A queueing-inventory model with skeptical and trusting customers

被引:3
|
作者
Hanukov, Gabi [1 ]
机构
[1] Ariel Univ, Dept Ind Engn & Management, IL-4077625 Ariel, Israel
关键词
Queueing-inventory; Perishable inventory; Customers heterogeneity; Servers idle time; PERMISSIBLE DELAY; SERVER VACATION; S INVENTORY; SYSTEM; SERVICE; POLICY; QUEUES; PROMOTION; NETWORKS; PRICE;
D O I
10.1007/s10479-022-04936-5
中图分类号
C93 [管理学]; O22 [运筹学];
学科分类号
070105 ; 12 ; 1201 ; 1202 ; 120202 ;
摘要
Performing a part of the service without the customer's presence is becoming an increasingly common practice in many real-life service systems. This practice can generate a two-phase service system composed of (i) an opening service (OS), which can be provided only when the customer is present, and (ii) a complementary service (CS), which can be conducted without the customer. However, in practice, not all customers favor being absent when their service is provided. It follows that customers are generally of two kinds: those who insist that the whole service is provided in their presence and those who are willing to leave the system whenever their presence is not required. Moreover, after providing the OS, the server can postpone the execution of the CS, store the ready OS in the designated storage facility and handle it once the system becomes empty of customers. By adopting such a policy, the server's idle time is efficiently used, reducing customers' mean sojourn time in the system. In contrast to classical queueing-inventory models, where each customer's service may require a unit from inventory, in our model a customer's service may create a unit in the inventory. We formulate and analyze this novel queueing-inventory system and derive its steady-state probabilities using matrix geometric methods. We subsequently consider the spoilage of OSs in the inventory, and carry out an economic analysis to determine the optimal OS capacity and optimal level of investment in preservation technologies preventing the spoilage.
引用
收藏
页码:763 / 786
页数:24
相关论文
共 50 条
  • [21] A QUEUEING-INVENTORY SYSTEM WITH LOST SALES AND A GENERAL VACATION POLICY
    Zhang, Yuying
    Yue, Dequan
    Wang, Jinting
    JOURNAL OF INDUSTRIAL AND MANAGEMENT OPTIMIZATION, 2025,
  • [22] Queueing-Inventory Models with Batch Demands and Positive Service Times
    Chakravarthy, S. R.
    AUTOMATION AND REMOTE CONTROL, 2020, 81 (04) : 713 - 730
  • [23] A queueing-inventory model to control the congestion of patients and medical waste in the medical centers, a case study
    Rahiminia, Mohammad
    Shahrabifarahani, Sareh
    Mojaradi, Zahra
    Aghsami, Amir
    Jolai, Fariborz
    JOURNAL OF MANAGEMENT ANALYTICS, 2023, 10 (02) : 416 - 445
  • [24] A perspective analysis of obligatory vacation and retention of impatient purchaser on queueing-inventory with retrial policy
    Nithya, N.
    Anbazhagan, N.
    Amutha, S.
    Joshi, Gyanendra Prasad
    OPERATIONAL RESEARCH, 2024, 24 (03)
  • [25] A stochastic queueing-inventory system with renewal demands and positive lead time
    Keerthana, M.
    Saranya, N.
    Sivakumar, B.
    EUROPEAN JOURNAL OF INDUSTRIAL ENGINEERING, 2020, 14 (04) : 443 - 484
  • [26] A Queueing-Inventory System with Modified Delayed Vacation under Bernoulli Schedule
    Xu, Qingzhe
    Li, Jianjun
    Liu, Liwei
    Guo, Lixue
    METHODOLOGY AND COMPUTING IN APPLIED PROBABILITY, 2024, 26 (04)
  • [27] Taylor series expansion approach for epistemic uncertainty propagation in queueing-inventory models
    Soufit, Massinissa
    Ouazine, Sofiane
    Abbas, Karim
    MATHEMATICAL METHODS IN THE APPLIED SCIENCES, 2018, 41 (18) : 9164 - 9175
  • [28] An M/M/1 Queueing-Inventory System with Working Vacations, Vacation Interruptions and Lost Sales
    Manikandan, R.
    Nair, S. S.
    AUTOMATION AND REMOTE CONTROL, 2020, 81 (04) : 746 - 759
  • [29] An M/M/1 Queueing-Inventory System with Working Vacations, Vacation Interruptions and Lost Sales
    R. Manikandan
    S. S. Nair
    Automation and Remote Control, 2020, 81 : 746 - 759
  • [30] A production queueing-inventory system with two-customer and a server subject to breakdown
    Umay Uzunoglu Kocer
    Serife Ozkar
    Annals of Operations Research, 2023, 331 : 1089 - 1117