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Multidimensional Skill Mismatch

机译:多维技能不匹配

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What determines the earnings of a worker relative to his peers in the same occupation? What makes a worker fail in one occupation but succeed in another? More broadly, what are the factors that determine the productivity of a worker-occupation match? To help answer questions like these, we propose an empirical measure of multidimensional skill mismatch that is based on the discrepancy between the portfolio of skills required by an occupation and the portfolio of abilities possessed by a worker for learning those skills. This measure arises naturally in a dynamic model of occupational choice and human capital accumulation with multidimensional skills and Bayesian learning about one's ability to learn skills. Not only does mismatch depress wage growth in the current occupation, it also leaves a scarring effect—by stunting skill acquisition—that reduces wages in future occupations. Mismatch also predicts different aspects of occupational switching behavior. We construct the empirical analog of our skill mismatch measure from readily available US panel data on individuals and occupations and find empirical support for these implications. The magnitudes of these effects are large: moving from the worst- to the best-matched decile can improve wages by 11 percent per year for the rest of one's career.
机译:决定相对于同一职业的工人的收入的因素是什么?是什么使工人在一项职业中失败而在另一职业中成功?从更广泛的意义上讲,哪些因素决定了工人职业匹配的生产率?为了帮助回答此类问题,我们提出了一种多维技能不匹配的实证测量方法,该方法基于职业所需的技能组合与工人学习这些技能的能力组合之间的差异。这种衡量方法自然是在具有多维技能和贝叶斯学习人的学习能力的能力的职业选择和人力资本积累的动态模型中自然产生的。不匹配不仅会抑制当前职业的工资增长,而且还会通过延缓技能获取而留下疤痕,从而降低未来职业的工资。不匹配还会预测职业转换行为的不同方面。我们从关于个人和职业的现成美国面板数据中构建了技能失配测度的经验类似物,并找到了这些暗示的经验支持。这些影响的幅度很大:从最差的十进制到最匹配的十分位数,可以为其余职业每年将工资提高11%。

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