A Framework for Valuation and Portfolio Optimization of Venture Capital Deals with Contractual Terms

4区 工程技术 Q1 Mathematics Mathematical Problems in Engineering Pub Date : 2024-01-25 DOI:10.1155/2024/3427721
Mohammadreza Valaei, Vahid Khodakarami
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Abstract

Venture capitalists invest not only in the business aspect of a deal but also in its contractual terms. Therefore, the selection of deals and the combination of contractual terms pose challenging decisions for them. This paper consists of two main sections. The first section introduces a novel framework for the valuation of venture capital (VC) deals, including startups and their contractual terms. By taking into account risk situations, this section presents the valuation of combined contractual terms, including call options, liquidity preference, and participant rights. In the second section, a new multiobjective mathematical model for VC deals and contractual terms portfolio selection is developed using right-tail probability, strategy alignment, and a utility function. To solve the proposed model, three metaheuristic algorithms—Non-Dominated Sorting Genetic Algorithm (NSGA-II), Multi-Objective Binary Harmony Search Algorithm, and Dynamic Tuning Parameter Binary Harmony Search Algorithm (DTPBHS)—are applied. Based on numerical examples, DTPBHS outperforms other algorithms in the “Mean Ideal Distance” index, but NSGA-II demonstrates the best performance in the “Rate of Achievement of two objectives simultaneously” index. Furthermore, we demonstrate that the proposed utility function is more robust than the right-tail probability function under default deals conditions.
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附带合同条款的风险投资交易的估值和投资组合优化框架
风险资本家不仅投资于交易的业务方面,也投资于交易的合同条款。因此,交易的选择和合同条款的组合对他们来说是一项具有挑战性的决策。本文包括两个主要部分。第一部分介绍了一个新颖的风险投资(VC)交易估值框架,包括初创企业及其合同条款。考虑到风险情况,这一部分介绍了组合合同条款的估值,包括看涨期权、流动性偏好和参与者权利。第二部分使用右尾概率、策略调整和效用函数,为风险投资交易和合同条款组合选择建立了一个新的多目标数学模型。为了解决所提出的模型,应用了三种元启发式算法--非支配排序遗传算法(NSGA-II)、多目标二元和谐搜索算法和动态调整参数二元和谐搜索算法(DTPBHS)。根据数值实例,DTPBHS 在 "平均理想距离 "指标上优于其他算法,但 NSGA-II 在 "同时实现两个目标的比率 "指标上表现最佳。此外,我们还证明了在默认交易条件下,建议的效用函数比右尾概率函数更稳健。
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来源期刊
Mathematical Problems in Engineering
Mathematical Problems in Engineering 工程技术-工程:综合
CiteScore
4.00
自引率
0.00%
发文量
2853
审稿时长
4.2 months
期刊介绍: Mathematical Problems in Engineering is a broad-based journal which publishes articles of interest in all engineering disciplines. Mathematical Problems in Engineering publishes results of rigorous engineering research carried out using mathematical tools. Contributions containing formulations or results related to applications are also encouraged. The primary aim of Mathematical Problems in Engineering is rapid publication and dissemination of important mathematical work which has relevance to engineering. All areas of engineering are within the scope of the journal. In particular, aerospace engineering, bioengineering, chemical engineering, computer engineering, electrical engineering, industrial engineering and manufacturing systems, and mechanical engineering are of interest. Mathematical work of interest includes, but is not limited to, ordinary and partial differential equations, stochastic processes, calculus of variations, and nonlinear analysis.
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