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Rationalising Business Intelligence Systems and Explicit Knowledge Objects: Improving Evidence-Based Management in Government Programs

机译:合理化商业智能系统和明确的知识对象:改进政府计划中的循证管理

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Public sector programs often fail to leverage their business intelligence systems and explicit knowledge objects to drive efficiency and effectiveness. Given the current federal fiscal environment and the need for effective government - a catalyst to the requirement to use "evidence and rigorous evaluation in budget, management, and policy decisions" (OMB Memorandum M-12-14) - federal programs look to business intelligence as an evidence-based decision-making practice leading to a more lean government, improving efficiency and effectiveness. However, cost overruns, technical obstacles, and next-generation information challenges stemming from pervasive computing can reduce any perceived value of utilising explicit knowledge systems to support evidence in decision making. Through the evaluation of five diverse projects tasked to address the use of evidence in decision-making practices, this research shows that achieving contextualisation of information requirements, stakeholder alignment, and the complexity/feasibility of information integration are key factors that should be analysed to improve the evidence-based decision-making practice in government programs, and may be accomplished through a systematic approach, such as the rationalisation of business intelligence systems. Thus, a rationalisation framework is provided to facilitate the management of business intelligence systems geared towards a more efficient and effective use of explicit knowledge.
机译:公共部门计划通常无法利用其商业智能系统和明确的知识对象来提高效率和效力。考虑到当前的联邦财政环境和有效政府的需要,这是对“在预算,管理和政策决策中使用证据和严格评估”的要求的催化剂(OMB备忘录M-12-14)-联邦计划着眼于商业智能作为基于证据的决策方法,可以使政府更加精简,从而提高效率和效力。但是,普适计算所带来的成本超支,技术障碍和下一代信息挑战,可能会降低利用显式知识系统支持决策依据的任何感知价值。通过评估五个负责解决决策实践中证据使用问题的项目,这项研究表明,实现信息需求的环境化,利益相关者的一致以及信息集成的复杂性/可行性是应加以改进的关键因素政府计划中基于证据的决策实践,并且可以通过系统的方法来实现,例如商业智能系统的合理化。因此,提供了合理化框架来促进旨在更有效地使用显式知识的商业智能系统的管理。

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