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Deep Replication of a Runoff Portfolio

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  • Thomas Krabichler
  • Josef Teichmann

Abstract

To the best of our knowledge, the application of deep learning in the field of quantitative risk management is still a relatively recent phenomenon. This article presents the key notions of Deep Asset Liability Management (Deep~ALM) for a technological transformation in the management of assets and liabilities along a whole term structure. The approach has a profound impact on a wide range of applications such as optimal decision making for treasurers, optimal procurement of commodities or the optimisation of hydroelectric power plants. As a by-product, intriguing aspects of goal-based investing or Asset Liability Management (ALM) in abstract terms concerning urgent challenges of our society are expected alongside. We illustrate the potential of the approach in a stylised case.

Suggested Citation

  • Thomas Krabichler & Josef Teichmann, 2020. "Deep Replication of a Runoff Portfolio," Papers 2009.05034, arXiv.org.
  • Handle: RePEc:arx:papers:2009.05034
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    References listed on IDEAS

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