T.V.S. Ramamohan Rao Ramamohan Rao Towards an AI Algorithm for Multiple Objectives in Imperfect Markets

Towards an AI Algorithm for Multiple Objectives in Imperfect Markets

von T.V.S. Ramamohan Rao

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Beschreibung

The primary objective of this work is to develop a behavioral basis for an AI algorithm to assist managers of finance, production, and marketing divisions of firms in imperfect markets. Production, sales revenue, external finance, and networth (market value of the fixed assets) have the pivotal role as objectives. However, all of them cannot be maximized simultaneously due to the interdependence among them. The managers tend to pursue the most valuable objective using the most productive strategy at each point of time. This was utilized as a basis for the AI algorithm. Non-linearities in the switches in objectives and strategies are a short run phenomenon while swaps will be preferred if firms have a long run advantage. Such observed phenomena were also incorporated in the specification of the AI algorithms.

The important results are as follows. (i) In most industries the shortage of demand is not a constraint. Instead, the ability of firms to increase their strategic supply is dominant. (ii) Most firms pursue strategic supply based on the capital stock available. This indicates a preference for external finance. (iii) In the short run firms utilize working capital finance and selling costs to ensure that the sales revenue achieved is commensurate with the strategic supply. (iv) Thus, the postulate that expected demand determines the strategic supply as well as the profit maximization postulate for the short run do not appear as the priorities.


The primary objective of this work is to develop a behavioral basis for an AI algorithm to assist managers of finance, production, and marketing divisions of firms in imperfect markets. Production, sales revenue, external finance, and networth (market value of the fixed assets) have the pivotal role as objectives. However, all of them cannot be maximized simultaneously due to the interdependence among them. The managers tend to pursue the most valuable objective using the most productive strategy at each point of time. This was utilized as a basis for the AI algorithm. Non-linearities in the switches in objectives and strategies are a short run phenomenon while swaps will be preferred if firms have a long run advantage. Such observed phenomena were also incorporated in the specification of the AI algorithms. 

The important results are as follows. (i) In most industries the shortage of demand is not a constraint. Instead, the ability of firms to increase their strategic supply is dominant. (ii) Most firms pursue strategic supply based on the capital stock available. This indicates a preference for external finance. (iii) In the short run firms utilize working capital finance and selling costs to ensure that the sales revenue achieved is commensurate with the strategic supply. (iv) Thus, the postulate that expected demand determines the strategic supply as well as the profit maximization postulate for the short run do not appear as the priorities.


Offers a new AI Algorithm for strategic decisions of firms Develops several models of combinations of multiple objectives Relates to seven industries with AI algorithms conceptualized based on different approaches related to each industry

Autor*in

T.V.S. Ramamohan Rao

Themen in »Towards an AI Algorithm for Multiple Objectives in Imperfect Markets«

Wicked Environments Decision making AI algorithm Inverse optimal approach Modelling framework Switches and Swaps Hierarchical Choices Intangible Investment Strategic Supply Long run stability Multiple Objectives

Stimmen zu »Towards an AI Algorithm for Multiple Objectives in Imperfect Markets«

Details

ISBN: 9789819260638
Verlag: Springer Singapore
Erscheinung: 13.03.2027

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