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The String Theory Landscape

机译:弦论景观

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String/M theory is formulated in 10 and 11 space-time dimensions; in order to describe our universe, we must postulate that six or seven of the spatial dimensions form a small compact manifold. In 1985, Candelas et al. showed that by taking the extra dimensions to be a Calabi–Yau manifold, one could obtain the grand unified theories which had previously been postulated as extensions of the Standard Model of particle physics. Over the years since, many more such compactifications were found. In the early 2000s, progress in nonperturbative string theory enabled computing the approximate effective potential for many compactifications, and it was found that they have metastable local minima with small cosmological constant. Thus, string/M theory appears to have many vacuum configurations which could describe our universe. By combining results on these vacua with a measure factor derived using the theory of eternal inflation, one gets a theoretical framework which realizes earlier ideas about the multiverse, including the anthropic solution to the cosmological constant problem. We review these arguments and some of the criticisms, with their implications for the prediction of low energy supersymmetry and hidden matter sectors, as well as recent work on a variation on eternal inflation theory motivated by computational complexity considerations.
机译:String / M理论是用10和11时空维度表示的;为了描述我们的宇宙,我们必须假设六个或七个空间维度形成了一个紧凑的小型流形。 1985年,Candelas等人。结果表明,通过将额外的维数作为卡拉比-丘流形,可以得到以前被假定为粒子物理学标准模型的扩展的统一大理论。从那以后的几年中,发现了更多这样的压缩。在2000年代初期,非扰动弦理论的进步使得能够计算出许多压实的近似有效潜能,并且发现它们具有亚稳的局部极小值,且宇宙常数很小。因此,弦/ M理论似乎具有许多可以描述我们宇宙的真空构造。通过将这些真空的结果与使用永恒膨胀理论得出的量度因子相结合,可以得到一个理论框架,该框架可以实现有关多元宇宙的早期思想,包括人类对宇宙常数问题的解决方案。我们回顾了这些论点和一些批评,以及它们对低能超对称性和隐性物质领域的预测的意义,以及最近关于以计算复杂性为动机的永恒通货膨胀理论的变体的研究。

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