Frontend Enhancements: - Complete React TypeScript frontend with modern UI components - Distributed workflows management interface with real-time updates - Socket.IO integration for live agent status monitoring - Agent management dashboard with cluster visualization - Project management interface with metrics and task tracking - Responsive design with proper error handling and loading states Backend Infrastructure: - Distributed coordinator for multi-agent workflow orchestration - Cluster management API with comprehensive agent operations - Enhanced database models for agents and projects - Project service for filesystem-based project discovery - Performance monitoring and metrics collection - Comprehensive API documentation and error handling Documentation: - Complete distributed development guide (README_DISTRIBUTED.md) - Comprehensive development report with architecture insights - System configuration templates and deployment guides The platform now provides a complete web interface for managing the distributed AI cluster with real-time monitoring, workflow orchestration, and agent coordination capabilities. 🤖 Generated with [Claude Code](https://claude.ai/code) Co-Authored-By: Claude <noreply@anthropic.com>
178 lines
7.3 KiB
JavaScript
178 lines
7.3 KiB
JavaScript
function _slicedToArray(arr, i) { return _arrayWithHoles(arr) || _iterableToArrayLimit(arr, i) || _unsupportedIterableToArray(arr, i) || _nonIterableRest(); }
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function _nonIterableRest() { throw new TypeError("Invalid attempt to destructure non-iterable instance.\nIn order to be iterable, non-array objects must have a [Symbol.iterator]() method."); }
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function _iterableToArrayLimit(r, l) { var t = null == r ? null : "undefined" != typeof Symbol && r[Symbol.iterator] || r["@@iterator"]; if (null != t) { var e, n, i, u, a = [], f = !0, o = !1; try { if (i = (t = t.call(r)).next, 0 === l) { if (Object(t) !== t) return; f = !1; } else for (; !(f = (e = i.call(t)).done) && (a.push(e.value), a.length !== l); f = !0); } catch (r) { o = !0, n = r; } finally { try { if (!f && null != t.return && (u = t.return(), Object(u) !== u)) return; } finally { if (o) throw n; } } return a; } }
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function _arrayWithHoles(arr) { if (Array.isArray(arr)) return arr; }
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function _toConsumableArray(arr) { return _arrayWithoutHoles(arr) || _iterableToArray(arr) || _unsupportedIterableToArray(arr) || _nonIterableSpread(); }
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function _nonIterableSpread() { throw new TypeError("Invalid attempt to spread non-iterable instance.\nIn order to be iterable, non-array objects must have a [Symbol.iterator]() method."); }
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function _unsupportedIterableToArray(o, minLen) { if (!o) return; if (typeof o === "string") return _arrayLikeToArray(o, minLen); var n = Object.prototype.toString.call(o).slice(8, -1); if (n === "Object" && o.constructor) n = o.constructor.name; if (n === "Map" || n === "Set") return Array.from(o); if (n === "Arguments" || /^(?:Ui|I)nt(?:8|16|32)(?:Clamped)?Array$/.test(n)) return _arrayLikeToArray(o, minLen); }
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function _iterableToArray(iter) { if (typeof Symbol !== "undefined" && iter[Symbol.iterator] != null || iter["@@iterator"] != null) return Array.from(iter); }
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function _arrayWithoutHoles(arr) { if (Array.isArray(arr)) return _arrayLikeToArray(arr); }
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function _arrayLikeToArray(arr, len) { if (len == null || len > arr.length) len = arr.length; for (var i = 0, arr2 = new Array(len); i < len; i++) arr2[i] = arr[i]; return arr2; }
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import { warn } from './util';
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var ACCURACY = 1e-4;
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var cubicBezierFactor = function cubicBezierFactor(c1, c2) {
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return [0, 3 * c1, 3 * c2 - 6 * c1, 3 * c1 - 3 * c2 + 1];
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};
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var multyTime = function multyTime(params, t) {
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return params.map(function (param, i) {
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return param * Math.pow(t, i);
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}).reduce(function (pre, curr) {
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return pre + curr;
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});
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};
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var cubicBezier = function cubicBezier(c1, c2) {
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return function (t) {
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var params = cubicBezierFactor(c1, c2);
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return multyTime(params, t);
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};
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};
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var derivativeCubicBezier = function derivativeCubicBezier(c1, c2) {
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return function (t) {
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var params = cubicBezierFactor(c1, c2);
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var newParams = [].concat(_toConsumableArray(params.map(function (param, i) {
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return param * i;
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}).slice(1)), [0]);
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return multyTime(newParams, t);
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};
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};
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// calculate cubic-bezier using Newton's method
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export var configBezier = function configBezier() {
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for (var _len = arguments.length, args = new Array(_len), _key = 0; _key < _len; _key++) {
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args[_key] = arguments[_key];
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}
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var x1 = args[0],
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y1 = args[1],
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x2 = args[2],
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y2 = args[3];
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if (args.length === 1) {
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switch (args[0]) {
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case 'linear':
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x1 = 0.0;
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y1 = 0.0;
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x2 = 1.0;
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y2 = 1.0;
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break;
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case 'ease':
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x1 = 0.25;
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y1 = 0.1;
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x2 = 0.25;
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y2 = 1.0;
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break;
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case 'ease-in':
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x1 = 0.42;
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y1 = 0.0;
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x2 = 1.0;
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y2 = 1.0;
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break;
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case 'ease-out':
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x1 = 0.42;
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y1 = 0.0;
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x2 = 0.58;
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y2 = 1.0;
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break;
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case 'ease-in-out':
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x1 = 0.0;
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y1 = 0.0;
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x2 = 0.58;
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y2 = 1.0;
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break;
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default:
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{
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var easing = args[0].split('(');
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if (easing[0] === 'cubic-bezier' && easing[1].split(')')[0].split(',').length === 4) {
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var _easing$1$split$0$spl = easing[1].split(')')[0].split(',').map(function (x) {
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return parseFloat(x);
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});
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var _easing$1$split$0$spl2 = _slicedToArray(_easing$1$split$0$spl, 4);
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x1 = _easing$1$split$0$spl2[0];
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y1 = _easing$1$split$0$spl2[1];
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x2 = _easing$1$split$0$spl2[2];
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y2 = _easing$1$split$0$spl2[3];
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} else {
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warn(false, '[configBezier]: arguments should be one of ' + "oneOf 'linear', 'ease', 'ease-in', 'ease-out', " + "'ease-in-out','cubic-bezier(x1,y1,x2,y2)', instead received %s", args);
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}
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}
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}
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}
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warn([x1, x2, y1, y2].every(function (num) {
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return typeof num === 'number' && num >= 0 && num <= 1;
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}), '[configBezier]: arguments should be x1, y1, x2, y2 of [0, 1] instead received %s', args);
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var curveX = cubicBezier(x1, x2);
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var curveY = cubicBezier(y1, y2);
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var derCurveX = derivativeCubicBezier(x1, x2);
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var rangeValue = function rangeValue(value) {
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if (value > 1) {
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return 1;
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}
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if (value < 0) {
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return 0;
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}
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return value;
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};
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var bezier = function bezier(_t) {
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var t = _t > 1 ? 1 : _t;
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var x = t;
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for (var i = 0; i < 8; ++i) {
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var evalT = curveX(x) - t;
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var derVal = derCurveX(x);
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if (Math.abs(evalT - t) < ACCURACY || derVal < ACCURACY) {
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return curveY(x);
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}
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x = rangeValue(x - evalT / derVal);
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}
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return curveY(x);
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};
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bezier.isStepper = false;
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return bezier;
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};
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export var configSpring = function configSpring() {
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var config = arguments.length > 0 && arguments[0] !== undefined ? arguments[0] : {};
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var _config$stiff = config.stiff,
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stiff = _config$stiff === void 0 ? 100 : _config$stiff,
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_config$damping = config.damping,
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damping = _config$damping === void 0 ? 8 : _config$damping,
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_config$dt = config.dt,
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dt = _config$dt === void 0 ? 17 : _config$dt;
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var stepper = function stepper(currX, destX, currV) {
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var FSpring = -(currX - destX) * stiff;
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var FDamping = currV * damping;
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var newV = currV + (FSpring - FDamping) * dt / 1000;
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var newX = currV * dt / 1000 + currX;
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if (Math.abs(newX - destX) < ACCURACY && Math.abs(newV) < ACCURACY) {
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return [destX, 0];
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}
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return [newX, newV];
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};
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stepper.isStepper = true;
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stepper.dt = dt;
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return stepper;
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};
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export var configEasing = function configEasing() {
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for (var _len2 = arguments.length, args = new Array(_len2), _key2 = 0; _key2 < _len2; _key2++) {
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args[_key2] = arguments[_key2];
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}
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var easing = args[0];
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if (typeof easing === 'string') {
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switch (easing) {
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case 'ease':
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case 'ease-in-out':
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case 'ease-out':
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case 'ease-in':
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case 'linear':
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return configBezier(easing);
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case 'spring':
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return configSpring();
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default:
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if (easing.split('(')[0] === 'cubic-bezier') {
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return configBezier(easing);
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}
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warn(false, "[configEasing]: first argument should be one of 'ease', 'ease-in', " + "'ease-out', 'ease-in-out','cubic-bezier(x1,y1,x2,y2)', 'linear' and 'spring', instead received %s", args);
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}
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}
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if (typeof easing === 'function') {
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return easing;
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}
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warn(false, '[configEasing]: first argument type should be function or string, instead received %s', args);
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return null;
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}; |