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Quantifying Performance Appraisal Parameters: A Forward Feature Selection Approach

机译:量化绩效评估参数:一种前向特征选择方法

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Objectives: The objective of the paper is study and select optimal set of parameters present in performance appraisal (PA). It will result into the best PA. For achieving this, the technique used is "feature selection" and "clustering" and it is supported with the data analytical tool "R". Methods/Statistical Analysis: The paper covers the data mining analysis. For achieving this, the technique used is "feature selection" and "clustering" and it is supported with the data analytical tool "R". Findings: This paper focuses on performance appraisal, the multiple parameters available; to be exact it is 34 parameters. To select set of parameters, 13 from the set of 34, which when focused by the employees can have optimum PA. For achieving this, the technique used is "feature selection" and "clustering" and it is supported with the data analytical tool "R". Applications/Improvements: Usable for every firm where employees have PA. In Organizations today, Human resource and performance appraisal has become very crucial. This is significant from the perception of both the management and the employees. The mechanism of measuring the performance appraisal has also evolved over a period. Recently there are multiple factors and parameters which are taken for measuring the performance appraisal of an individual employee. This complete process is very challenging for both, the employer and the employee. The employer i.e. the organization comes up with different mechanisms and keeps abreast with changing scenarios in order to be competitive in the industry. It is the employees who face the major difficulties in understanding and deciding what to address in their day to day work, which can get appreciation from the employers. Ultimately a good appraisal is every employee's desire
机译:目标:本文的目的是研究和选择绩效评估(PA)中存在的最佳参数集。它将产生最佳的PA。为此,使用的技术是“功能选择”和“聚类”,并且数据分析工具“ R”支持该技术。方法/统计分析:本文涵盖了数据挖掘分析。为此,使用的技术是“功能选择”和“聚类”,并且数据分析工具“ R”支持该技术。调查结果:本文着重于绩效评估,可以使用多个参数。确切地说,它是34个参数。要选择一组参数,请从3​​4组中选择13组,当员工集中精力时,可以达到最佳的PA。为此,使用的技术是“功能选择”和“聚类”,并且数据分析工具“ R”支持该技术。应用程序/改进:适用于所有拥有PA的公司。在当今的组织中,人力资源和绩效评估已变得至关重要。从管理层和员工的看法来看,这一点意义重大。绩效评估的衡量机制也在一段时间内得到了发展。最近,有许多因素和参数被用来衡量单个员工的绩效评估。对于雇主和雇员来说,这个完整的过程都非常具有挑战性。雇主,即组织提出了不同的机制,并与不断变化的情况保持同步,以便在行业中具有竞争力。员工在理解和决定日常工作中面临的主要困难时会遇到很大的困难,这可以从雇主那里得到赞赏。最终,良好的评估是每个员工的愿望

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