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Data-driven selection of conference speakers based on scientific impact to achieve gender parity

机译:数据驱动的会议发言人基于科学影响力实现性别平等

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摘要

A lack of diversity limits progression of science. Thus, there is an urgent demand in science and the wider community for approaches that increase diversity, including gender diversity. We developed a novel, data-driven approach to conference speaker selection that identifies potential speakers based on scientific impact metrics that are frequently used by researchers, hiring committees, and funding bodies, to convincingly demonstrate parity in the quality of peer-reviewed science between men and women. The approach enables high quality conference programs without gender disparity, as well as generating a positive spiral for increased diversity more broadly in STEM.
机译:缺乏多样性限制了科学的发展。因此,科学和更广泛的社区迫切需要增加包括性别多样性在内的多样性的方法。我们开发了一种新的,数据驱动的会议发言人选择方法,该方法可以根据研究人员,招聘委员会和资助机构经常使用的科学影响力指标来确定潜在的发言人,以令人信服地证明男性之间经过同行评审的科学质量是平等的和女人。这种方法可以实现没有性别差异的高质量会议计划,并且可以在STEM中产生积极的螺旋效应,以增加多样性。

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