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Determination of oil palm fresh fruit bunch ripeness - based on flavonoids and anthocyanin content.

机译:油棕新鲜水果束成熟度的测定-基于类黄酮和花青素含量。

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Non-destructive and real-time oil palm fresh fruit bunch (FFB) grading systems are of major exploratory concern for researchers in the oil palm industry. The objective is to reduce time, labour, costs, and most importantly, to increase the oil extraction rate, in order to achieve a good quality of palm oil at a more acceptable price. This research investigates the potential of flavonoids and anthocyanins as a predictor to classify the degree of oil palm FFB ripeness. This paper also discusses the relationship between these predictors and the ripeness categories period. One hundred and eighty oil palm FFB samples were collected from a private plantation in Malaysia, according to three maturity categories i.e., ripe, under-ripe, and over-ripe. Each sample was randomly scanned 10 times, both front and back using a hand-held MultiplexReg.3 multi-parameter fluorescence sensor. The results show that flavonoid and anthocyanin content decreased from immature to over mature oil palm FFBs. Overall, the relationship using Pearson's correlation between flavonoids and anthocyanins was r2 = 0.84 and the most outstanding relationship accuracy was at the over-ripe stage, at 90%. Statistical analysis using analysis of variance (ANOVA) and pair-wise testing proved that both predictors gave significance difference between under-ripe, ripe, and over-ripe maturity categories. This shows that both predictors can be good indicators to classify oil palm FFB. Classification analysis was performed by using both predictors together and separately through several methods. The highest overall classification accuracy was 87.7% using a Stochastic Gradient Boosting Trees model and with both predictors. The other classification methods used either independent or both predictors together and gave various results ranging from 50 to 85% accuracy. This research proves that flavonoids and anthocyanins can be used as predictors of oil palm maturity classification. All rights reserved, Elsevier.
机译:非破坏性实时油棕新鲜水果束(FFB)分级系统是油棕行业研究人员的主要探索性问题。目的是减少时间,劳力,成本,最重要的是增加油的提取率,以便以更可接受的价格获得高质量的棕榈油。这项研究调查了类黄酮和花青素作为预测油棕果FFB成熟度的指标的潜力。本文还讨论了这些预测变量与成熟度类别周期之间的关系。根据三个成熟度类别,即成熟,未成熟和过度成熟,从马来西亚的一个私人种植园中收集了180个油棕FFB样品。使用手持式Multiplex Reg。 3多参数荧光传感器对每个样品进行正面和背面随机扫描10次。结果表明,类黄酮和花青素的含量从未成熟到成熟油棕FFBs减少。总体而言,使用皮尔逊相关性的类黄酮与花色苷之间的关系为 r 2 = 0.84,最杰出的关系准确度为成熟期,为90%。使用方差分析(ANOVA)和成对检验进行的统计分析证明,这两个预测变量均给出了成熟度不足,成熟和过度成熟度类别之间的显着差异。这表明这两个预测指标都可以作为对油棕FFB进行分类的良好指标。分类分析是通过同时使用两个预测变量并通过几种方法分别进行的。使用随机梯度提升树模型和两个预测因子时,最高总分类准确度为87.7%。其他分类方法使用独立的预测变量或同时使用两个预测变量,得出的各种结果的准确度从50%到85%不等。这项研究证明类黄酮和花青素可以用作油棕成熟度分类的预测指标。保留所有权利,Elsevier。

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