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Managing, Analysing, and Integrating Big Data in Medical Bioinformatics: Open Problems and Future Perspectives

机译:在医疗生物信息学中管理,分析和集成大数据:未解决的问题和未来展望

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The explosion of the data both in the biomedical research and in the healthcare systems demands urgent solutions. In particular, the research in omics sciences is moving from a hypothesis-driven to a data-driven approach. Healthcare is additionally always asking for a tighter integration with biomedical data in order to promote personalized medicine and to provide better treatments. Efficient analysis and interpretation of Big Data opens new avenues to explore molecular biology, new questions to ask about physiological and pathological states, and new ways to answer these open issues. Such analyses lead to better understanding of diseases and development of better and personalized diagnostics and therapeutics. However, such progresses are directly related to the availability of new solutions to deal with this huge amount of information. New paradigms are needed to store and access data, for its annotation and integration and finally for inferring knowledge and making it available to researchers. Bioinformatics can be viewed as the “glue” for all these processes. A clear awareness of present high performance computing (HPC) solutions in bioinformatics, Big Data analysis paradigms for computational biology, and the issues that are still open in the biomedical and healthcare fields represent the starting point to win this challenge.
机译:生物医学研究和医疗保健系统中数据的爆炸式增长都迫切需要解决方案。特别是,在组学领域的研究正在从假设驱动变为数据驱动方法。此外,医疗保健部门始终要求与生物医学数据进行更紧密的集成,以促进个性化医学和提供更好的治疗。对大数据的有效分析和解释为探索分子生物学开辟了新途径,提出了有关生理和病理状态的新问题,以及回答这些未决问题的新方法。此类分析有助于更好地了解疾病,并开发出更好的个性化诊断和治疗方法。但是,这些进展与处理大量信息的新解决方案的可用性直接相关。需要新的范式来存储和访问数据,对其进行注释和集成,并最终推断出知识并将其提供给研究人员。生物信息学可以被视为所有这些过程的“胶水”。对当前生物信息学中高性能计算(HPC)解决方案的清晰认识,计算生物学的大数据分析范例以及在生物医学和医疗保健领域仍未解决的问题,是赢得这一挑战的起点。

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