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jscc-parser

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A LALR(1) Parser Generator for JavaScript written in JavaScript.

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/* * Universal module definition for lexdfa. */ (function(root, factory) { /* istanbul ignore next */ if (typeof define === 'function' && define.amd) { define(['require', './global', './log/log', './enums/EDGE', './classes/Dfa'], factory); } else if (typeof module === 'object' && module.exports) { module.exports = factory(require); } else { root.jscclexdfa = factory(function(mod) { return root["jscc" + mod.split("/").pop()]; }); } }(this, /** * @param {reqParameter} require * @param {...*} others * @returns {jscc.lexdfa} */ function(require, others) { //>>excludeStart("closure", pragmas.closure); var jscc = {}; var has = /** @type {hasObject} */ (require("./localHas")); //>>excludeEnd("closure"); var log, global = /** @type {jscc.global} */ (require("./global")), EDGE = require("./enums/EDGE"), Dfa = /** @type {function(new:jscc.classes.Dfa, ?DfaOptions=)} */ (require("./classes/Dfa")); /** * @suppress {uselessCode} */ (function() { if (has("node")) { log = /** @type {jscc.log} */ (require("./log/logNode")); } else { log = /** @type {jscc.log} */ (require("./log/log")); } })(); /** * @constructor */ jscc.lexdfa = function() { }; /** * DFA-related functions. * @module {jscc.lexdfa} jscc/lexdfa * @requires module:jscc/global * @requires module:jscc/log/log */ jscc.lexdfa.prototype = { /** * Creates a new {@link jscc.global.Dfa} object and * adds it to the provided array. * @param {Array<!jscc.classes.Dfa>} where - The array to which to add the * new Dfa object. * @returns {number} The prior length of the provided array. * @memberof jscc.lexdfa */ create_dfa: function(where) { var dfa = new Dfa({ line: new Array(global.MAX_CHAR), accept: -1, nfa_set: [], done: false, group: -1 }); where.push(dfa); return where.length - 1; }, /** * Determines whether the dfa_states array has a * Dfa object whose {@link jscc.global.Dfa#nfa_set} * property contains the same values as those in the * items parameter. * @param {Array<!jscc.classes.Dfa>} dfa_states - The array of Dfa * objects to check. * @param {Array<number>} items - The set to match. * @returns {number} The index in dfa_states of the first * matching item, or -1 if no match exists. * @memberof jscc.lexdfa */ same_nfa_items: function(dfa_states, items) { var i, j; for (i = 0; i < dfa_states.length; i++) { if (dfa_states[i].nfa_set.length == items.length) { for (j = 0; j < dfa_states[i].nfa_set.length; j++) { if (dfa_states[i].nfa_set[j] != items[j]) { break; } } if (j == dfa_states[i].nfa_set.length) { return i; } } } return -1; }, /** * Determines the next Dfa object in the provided array * whose {@link jscc.classes.Dfa#done} value is false. * @param {Array<!jscc.classes.Dfa>} dfa_states - The array to check. * @returns {number} The index of the first array element for * which done is false, or -1 if no such element exists. * @memberof jscc.lexdfa */ get_undone_dfa: function(dfa_states) { for (var i = 0; i < dfa_states.length; i++) { if (!dfa_states[i].done) { return i; } } return -1; }, /** * Performs a move operation on a given input character from a * set of NFA states. * @param {Array<!number>} state_set - The set of epsilon-closure * states on which base the move should be performed. * @param {Array<!jscc.classes.Nfa>} machine - The NFA state machine. * @param {number} ch - A character code to be moved on. * @returns {Array<!number>} If there is a possible move, a new * set of NFA-states is returned, else the returned array has a * length of 0. * @author Jan Max Meyer * @memberof jscc.lexdfa */ move: function(state_set, machine, ch) { var hits = []; var tos = -1; try { do { tos = state_set.pop(); if (machine[tos].edge == EDGE.CHAR) { if (machine[tos].ccl.get(ch)) { hits.push(machine[tos].follow); } } } while (state_set.length > 0); } catch (e) { log.error("\n state_set= " + state_set + " machine= " + machine + " ch= " + ch); throw e; } return hits; }, /** * Performs an epsilon closure from a set of NFA states. * @param {Array<!number>} state_set - The set of states on which * base the closure is started. The whole epsilon closure will * be appended to this parameter, so this parameter acts as * input/output value. * @param {Array<!jscc.classes.Nfa>} machine - The NFA state machine. * @returns {Array<!number>} An array of accepting states, if * available. * @author Jan Max Meyer * @memberof jscc.lexdfa */ epsilon_closure: function(state_set, machine) { var stack = []; var accept = []; var tos = -1; for (var i = 0; i < state_set.length; i++) { stack.push(state_set[i]); } do { tos = stack.pop(); if (machine[tos].accept >= 0) { accept.push(machine[tos].accept); } if (machine[tos].edge == EDGE.EPSILON) { if (machine[tos].follow > -1) { for (var i = 0; i < state_set.length; i++) { if (state_set[i] == machine[tos].follow) { break; } } if (i == state_set.length) { state_set.push(machine[tos].follow); stack.push(machine[tos].follow); } } if (machine[tos].follow2 > -1) { for (var i = 0; i < state_set.length; i++) { if (state_set[i] == machine[tos].follow2) { break; } } if (i == state_set.length) { state_set.push(machine[tos].follow2); stack.push(machine[tos].follow2); } } } } while (stack.length > 0); return accept.sort(); }, /** * Constructs a deterministic finite automata (DFA) from a * nondeterministic finite automata, by using the subset * construction algorithm. * @param {!Array<!jscc.classes.Nfa>} nfa_states - The NFA-state machine * on which base the DFA will be constructed. * @returns {!Array<!jscc.classes.Dfa>} An array of DFA-objects forming the * new DFA-state machine. This machine is not minimized here. * @author Jan Max Meyer * @memberof jscc.lexdfa */ create_subset: function(nfa_states) { var dfa_states = []; var stack = [0]; var current = this.create_dfa(dfa_states); var trans; var next = -1; var lowest_weight; if (nfa_states.length == 0) { return dfa_states; } this.epsilon_closure(stack, nfa_states); dfa_states[current].nfa_set = dfa_states[current].nfa_set.concat(stack); while ((current = this.get_undone_dfa(dfa_states)) > -1) { dfa_states[current].done = true; lowest_weight = -1; for (var i = 0; i < dfa_states[current].nfa_set.length; i++) { if (nfa_states[dfa_states[current].nfa_set[i]].accept > -1 && nfa_states[dfa_states[current].nfa_set[i]].weight < lowest_weight || lowest_weight == -1) { dfa_states[current].accept = nfa_states[dfa_states[current].nfa_set[i]].accept; lowest_weight = nfa_states[dfa_states[current].nfa_set[i]].weight; } } for (var i = global.MIN_CHAR; i < global.MAX_CHAR; i++) { trans = [].concat(dfa_states[current].nfa_set); trans = this.move(trans, nfa_states, i); if (trans.length > 0) { this.epsilon_closure(trans, nfa_states); } if (trans.length == 0) { next = -1; } else if ((next = this.same_nfa_items(dfa_states, trans)) == -1) { next = this.create_dfa(dfa_states); dfa_states[next].nfa_set = trans; } dfa_states[current].line[i] = next; } } return dfa_states; }, /** * Minimizes a DFA, by grouping equivalent states together. * These groups form the new, minimized dfa-states. * @param {!Array<!jscc.classes.Dfa>} dfa_states - The DFA-state machine on * which base the minimized DFA is constructed. * @returns {!Array<!jscc.classes.Dfa>} An array of DFA-objects forming the * minimized DFA-state machine. * @author Jan Max Meyer * @memberof jscc.lexdfa */ minimize_dfa: function(dfa_states) { var groups = [[]]; var accept_groups = []; var min_dfa_states = []; var old_cnt = 0; var cnt = 0; var new_group; var i, j, k; if (dfa_states.length == 0) { return min_dfa_states; } // Forming a general starting state: // Accepting and non-accepting states are pushed in separate groups first for (i = 0; i < dfa_states.length; i++) { if (dfa_states[i].accept > -1) { for (j = 0; j < accept_groups.length; j++) { if (accept_groups[j] == dfa_states[i].accept) { break; } } if (j == accept_groups.length) { accept_groups.push(dfa_states[i].accept); groups.push([]); } groups[j + 1].push(i); dfa_states[i].group = j + 1; } else { groups[0].push(i); dfa_states[i].group = 0; } } // Now the minimization is performed on base of these default groups do { old_cnt = cnt; for (i = 0; i < groups.length; i++) { new_group = []; if (groups[i].length > 0) { for (j = 1; j < groups[i].length; j++) { for (k = global.MIN_CHAR; k < global.MAX_CHAR; k++) { // This verifies the equality of the first state // in this group with its successors var groupZeroLineK = dfa_states[groups[i][0]].line[k]; var groupJLineK = dfa_states[groups[i][j]].line[k]; if (groupZeroLineK != groupJLineK && (groupZeroLineK == -1 || groupJLineK == -1) || (groupZeroLineK > -1 && groupJLineK > -1 && dfa_states[groupZeroLineK].group != dfa_states[groupJLineK].group)) { // If this item does not match, put it to a new group dfa_states[groups[i][j]].group = groups.length; new_group = new_group.concat(groups[i].splice(j, 1)); j--; break; } } } } if (new_group.length > 0) { groups[groups.length] = []; groups[groups.length - 1] = groups[groups.length - 1].concat(new_group); cnt += new_group.length; } } } while (old_cnt != cnt); // Updating the dfa-state transitions; each group forms a new state. for (i = 0; i < dfa_states.length; i++) { for (j = global.MIN_CHAR; j < global.MAX_CHAR; j++) { if (dfa_states[i].line[j] > -1) { dfa_states[i].line[j] = dfa_states[dfa_states[i].line[j]].group; } } } for (i = 0; i < groups.length; i++) { min_dfa_states.push(dfa_states[groups[i][0]]); } return min_dfa_states; } }; return new jscc.lexdfa(); }));