curR.first) && (!(*s_nxt)->finite()))
|
||
|
{
|
||
|
nxtR = (*s_nxt)->findRange(data_start+1,data_end);
|
||
|
}
|
||
|
if (nxtR.first < curR.second)
|
||
|
{
|
||
|
// lookahead object restricts range
|
||
|
curR.second = nxtR.first;
|
||
|
break;
|
||
|
}
|
||
|
if ((nxtR.first == data_end) && (nxtR.second == data_end) && (*s_nxt)->optional())
|
||
|
{
|
||
|
// lookahead object not found and is optional. try the next
|
||
|
++s_nxt;
|
||
|
}
|
||
|
else
|
||
|
{
|
||
|
// no restriction
|
||
|
break;
|
||
|
}
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// set value and advance to next parse object
|
||
|
(*s_cur)->setFromRange(curR.first,curR.second);
|
||
|
s_cur = s_nxt;
|
||
|
if (s_nxt != m_parseStack.rend())
|
||
|
{
|
||
|
++s_nxt;
|
||
|
}
|
||
|
data_start = curR.second;
|
||
|
}
|
||
|
if (data_start != data_end)
|
||
|
{
|
||
|
throw runtime_error("Data extends beyond pattern (" + describeRemainingData(data_start,data_end).hideAsString() + ")");
|
||
|
}
|
||
|
|
||
|
m_tokens.clear();
|
||
|
for (parseStack_t::const_iterator i = m_parseStack.begin(); i != m_parseStack.end(); ++i)
|
||
|
{
|
||
|
(*i)->reportValue(m_tokens);
|
||
|
}
|
||
|
}
|
||
|
};
|
||
|
|
||
|
//////////////////////////////////////////////////////////////////////////////
|
||
|
//////////////////////////////////////////////////////////////////////////////
|
||
|
|
||
|
filenameMetadata::filenameMetadata(): m_impl(0)
|
||
|
{
|
||
|
m_impl = new filenameMetadata::impl;
|
||
|
}
|
||
|
|
||
|
filenameMetadata::~filenameMetadata() throw()
|
||
|
{
|
||
|
forget(m_impl);
|
||
|
}
|
||
|
|
||
|
void filenameMetadata::setPattern(const utf8 &pattern) throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
m_impl->setPattern(pattern);
|
||
|
}
|
||
|
|
||
|
void filenameMetadata::parse(const utf8 &data) throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
m_impl->parse(data);
|
||
|
}
|
||
|
|
||
|
void filenameMetadata::deleteToken(const utf8 &token) throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
m_impl->deleteToken(token);
|
||
|
}
|
||
|
|
||
|
const size_t filenameMetadata::countTokens() throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
return m_impl->countTokens();
|
||
|
}
|
||
|
|
||
|
utf8& filenameMetadata::operator[](const utf8 &key) throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
return m_impl->operator[](key);
|
||
|
}
|
||
|
|
||
|
const map<utf8,utf8>& filenameMetadata::getTokens() const throw(exception)
|
||
|
{
|
||
|
assert(m_impl);
|
||
|
if (!m_impl) throw logic_error(string(__FUNCTION__) + " internal impl object is null");
|
||
|
return m_impl->getTokens();
|
||
|
}
|