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Detecting genetic variants of breast cancer using different power spectrum methods

机译:使用不同功率谱方法检测乳腺癌的遗传变异

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Cancer is one of the most dangerous diseases that the world faces and has raised the death rate in recent years, it is known medically as malignant neoplasm, so detection of it at the early stage can yield a promising approach to determine and take actions to treat with this risk. Bioinformatics is the application of computer technology to the management of biological information. Its field has now solidly settled itself as a control in molecular biology and incorporates an extensive variety of branches of knowledge from structural biology, genomics to gene expression studies. Genomic signal processing (GSP) techniques have been connected most all around in bioinformatics and will keep on assuming an essential part in the investigation of biomedical issues. It refers to using the digital signal processing (DSP) methods for genomic data (e.g. DNA sequences) analysis. Recently, GSP is one of important methods which can be used to detect the cancerous cells that are often caused due to genetic abnormality. In this paper, some of GSP techniques that depend on frequency domain transformation are presented. These techniques are: Discrete Fourier Transform (DFT), Power Spectral Density (PSD) of DFT and PSD obtained by Welch's averaged periodogram method. The proposed method has given satisfied results for differentiation between normal and cancerous cells. The algorithm is tested on six healthy and six cancerous genes of breast cell which are obtained from NCBI genbank.
机译:癌症是世界面临的最危险的疾病之一,近年来提高了死亡率,它在医学上被称为恶性肿瘤,因此在早期发现它可以产生有希望的方法来确定和采取行动治疗的方法有这种风险。生物信息学是计算机技术在生物信息管理中的应用。它的领域现在已经稳健地定居了分子生物学的控制,并从结构生物学,基因组织中的基因组学中包含了广泛的知识分支。基因组信号处理(GSP)技术已经在生物信息学中全部连接,并将继续假设对生物医学问题的调查的重要组成部分。它是指使用用于基因组数据(例如DNA序列)分析的数字信号处理(DSP)方法。最近,GSP是可用于检测通常由于遗传异常引起的癌细胞的重要方法之一。本文提出了依赖于频域变换的一些GSP技术。这些技术是:通过WelCH的平均阶段方法获得的离散傅立叶变换(DFT),DFT和PSD的功率谱密度(PSD)。所提出的方法对正常和癌细胞之间的分化具有满足的结果。该算法在从NCBIGegank获得的六个健康和六种癌细胞癌细胞上进行测试。

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