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DroidFish: Updated stockfish engine to version 2.2.
This commit is contained in:
@@ -1,7 +1,7 @@
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/*
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Stockfish, a UCI chess playing engine derived from Glaurung 2.1
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Copyright (C) 2004-2008 Tord Romstad (Glaurung author)
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Copyright (C) 2008-2010 Marco Costalba, Joona Kiiski, Tord Romstad
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Copyright (C) 2008-2012 Marco Costalba, Joona Kiiski, Tord Romstad
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Stockfish is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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@@ -17,6 +17,7 @@
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include <algorithm>
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#include <cassert>
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#include "bitcount.h"
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@@ -59,107 +60,75 @@ namespace {
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// the two kings in basic endgames.
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const int DistanceBonus[8] = { 0, 0, 100, 80, 60, 40, 20, 10 };
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// Penalty for big distance between king and knight for the defending king
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// and knight in KR vs KN endgames.
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const int KRKNKingKnightDistancePenalty[8] = { 0, 0, 4, 10, 20, 32, 48, 70 };
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// Get the material key of a Position out of the given endgame key code
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// like "KBPKN". The trick here is to first forge an ad-hoc fen string
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// and then let a Position object to do the work for us. Note that the
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// fen string could correspond to an illegal position.
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Key key(const string& code, Color c) {
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// Build corresponding key code for the opposite color: "KBPKN" -> "KNKBP"
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const string swap_colors(const string& keyCode) {
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assert(code.length() > 0 && code.length() < 8);
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assert(code[0] == 'K');
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size_t idx = keyCode.find('K', 1);
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return keyCode.substr(idx) + keyCode.substr(0, idx);
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string sides[] = { code.substr(code.find('K', 1)), // Weaker
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code.substr(0, code.find('K', 1)) }; // Stronger
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std::transform(sides[c].begin(), sides[c].end(), sides[c].begin(), tolower);
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string fen = sides[0] + char('0' + int(8 - code.length()))
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+ sides[1] + "/8/8/8/8/8/8/8 w - - 0 10";
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return Position(fen, false, 0).material_key();
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}
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// Get the material key of a position out of the given endgame key code
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// like "KBPKN". The trick here is to first build up a FEN string and then
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// let a Position object to do the work for us. Note that the FEN string
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// could correspond to an illegal position.
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Key mat_key(const string& keyCode) {
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assert(keyCode.length() > 0 && keyCode.length() < 8);
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assert(keyCode[0] == 'K');
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string fen;
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size_t i = 0;
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// First add white and then black pieces
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do fen += keyCode[i]; while (keyCode[++i] != 'K');
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do fen += char(tolower(keyCode[i])); while (++i < keyCode.length());
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// Add file padding and remaining empty ranks
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fen += string(1, '0' + int(8 - keyCode.length())) + "/8/8/8/8/8/8/8 w - -";
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// Build a Position out of the fen string and get its material key
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return Position(fen, false, 0).get_material_key();
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}
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typedef EndgameBase<Value> EF;
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typedef EndgameBase<ScaleFactor> SF;
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template<typename M>
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void delete_endgame(const typename M::value_type& p) { delete p.second; }
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} // namespace
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/// Endgames member definitions
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template<> const Endgames::EFMap& Endgames::get<EF>() const { return maps.first; }
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template<> const Endgames::SFMap& Endgames::get<SF>() const { return maps.second; }
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/// Endgames members definitions
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Endgames::Endgames() {
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add<Endgame<Value, KNNK> >("KNNK");
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add<Endgame<Value, KPK> >("KPK");
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add<Endgame<Value, KBNK> >("KBNK");
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add<Endgame<Value, KRKP> >("KRKP");
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add<Endgame<Value, KRKB> >("KRKB");
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add<Endgame<Value, KRKN> >("KRKN");
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add<Endgame<Value, KQKR> >("KQKR");
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add<Endgame<Value, KBBKN> >("KBBKN");
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add<KPK>("KPK");
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add<KNNK>("KNNK");
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add<KBNK>("KBNK");
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add<KRKP>("KRKP");
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add<KRKB>("KRKB");
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add<KRKN>("KRKN");
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add<KQKR>("KQKR");
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add<KBBKN>("KBBKN");
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add<Endgame<ScaleFactor, KNPK> >("KNPK");
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add<Endgame<ScaleFactor, KRPKR> >("KRPKR");
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add<Endgame<ScaleFactor, KBPKB> >("KBPKB");
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add<Endgame<ScaleFactor, KBPPKB> >("KBPPKB");
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add<Endgame<ScaleFactor, KBPKN> >("KBPKN");
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add<Endgame<ScaleFactor, KRPPKRP> >("KRPPKRP");
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add<KNPK>("KNPK");
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add<KRPKR>("KRPKR");
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add<KBPKB>("KBPKB");
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add<KBPKN>("KBPKN");
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add<KBPPKB>("KBPPKB");
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add<KRPPKRP>("KRPPKRP");
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}
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Endgames::~Endgames() {
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for (EFMap::const_iterator it = get<EF>().begin(); it != get<EF>().end(); ++it)
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delete it->second;
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for (SFMap::const_iterator it = get<SF>().begin(); it != get<SF>().end(); ++it)
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delete it->second;
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for_each(m1.begin(), m1.end(), delete_endgame<M1>);
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for_each(m2.begin(), m2.end(), delete_endgame<M2>);
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}
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template<class T>
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void Endgames::add(const string& keyCode) {
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template<EndgameType E>
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void Endgames::add(const string& code) {
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typedef typename T::Base F;
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typedef std::map<Key, F*> M;
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typedef typename eg_family<E>::type T;
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const_cast<M&>(get<F>()).insert(std::pair<Key, F*>(mat_key(keyCode), new T(WHITE)));
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const_cast<M&>(get<F>()).insert(std::pair<Key, F*>(mat_key(swap_colors(keyCode)), new T(BLACK)));
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map((T*)0)[key(code, WHITE)] = new Endgame<E>(WHITE);
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map((T*)0)[key(code, BLACK)] = new Endgame<E>(BLACK);
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}
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template<class T>
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T* Endgames::get(Key key) const {
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typename std::map<Key, T*>::const_iterator it = get<T>().find(key);
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return it != get<T>().end() ? it->second : NULL;
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}
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// Explicit template instantiations
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template EF* Endgames::get<EF>(Key key) const;
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template SF* Endgames::get<SF>(Key key) const;
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/// Mate with KX vs K. This function is used to evaluate positions with
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/// King and plenty of material vs a lone king. It simply gives the
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/// attacking side a bonus for driving the defending king towards the edge
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/// of the board, and for keeping the distance between the two kings small.
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template<>
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Value Endgame<Value, KXK>::apply(const Position& pos) const {
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Value Endgame<KXK>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(weakerSide) == VALUE_ZERO);
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assert(pos.piece_count(weakerSide, PAWN) == VALUE_ZERO);
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@@ -185,7 +154,7 @@ Value Endgame<Value, KXK>::apply(const Position& pos) const {
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/// Mate with KBN vs K. This is similar to KX vs K, but we have to drive the
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/// defending king towards a corner square of the right color.
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template<>
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Value Endgame<Value, KBNK>::apply(const Position& pos) const {
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Value Endgame<KBNK>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(weakerSide) == VALUE_ZERO);
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assert(pos.piece_count(weakerSide, PAWN) == VALUE_ZERO);
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@@ -196,15 +165,15 @@ Value Endgame<Value, KBNK>::apply(const Position& pos) const {
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Square winnerKSq = pos.king_square(strongerSide);
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Square loserKSq = pos.king_square(weakerSide);
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Square bishopSquare = pos.piece_list(strongerSide, BISHOP, 0);
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Square bishopSquare = pos.piece_list(strongerSide, BISHOP)[0];
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// kbnk_mate_table() tries to drive toward corners A1 or H8,
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// if we have a bishop that cannot reach the above squares we
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// mirror the kings so to drive enemy toward corners A8 or H1.
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if (opposite_color_squares(bishopSquare, SQ_A1))
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if (opposite_colors(bishopSquare, SQ_A1))
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{
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winnerKSq = flop_square(winnerKSq);
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loserKSq = flop_square(loserKSq);
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winnerKSq = mirror(winnerKSq);
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loserKSq = mirror(loserKSq);
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}
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Value result = VALUE_KNOWN_WIN
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@@ -217,7 +186,7 @@ Value Endgame<Value, KBNK>::apply(const Position& pos) const {
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/// KP vs K. This endgame is evaluated with the help of a bitbase.
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template<>
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Value Endgame<Value, KPK>::apply(const Position& pos) const {
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Value Endgame<KPK>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(strongerSide) == VALUE_ZERO);
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assert(pos.non_pawn_material(weakerSide) == VALUE_ZERO);
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@@ -231,22 +200,22 @@ Value Endgame<Value, KPK>::apply(const Position& pos) const {
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{
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wksq = pos.king_square(WHITE);
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bksq = pos.king_square(BLACK);
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wpsq = pos.piece_list(WHITE, PAWN, 0);
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wpsq = pos.piece_list(WHITE, PAWN)[0];
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stm = pos.side_to_move();
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}
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else
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{
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wksq = flip_square(pos.king_square(BLACK));
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bksq = flip_square(pos.king_square(WHITE));
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wpsq = flip_square(pos.piece_list(BLACK, PAWN, 0));
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stm = opposite_color(pos.side_to_move());
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wksq = flip(pos.king_square(BLACK));
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bksq = flip(pos.king_square(WHITE));
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wpsq = flip(pos.piece_list(BLACK, PAWN)[0]);
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stm = flip(pos.side_to_move());
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}
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if (square_file(wpsq) >= FILE_E)
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if (file_of(wpsq) >= FILE_E)
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{
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wksq = flop_square(wksq);
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bksq = flop_square(bksq);
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wpsq = flop_square(wpsq);
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wksq = mirror(wksq);
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bksq = mirror(bksq);
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wpsq = mirror(wpsq);
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}
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if (!probe_kpk_bitbase(wksq, wpsq, bksq, stm))
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@@ -254,7 +223,7 @@ Value Endgame<Value, KPK>::apply(const Position& pos) const {
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Value result = VALUE_KNOWN_WIN
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+ PawnValueEndgame
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+ Value(square_rank(wpsq));
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+ Value(rank_of(wpsq));
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return strongerSide == pos.side_to_move() ? result : -result;
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}
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@@ -265,7 +234,7 @@ Value Endgame<Value, KPK>::apply(const Position& pos) const {
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/// far advanced with support of the king, while the attacking king is far
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/// away.
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template<>
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Value Endgame<Value, KRKP>::apply(const Position& pos) const {
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Value Endgame<KRKP>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(strongerSide) == RookValueMidgame);
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assert(pos.piece_count(strongerSide, PAWN) == 0);
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@@ -276,23 +245,23 @@ Value Endgame<Value, KRKP>::apply(const Position& pos) const {
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int tempo = (pos.side_to_move() == strongerSide);
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wksq = pos.king_square(strongerSide);
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wrsq = pos.piece_list(strongerSide, ROOK, 0);
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wrsq = pos.piece_list(strongerSide, ROOK)[0];
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bksq = pos.king_square(weakerSide);
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bpsq = pos.piece_list(weakerSide, PAWN, 0);
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bpsq = pos.piece_list(weakerSide, PAWN)[0];
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if (strongerSide == BLACK)
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{
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wksq = flip_square(wksq);
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wrsq = flip_square(wrsq);
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bksq = flip_square(bksq);
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bpsq = flip_square(bpsq);
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wksq = flip(wksq);
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wrsq = flip(wrsq);
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bksq = flip(bksq);
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bpsq = flip(bpsq);
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}
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Square queeningSq = make_square(square_file(bpsq), RANK_1);
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Square queeningSq = make_square(file_of(bpsq), RANK_1);
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Value result;
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// If the stronger side's king is in front of the pawn, it's a win
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if (wksq < bpsq && square_file(wksq) == square_file(bpsq))
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if (wksq < bpsq && file_of(wksq) == file_of(bpsq))
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result = RookValueEndgame - Value(square_distance(wksq, bpsq));
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// If the weaker side's king is too far from the pawn and the rook,
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@@ -303,9 +272,9 @@ Value Endgame<Value, KRKP>::apply(const Position& pos) const {
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// If the pawn is far advanced and supported by the defending king,
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// the position is drawish
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else if ( square_rank(bksq) <= RANK_3
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else if ( rank_of(bksq) <= RANK_3
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&& square_distance(bksq, bpsq) == 1
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&& square_rank(wksq) >= RANK_4
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&& rank_of(wksq) >= RANK_4
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&& square_distance(wksq, bpsq) - tempo > 2)
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result = Value(80 - square_distance(wksq, bpsq) * 8);
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@@ -322,7 +291,7 @@ Value Endgame<Value, KRKP>::apply(const Position& pos) const {
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/// KR vs KB. This is very simple, and always returns drawish scores. The
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/// score is slightly bigger when the defending king is close to the edge.
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template<>
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Value Endgame<Value, KRKB>::apply(const Position& pos) const {
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Value Endgame<KRKB>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(strongerSide) == RookValueMidgame);
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assert(pos.piece_count(strongerSide, PAWN) == 0);
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@@ -338,7 +307,7 @@ Value Endgame<Value, KRKB>::apply(const Position& pos) const {
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/// KR vs KN. The attacking side has slightly better winning chances than
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/// in KR vs KB, particularly if the king and the knight are far apart.
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template<>
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Value Endgame<Value, KRKN>::apply(const Position& pos) const {
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Value Endgame<KRKN>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(strongerSide) == RookValueMidgame);
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assert(pos.piece_count(strongerSide, PAWN) == 0);
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@@ -346,14 +315,11 @@ Value Endgame<Value, KRKN>::apply(const Position& pos) const {
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assert(pos.piece_count(weakerSide, PAWN) == 0);
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assert(pos.piece_count(weakerSide, KNIGHT) == 1);
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Square defendingKSq = pos.king_square(weakerSide);
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Square nSq = pos.piece_list(weakerSide, KNIGHT, 0);
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int d = square_distance(defendingKSq, nSq);
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Value result = Value(10)
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+ MateTable[defendingKSq]
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+ KRKNKingKnightDistancePenalty[d];
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const int penalty[8] = { 0, 10, 14, 20, 30, 42, 58, 80 };
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Square bksq = pos.king_square(weakerSide);
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Square bnsq = pos.piece_list(weakerSide, KNIGHT)[0];
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Value result = Value(MateTable[bksq] + penalty[square_distance(bksq, bnsq)]);
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return strongerSide == pos.side_to_move() ? result : -result;
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}
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@@ -364,7 +330,7 @@ Value Endgame<Value, KRKN>::apply(const Position& pos) const {
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/// for the defending side in the search, this is usually sufficient to be
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/// able to win KQ vs KR.
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template<>
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Value Endgame<Value, KQKR>::apply(const Position& pos) const {
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Value Endgame<KQKR>::operator()(const Position& pos) const {
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assert(pos.non_pawn_material(strongerSide) == QueenValueMidgame);
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assert(pos.piece_count(strongerSide, PAWN) == 0);
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@@ -383,18 +349,18 @@ Value Endgame<Value, KQKR>::apply(const Position& pos) const {
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}
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template<>
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Value Endgame<Value, KBBKN>::apply(const Position& pos) const {
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Value Endgame<KBBKN>::operator()(const Position& pos) const {
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assert(pos.piece_count(strongerSide, BISHOP) == 2);
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assert(pos.non_pawn_material(strongerSide) == 2*BishopValueMidgame);
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assert(pos.piece_count(weakerSide, KNIGHT) == 1);
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assert(pos.non_pawn_material(weakerSide) == KnightValueMidgame);
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assert(pos.pieces(PAWN) == EmptyBoardBB);
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assert(!pos.pieces(PAWN));
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Value result = BishopValueEndgame;
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Square wksq = pos.king_square(strongerSide);
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Square bksq = pos.king_square(weakerSide);
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Square nsq = pos.piece_list(weakerSide, KNIGHT, 0);
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Square nsq = pos.piece_list(weakerSide, KNIGHT)[0];
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// Bonus for attacking king close to defending king
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result += Value(DistanceBonus[square_distance(wksq, bksq)]);
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@@ -403,7 +369,7 @@ Value Endgame<Value, KBBKN>::apply(const Position& pos) const {
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result += Value(square_distance(bksq, nsq) * 32);
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// Bonus for restricting the knight's mobility
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result += Value((8 - count_1s<CNT32_MAX15>(pos.attacks_from<KNIGHT>(nsq))) * 8);
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result += Value((8 - popcount<Max15>(pos.attacks_from<KNIGHT>(nsq))) * 8);
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return strongerSide == pos.side_to_move() ? result : -result;
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}
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@@ -412,22 +378,21 @@ Value Endgame<Value, KBBKN>::apply(const Position& pos) const {
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/// K and two minors vs K and one or two minors or K and two knights against
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/// king alone are always draw.
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||||
template<>
|
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Value Endgame<Value, KmmKm>::apply(const Position&) const {
|
||||
Value Endgame<KmmKm>::operator()(const Position&) const {
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return VALUE_DRAW;
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}
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||||
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template<>
|
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Value Endgame<Value, KNNK>::apply(const Position&) const {
|
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Value Endgame<KNNK>::operator()(const Position&) const {
|
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return VALUE_DRAW;
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}
|
||||
|
||||
/// KBPKScalingFunction scales endgames where the stronger side has king,
|
||||
/// bishop and one or more pawns. It checks for draws with rook pawns and a
|
||||
/// bishop of the wrong color. If such a draw is detected, SCALE_FACTOR_ZERO is
|
||||
/// returned. If not, the return value is SCALE_FACTOR_NONE, i.e. no scaling
|
||||
/// K, bishop and one or more pawns vs K. It checks for draws with rook pawns and
|
||||
/// a bishop of the wrong color. If such a draw is detected, SCALE_FACTOR_DRAW
|
||||
/// is returned. If not, the return value is SCALE_FACTOR_NONE, i.e. no scaling
|
||||
/// will be used.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KBPsK>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KBPsK>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == BishopValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, BISHOP) == 1);
|
||||
@@ -437,18 +402,18 @@ ScaleFactor Endgame<ScaleFactor, KBPsK>::apply(const Position& pos) const {
|
||||
// be detected even when the weaker side has some pawns.
|
||||
|
||||
Bitboard pawns = pos.pieces(PAWN, strongerSide);
|
||||
File pawnFile = square_file(pos.piece_list(strongerSide, PAWN, 0));
|
||||
File pawnFile = file_of(pos.piece_list(strongerSide, PAWN)[0]);
|
||||
|
||||
// All pawns are on a single rook file ?
|
||||
if ( (pawnFile == FILE_A || pawnFile == FILE_H)
|
||||
&& (pawns & ~file_bb(pawnFile)) == EmptyBoardBB)
|
||||
&& !(pawns & ~file_bb(pawnFile)))
|
||||
{
|
||||
Square bishopSq = pos.piece_list(strongerSide, BISHOP, 0);
|
||||
Square bishopSq = pos.piece_list(strongerSide, BISHOP)[0];
|
||||
Square queeningSq = relative_square(strongerSide, make_square(pawnFile, RANK_8));
|
||||
Square kingSq = pos.king_square(weakerSide);
|
||||
|
||||
if ( opposite_color_squares(queeningSq, bishopSq)
|
||||
&& abs(square_file(kingSq) - pawnFile) <= 1)
|
||||
if ( opposite_colors(queeningSq, bishopSq)
|
||||
&& abs(file_of(kingSq) - pawnFile) <= 1)
|
||||
{
|
||||
// The bishop has the wrong color, and the defending king is on the
|
||||
// file of the pawn(s) or the neighboring file. Find the rank of the
|
||||
@@ -456,12 +421,12 @@ ScaleFactor Endgame<ScaleFactor, KBPsK>::apply(const Position& pos) const {
|
||||
Rank rank;
|
||||
if (strongerSide == WHITE)
|
||||
{
|
||||
for (rank = RANK_7; (rank_bb(rank) & pawns) == EmptyBoardBB; rank--) {}
|
||||
for (rank = RANK_7; !(rank_bb(rank) & pawns); rank--) {}
|
||||
assert(rank >= RANK_2 && rank <= RANK_7);
|
||||
}
|
||||
else
|
||||
{
|
||||
for (rank = RANK_2; (rank_bb(rank) & pawns) == EmptyBoardBB; rank++) {}
|
||||
for (rank = RANK_2; !(rank_bb(rank) & pawns); rank++) {}
|
||||
rank = Rank(rank ^ 7); // HACK to get the relative rank
|
||||
assert(rank >= RANK_2 && rank <= RANK_7);
|
||||
}
|
||||
@@ -469,19 +434,17 @@ ScaleFactor Endgame<ScaleFactor, KBPsK>::apply(const Position& pos) const {
|
||||
// is placed somewhere in front of the pawn, it's a draw.
|
||||
if ( square_distance(kingSq, queeningSq) <= 1
|
||||
|| relative_rank(strongerSide, kingSq) >= rank)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
}
|
||||
}
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KQKRPScalingFunction scales endgames where the stronger side has only
|
||||
/// king and queen, while the weaker side has at least a rook and a pawn.
|
||||
/// It tests for fortress draws with a rook on the third rank defended by
|
||||
/// a pawn.
|
||||
/// K and queen vs K, rook and one or more pawns. It tests for fortress draws with
|
||||
/// a rook on the third rank defended by a pawn.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KQKRPs>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KQKRPs>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == QueenValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, QUEEN) == 1);
|
||||
@@ -496,23 +459,22 @@ ScaleFactor Endgame<ScaleFactor, KQKRPs>::apply(const Position& pos) const {
|
||||
&& (pos.pieces(PAWN, weakerSide) & rank_bb(relative_rank(weakerSide, RANK_2)))
|
||||
&& (pos.attacks_from<KING>(kingSq) & pos.pieces(PAWN, weakerSide)))
|
||||
{
|
||||
Square rsq = pos.piece_list(weakerSide, ROOK, 0);
|
||||
Square rsq = pos.piece_list(weakerSide, ROOK)[0];
|
||||
if (pos.attacks_from<PAWN>(rsq, strongerSide) & pos.pieces(PAWN, weakerSide))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
}
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KRPKRScalingFunction scales KRP vs KR endgames. This function knows a
|
||||
/// handful of the most important classes of drawn positions, but is far
|
||||
/// from perfect. It would probably be a good idea to add more knowledge
|
||||
/// in the future.
|
||||
/// K, rook and one pawn vs K and a rook. This function knows a handful of the
|
||||
/// most important classes of drawn positions, but is far from perfect. It would
|
||||
/// probably be a good idea to add more knowledge in the future.
|
||||
///
|
||||
/// It would also be nice to rewrite the actual code for this function,
|
||||
/// which is mostly copied from Glaurung 1.x, and not very pretty.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KRPKR>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == RookValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, PAWN) == 1);
|
||||
@@ -520,32 +482,32 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 0);
|
||||
|
||||
Square wksq = pos.king_square(strongerSide);
|
||||
Square wrsq = pos.piece_list(strongerSide, ROOK, 0);
|
||||
Square wpsq = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square wrsq = pos.piece_list(strongerSide, ROOK)[0];
|
||||
Square wpsq = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square bksq = pos.king_square(weakerSide);
|
||||
Square brsq = pos.piece_list(weakerSide, ROOK, 0);
|
||||
Square brsq = pos.piece_list(weakerSide, ROOK)[0];
|
||||
|
||||
// Orient the board in such a way that the stronger side is white, and the
|
||||
// pawn is on the left half of the board.
|
||||
if (strongerSide == BLACK)
|
||||
{
|
||||
wksq = flip_square(wksq);
|
||||
wrsq = flip_square(wrsq);
|
||||
wpsq = flip_square(wpsq);
|
||||
bksq = flip_square(bksq);
|
||||
brsq = flip_square(brsq);
|
||||
wksq = flip(wksq);
|
||||
wrsq = flip(wrsq);
|
||||
wpsq = flip(wpsq);
|
||||
bksq = flip(bksq);
|
||||
brsq = flip(brsq);
|
||||
}
|
||||
if (square_file(wpsq) > FILE_D)
|
||||
if (file_of(wpsq) > FILE_D)
|
||||
{
|
||||
wksq = flop_square(wksq);
|
||||
wrsq = flop_square(wrsq);
|
||||
wpsq = flop_square(wpsq);
|
||||
bksq = flop_square(bksq);
|
||||
brsq = flop_square(brsq);
|
||||
wksq = mirror(wksq);
|
||||
wrsq = mirror(wrsq);
|
||||
wpsq = mirror(wpsq);
|
||||
bksq = mirror(bksq);
|
||||
brsq = mirror(brsq);
|
||||
}
|
||||
|
||||
File f = square_file(wpsq);
|
||||
Rank r = square_rank(wpsq);
|
||||
File f = file_of(wpsq);
|
||||
Rank r = rank_of(wpsq);
|
||||
Square queeningSq = make_square(f, RANK_8);
|
||||
int tempo = (pos.side_to_move() == strongerSide);
|
||||
|
||||
@@ -554,31 +516,31 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
if ( r <= RANK_5
|
||||
&& square_distance(bksq, queeningSq) <= 1
|
||||
&& wksq <= SQ_H5
|
||||
&& (square_rank(brsq) == RANK_6 || (r <= RANK_3 && square_rank(wrsq) != RANK_6)))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
&& (rank_of(brsq) == RANK_6 || (r <= RANK_3 && rank_of(wrsq) != RANK_6)))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
// The defending side saves a draw by checking from behind in case the pawn
|
||||
// has advanced to the 6th rank with the king behind.
|
||||
if ( r == RANK_6
|
||||
&& square_distance(bksq, queeningSq) <= 1
|
||||
&& square_rank(wksq) + tempo <= RANK_6
|
||||
&& (square_rank(brsq) == RANK_1 || (!tempo && abs(square_file(brsq) - f) >= 3)))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
&& rank_of(wksq) + tempo <= RANK_6
|
||||
&& (rank_of(brsq) == RANK_1 || (!tempo && abs(file_of(brsq) - f) >= 3)))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
if ( r >= RANK_6
|
||||
&& bksq == queeningSq
|
||||
&& square_rank(brsq) == RANK_1
|
||||
&& rank_of(brsq) == RANK_1
|
||||
&& (!tempo || square_distance(wksq, wpsq) >= 2))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
// White pawn on a7 and rook on a8 is a draw if black's king is on g7 or h7
|
||||
// and the black rook is behind the pawn.
|
||||
if ( wpsq == SQ_A7
|
||||
&& wrsq == SQ_A8
|
||||
&& (bksq == SQ_H7 || bksq == SQ_G7)
|
||||
&& square_file(brsq) == FILE_A
|
||||
&& (square_rank(brsq) <= RANK_3 || square_file(wksq) >= FILE_D || square_rank(wksq) <= RANK_5))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
&& file_of(brsq) == FILE_A
|
||||
&& (rank_of(brsq) <= RANK_3 || file_of(wksq) >= FILE_D || rank_of(wksq) <= RANK_5))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
// If the defending king blocks the pawn and the attacking king is too far
|
||||
// away, it's a draw.
|
||||
@@ -586,14 +548,14 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
&& bksq == wpsq + DELTA_N
|
||||
&& square_distance(wksq, wpsq) - tempo >= 2
|
||||
&& square_distance(wksq, brsq) - tempo >= 2)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
// Pawn on the 7th rank supported by the rook from behind usually wins if the
|
||||
// attacking king is closer to the queening square than the defending king,
|
||||
// and the defending king cannot gain tempi by threatening the attacking rook.
|
||||
if ( r == RANK_7
|
||||
&& f != FILE_A
|
||||
&& square_file(wrsq) == f
|
||||
&& file_of(wrsq) == f
|
||||
&& wrsq != queeningSq
|
||||
&& (square_distance(wksq, queeningSq) < square_distance(bksq, queeningSq) - 2 + tempo)
|
||||
&& (square_distance(wksq, queeningSq) < square_distance(bksq, wrsq) + tempo))
|
||||
@@ -601,7 +563,7 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
|
||||
// Similar to the above, but with the pawn further back
|
||||
if ( f != FILE_A
|
||||
&& square_file(wrsq) == f
|
||||
&& file_of(wrsq) == f
|
||||
&& wrsq < wpsq
|
||||
&& (square_distance(wksq, queeningSq) < square_distance(bksq, queeningSq) - 2 + tempo)
|
||||
&& (square_distance(wksq, wpsq + DELTA_N) < square_distance(bksq, wpsq + DELTA_N) - 2 + tempo)
|
||||
@@ -616,9 +578,9 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
// the pawn's path, it's probably a draw.
|
||||
if (r <= RANK_4 && bksq > wpsq)
|
||||
{
|
||||
if (square_file(bksq) == square_file(wpsq))
|
||||
if (file_of(bksq) == file_of(wpsq))
|
||||
return ScaleFactor(10);
|
||||
if ( abs(square_file(bksq) - square_file(wpsq)) == 1
|
||||
if ( abs(file_of(bksq) - file_of(wpsq)) == 1
|
||||
&& square_distance(wksq, bksq) > 2)
|
||||
return ScaleFactor(24 - 2 * square_distance(wksq, bksq));
|
||||
}
|
||||
@@ -626,19 +588,19 @@ ScaleFactor Endgame<ScaleFactor, KRPKR>::apply(const Position& pos) const {
|
||||
}
|
||||
|
||||
|
||||
/// KRPPKRPScalingFunction scales KRPP vs KRP endgames. There is only a
|
||||
/// single pattern: If the stronger side has no pawns and the defending king
|
||||
/// K, rook and two pawns vs K, rook and one pawn. There is only a single
|
||||
/// pattern: If the stronger side has no passed pawns and the defending king
|
||||
/// is actively placed, the position is drawish.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KRPPKRP>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KRPPKRP>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == RookValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, PAWN) == 2);
|
||||
assert(pos.non_pawn_material(weakerSide) == RookValueMidgame);
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 1);
|
||||
|
||||
Square wpsq1 = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square wpsq2 = pos.piece_list(strongerSide, PAWN, 1);
|
||||
Square wpsq1 = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square wpsq2 = pos.piece_list(strongerSide, PAWN)[1];
|
||||
Square bksq = pos.king_square(weakerSide);
|
||||
|
||||
// Does the stronger side have a passed pawn?
|
||||
@@ -646,7 +608,7 @@ ScaleFactor Endgame<ScaleFactor, KRPPKRP>::apply(const Position& pos) const {
|
||||
|| pos.pawn_is_passed(strongerSide, wpsq2))
|
||||
return SCALE_FACTOR_NONE;
|
||||
|
||||
Rank r = Max(relative_rank(strongerSide, wpsq1), relative_rank(strongerSide, wpsq2));
|
||||
Rank r = std::max(relative_rank(strongerSide, wpsq1), relative_rank(strongerSide, wpsq2));
|
||||
|
||||
if ( file_distance(bksq, wpsq1) <= 1
|
||||
&& file_distance(bksq, wpsq2) <= 1
|
||||
@@ -665,11 +627,10 @@ ScaleFactor Endgame<ScaleFactor, KRPPKRP>::apply(const Position& pos) const {
|
||||
}
|
||||
|
||||
|
||||
/// KPsKScalingFunction scales endgames with king and two or more pawns
|
||||
/// against king. There is just a single rule here: If all pawns are on
|
||||
/// the same rook file and are blocked by the defending king, it's a draw.
|
||||
/// K and two or more pawns vs K. There is just a single rule here: If all pawns
|
||||
/// are on the same rook file and are blocked by the defending king, it's a draw.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KPsK>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KPsK>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == VALUE_ZERO);
|
||||
assert(pos.piece_count(strongerSide, PAWN) >= 2);
|
||||
@@ -680,34 +641,33 @@ ScaleFactor Endgame<ScaleFactor, KPsK>::apply(const Position& pos) const {
|
||||
Bitboard pawns = pos.pieces(PAWN, strongerSide);
|
||||
|
||||
// Are all pawns on the 'a' file?
|
||||
if ((pawns & ~FileABB) == EmptyBoardBB)
|
||||
if (!(pawns & ~FileABB))
|
||||
{
|
||||
// Does the defending king block the pawns?
|
||||
if ( square_distance(ksq, relative_square(strongerSide, SQ_A8)) <= 1
|
||||
|| ( square_file(ksq) == FILE_A
|
||||
&& (in_front_bb(strongerSide, ksq) & pawns) == EmptyBoardBB))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
|| ( file_of(ksq) == FILE_A
|
||||
&& !in_front_bb(strongerSide, ksq) & pawns))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
}
|
||||
// Are all pawns on the 'h' file?
|
||||
else if ((pawns & ~FileHBB) == EmptyBoardBB)
|
||||
else if (!(pawns & ~FileHBB))
|
||||
{
|
||||
// Does the defending king block the pawns?
|
||||
if ( square_distance(ksq, relative_square(strongerSide, SQ_H8)) <= 1
|
||||
|| ( square_file(ksq) == FILE_H
|
||||
&& (in_front_bb(strongerSide, ksq) & pawns) == EmptyBoardBB))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
|| ( file_of(ksq) == FILE_H
|
||||
&& !in_front_bb(strongerSide, ksq) & pawns))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
}
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KBPKBScalingFunction scales KBP vs KB endgames. There are two rules:
|
||||
/// If the defending king is somewhere along the path of the pawn, and the
|
||||
/// square of the king is not of the same color as the stronger side's bishop,
|
||||
/// it's a draw. If the two bishops have opposite color, it's almost always
|
||||
/// a draw.
|
||||
/// K, bishop and a pawn vs K and a bishop. There are two rules: If the defending
|
||||
/// king is somewhere along the path of the pawn, and the square of the king is
|
||||
/// not of the same color as the stronger side's bishop, it's a draw. If the two
|
||||
/// bishops have opposite color, it's almost always a draw.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KBPKB>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KBPKB>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == BishopValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, BISHOP) == 1);
|
||||
@@ -716,20 +676,20 @@ ScaleFactor Endgame<ScaleFactor, KBPKB>::apply(const Position& pos) const {
|
||||
assert(pos.piece_count(weakerSide, BISHOP) == 1);
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 0);
|
||||
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square strongerBishopSq = pos.piece_list(strongerSide, BISHOP, 0);
|
||||
Square weakerBishopSq = pos.piece_list(weakerSide, BISHOP, 0);
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square strongerBishopSq = pos.piece_list(strongerSide, BISHOP)[0];
|
||||
Square weakerBishopSq = pos.piece_list(weakerSide, BISHOP)[0];
|
||||
Square weakerKingSq = pos.king_square(weakerSide);
|
||||
|
||||
// Case 1: Defending king blocks the pawn, and cannot be driven away
|
||||
if ( square_file(weakerKingSq) == square_file(pawnSq)
|
||||
if ( file_of(weakerKingSq) == file_of(pawnSq)
|
||||
&& relative_rank(strongerSide, pawnSq) < relative_rank(strongerSide, weakerKingSq)
|
||||
&& ( opposite_color_squares(weakerKingSq, strongerBishopSq)
|
||||
&& ( opposite_colors(weakerKingSq, strongerBishopSq)
|
||||
|| relative_rank(strongerSide, weakerKingSq) <= RANK_6))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
// Case 2: Opposite colored bishops
|
||||
if (opposite_color_squares(strongerBishopSq, weakerBishopSq))
|
||||
if (opposite_colors(strongerBishopSq, weakerBishopSq))
|
||||
{
|
||||
// We assume that the position is drawn in the following three situations:
|
||||
//
|
||||
@@ -742,27 +702,27 @@ ScaleFactor Endgame<ScaleFactor, KBPKB>::apply(const Position& pos) const {
|
||||
// reasonably well.
|
||||
|
||||
if (relative_rank(strongerSide, pawnSq) <= RANK_5)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
else
|
||||
{
|
||||
Bitboard path = squares_in_front_of(strongerSide, pawnSq);
|
||||
|
||||
if (path & pos.pieces(KING, weakerSide))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
if ( (pos.attacks_from<BISHOP>(weakerBishopSq) & path)
|
||||
&& square_distance(weakerBishopSq, pawnSq) >= 3)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
}
|
||||
}
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KBPPKBScalingFunction scales KBPP vs KB endgames. It detects a few basic
|
||||
/// draws with opposite-colored bishops.
|
||||
/// K, bishop and two pawns vs K and bishop. It detects a few basic draws with
|
||||
/// opposite-colored bishops.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KBPPKB>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KBPPKB>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == BishopValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, BISHOP) == 1);
|
||||
@@ -771,28 +731,28 @@ ScaleFactor Endgame<ScaleFactor, KBPPKB>::apply(const Position& pos) const {
|
||||
assert(pos.piece_count(weakerSide, BISHOP) == 1);
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 0);
|
||||
|
||||
Square wbsq = pos.piece_list(strongerSide, BISHOP, 0);
|
||||
Square bbsq = pos.piece_list(weakerSide, BISHOP, 0);
|
||||
Square wbsq = pos.piece_list(strongerSide, BISHOP)[0];
|
||||
Square bbsq = pos.piece_list(weakerSide, BISHOP)[0];
|
||||
|
||||
if (!opposite_color_squares(wbsq, bbsq))
|
||||
if (!opposite_colors(wbsq, bbsq))
|
||||
return SCALE_FACTOR_NONE;
|
||||
|
||||
Square ksq = pos.king_square(weakerSide);
|
||||
Square psq1 = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square psq2 = pos.piece_list(strongerSide, PAWN, 1);
|
||||
Rank r1 = square_rank(psq1);
|
||||
Rank r2 = square_rank(psq2);
|
||||
Square psq1 = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square psq2 = pos.piece_list(strongerSide, PAWN)[1];
|
||||
Rank r1 = rank_of(psq1);
|
||||
Rank r2 = rank_of(psq2);
|
||||
Square blockSq1, blockSq2;
|
||||
|
||||
if (relative_rank(strongerSide, psq1) > relative_rank(strongerSide, psq2))
|
||||
{
|
||||
blockSq1 = psq1 + pawn_push(strongerSide);
|
||||
blockSq2 = make_square(square_file(psq2), square_rank(psq1));
|
||||
blockSq2 = make_square(file_of(psq2), rank_of(psq1));
|
||||
}
|
||||
else
|
||||
{
|
||||
blockSq1 = psq2 + pawn_push(strongerSide);
|
||||
blockSq2 = make_square(square_file(psq1), square_rank(psq2));
|
||||
blockSq2 = make_square(file_of(psq1), rank_of(psq2));
|
||||
}
|
||||
|
||||
switch (file_distance(psq1, psq2))
|
||||
@@ -800,10 +760,10 @@ ScaleFactor Endgame<ScaleFactor, KBPPKB>::apply(const Position& pos) const {
|
||||
case 0:
|
||||
// Both pawns are on the same file. Easy draw if defender firmly controls
|
||||
// some square in the frontmost pawn's path.
|
||||
if ( square_file(ksq) == square_file(blockSq1)
|
||||
if ( file_of(ksq) == file_of(blockSq1)
|
||||
&& relative_rank(strongerSide, ksq) >= relative_rank(strongerSide, blockSq1)
|
||||
&& opposite_color_squares(ksq, wbsq))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
&& opposite_colors(ksq, wbsq))
|
||||
return SCALE_FACTOR_DRAW;
|
||||
else
|
||||
return SCALE_FACTOR_NONE;
|
||||
|
||||
@@ -812,17 +772,17 @@ ScaleFactor Endgame<ScaleFactor, KBPPKB>::apply(const Position& pos) const {
|
||||
// in front of the frontmost pawn's path, and the square diagonally behind
|
||||
// this square on the file of the other pawn.
|
||||
if ( ksq == blockSq1
|
||||
&& opposite_color_squares(ksq, wbsq)
|
||||
&& opposite_colors(ksq, wbsq)
|
||||
&& ( bbsq == blockSq2
|
||||
|| (pos.attacks_from<BISHOP>(blockSq2) & pos.pieces(BISHOP, weakerSide))
|
||||
|| abs(r1 - r2) >= 2))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
else if ( ksq == blockSq2
|
||||
&& opposite_color_squares(ksq, wbsq)
|
||||
&& opposite_colors(ksq, wbsq)
|
||||
&& ( bbsq == blockSq1
|
||||
|| (pos.attacks_from<BISHOP>(blockSq1) & pos.pieces(BISHOP, weakerSide))))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
else
|
||||
return SCALE_FACTOR_NONE;
|
||||
|
||||
@@ -833,12 +793,11 @@ ScaleFactor Endgame<ScaleFactor, KBPPKB>::apply(const Position& pos) const {
|
||||
}
|
||||
|
||||
|
||||
/// KBPKNScalingFunction scales KBP vs KN endgames. There is a single rule:
|
||||
/// If the defending king is somewhere along the path of the pawn, and the
|
||||
/// square of the king is not of the same color as the stronger side's bishop,
|
||||
/// it's a draw.
|
||||
/// K, bisop and a pawn vs K and knight. There is a single rule: If the defending
|
||||
/// king is somewhere along the path of the pawn, and the square of the king is
|
||||
/// not of the same color as the stronger side's bishop, it's a draw.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KBPKN>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KBPKN>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == BishopValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, BISHOP) == 1);
|
||||
@@ -847,25 +806,25 @@ ScaleFactor Endgame<ScaleFactor, KBPKN>::apply(const Position& pos) const {
|
||||
assert(pos.piece_count(weakerSide, KNIGHT) == 1);
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 0);
|
||||
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square strongerBishopSq = pos.piece_list(strongerSide, BISHOP, 0);
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square strongerBishopSq = pos.piece_list(strongerSide, BISHOP)[0];
|
||||
Square weakerKingSq = pos.king_square(weakerSide);
|
||||
|
||||
if ( square_file(weakerKingSq) == square_file(pawnSq)
|
||||
if ( file_of(weakerKingSq) == file_of(pawnSq)
|
||||
&& relative_rank(strongerSide, pawnSq) < relative_rank(strongerSide, weakerKingSq)
|
||||
&& ( opposite_color_squares(weakerKingSq, strongerBishopSq)
|
||||
&& ( opposite_colors(weakerKingSq, strongerBishopSq)
|
||||
|| relative_rank(strongerSide, weakerKingSq) <= RANK_6))
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KNPKScalingFunction scales KNP vs K endgames. There is a single rule:
|
||||
/// If the pawn is a rook pawn on the 7th rank and the defending king prevents
|
||||
/// the pawn from advancing, the position is drawn.
|
||||
/// K, knight and a pawn vs K. There is a single rule: If the pawn is a rook pawn
|
||||
/// on the 7th rank and the defending king prevents the pawn from advancing, the
|
||||
/// position is drawn.
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KNPK>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KNPK>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == KnightValueMidgame);
|
||||
assert(pos.piece_count(strongerSide, KNIGHT) == 1);
|
||||
@@ -873,67 +832,61 @@ ScaleFactor Endgame<ScaleFactor, KNPK>::apply(const Position& pos) const {
|
||||
assert(pos.non_pawn_material(weakerSide) == VALUE_ZERO);
|
||||
assert(pos.piece_count(weakerSide, PAWN) == 0);
|
||||
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN, 0);
|
||||
Square pawnSq = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Square weakerKingSq = pos.king_square(weakerSide);
|
||||
|
||||
if ( pawnSq == relative_square(strongerSide, SQ_A7)
|
||||
&& square_distance(weakerKingSq, relative_square(strongerSide, SQ_A8)) <= 1)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
if ( pawnSq == relative_square(strongerSide, SQ_H7)
|
||||
&& square_distance(weakerKingSq, relative_square(strongerSide, SQ_H8)) <= 1)
|
||||
return SCALE_FACTOR_ZERO;
|
||||
return SCALE_FACTOR_DRAW;
|
||||
|
||||
return SCALE_FACTOR_NONE;
|
||||
}
|
||||
|
||||
|
||||
/// KPKPScalingFunction scales KP vs KP endgames. This is done by removing
|
||||
/// the weakest side's pawn and probing the KP vs K bitbase: If the weakest
|
||||
/// side has a draw without the pawn, she probably has at least a draw with
|
||||
/// the pawn as well. The exception is when the stronger side's pawn is far
|
||||
/// advanced and not on a rook file; in this case it is often possible to win
|
||||
/// (e.g. 8/4k3/3p4/3P4/6K1/8/8/8 w - - 0 1).
|
||||
/// K and a pawn vs K and a pawn. This is done by removing the weakest side's
|
||||
/// pawn and probing the KP vs K bitbase: If the weakest side has a draw without
|
||||
/// the pawn, she probably has at least a draw with the pawn as well. The exception
|
||||
/// is when the stronger side's pawn is far advanced and not on a rook file; in
|
||||
/// this case it is often possible to win (e.g. 8/4k3/3p4/3P4/6K1/8/8/8 w - - 0 1).
|
||||
template<>
|
||||
ScaleFactor Endgame<ScaleFactor, KPKP>::apply(const Position& pos) const {
|
||||
ScaleFactor Endgame<KPKP>::operator()(const Position& pos) const {
|
||||
|
||||
assert(pos.non_pawn_material(strongerSide) == VALUE_ZERO);
|
||||
assert(pos.non_pawn_material(weakerSide) == VALUE_ZERO);
|
||||
assert(pos.piece_count(WHITE, PAWN) == 1);
|
||||
assert(pos.piece_count(BLACK, PAWN) == 1);
|
||||
|
||||
Square wksq, bksq, wpsq;
|
||||
Color stm;
|
||||
Square wksq = pos.king_square(strongerSide);
|
||||
Square bksq = pos.king_square(weakerSide);
|
||||
Square wpsq = pos.piece_list(strongerSide, PAWN)[0];
|
||||
Color stm = pos.side_to_move();
|
||||
|
||||
if (strongerSide == WHITE)
|
||||
if (strongerSide == BLACK)
|
||||
{
|
||||
wksq = pos.king_square(WHITE);
|
||||
bksq = pos.king_square(BLACK);
|
||||
wpsq = pos.piece_list(WHITE, PAWN, 0);
|
||||
stm = pos.side_to_move();
|
||||
}
|
||||
else
|
||||
{
|
||||
wksq = flip_square(pos.king_square(BLACK));
|
||||
bksq = flip_square(pos.king_square(WHITE));
|
||||
wpsq = flip_square(pos.piece_list(BLACK, PAWN, 0));
|
||||
stm = opposite_color(pos.side_to_move());
|
||||
wksq = flip(wksq);
|
||||
bksq = flip(bksq);
|
||||
wpsq = flip(wpsq);
|
||||
stm = flip(stm);
|
||||
}
|
||||
|
||||
if (square_file(wpsq) >= FILE_E)
|
||||
if (file_of(wpsq) >= FILE_E)
|
||||
{
|
||||
wksq = flop_square(wksq);
|
||||
bksq = flop_square(bksq);
|
||||
wpsq = flop_square(wpsq);
|
||||
wksq = mirror(wksq);
|
||||
bksq = mirror(bksq);
|
||||
wpsq = mirror(wpsq);
|
||||
}
|
||||
|
||||
// If the pawn has advanced to the fifth rank or further, and is not a
|
||||
// rook pawn, it's too dangerous to assume that it's at least a draw.
|
||||
if ( square_rank(wpsq) >= RANK_5
|
||||
&& square_file(wpsq) != FILE_A)
|
||||
if ( rank_of(wpsq) >= RANK_5
|
||||
&& file_of(wpsq) != FILE_A)
|
||||
return SCALE_FACTOR_NONE;
|
||||
|
||||
// Probe the KPK bitbase with the weakest side's pawn removed. If it's a
|
||||
// draw, it's probably at least a draw even with the pawn.
|
||||
return probe_kpk_bitbase(wksq, wpsq, bksq, stm) ? SCALE_FACTOR_NONE : SCALE_FACTOR_ZERO;
|
||||
// Probe the KPK bitbase with the weakest side's pawn removed. If it's a draw,
|
||||
// it's probably at least a draw even with the pawn.
|
||||
return probe_kpk_bitbase(wksq, wpsq, bksq, stm) ? SCALE_FACTOR_NONE : SCALE_FACTOR_DRAW;
|
||||
}
|
||||
|
||||
Reference in New Issue
Block a user