首页> 外文期刊>International journal of computer science and network security >Ensembled Utilization of The Binary Coded Genetic (BCG) Algorithm for The Instinctive Spontaneous Allocation of Weights for the Intensification of The Superior Capitulating Scripts in An Optimized Selection of Portfolio
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Ensembled Utilization of The Binary Coded Genetic (BCG) Algorithm for The Instinctive Spontaneous Allocation of Weights for the Intensification of The Superior Capitulating Scripts in An Optimized Selection of Portfolio

机译:在优化选择产品组合中,对大学编码遗传(BCG)算法进行二元编码遗传(BCG)算法的实用自发性分配卓越的投资组合

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The dexterity of portfolio management and selection of scripts has always been a challenging realm for the researchers. After the advent of the modern computing methods and machine learning environment much of the automation activity has been adopted by the computational finance researchers but still there is room for betterment. The current research is extension of the automated portfolio selection being previously carried out, in which chameleon and dynamic K-Means algorithms were modified through ensembled learning through which a set of scripts are being selected. Current research undertakes the adjustment of the weightage of the selection in the portfolio for the diminution of the risk and amplification / upsurge of the return through the dividend yield and the capital growth by utilizing the binary coded genetic algorithm.
机译:投资组合管理和剧本选择的灵巧一直是研究人员的具有挑战性的领域。在现代计算方法和机器学习环境的出现之后,计算金融研究人员已经采用了大部分自动化活动,但仍然有更好的余地。目前的研究是先前进行的自动组合选择的扩展,其中通过集合学习通过集成的学习来修改变色龙和动态k-mean算法。正在选择一组脚本。目前的研究开展了调整组合中选择的重量,以通过利用二元编码遗传算法通过红利产量和资本增长减少返回的风险和放大/更高的程度。

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