1684 lines
50 KiB
JavaScript
1684 lines
50 KiB
JavaScript
/**
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||
* Fuse.js v7.4.0 - Lightweight fuzzy-search (http://fusejs.io)
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*
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* Copyright (c) 2026 Kiro Risk (http://kiro.me)
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* All Rights Reserved. Apache Software License 2.0
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*/
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'use strict';
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function isArray(value) {
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||
return !Array.isArray ? getTag(value) === '[object Array]' : Array.isArray(value);
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||
}
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||
function baseToString(value) {
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||
// Exit early for strings to avoid a performance hit in some environments.
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||
if (typeof value == 'string') {
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return value;
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||
}
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||
if (typeof value === 'bigint') {
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return value.toString();
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||
}
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||
const result = value + '';
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||
return result == '0' && 1 / value == -Infinity ? '-0' : result;
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||
}
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function toString(value) {
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||
return value == null ? '' : baseToString(value);
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||
}
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||
function isString(value) {
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||
return typeof value === 'string';
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||
}
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||
function isNumber(value) {
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||
return typeof value === 'number';
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||
}
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||
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||
// Adapted from: https://github.com/lodash/lodash/blob/master/isBoolean.js
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function isBoolean(value) {
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return value === true || value === false || isObjectLike(value) && getTag(value) == '[object Boolean]';
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||
}
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||
function isObject(value) {
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||
return typeof value === 'object';
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||
}
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||
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||
// Checks if `value` is object-like.
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||
function isObjectLike(value) {
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||
return isObject(value) && value !== null;
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||
}
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||
function isDefined(value) {
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||
return value !== undefined && value !== null;
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||
}
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||
function isBlank(value) {
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||
return !value.trim().length;
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||
}
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||
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||
// Gets the `toStringTag` of `value`.
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||
// Adapted from: https://github.com/lodash/lodash/blob/master/.internal/getTag.js
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function getTag(value) {
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||
return value == null ? value === undefined ? '[object Undefined]' : '[object Null]' : Object.prototype.toString.call(value);
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}
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const EXTENDED_SEARCH_UNAVAILABLE = 'Extended search is not available';
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const LOGICAL_SEARCH_UNAVAILABLE = 'Logical search is not available';
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const TOKEN_SEARCH_UNAVAILABLE = 'Token search is not available';
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const INCORRECT_INDEX_TYPE = "Incorrect 'index' type";
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const INVALID_DOC_INDEX = 'Invalid doc index: must be a non-negative integer within the bounds of the docs array';
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const LOGICAL_SEARCH_INVALID_QUERY_FOR_KEY = key => `Invalid value for key ${key}`;
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const PATTERN_LENGTH_TOO_LARGE = max => `Pattern length exceeds max of ${max}.`;
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const MISSING_KEY_PROPERTY = name => `Missing ${name} property in key`;
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const INVALID_KEY_WEIGHT_VALUE = key => `Property 'weight' in key '${key}' must be a positive integer`;
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const FUSE_MATCH_TOKEN_SEARCH_UNSUPPORTED = `Fuse.match does not support useTokenSearch: token search requires ` + `corpus-level statistics (df, fieldCount) that a one-off string ` + `comparison does not have. Use new Fuse(...).search(...) instead.`;
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const hasOwn = Object.prototype.hasOwnProperty;
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class KeyStore {
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constructor(keys) {
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this._keys = [];
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this._keyMap = {};
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let totalWeight = 0;
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keys.forEach(key => {
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const obj = createKey(key);
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this._keys.push(obj);
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this._keyMap[obj.id] = obj;
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totalWeight += obj.weight;
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});
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// Normalize weights so that their sum is equal to 1
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this._keys.forEach(key => {
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key.weight /= totalWeight;
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});
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}
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get(keyId) {
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return this._keyMap[keyId];
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}
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keys() {
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return this._keys;
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}
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toJSON() {
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||
return JSON.stringify(this._keys);
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}
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}
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function createKey(key) {
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let path = null;
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let id = null;
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let src = null;
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let weight = 1;
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let getFn = null;
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if (isString(key) || isArray(key)) {
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src = key;
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path = createKeyPath(key);
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id = createKeyId(key);
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||
} else {
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||
if (!hasOwn.call(key, 'name')) {
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throw new Error(MISSING_KEY_PROPERTY('name'));
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}
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const name = key.name;
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src = name;
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if (hasOwn.call(key, 'weight') && key.weight !== undefined) {
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weight = key.weight;
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if (weight <= 0) {
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throw new Error(INVALID_KEY_WEIGHT_VALUE(createKeyId(name)));
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}
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}
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path = createKeyPath(name);
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id = createKeyId(name);
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getFn = key.getFn ?? null;
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}
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return {
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path: path,
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id: id,
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weight,
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src: src,
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getFn
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};
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}
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function createKeyPath(key) {
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||
return isArray(key) ? key : key.split('.');
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}
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function createKeyId(key) {
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return isArray(key) ? key.join('.') : key;
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}
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||
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function get(obj, path) {
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const list = [];
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let arr = false;
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const deepGet = (obj, path, index, arrayIndex) => {
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if (!isDefined(obj)) {
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return;
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}
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if (!path[index]) {
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// If there's no path left, we've arrived at the object we care about.
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list.push(arrayIndex !== undefined ? {
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v: obj,
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i: arrayIndex
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} : obj);
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} else {
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const key = path[index];
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const value = obj[key];
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if (!isDefined(value)) {
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return;
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}
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// If we're at the last value in the path, and if it's a string/number/bool,
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// add it to the list
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if (index === path.length - 1 && (isString(value) || isNumber(value) || isBoolean(value) || typeof value === 'bigint')) {
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list.push(arrayIndex !== undefined ? {
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v: toString(value),
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i: arrayIndex
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} : toString(value));
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} else if (isArray(value)) {
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arr = true;
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// Search each item in the array.
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for (let i = 0, len = value.length; i < len; i += 1) {
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deepGet(value[i], path, index + 1, i);
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}
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} else if (path.length) {
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// An object. Recurse further.
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deepGet(value, path, index + 1, arrayIndex);
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}
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}
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};
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// Backwards compatibility (since path used to be a string)
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deepGet(obj, isString(path) ? path.split('.') : path, 0);
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return arr ? list : list[0];
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}
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const MatchOptions = {
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includeMatches: false,
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findAllMatches: false,
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minMatchCharLength: 1
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};
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const BasicOptions = {
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isCaseSensitive: false,
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ignoreDiacritics: false,
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includeScore: false,
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keys: [],
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shouldSort: true,
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sortFn: (a, b) => a.score === b.score ? a.idx < b.idx ? -1 : 1 : a.score < b.score ? -1 : 1
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};
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const FuzzyOptions = {
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location: 0,
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threshold: 0.6,
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distance: 100
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};
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const AdvancedOptions = {
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useExtendedSearch: false,
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useTokenSearch: false,
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tokenize: undefined,
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tokenMatch: 'any',
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getFn: get,
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ignoreLocation: false,
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ignoreFieldNorm: false,
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fieldNormWeight: 1
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};
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const Config = Object.freeze({
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...BasicOptions,
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...MatchOptions,
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...FuzzyOptions,
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...AdvancedOptions
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});
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// Field-length norm: the shorter the field, the higher the weight.
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// Set to 3 decimals to reduce index size.
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function norm(weight = 1, mantissa = 3) {
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const cache = new Map();
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const m = Math.pow(10, mantissa);
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return {
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get(value) {
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// Count words by counting space transitions — avoids allocating a regex match array
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let numTokens = 1;
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let inSpace = false;
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for (let i = 0; i < value.length; i++) {
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if (value.charCodeAt(i) === 32) {
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if (!inSpace) {
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numTokens++;
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inSpace = true;
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}
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} else {
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inSpace = false;
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}
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}
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if (cache.has(numTokens)) {
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return cache.get(numTokens);
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}
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// Default function is 1/sqrt(x), weight makes that variable
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const n = Math.round(m / Math.pow(numTokens, 0.5 * weight)) / m;
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cache.set(numTokens, n);
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return n;
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},
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clear() {
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cache.clear();
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}
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};
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}
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class FuseIndex {
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constructor({
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getFn = Config.getFn,
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fieldNormWeight = Config.fieldNormWeight
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} = {}) {
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this.norm = norm(fieldNormWeight, 3);
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this.getFn = getFn;
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this.isCreated = false;
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this.docs = [];
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this.keys = [];
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this._keysMap = {};
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this.setIndexRecords();
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}
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setSources(docs = []) {
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this.docs = docs;
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||
}
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setIndexRecords(records = []) {
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this.records = records;
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}
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setKeys(keys = []) {
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this.keys = keys;
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||
this._keysMap = {};
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||
keys.forEach((key, idx) => {
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this._keysMap[key.id] = idx;
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});
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}
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||
create() {
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||
if (this.isCreated || !this.docs.length) {
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||
return;
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}
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this.isCreated = true;
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const len = this.docs.length;
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||
this.records = new Array(len);
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||
let recordCount = 0;
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||
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// List is Array<String>
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if (isString(this.docs[0])) {
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for (let i = 0; i < len; i++) {
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const record = this._createStringRecord(this.docs[i], i);
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if (record) {
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this.records[recordCount++] = record;
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}
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}
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} else {
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||
// List is Array<Object>
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for (let i = 0; i < len; i++) {
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this.records[recordCount++] = this._createObjectRecord(this.docs[i], i);
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}
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}
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this.records.length = recordCount;
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this.norm.clear();
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||
}
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// Appends a record for `doc` at `docIndex` (the doc's position in the source
|
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// array). Returns the appended record, or null when `doc` is a blank string
|
||
// (those are skipped at record creation; see `_createStringRecord`). Callers
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||
// use the return value to gate downstream bookkeeping like the inverted
|
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// index, which must not be touched when no record was produced.
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add(doc, docIndex) {
|
||
if (!Number.isInteger(docIndex) || docIndex < 0) {
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throw new Error(INVALID_DOC_INDEX);
|
||
}
|
||
if (isString(doc)) {
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||
const record = this._createStringRecord(doc, docIndex);
|
||
if (record) {
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||
this.records.push(record);
|
||
}
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return record;
|
||
}
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const record = this._createObjectRecord(doc, docIndex);
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||
this.records.push(record);
|
||
return record;
|
||
}
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||
// Removes the record for the doc at the specified source-array (docs) index.
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||
// Blank string docs have no record; callers may pass such an index and the
|
||
// splice is a no-op, but subsequent records still need their .i decremented
|
||
// to track the docs array that the caller is splicing in parallel.
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||
removeAt(idx) {
|
||
if (!Number.isInteger(idx) || idx < 0) {
|
||
throw new Error(INVALID_DOC_INDEX);
|
||
}
|
||
|
||
// Find and remove the record at this doc-index, if one exists. Records are
|
||
// typically sorted by .i but the algorithm doesn't depend on it — parsed
|
||
// indexes via setIndexRecords may arrive in arbitrary order.
|
||
for (let i = 0, len = this.records.length; i < len; i += 1) {
|
||
if (this.records[i].i === idx) {
|
||
this.records.splice(i, 1);
|
||
break;
|
||
}
|
||
}
|
||
|
||
// Decrement every record whose source-array index is now stale.
|
||
for (let i = 0, len = this.records.length; i < len; i += 1) {
|
||
if (this.records[i].i > idx) {
|
||
this.records[i].i -= 1;
|
||
}
|
||
}
|
||
}
|
||
// Removes records for the docs at the specified source-array indices, then
|
||
// shifts every surviving record's .i down by the count of removed indices
|
||
// strictly less than it (mirrors removeAndShiftInvertedIndex's shift math).
|
||
// Invalid entries (non-integer, negative) in `indices` are dropped silently
|
||
// — removeAll's natural use case is "caller passed a list of matched doc
|
||
// indices"; asymmetric throw-vs-no-op would be more surprising than a clean
|
||
// filter.
|
||
removeAll(indices) {
|
||
const toRemove = new Set();
|
||
for (const v of indices) {
|
||
if (Number.isInteger(v) && v >= 0) {
|
||
toRemove.add(v);
|
||
}
|
||
}
|
||
if (toRemove.size === 0) {
|
||
return;
|
||
}
|
||
this.records = this.records.filter(r => !toRemove.has(r.i));
|
||
const sorted = Array.from(toRemove).sort((a, b) => a - b);
|
||
for (const record of this.records) {
|
||
// shift = count of removed indices strictly less than record.i
|
||
let lo = 0;
|
||
let hi = sorted.length;
|
||
while (lo < hi) {
|
||
const mid = lo + hi >>> 1;
|
||
if (sorted[mid] < record.i) lo = mid + 1;else hi = mid;
|
||
}
|
||
record.i -= lo;
|
||
}
|
||
}
|
||
getValueForItemAtKeyId(item, keyId) {
|
||
return item[this._keysMap[keyId]];
|
||
}
|
||
size() {
|
||
return this.records.length;
|
||
}
|
||
_createStringRecord(doc, docIndex) {
|
||
if (!isDefined(doc) || isBlank(doc)) {
|
||
return null;
|
||
}
|
||
return {
|
||
v: doc,
|
||
i: docIndex,
|
||
n: this.norm.get(doc)
|
||
};
|
||
}
|
||
_createObjectRecord(doc, docIndex) {
|
||
const record = {
|
||
i: docIndex,
|
||
$: {}
|
||
};
|
||
|
||
// Iterate over every key (i.e, path), and fetch the value at that key
|
||
for (let keyIndex = 0, keyLen = this.keys.length; keyIndex < keyLen; keyIndex++) {
|
||
const key = this.keys[keyIndex];
|
||
const value = key.getFn ? key.getFn(doc) : this.getFn(doc, key.path);
|
||
if (!isDefined(value)) {
|
||
continue;
|
||
}
|
||
if (isArray(value)) {
|
||
const subRecords = [];
|
||
for (let i = 0, len = value.length; i < len; i += 1) {
|
||
const item = value[i];
|
||
if (!isDefined(item)) {
|
||
continue;
|
||
}
|
||
if (isString(item)) {
|
||
// Custom getFn returning plain string array (backward compat)
|
||
if (!isBlank(item)) {
|
||
const subRecord = {
|
||
v: item,
|
||
i: i,
|
||
n: this.norm.get(item)
|
||
};
|
||
subRecords.push(subRecord);
|
||
}
|
||
} else if (isDefined(item.v)) {
|
||
// Default get() returns {v, i} objects with original array indices
|
||
const text = isString(item.v) ? item.v : toString(item.v);
|
||
if (!isBlank(text)) {
|
||
const subRecord = {
|
||
v: text,
|
||
i: item.i,
|
||
n: this.norm.get(text)
|
||
};
|
||
subRecords.push(subRecord);
|
||
}
|
||
}
|
||
}
|
||
record.$[keyIndex] = subRecords;
|
||
} else if (isString(value) && !isBlank(value)) {
|
||
const subRecord = {
|
||
v: value,
|
||
n: this.norm.get(value)
|
||
};
|
||
record.$[keyIndex] = subRecord;
|
||
}
|
||
}
|
||
return record;
|
||
}
|
||
toJSON() {
|
||
return {
|
||
// eslint-disable-next-line @typescript-eslint/no-unused-vars
|
||
keys: this.keys.map(({
|
||
getFn,
|
||
...key
|
||
}) => key),
|
||
records: this.records
|
||
};
|
||
}
|
||
}
|
||
function createIndex(keys, docs, {
|
||
getFn = Config.getFn,
|
||
fieldNormWeight = Config.fieldNormWeight
|
||
} = {}) {
|
||
const myIndex = new FuseIndex({
|
||
getFn,
|
||
fieldNormWeight
|
||
});
|
||
myIndex.setKeys(keys.map(createKey));
|
||
myIndex.setSources(docs);
|
||
myIndex.create();
|
||
return myIndex;
|
||
}
|
||
function parseIndex(data, {
|
||
getFn = Config.getFn,
|
||
fieldNormWeight = Config.fieldNormWeight
|
||
} = {}) {
|
||
const {
|
||
keys,
|
||
records
|
||
} = data;
|
||
const myIndex = new FuseIndex({
|
||
getFn,
|
||
fieldNormWeight
|
||
});
|
||
myIndex.setKeys(keys);
|
||
myIndex.setIndexRecords(records);
|
||
return myIndex;
|
||
}
|
||
|
||
function convertMaskToIndices(matchmask = [], minMatchCharLength = Config.minMatchCharLength) {
|
||
const indices = [];
|
||
let start = -1;
|
||
let end = -1;
|
||
let i = 0;
|
||
for (let len = matchmask.length; i < len; i += 1) {
|
||
const match = matchmask[i];
|
||
if (match && start === -1) {
|
||
start = i;
|
||
} else if (!match && start !== -1) {
|
||
end = i - 1;
|
||
if (end - start + 1 >= minMatchCharLength) {
|
||
indices.push([start, end]);
|
||
}
|
||
start = -1;
|
||
}
|
||
}
|
||
|
||
// (i-1 - start) + 1 => i - start
|
||
if (matchmask[i - 1] && i - start >= minMatchCharLength) {
|
||
indices.push([start, i - 1]);
|
||
}
|
||
return indices;
|
||
}
|
||
|
||
// Machine word size
|
||
const MAX_BITS = 32;
|
||
|
||
function search(text, pattern, patternAlphabet, {
|
||
location = Config.location,
|
||
distance = Config.distance,
|
||
threshold = Config.threshold,
|
||
findAllMatches = Config.findAllMatches,
|
||
minMatchCharLength = Config.minMatchCharLength,
|
||
includeMatches = Config.includeMatches,
|
||
ignoreLocation = Config.ignoreLocation
|
||
} = {}) {
|
||
if (pattern.length > MAX_BITS) {
|
||
throw new Error(PATTERN_LENGTH_TOO_LARGE(MAX_BITS));
|
||
}
|
||
const patternLen = pattern.length;
|
||
// Set starting location at beginning text and initialize the alphabet.
|
||
const textLen = text.length;
|
||
// Handle the case when location > text.length
|
||
const expectedLocation = Math.max(0, Math.min(location, textLen));
|
||
// Highest score beyond which we give up.
|
||
let currentThreshold = threshold;
|
||
// Is there a nearby exact match? (speedup)
|
||
let bestLocation = expectedLocation;
|
||
|
||
// Inlined score computation — avoids object allocation per call in hot loops.
|
||
// See ./computeScore.ts for the documented version of this formula.
|
||
const calcScore = (errors, currentLocation) => {
|
||
const accuracy = errors / patternLen;
|
||
if (ignoreLocation) return accuracy;
|
||
const proximity = Math.abs(expectedLocation - currentLocation);
|
||
if (!distance) return proximity ? 1.0 : accuracy;
|
||
return accuracy + proximity / distance;
|
||
};
|
||
|
||
// Performance: only computer matches when the minMatchCharLength > 1
|
||
// OR if `includeMatches` is true.
|
||
const computeMatches = minMatchCharLength > 1 || includeMatches;
|
||
// A mask of the matches, used for building the indices
|
||
const matchMask = computeMatches ? Array(textLen) : [];
|
||
let index;
|
||
|
||
// Get all exact matches, here for speed up
|
||
while ((index = text.indexOf(pattern, bestLocation)) > -1) {
|
||
const score = calcScore(0, index);
|
||
currentThreshold = Math.min(score, currentThreshold);
|
||
bestLocation = index + patternLen;
|
||
if (computeMatches) {
|
||
let i = 0;
|
||
while (i < patternLen) {
|
||
matchMask[index + i] = 1;
|
||
i += 1;
|
||
}
|
||
}
|
||
}
|
||
|
||
// Reset the best location
|
||
bestLocation = -1;
|
||
let lastBitArr = [];
|
||
let finalScore = 1;
|
||
let bestErrors = 0;
|
||
let binMax = patternLen + textLen;
|
||
const mask = 1 << patternLen - 1;
|
||
for (let i = 0; i < patternLen; i += 1) {
|
||
// Scan for the best match; each iteration allows for one more error.
|
||
// Run a binary search to determine how far from the match location we can stray
|
||
// at this error level.
|
||
let binMin = 0;
|
||
let binMid = binMax;
|
||
while (binMin < binMid) {
|
||
const score = calcScore(i, expectedLocation + binMid);
|
||
if (score <= currentThreshold) {
|
||
binMin = binMid;
|
||
} else {
|
||
binMax = binMid;
|
||
}
|
||
binMid = Math.floor((binMax - binMin) / 2 + binMin);
|
||
}
|
||
|
||
// Use the result from this iteration as the maximum for the next.
|
||
binMax = binMid;
|
||
let start = Math.max(1, expectedLocation - binMid + 1);
|
||
const finish = findAllMatches ? textLen : Math.min(expectedLocation + binMid, textLen) + patternLen;
|
||
|
||
// Initialize the bit array
|
||
const bitArr = Array(finish + 2);
|
||
bitArr[finish + 1] = (1 << i) - 1;
|
||
for (let j = finish; j >= start; j -= 1) {
|
||
const currentLocation = j - 1;
|
||
const charMatch = patternAlphabet[text[currentLocation]];
|
||
|
||
// First pass: exact match
|
||
bitArr[j] = (bitArr[j + 1] << 1 | 1) & charMatch;
|
||
|
||
// Subsequent passes: fuzzy match
|
||
if (i) {
|
||
bitArr[j] |= (lastBitArr[j + 1] | lastBitArr[j]) << 1 | 1 | lastBitArr[j + 1];
|
||
}
|
||
if (bitArr[j] & mask) {
|
||
finalScore = calcScore(i, currentLocation);
|
||
|
||
// This match will almost certainly be better than any existing match.
|
||
// But check anyway.
|
||
if (finalScore <= currentThreshold) {
|
||
// Indeed it is
|
||
currentThreshold = finalScore;
|
||
bestLocation = currentLocation;
|
||
bestErrors = i;
|
||
|
||
// Already passed `loc`, downhill from here on in.
|
||
if (bestLocation <= expectedLocation) {
|
||
break;
|
||
}
|
||
|
||
// When passing `bestLocation`, don't exceed our current distance from `expectedLocation`.
|
||
start = Math.max(1, 2 * expectedLocation - bestLocation);
|
||
}
|
||
}
|
||
}
|
||
|
||
// No hope for a (better) match at greater error levels.
|
||
const score = calcScore(i + 1, expectedLocation);
|
||
if (score > currentThreshold) {
|
||
break;
|
||
}
|
||
lastBitArr = bitArr;
|
||
}
|
||
|
||
// Fill matchMask across the matched window only. Bitap anchors a match at
|
||
// bestLocation (the start), spanning patternLen characters plus up to
|
||
// bestErrors extra characters when errors are text-side insertions. Marking
|
||
// alphabet positions in that window keeps the highlight indices honest about
|
||
// what actually matched, instead of every pattern-alphabet character the
|
||
// scan happened to visit.
|
||
if (computeMatches && bestLocation >= 0) {
|
||
const matchEnd = Math.min(textLen - 1, bestLocation + patternLen - 1 + bestErrors);
|
||
for (let k = bestLocation; k <= matchEnd; k += 1) {
|
||
if (patternAlphabet[text[k]]) {
|
||
matchMask[k] = 1;
|
||
}
|
||
}
|
||
}
|
||
const result = {
|
||
isMatch: bestLocation >= 0,
|
||
// Count exact matches (those with a score of 0) to be "almost" exact
|
||
score: Math.max(0.001, finalScore)
|
||
};
|
||
if (computeMatches) {
|
||
const indices = convertMaskToIndices(matchMask, minMatchCharLength);
|
||
if (!indices.length) {
|
||
result.isMatch = false;
|
||
} else if (includeMatches) {
|
||
result.indices = indices;
|
||
}
|
||
}
|
||
return result;
|
||
}
|
||
|
||
function createPatternAlphabet(pattern) {
|
||
const mask = {};
|
||
for (let i = 0, len = pattern.length; i < len; i += 1) {
|
||
const char = pattern.charAt(i);
|
||
mask[char] = (mask[char] || 0) | 1 << len - i - 1;
|
||
}
|
||
return mask;
|
||
}
|
||
|
||
function mergeIndices(indices) {
|
||
if (indices.length <= 1) return indices;
|
||
indices.sort((a, b) => a[0] - b[0] || a[1] - b[1]);
|
||
const merged = [indices[0]];
|
||
for (let i = 1, len = indices.length; i < len; i += 1) {
|
||
const last = merged[merged.length - 1];
|
||
const curr = indices[i];
|
||
if (curr[0] <= last[1] + 1) {
|
||
last[1] = Math.max(last[1], curr[1]);
|
||
} else {
|
||
merged.push(curr);
|
||
}
|
||
}
|
||
return merged;
|
||
}
|
||
|
||
// Characters that survive NFD normalization unchanged and need explicit mapping
|
||
const NON_DECOMPOSABLE_MAP = {
|
||
'\u0142': 'l',
|
||
// ł
|
||
'\u0141': 'L',
|
||
// Ł
|
||
'\u0111': 'd',
|
||
// đ
|
||
'\u0110': 'D',
|
||
// Đ
|
||
'\u00F8': 'o',
|
||
// ø
|
||
'\u00D8': 'O',
|
||
// Ø
|
||
'\u0127': 'h',
|
||
// ħ
|
||
'\u0126': 'H',
|
||
// Ħ
|
||
'\u0167': 't',
|
||
// ŧ
|
||
'\u0166': 'T',
|
||
// Ŧ
|
||
'\u0131': 'i',
|
||
// ı
|
||
'\u00DF': 'ss' // ß
|
||
};
|
||
const NON_DECOMPOSABLE_RE = new RegExp('[' + Object.keys(NON_DECOMPOSABLE_MAP).join('') + ']', 'g');
|
||
const stripDiacritics = typeof String.prototype.normalize === 'function' ? str => str.normalize('NFD').replace(/[\u0300-\u036F\u0483-\u0489\u0591-\u05BD\u05BF\u05C1\u05C2\u05C4\u05C5\u05C7\u0610-\u061A\u064B-\u065F\u0670\u06D6-\u06DC\u06DF-\u06E4\u06E7\u06E8\u06EA-\u06ED\u0711\u0730-\u074A\u07A6-\u07B0\u07EB-\u07F3\u07FD\u0816-\u0819\u081B-\u0823\u0825-\u0827\u0829-\u082D\u0859-\u085B\u08D3-\u08E1\u08E3-\u0903\u093A-\u093C\u093E-\u094F\u0951-\u0957\u0962\u0963\u0981-\u0983\u09BC\u09BE-\u09C4\u09C7\u09C8\u09CB-\u09CD\u09D7\u09E2\u09E3\u09FE\u0A01-\u0A03\u0A3C\u0A3E-\u0A42\u0A47\u0A48\u0A4B-\u0A4D\u0A51\u0A70\u0A71\u0A75\u0A81-\u0A83\u0ABC\u0ABE-\u0AC5\u0AC7-\u0AC9\u0ACB-\u0ACD\u0AE2\u0AE3\u0AFA-\u0AFF\u0B01-\u0B03\u0B3C\u0B3E-\u0B44\u0B47\u0B48\u0B4B-\u0B4D\u0B56\u0B57\u0B62\u0B63\u0B82\u0BBE-\u0BC2\u0BC6-\u0BC8\u0BCA-\u0BCD\u0BD7\u0C00-\u0C04\u0C3E-\u0C44\u0C46-\u0C48\u0C4A-\u0C4D\u0C55\u0C56\u0C62\u0C63\u0C81-\u0C83\u0CBC\u0CBE-\u0CC4\u0CC6-\u0CC8\u0CCA-\u0CCD\u0CD5\u0CD6\u0CE2\u0CE3\u0D00-\u0D03\u0D3B\u0D3C\u0D3E-\u0D44\u0D46-\u0D48\u0D4A-\u0D4D\u0D57\u0D62\u0D63\u0D82\u0D83\u0DCA\u0DCF-\u0DD4\u0DD6\u0DD8-\u0DDF\u0DF2\u0DF3\u0E31\u0E34-\u0E3A\u0E47-\u0E4E\u0EB1\u0EB4-\u0EB9\u0EBB\u0EBC\u0EC8-\u0ECD\u0F18\u0F19\u0F35\u0F37\u0F39\u0F3E\u0F3F\u0F71-\u0F84\u0F86\u0F87\u0F8D-\u0F97\u0F99-\u0FBC\u0FC6\u102B-\u103E\u1056-\u1059\u105E-\u1060\u1062-\u1064\u1067-\u106D\u1071-\u1074\u1082-\u108D\u108F\u109A-\u109D\u135D-\u135F\u1712-\u1714\u1732-\u1734\u1752\u1753\u1772\u1773\u17B4-\u17D3\u17DD\u180B-\u180D\u1885\u1886\u18A9\u1920-\u192B\u1930-\u193B\u1A17-\u1A1B\u1A55-\u1A5E\u1A60-\u1A7C\u1A7F\u1AB0-\u1ABE\u1B00-\u1B04\u1B34-\u1B44\u1B6B-\u1B73\u1B80-\u1B82\u1BA1-\u1BAD\u1BE6-\u1BF3\u1C24-\u1C37\u1CD0-\u1CD2\u1CD4-\u1CE8\u1CED\u1CF2-\u1CF4\u1CF7-\u1CF9\u1DC0-\u1DF9\u1DFB-\u1DFF\u20D0-\u20F0\u2CEF-\u2CF1\u2D7F\u2DE0-\u2DFF\u302A-\u302F\u3099\u309A\uA66F-\uA672\uA674-\uA67D\uA69E\uA69F\uA6F0\uA6F1\uA802\uA806\uA80B\uA823-\uA827\uA880\uA881\uA8B4-\uA8C5\uA8E0-\uA8F1\uA8FF\uA926-\uA92D\uA947-\uA953\uA980-\uA983\uA9B3-\uA9C0\uA9E5\uAA29-\uAA36\uAA43\uAA4C\uAA4D\uAA7B-\uAA7D\uAAB0\uAAB2-\uAAB4\uAAB7\uAAB8\uAABE\uAABF\uAAC1\uAAEB-\uAAEF\uAAF5\uAAF6\uABE3-\uABEA\uABEC\uABED\uFB1E\uFE00-\uFE0F\uFE20-\uFE2F]/g, '').replace(NON_DECOMPOSABLE_RE, ch => NON_DECOMPOSABLE_MAP[ch]) : str => str;
|
||
|
||
class BitapSearch {
|
||
constructor(pattern, {
|
||
location = Config.location,
|
||
threshold = Config.threshold,
|
||
distance = Config.distance,
|
||
includeMatches = Config.includeMatches,
|
||
findAllMatches = Config.findAllMatches,
|
||
minMatchCharLength = Config.minMatchCharLength,
|
||
isCaseSensitive = Config.isCaseSensitive,
|
||
ignoreDiacritics = Config.ignoreDiacritics,
|
||
ignoreLocation = Config.ignoreLocation
|
||
} = {}) {
|
||
this.options = {
|
||
location,
|
||
threshold,
|
||
distance,
|
||
includeMatches,
|
||
findAllMatches,
|
||
minMatchCharLength,
|
||
isCaseSensitive,
|
||
ignoreDiacritics,
|
||
ignoreLocation
|
||
};
|
||
pattern = isCaseSensitive ? pattern : pattern.toLowerCase();
|
||
pattern = ignoreDiacritics ? stripDiacritics(pattern) : pattern;
|
||
this.pattern = pattern;
|
||
this.chunks = [];
|
||
if (!this.pattern.length) {
|
||
return;
|
||
}
|
||
const addChunk = (pattern, startIndex) => {
|
||
this.chunks.push({
|
||
pattern,
|
||
alphabet: createPatternAlphabet(pattern),
|
||
startIndex
|
||
});
|
||
};
|
||
const len = this.pattern.length;
|
||
if (len > MAX_BITS) {
|
||
let i = 0;
|
||
const remainder = len % MAX_BITS;
|
||
const end = len - remainder;
|
||
while (i < end) {
|
||
addChunk(this.pattern.substr(i, MAX_BITS), i);
|
||
i += MAX_BITS;
|
||
}
|
||
if (remainder) {
|
||
const startIndex = len - MAX_BITS;
|
||
addChunk(this.pattern.substr(startIndex), startIndex);
|
||
}
|
||
} else {
|
||
addChunk(this.pattern, 0);
|
||
}
|
||
}
|
||
searchIn(text) {
|
||
const {
|
||
isCaseSensitive,
|
||
ignoreDiacritics,
|
||
includeMatches
|
||
} = this.options;
|
||
text = isCaseSensitive ? text : text.toLowerCase();
|
||
text = ignoreDiacritics ? stripDiacritics(text) : text;
|
||
|
||
// Exact match
|
||
if (this.pattern === text) {
|
||
const result = {
|
||
isMatch: true,
|
||
score: 0
|
||
};
|
||
if (includeMatches) {
|
||
result.indices = [[0, text.length - 1]];
|
||
}
|
||
return result;
|
||
}
|
||
|
||
// Otherwise, use Bitap algorithm
|
||
const {
|
||
location,
|
||
distance,
|
||
threshold,
|
||
findAllMatches,
|
||
minMatchCharLength,
|
||
ignoreLocation
|
||
} = this.options;
|
||
const allIndices = [];
|
||
let totalScore = 0;
|
||
let hasMatches = false;
|
||
this.chunks.forEach(({
|
||
pattern,
|
||
alphabet,
|
||
startIndex
|
||
}) => {
|
||
const {
|
||
isMatch,
|
||
score,
|
||
indices
|
||
} = search(text, pattern, alphabet, {
|
||
location: location + startIndex,
|
||
distance,
|
||
threshold,
|
||
findAllMatches,
|
||
minMatchCharLength,
|
||
includeMatches,
|
||
ignoreLocation
|
||
});
|
||
if (isMatch) {
|
||
hasMatches = true;
|
||
}
|
||
totalScore += score;
|
||
if (isMatch && indices) {
|
||
allIndices.push(...indices);
|
||
}
|
||
});
|
||
const result = {
|
||
isMatch: hasMatches,
|
||
score: hasMatches ? totalScore / this.chunks.length : 1
|
||
};
|
||
if (hasMatches && includeMatches) {
|
||
result.indices = mergeIndices(allIndices);
|
||
}
|
||
return result;
|
||
}
|
||
}
|
||
|
||
const registeredSearchers = [];
|
||
function register(...args) {
|
||
registeredSearchers.push(...args);
|
||
}
|
||
function createSearcher(pattern, options) {
|
||
for (let i = 0, len = registeredSearchers.length; i < len; i += 1) {
|
||
const searcherClass = registeredSearchers[i];
|
||
if (searcherClass.condition(pattern, options)) {
|
||
return new searcherClass(pattern, options);
|
||
}
|
||
}
|
||
return new BitapSearch(pattern, options);
|
||
}
|
||
|
||
const LogicalOperator = {
|
||
AND: '$and',
|
||
OR: '$or'
|
||
};
|
||
const KeyType = {
|
||
PATH: '$path',
|
||
PATTERN: '$val'
|
||
};
|
||
const isExpression = query => !!(query[LogicalOperator.AND] || query[LogicalOperator.OR]);
|
||
const isPath = query => !!query[KeyType.PATH];
|
||
const isLeaf = query => !isArray(query) && isObject(query) && !isExpression(query);
|
||
const convertToExplicit = query => ({
|
||
[LogicalOperator.AND]: Object.keys(query).map(key => ({
|
||
[key]: query[key]
|
||
}))
|
||
});
|
||
|
||
// When `auto` is `true`, the parse function will infer and initialize and add
|
||
// the appropriate `Searcher` instance
|
||
function parse(query, options, {
|
||
auto = true
|
||
} = {}) {
|
||
const next = query => {
|
||
// Keyless string entry: search across all keys
|
||
if (isString(query)) {
|
||
const obj = {
|
||
keyId: null,
|
||
pattern: query
|
||
};
|
||
if (auto) {
|
||
obj.searcher = createSearcher(query, options);
|
||
}
|
||
return obj;
|
||
}
|
||
const keys = Object.keys(query);
|
||
const isQueryPath = isPath(query);
|
||
if (!isQueryPath && keys.length > 1 && !isExpression(query)) {
|
||
return next(convertToExplicit(query));
|
||
}
|
||
if (isLeaf(query)) {
|
||
const key = isQueryPath ? query[KeyType.PATH] : keys[0];
|
||
const pattern = isQueryPath ? query[KeyType.PATTERN] : query[key];
|
||
if (!isString(pattern)) {
|
||
throw new Error(LOGICAL_SEARCH_INVALID_QUERY_FOR_KEY(key));
|
||
}
|
||
const obj = {
|
||
keyId: createKeyId(key),
|
||
pattern
|
||
};
|
||
if (auto) {
|
||
obj.searcher = createSearcher(pattern, options);
|
||
}
|
||
return obj;
|
||
}
|
||
const node = {
|
||
children: [],
|
||
operator: keys[0]
|
||
};
|
||
keys.forEach(key => {
|
||
const value = query[key];
|
||
if (isArray(value)) {
|
||
value.forEach(item => {
|
||
node.children.push(next(item));
|
||
});
|
||
}
|
||
});
|
||
return node;
|
||
};
|
||
if (!isExpression(query)) {
|
||
query = convertToExplicit(query);
|
||
}
|
||
return next(query);
|
||
}
|
||
|
||
function computeScoreSingle(matches, {
|
||
ignoreFieldNorm = Config.ignoreFieldNorm
|
||
}) {
|
||
let totalScore = 1;
|
||
matches.forEach(({
|
||
key,
|
||
norm,
|
||
score
|
||
}) => {
|
||
const weight = key ? key.weight : null;
|
||
totalScore *= Math.pow(score === 0 && weight ? Number.EPSILON : score, (weight || 1) * (ignoreFieldNorm ? 1 : norm));
|
||
});
|
||
return totalScore;
|
||
}
|
||
function computeScore(results, {
|
||
ignoreFieldNorm = Config.ignoreFieldNorm
|
||
}) {
|
||
results.forEach(result => {
|
||
result.score = computeScoreSingle(result.matches, {
|
||
ignoreFieldNorm
|
||
});
|
||
});
|
||
}
|
||
|
||
// Max-heap by score: keeps the worst (highest) score at the top
|
||
// so we can efficiently evict it when a better result arrives.
|
||
class MaxHeap {
|
||
constructor(limit) {
|
||
this.limit = limit;
|
||
this.heap = [];
|
||
}
|
||
get size() {
|
||
return this.heap.length;
|
||
}
|
||
shouldInsert(score) {
|
||
return this.size < this.limit || score < this.heap[0].score;
|
||
}
|
||
insert(item) {
|
||
if (this.size < this.limit) {
|
||
this.heap.push(item);
|
||
this._bubbleUp(this.size - 1);
|
||
} else if (item.score < this.heap[0].score) {
|
||
this.heap[0] = item;
|
||
this._sinkDown(0);
|
||
}
|
||
}
|
||
extractSorted(sortFn) {
|
||
return this.heap.sort(sortFn);
|
||
}
|
||
_bubbleUp(i) {
|
||
const heap = this.heap;
|
||
while (i > 0) {
|
||
const parent = i - 1 >> 1;
|
||
if (heap[i].score <= heap[parent].score) break;
|
||
const tmp = heap[i];
|
||
heap[i] = heap[parent];
|
||
heap[parent] = tmp;
|
||
i = parent;
|
||
}
|
||
}
|
||
_sinkDown(i) {
|
||
const heap = this.heap;
|
||
const len = heap.length;
|
||
let largest = i;
|
||
do {
|
||
i = largest;
|
||
const left = 2 * i + 1;
|
||
const right = 2 * i + 2;
|
||
if (left < len && heap[left].score > heap[largest].score) {
|
||
largest = left;
|
||
}
|
||
if (right < len && heap[right].score > heap[largest].score) {
|
||
largest = right;
|
||
}
|
||
if (largest !== i) {
|
||
const tmp = heap[i];
|
||
heap[i] = heap[largest];
|
||
heap[largest] = tmp;
|
||
}
|
||
} while (largest !== i);
|
||
}
|
||
}
|
||
|
||
function formatMatches(result) {
|
||
const matches = [];
|
||
result.matches.forEach(match => {
|
||
if (!isDefined(match.indices) || !match.indices.length) {
|
||
return;
|
||
}
|
||
const obj = {
|
||
indices: match.indices,
|
||
value: match.value
|
||
};
|
||
if (match.key) {
|
||
// `key.id` is the canonical dotted-string identity (array paths joined
|
||
// with '.'); `key.src` is the raw user input and can be a string[].
|
||
obj.key = match.key.id;
|
||
}
|
||
if (match.idx > -1) {
|
||
obj.refIndex = match.idx;
|
||
}
|
||
matches.push(obj);
|
||
});
|
||
return matches;
|
||
}
|
||
|
||
function format(results, docs, {
|
||
includeMatches = Config.includeMatches,
|
||
includeScore = Config.includeScore
|
||
} = {}) {
|
||
return results.map(result => {
|
||
const {
|
||
idx
|
||
} = result;
|
||
const data = {
|
||
item: docs[idx],
|
||
refIndex: idx
|
||
};
|
||
if (includeMatches) data.matches = formatMatches(result);
|
||
if (includeScore) data.score = result.score;
|
||
return data;
|
||
});
|
||
}
|
||
|
||
// Includes \p{M} (Mark) so combining marks stay attached to their base
|
||
// letter — without it, scripts like Devanagari and NFD-normalized Latin
|
||
// shatter (e.g. 'हिन्दी' → ['ह','न','द'], 'café'.normalize('NFD') → ['cafe']).
|
||
const DEFAULT_TOKEN = /[\p{L}\p{M}\p{N}_]+/gu;
|
||
const warned = new WeakSet();
|
||
function warnNonGlobal(regex) {
|
||
if (!warned.has(regex)) {
|
||
warned.add(regex);
|
||
console.warn(`[Fuse] tokenize regex ${regex} lacks the global flag; only the ` + `first match per text will be returned. Add the 'g' flag.`);
|
||
}
|
||
}
|
||
function resolveTokenize(tokenize) {
|
||
if (typeof tokenize === 'function') {
|
||
let validated = false;
|
||
return text => {
|
||
const result = tokenize(text);
|
||
if (!validated) {
|
||
validated = true;
|
||
if (!Array.isArray(result) || result.some(t => typeof t !== 'string')) {
|
||
throw new Error(`[Fuse] tokenize function must return string[]; received ${Array.isArray(result) ? 'array containing non-strings' : typeof result}.`);
|
||
}
|
||
}
|
||
return result;
|
||
};
|
||
}
|
||
if (tokenize instanceof RegExp) {
|
||
if (!tokenize.global) warnNonGlobal(tokenize);
|
||
return text => text.match(tokenize) || [];
|
||
}
|
||
return text => text.match(DEFAULT_TOKEN) || [];
|
||
}
|
||
function createAnalyzer({
|
||
isCaseSensitive = false,
|
||
ignoreDiacritics = false,
|
||
tokenize
|
||
} = {}) {
|
||
const tokenizeFn = resolveTokenize(tokenize);
|
||
return {
|
||
tokenize(text) {
|
||
if (!isCaseSensitive) {
|
||
text = text.toLowerCase();
|
||
}
|
||
if (ignoreDiacritics) {
|
||
text = stripDiacritics(text);
|
||
}
|
||
return tokenizeFn(text);
|
||
}
|
||
};
|
||
}
|
||
|
||
// `tokenMatch: 'all'` packs per-term coverage into a bitmask. JS bitwise ops
|
||
// are 32-bit *signed*, so bit 31 is the sign bit — only bits 0..30 are safe.
|
||
// Queries with more than this many terms fall back to a Set (no bit limit).
|
||
const MAX_MASK_TERMS = 31;
|
||
|
||
// Stats-only inverted index for token search (per Plan 008 Direction B).
|
||
//
|
||
// The query path consumes only `df` and `fieldCount` (IDF weighting). The
|
||
// per-doc maps exist solely to keep `df` and `fieldCount` correct under
|
||
// `add` / `remove` / `removeAt`:
|
||
//
|
||
// docFieldCount[doc] = # distinct fields the doc contributed; subtracted
|
||
// from `fieldCount` on remove.
|
||
// docTermFieldHits[doc] = Map<term, # fields in which `term` appears for
|
||
// that doc>; each entry decrements `df[term]` by
|
||
// that count on remove.
|
||
//
|
||
// `df` is incremented once per (doc, term, field) at index time. Removing a
|
||
// doc decrements `df` by the same count, mirroring the increment exactly.
|
||
|
||
function addField(index, text, docIdx, analyzer) {
|
||
const tokens = analyzer.tokenize(text);
|
||
if (!tokens.length) return;
|
||
index.fieldCount++;
|
||
index.docFieldCount.set(docIdx, (index.docFieldCount.get(docIdx) || 0) + 1);
|
||
|
||
// We count each (doc, term, field) once — repeated occurrences within the
|
||
// same field don't multiply df.
|
||
const distinctTerms = new Set(tokens);
|
||
let perDocTerms = index.docTermFieldHits.get(docIdx);
|
||
if (!perDocTerms) {
|
||
perDocTerms = new Map();
|
||
index.docTermFieldHits.set(docIdx, perDocTerms);
|
||
}
|
||
for (const term of distinctTerms) {
|
||
perDocTerms.set(term, (perDocTerms.get(term) || 0) + 1);
|
||
index.df.set(term, (index.df.get(term) || 0) + 1);
|
||
}
|
||
}
|
||
function ingestRecord(index, record, keyCount, analyzer) {
|
||
const {
|
||
i: docIdx,
|
||
v,
|
||
$: fields
|
||
} = record;
|
||
if (v !== undefined) {
|
||
addField(index, v, docIdx, analyzer);
|
||
return;
|
||
}
|
||
if (!fields) return;
|
||
for (let keyIdx = 0; keyIdx < keyCount; keyIdx++) {
|
||
const value = fields[keyIdx];
|
||
if (!value) continue;
|
||
if (Array.isArray(value)) {
|
||
for (const sub of value) addField(index, sub.v, docIdx, analyzer);
|
||
} else {
|
||
addField(index, value.v, docIdx, analyzer);
|
||
}
|
||
}
|
||
}
|
||
function buildInvertedIndex(records, keyCount, analyzer) {
|
||
const index = {
|
||
fieldCount: 0,
|
||
df: new Map(),
|
||
docFieldCount: new Map(),
|
||
docTermFieldHits: new Map()
|
||
};
|
||
for (const record of records) {
|
||
ingestRecord(index, record, keyCount, analyzer);
|
||
}
|
||
return index;
|
||
}
|
||
function addToInvertedIndex(index, record, keyCount, analyzer) {
|
||
ingestRecord(index, record, keyCount, analyzer);
|
||
}
|
||
function removeFromInvertedIndex(index, docIdx) {
|
||
const fieldCount = index.docFieldCount.get(docIdx);
|
||
if (fieldCount === undefined) return;
|
||
index.fieldCount -= fieldCount;
|
||
index.docFieldCount.delete(docIdx);
|
||
const perDocTerms = index.docTermFieldHits.get(docIdx);
|
||
if (!perDocTerms) return;
|
||
for (const [term, hits] of perDocTerms) {
|
||
const next = (index.df.get(term) || 0) - hits;
|
||
if (next <= 0) {
|
||
index.df.delete(term);
|
||
} else {
|
||
index.df.set(term, next);
|
||
}
|
||
}
|
||
index.docTermFieldHits.delete(docIdx);
|
||
}
|
||
|
||
// Removes the given docIdx entries and renumbers the remaining per-doc maps
|
||
// so they stay in sync with FuseIndex's contiguous renumbering on remove.
|
||
function removeAndShiftInvertedIndex(index, removedIndices) {
|
||
if (removedIndices.length === 0) return;
|
||
|
||
// De-dup and sort so the shift computation is O(log k) per lookup.
|
||
const sorted = Array.from(new Set(removedIndices)).sort((a, b) => a - b);
|
||
for (const idx of sorted) {
|
||
removeFromInvertedIndex(index, idx);
|
||
}
|
||
|
||
// For any surviving oldIdx, its new idx is oldIdx minus the number of
|
||
// removed indices strictly less than oldIdx.
|
||
const shift = oldIdx => {
|
||
let lo = 0;
|
||
let hi = sorted.length;
|
||
while (lo < hi) {
|
||
const mid = lo + hi >>> 1;
|
||
if (sorted[mid] < oldIdx) lo = mid + 1;else hi = mid;
|
||
}
|
||
return oldIdx - lo;
|
||
};
|
||
const firstRemoved = sorted[0];
|
||
const shiftedDocFieldCount = new Map();
|
||
for (const [oldKey, count] of index.docFieldCount) {
|
||
shiftedDocFieldCount.set(oldKey > firstRemoved ? shift(oldKey) : oldKey, count);
|
||
}
|
||
index.docFieldCount = shiftedDocFieldCount;
|
||
const shiftedDocTermFieldHits = new Map();
|
||
for (const [oldKey, terms] of index.docTermFieldHits) {
|
||
shiftedDocTermFieldHits.set(oldKey > firstRemoved ? shift(oldKey) : oldKey, terms);
|
||
}
|
||
index.docTermFieldHits = shiftedDocTermFieldHits;
|
||
}
|
||
|
||
class Fuse {
|
||
// Statics are assigned in entry.ts
|
||
|
||
constructor(docs, options, index) {
|
||
this.options = {
|
||
...Config,
|
||
...options
|
||
};
|
||
if (this.options.useExtendedSearch && true) {
|
||
throw new Error(EXTENDED_SEARCH_UNAVAILABLE);
|
||
}
|
||
if (this.options.useTokenSearch && true) {
|
||
throw new Error(TOKEN_SEARCH_UNAVAILABLE);
|
||
}
|
||
this._keyStore = new KeyStore(this.options.keys);
|
||
this._docs = docs;
|
||
this._myIndex = null;
|
||
this._invertedIndex = null;
|
||
this.setCollection(docs, index);
|
||
this._lastQuery = null;
|
||
this._lastSearcher = null;
|
||
}
|
||
_getSearcher(query) {
|
||
if (this._lastQuery === query) {
|
||
return this._lastSearcher;
|
||
}
|
||
const opts = this._invertedIndex ? {
|
||
...this.options,
|
||
_invertedIndex: this._invertedIndex
|
||
} : this.options;
|
||
const searcher = createSearcher(query, opts);
|
||
this._lastQuery = query;
|
||
this._lastSearcher = searcher;
|
||
return searcher;
|
||
}
|
||
setCollection(docs, index) {
|
||
this._docs = docs;
|
||
if (index && !(index instanceof FuseIndex)) {
|
||
throw new Error(INCORRECT_INDEX_TYPE);
|
||
}
|
||
this._myIndex = index || createIndex(this.options.keys, this._docs, {
|
||
getFn: this.options.getFn,
|
||
fieldNormWeight: this.options.fieldNormWeight
|
||
});
|
||
if (this.options.useTokenSearch) {
|
||
const analyzer = createAnalyzer({
|
||
isCaseSensitive: this.options.isCaseSensitive,
|
||
ignoreDiacritics: this.options.ignoreDiacritics,
|
||
tokenize: this.options.tokenize
|
||
});
|
||
this._invertedIndex = buildInvertedIndex(this._myIndex.records, this._myIndex.keys.length, analyzer);
|
||
}
|
||
this._invalidateSearcherCache();
|
||
}
|
||
add(doc) {
|
||
if (!isDefined(doc)) {
|
||
return;
|
||
}
|
||
this._docs.push(doc);
|
||
const record = this._myIndex.add(doc, this._docs.length - 1);
|
||
|
||
// Skip inverted-index bookkeeping when no record was appended (blank
|
||
// strings produce null). The previous code read `records[records.length-1]`
|
||
// unconditionally, which would re-ingest the previous doc on `add("")`.
|
||
if (this._invertedIndex && record) {
|
||
const analyzer = createAnalyzer({
|
||
isCaseSensitive: this.options.isCaseSensitive,
|
||
ignoreDiacritics: this.options.ignoreDiacritics,
|
||
tokenize: this.options.tokenize
|
||
});
|
||
addToInvertedIndex(this._invertedIndex, record, this._myIndex.keys.length, analyzer);
|
||
}
|
||
this._invalidateSearcherCache();
|
||
}
|
||
remove(predicate = () => false) {
|
||
const results = [];
|
||
const indicesToRemove = [];
|
||
for (let i = 0, len = this._docs.length; i < len; i += 1) {
|
||
if (predicate(this._docs[i], i)) {
|
||
results.push(this._docs[i]);
|
||
indicesToRemove.push(i);
|
||
}
|
||
}
|
||
if (indicesToRemove.length) {
|
||
if (this._invertedIndex) {
|
||
removeAndShiftInvertedIndex(this._invertedIndex, indicesToRemove);
|
||
}
|
||
|
||
// Filter docs in a single pass instead of reverse-splicing
|
||
const toRemove = new Set(indicesToRemove);
|
||
this._docs = this._docs.filter((_, i) => !toRemove.has(i));
|
||
this._myIndex.removeAll(indicesToRemove);
|
||
this._invalidateSearcherCache();
|
||
}
|
||
return results;
|
||
}
|
||
removeAt(idx) {
|
||
// Validate before any mutation. The previous code spliced `_docs` first
|
||
// and let FuseIndex.removeAt throw afterward — partial-state on invalid
|
||
// input. Atomic now.
|
||
if (!Number.isInteger(idx) || idx < 0 || idx >= this._docs.length) {
|
||
throw new Error(INVALID_DOC_INDEX);
|
||
}
|
||
if (this._invertedIndex) {
|
||
removeAndShiftInvertedIndex(this._invertedIndex, [idx]);
|
||
}
|
||
const doc = this._docs.splice(idx, 1)[0];
|
||
this._myIndex.removeAt(idx);
|
||
this._invalidateSearcherCache();
|
||
return doc;
|
||
}
|
||
_invalidateSearcherCache() {
|
||
this._lastQuery = null;
|
||
this._lastSearcher = null;
|
||
}
|
||
getIndex() {
|
||
return this._myIndex;
|
||
}
|
||
search(query, options) {
|
||
const {
|
||
limit = -1
|
||
} = options || {};
|
||
const {
|
||
includeMatches,
|
||
includeScore,
|
||
shouldSort,
|
||
sortFn,
|
||
ignoreFieldNorm
|
||
} = this.options;
|
||
|
||
// Empty string query returns all docs (useful for search UIs)
|
||
if (isString(query) && !query.trim()) {
|
||
let docs = this._docs.map((item, idx) => ({
|
||
item,
|
||
refIndex: idx
|
||
}));
|
||
if (isNumber(limit) && limit > -1) {
|
||
docs = docs.slice(0, limit);
|
||
}
|
||
return docs;
|
||
}
|
||
const useHeap = isNumber(limit) && limit > 0 && isString(query);
|
||
let results;
|
||
if (useHeap) {
|
||
const heap = new MaxHeap(limit);
|
||
if (isString(this._docs[0])) {
|
||
this._searchStringList(query, {
|
||
heap,
|
||
ignoreFieldNorm
|
||
});
|
||
} else {
|
||
this._searchObjectList(query, {
|
||
heap,
|
||
ignoreFieldNorm
|
||
});
|
||
}
|
||
results = heap.extractSorted(sortFn);
|
||
} else {
|
||
results = isString(query) ? isString(this._docs[0]) ? this._searchStringList(query) : this._searchObjectList(query) : this._searchLogical(query);
|
||
computeScore(results, {
|
||
ignoreFieldNorm
|
||
});
|
||
if (shouldSort) {
|
||
results.sort(sortFn);
|
||
}
|
||
if (isNumber(limit) && limit > -1) {
|
||
results = results.slice(0, limit);
|
||
}
|
||
}
|
||
return format(results, this._docs, {
|
||
includeMatches,
|
||
includeScore
|
||
});
|
||
}
|
||
_searchStringList(query, {
|
||
heap,
|
||
ignoreFieldNorm
|
||
} = {}) {
|
||
const searcher = this._getSearcher(query);
|
||
const requireAllTokens = this.options.useTokenSearch && this.options.tokenMatch === 'all';
|
||
const {
|
||
records
|
||
} = this._myIndex;
|
||
const results = heap ? null : [];
|
||
|
||
// Iterate over every string in the index
|
||
records.forEach(({
|
||
v: text,
|
||
i: idx,
|
||
n: norm
|
||
}) => {
|
||
if (!isDefined(text)) {
|
||
return;
|
||
}
|
||
const searchResult = searcher.searchIn(text);
|
||
if (searchResult.isMatch) {
|
||
const match = {
|
||
score: searchResult.score,
|
||
value: text,
|
||
norm: norm,
|
||
indices: searchResult.indices
|
||
};
|
||
if (requireAllTokens) {
|
||
match.matchedMask = searchResult.matchedMask;
|
||
match.matchedTerms = searchResult.matchedTerms;
|
||
match.termCount = searchResult.termCount;
|
||
}
|
||
const matches = [match];
|
||
|
||
// Record-level AND gate (token search `tokenMatch: 'all'`), applied
|
||
// before heap insertion so `limit` returns the same top-N as unlimited.
|
||
if (!requireAllTokens || this._coversAllTokens(matches)) {
|
||
const result = {
|
||
item: text,
|
||
idx,
|
||
matches
|
||
};
|
||
if (heap) {
|
||
result.score = computeScoreSingle(result.matches, {
|
||
ignoreFieldNorm
|
||
});
|
||
if (heap.shouldInsert(result.score)) {
|
||
heap.insert(result);
|
||
}
|
||
} else {
|
||
results.push(result);
|
||
}
|
||
}
|
||
}
|
||
});
|
||
return results;
|
||
}
|
||
_searchLogical(query) {
|
||
{
|
||
throw new Error(LOGICAL_SEARCH_UNAVAILABLE);
|
||
}
|
||
}
|
||
|
||
// When a search involves inverse patterns (e.g. !Syrup), the aggregation
|
||
// across keys switches from "ANY key matches" to "ALL keys must match."
|
||
// This is signaled by hasInverse on the SearchResult from ExtendedSearch.
|
||
//
|
||
// For mixed patterns like "^hello !Syrup", a key failure is ambiguous —
|
||
// it could be the positive or inverse term that failed. In that case we
|
||
// conservatively exclude the item, which is strictly better than the old
|
||
// behavior of including it. See: https://github.com/krisk/Fuse/issues/712
|
||
_searchObjectList(query, {
|
||
heap,
|
||
ignoreFieldNorm
|
||
} = {}) {
|
||
const searcher = this._getSearcher(query);
|
||
const requireAllTokens = this.options.useTokenSearch && this.options.tokenMatch === 'all';
|
||
const {
|
||
keys,
|
||
records
|
||
} = this._myIndex;
|
||
const results = heap ? null : [];
|
||
|
||
// List is Array<Object>
|
||
records.forEach(({
|
||
$: item,
|
||
i: idx
|
||
}) => {
|
||
if (!isDefined(item)) {
|
||
return;
|
||
}
|
||
const matches = [];
|
||
let anyKeyFailed = false;
|
||
let hasInverse = false;
|
||
|
||
// Iterate over every key (i.e, path), and fetch the value at that key
|
||
keys.forEach((key, keyIndex) => {
|
||
const keyMatches = this._findMatches({
|
||
key,
|
||
value: item[keyIndex],
|
||
searcher
|
||
});
|
||
if (keyMatches.length) {
|
||
matches.push(...keyMatches);
|
||
if (keyMatches[0].hasInverse) {
|
||
hasInverse = true;
|
||
}
|
||
} else {
|
||
anyKeyFailed = true;
|
||
}
|
||
});
|
||
|
||
// If the search involves inverse patterns, ALL keys must match
|
||
if (hasInverse && anyKeyFailed) {
|
||
return;
|
||
}
|
||
|
||
// Record-level AND gate (token search `tokenMatch: 'all'`): every query
|
||
// term must be covered across the record's field/array-element matches.
|
||
// Applied before heap insertion so `limit` returns the same top-N.
|
||
if (matches.length && (!requireAllTokens || this._coversAllTokens(matches))) {
|
||
const result = {
|
||
idx,
|
||
item,
|
||
matches
|
||
};
|
||
if (heap) {
|
||
result.score = computeScoreSingle(result.matches, {
|
||
ignoreFieldNorm
|
||
});
|
||
if (heap.shouldInsert(result.score)) {
|
||
heap.insert(result);
|
||
}
|
||
} else {
|
||
results.push(result);
|
||
}
|
||
}
|
||
});
|
||
return results;
|
||
}
|
||
_findMatches({
|
||
key,
|
||
value,
|
||
searcher
|
||
}) {
|
||
if (!isDefined(value)) {
|
||
return [];
|
||
}
|
||
const matches = [];
|
||
if (isArray(value)) {
|
||
value.forEach(({
|
||
v: text,
|
||
i: idx,
|
||
n: norm
|
||
}) => {
|
||
if (!isDefined(text)) {
|
||
return;
|
||
}
|
||
const searchResult = searcher.searchIn(text);
|
||
if (searchResult.isMatch) {
|
||
const match = {
|
||
score: searchResult.score,
|
||
key,
|
||
value: text,
|
||
idx,
|
||
norm,
|
||
indices: searchResult.indices,
|
||
hasInverse: searchResult.hasInverse
|
||
};
|
||
// Carry token-search AND coverage only when present, so the default
|
||
// (non-token / 'any') MatchScore keeps its original object shape.
|
||
if (searchResult.termCount !== undefined) {
|
||
match.matchedMask = searchResult.matchedMask;
|
||
match.matchedTerms = searchResult.matchedTerms;
|
||
match.termCount = searchResult.termCount;
|
||
}
|
||
matches.push(match);
|
||
}
|
||
});
|
||
} else {
|
||
const {
|
||
v: text,
|
||
n: norm
|
||
} = value;
|
||
const searchResult = searcher.searchIn(text);
|
||
if (searchResult.isMatch) {
|
||
const match = {
|
||
score: searchResult.score,
|
||
key,
|
||
value: text,
|
||
norm,
|
||
indices: searchResult.indices,
|
||
hasInverse: searchResult.hasInverse
|
||
};
|
||
if (searchResult.termCount !== undefined) {
|
||
match.matchedMask = searchResult.matchedMask;
|
||
match.matchedTerms = searchResult.matchedTerms;
|
||
match.termCount = searchResult.termCount;
|
||
}
|
||
matches.push(match);
|
||
}
|
||
}
|
||
return matches;
|
||
}
|
||
|
||
// Record-level AND gate for token search (`tokenMatch: 'all'`). Returns true
|
||
// unless the matched terms across ALL of a record's field/array-element
|
||
// matches fail to cover every query term. `termCount` is only set by
|
||
// TokenSearch in 'all' mode, so non-token / 'any' searches always pass.
|
||
_coversAllTokens(matches) {
|
||
const termCount = matches.length ? matches[0].termCount : undefined;
|
||
if (termCount === undefined) {
|
||
return true;
|
||
}
|
||
if (termCount <= MAX_MASK_TERMS) {
|
||
let coverage = 0;
|
||
for (let i = 0; i < matches.length; i++) {
|
||
coverage |= matches[i].matchedMask || 0;
|
||
}
|
||
return coverage === 2 ** termCount - 1;
|
||
}
|
||
const coverage = new Set();
|
||
for (let i = 0; i < matches.length; i++) {
|
||
const terms = matches[i].matchedTerms;
|
||
if (terms) {
|
||
for (const t of terms) {
|
||
coverage.add(t);
|
||
}
|
||
}
|
||
}
|
||
return coverage.size === termCount;
|
||
}
|
||
}
|
||
|
||
Fuse.version = '7.4.0';
|
||
Fuse.createIndex = createIndex;
|
||
Fuse.parseIndex = parseIndex;
|
||
Fuse.config = Config;
|
||
Fuse.match = function (pattern, text, options) {
|
||
// Token search needs corpus statistics (df, fieldCount) that a one-off
|
||
// string comparison can't provide. Reject it here so the contract is the
|
||
// same in the full and basic builds — without this guard, the full build
|
||
// crashes with an opaque TypeError and the basic build silently falls back
|
||
// to fuzzy matching.
|
||
if (options && options.useTokenSearch) {
|
||
throw new Error(FUSE_MATCH_TOKEN_SEARCH_UNSUPPORTED);
|
||
}
|
||
const searcher = createSearcher(pattern, {
|
||
...Config,
|
||
...options
|
||
});
|
||
return searcher.searchIn(text);
|
||
};
|
||
{
|
||
Fuse.parseQuery = parse;
|
||
}
|
||
Fuse.use = function (...plugins) {
|
||
plugins.forEach(plugin => register(plugin));
|
||
};
|
||
|
||
// Re-export public types
|
||
|
||
module.exports = Fuse;
|