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📄 statisticalmultivariatesummary.java

📁 Apache的common math数学软件包
💻 JAVA
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/* * Licensed to the Apache Software Foundation (ASF) under one or more * contributor license agreements.  See the NOTICE file distributed with * this work for additional information regarding copyright ownership. * The ASF licenses this file to You under the Apache License, Version 2.0 * (the "License"); you may not use this file except in compliance with * the License.  You may obtain a copy of the License at * *      http://www.apache.org/licenses/LICENSE-2.0 * * Unless required by applicable law or agreed to in writing, software * distributed under the License is distributed on an "AS IS" BASIS, * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. * See the License for the specific language governing permissions and * limitations under the License. */package org.apache.commons.math.stat.descriptive;import org.apache.commons.math.linear.RealMatrix;/** *  Reporting interface for basic multivariate statistics. * * @since 1.2 * @version $Revision: 480440 $ $Date: 2006-11-29 08:14:12 +0100 (mer., 29 nov. 2006) $ */public interface StatisticalMultivariateSummary {    /**      * Returns the dimension of the data     * @return The dimension of the data     */    public int getDimension();    /**     * Returns an array whose i<sup>th</sup> entry is the     * mean of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component means     */    public abstract double[] getMean();    /**      * Returns the covariance of the available values.     * @return The covariance, null if no multivariate sample     * have been added or a zeroed matrix for a single value set.       */    public abstract RealMatrix getCovariance();    /**     * Returns an array whose i<sup>th</sup> entry is the     * standard deviation of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component standard deviations     */    public abstract double[] getStandardDeviation();    /**     * Returns an array whose i<sup>th</sup> entry is the     * maximum of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component maxima     */    public abstract double[] getMax();    /**     * Returns an array whose i<sup>th</sup> entry is the     * minimum of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component minima     */    public abstract double[] getMin();    /**      * Returns the number of available values     * @return The number of available values     */    public abstract long getN();    /**     * Returns an array whose i<sup>th</sup> entry is the     * geometric mean of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component geometric means     */    public double[] getGeometricMean();    /**     * Returns an array whose i<sup>th</sup> entry is the     * sum of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component sums     */    public abstract double[] getSum();    /**     * Returns an array whose i<sup>th</sup> entry is the     * sum of squares of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component sums of squares     */    public abstract double[] getSumSq();    /**     * Returns an array whose i<sup>th</sup> entry is the     * sum of logs of the i<sup>th</sup> entries of the arrays     * that correspond to each multivariate sample     *      * @return the array of component log sums     */    public abstract double[] getSumLog();}

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