206 lines
7.8 KiB
JavaScript
206 lines
7.8 KiB
JavaScript
"use strict";
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Object.defineProperty(exports, "__esModule", {
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value: true
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});
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exports.createRound = void 0;
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var _factory = require("../../utils/factory.js");
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var _collection = require("../../utils/collection.js");
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var _number = require("../../utils/number.js");
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var _nearlyEqual = require("../../utils/bignumber/nearlyEqual.js");
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var _matAlgo11xS0s = require("../../type/matrix/utils/matAlgo11xS0s.js");
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var _matAlgo12xSfs = require("../../type/matrix/utils/matAlgo12xSfs.js");
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var _matAlgo14xDs = require("../../type/matrix/utils/matAlgo14xDs.js");
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var _index = require("../../plain/number/index.js");
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const NO_INT = 'Number of decimals in function round must be an integer';
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const name = 'round';
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const dependencies = ['typed', 'config', 'matrix', 'equalScalar', 'zeros', 'BigNumber', 'DenseMatrix'];
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const createRound = exports.createRound = /* #__PURE__ */(0, _factory.factory)(name, dependencies, _ref => {
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let {
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typed,
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config,
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matrix,
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equalScalar,
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zeros,
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BigNumber,
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DenseMatrix
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} = _ref;
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const matAlgo11xS0s = (0, _matAlgo11xS0s.createMatAlgo11xS0s)({
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typed,
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equalScalar
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});
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const matAlgo12xSfs = (0, _matAlgo12xSfs.createMatAlgo12xSfs)({
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typed,
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DenseMatrix
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});
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const matAlgo14xDs = (0, _matAlgo14xDs.createMatAlgo14xDs)({
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typed
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});
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function toExponent(epsilon) {
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return Math.abs((0, _number.splitNumber)(epsilon).exponent);
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}
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/**
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* Round a value towards the nearest rounded value.
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* For matrices, the function is evaluated element wise.
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*
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* Syntax:
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*
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* math.round(x)
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* math.round(x, n)
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* math.round(unit, valuelessUnit)
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* math.round(unit, n, valuelessUnit)
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*
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* Examples:
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*
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* math.round(3.22) // returns number 3
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* math.round(3.82) // returns number 4
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* math.round(-4.2) // returns number -4
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* math.round(-4.7) // returns number -5
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* math.round(3.22, 1) // returns number 3.2
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* math.round(3.88, 1) // returns number 3.9
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* math.round(-4.21, 1) // returns number -4.2
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* math.round(-4.71, 1) // returns number -4.7
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* math.round(math.pi, 3) // returns number 3.142
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* math.round(123.45678, 2) // returns number 123.46
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*
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* const c = math.complex(3.2, -2.7)
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* math.round(c) // returns Complex 3 - 3i
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*
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* const unit = math.unit('3.241 cm')
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* const cm = math.unit('cm')
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* const mm = math.unit('mm')
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* math.round(unit, 1, cm) // returns Unit 3.2 cm
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* math.round(unit, 1, mm) // returns Unit 32.4 mm
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*
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* math.round([3.2, 3.8, -4.7]) // returns Array [3, 4, -5]
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*
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* See also:
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*
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* ceil, fix, floor
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*
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* @param {number | BigNumber | Fraction | Complex | Unit | Array | Matrix} x Value to be rounded
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* @param {number | BigNumber | Array} [n=0] Number of decimals
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* @param {Unit} [valuelessUnit] A valueless unit
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* @return {number | BigNumber | Fraction | Complex | Unit | Array | Matrix} Rounded value
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*/
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return typed(name, {
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number: function (x) {
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// Handle round off errors by first rounding to relTol precision
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const xEpsilon = (0, _index.roundNumber)(x, toExponent(config.relTol));
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const xSelected = (0, _number.nearlyEqual)(x, xEpsilon, config.relTol, config.absTol) ? xEpsilon : x;
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return (0, _index.roundNumber)(xSelected);
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},
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'number, number': function (x, n) {
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// Same as number: unless user specifies more decimals than relTol
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const epsilonExponent = toExponent(config.relTol);
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if (n >= epsilonExponent) {
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return (0, _index.roundNumber)(x, n);
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}
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const xEpsilon = (0, _index.roundNumber)(x, epsilonExponent);
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const xSelected = (0, _number.nearlyEqual)(x, xEpsilon, config.relTol, config.absTol) ? xEpsilon : x;
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return (0, _index.roundNumber)(xSelected, n);
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},
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'number, BigNumber': function (x, n) {
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if (!n.isInteger()) {
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throw new TypeError(NO_INT);
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}
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return new BigNumber(x).toDecimalPlaces(n.toNumber());
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},
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Complex: function (x) {
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return x.round();
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},
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'Complex, number': function (x, n) {
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if (n % 1) {
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throw new TypeError(NO_INT);
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}
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return x.round(n);
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},
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'Complex, BigNumber': function (x, n) {
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if (!n.isInteger()) {
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throw new TypeError(NO_INT);
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}
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const _n = n.toNumber();
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return x.round(_n);
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},
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BigNumber: function (x) {
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// Handle round off errors by first rounding to relTol precision
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const xEpsilon = new BigNumber(x).toDecimalPlaces(toExponent(config.relTol));
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const xSelected = (0, _nearlyEqual.nearlyEqual)(x, xEpsilon, config.relTol, config.absTol) ? xEpsilon : x;
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return xSelected.toDecimalPlaces(0);
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},
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'BigNumber, BigNumber': function (x, n) {
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if (!n.isInteger()) {
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throw new TypeError(NO_INT);
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}
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// Same as BigNumber: unless user specifies more decimals than relTol
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const epsilonExponent = toExponent(config.relTol);
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if (n >= epsilonExponent) {
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return x.toDecimalPlaces(n.toNumber());
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}
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const xEpsilon = x.toDecimalPlaces(epsilonExponent);
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const xSelected = (0, _nearlyEqual.nearlyEqual)(x, xEpsilon, config.relTol, config.absTol) ? xEpsilon : x;
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return xSelected.toDecimalPlaces(n.toNumber());
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},
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Fraction: function (x) {
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return x.round();
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},
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'Fraction, number': function (x, n) {
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if (n % 1) {
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throw new TypeError(NO_INT);
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}
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return x.round(n);
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},
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'Fraction, BigNumber': function (x, n) {
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if (!n.isInteger()) {
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throw new TypeError(NO_INT);
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}
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return x.round(n.toNumber());
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},
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'Unit, number, Unit': typed.referToSelf(self => function (x, n, unit) {
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const valueless = x.toNumeric(unit);
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return unit.multiply(self(valueless, n));
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}),
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'Unit, BigNumber, Unit': typed.referToSelf(self => (x, n, unit) => self(x, n.toNumber(), unit)),
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'Array | Matrix, number | BigNumber, Unit': typed.referToSelf(self => (x, n, unit) => {
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// deep map collection, skip zeros since round(0) = 0
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return (0, _collection.deepMap)(x, value => self(value, n, unit), true);
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}),
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'Array | Matrix | Unit, Unit': typed.referToSelf(self => (x, unit) => self(x, 0, unit)),
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'Array | Matrix': typed.referToSelf(self => x => {
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// deep map collection, skip zeros since round(0) = 0
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return (0, _collection.deepMap)(x, self, true);
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}),
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'SparseMatrix, number | BigNumber': typed.referToSelf(self => (x, n) => {
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return matAlgo11xS0s(x, n, self, false);
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}),
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'DenseMatrix, number | BigNumber': typed.referToSelf(self => (x, n) => {
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return matAlgo14xDs(x, n, self, false);
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}),
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'Array, number | BigNumber': typed.referToSelf(self => (x, n) => {
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// use matrix implementation
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return matAlgo14xDs(matrix(x), n, self, false).valueOf();
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}),
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'number | Complex | BigNumber | Fraction, SparseMatrix': typed.referToSelf(self => (x, n) => {
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// check scalar is zero
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if (equalScalar(x, 0)) {
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// do not execute algorithm, result will be a zero matrix
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return zeros(n.size(), n.storage());
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}
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return matAlgo12xSfs(n, x, self, true);
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}),
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'number | Complex | BigNumber | Fraction, DenseMatrix': typed.referToSelf(self => (x, n) => {
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// check scalar is zero
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if (equalScalar(x, 0)) {
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// do not execute algorithm, result will be a zero matrix
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return zeros(n.size(), n.storage());
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}
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return matAlgo14xDs(n, x, self, true);
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}),
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'number | Complex | BigNumber | Fraction, Array': typed.referToSelf(self => (x, n) => {
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// use matrix implementation
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return matAlgo14xDs(matrix(n), x, self, true).valueOf();
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})
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});
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}); |