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Issue Info: 
  • Year: 

    2023
  • Volume: 

    12
  • Issue: 

    4
  • Pages: 

    107-120
Measures: 
  • Citations: 

    0
  • Views: 

    124
  • Downloads: 

    21
Abstract: 

Introduction: With the growth of urbanization, urban transportation has become one of the most critical challenges of urban management, which is closely related to the economic power of cities AND countries. A robust economy requires adequate infrastructure in the freight division, AND proper resource planning AND management is the key to its success. In this research, the issue of transportation of postal items has been considered. The use of traditional methods prolongs receiving AND delivering postal items AND thus increases its costs. In this research, this issue has been studied. Using meta-heuristic algorithms (Artificial Intelligence), an attempt has been made to optimize the problem of receiving AND delivering postal items. Materials & Methods: The proposed method of this research is based on the use of a Genetic Algorithm to optimize the order of PICKUP AND DELIVERY of postal items using the travel cost matrix between the points of PICKUP AND DELIVERY. The genetic algorithm has high flexibility following the structure of different problems. In the developed model of this research, the order of picking AND delivering shipments in each freight vehicle is in one array AND five arrays representing five freight vehicles from five postal centers in one matrix created. The genetic algorithm tries to optimize the final solution by rANDomly generating these matrices (chromosomes) AND measuring the fitness function of each matrix (answer) AND using the combination AND mutation operators. Finally, the best solution is obtained, which is the best arrangement AND planning for the trucks carrying the items, in which the best order of receiving AND delivering the postal items is determined. Results & Discussion: The study area is 10, 11, 12, 14, 15, 16, 17, AND 19 regions of Tehran (the capital of Iran), which were selected for implementation. Street network data was entered into the Network Analyst tool in ArcGIS software. Travel cost matrices between PICKUP AND DELIVERY points AND consignment centers were extracted from the data of 50 PICKUP points AND 50 DELIVERY points entered into the developed model. After executing the algorithm for 1000 times AND generating final output, which is the most optimal arrangement of PICKUP AND DELIVERY points, it was compared with the first rANDom answer made in the model which represents old unplanned method for receiving AND delivering the postal items. The total length of final optimal answer is 551689 meters, which is less than 720287 meters (the total length of first rANDom answer). The decrease in the final solution in comparison to the first rANDom solution is 168598 meters, which is equivalent to 24% savings AND indicates the efficiency of the developed model. Conclusion: Using old traditional experimental methods for pick-up AND DELIVERY of postal items leads to increase the route of postal vehicles which increase the urban congestion AND produces some pollutions. Applying the scientific methods such as used model in this research helps to decrease the aforementioned problems AND it is a key to approach the smart cities. We used a genetic algorithm optimization method for arranging the order of receiving AND delivering the postal items AND develop a method to decrease the distance between request points. By using this algorithm, the total length of postal vehicles decreased from 720 km to 551 km which is equivalent to 24% savings. For instance, the second truck's way can be checked to investigate the proposed model's performance. Since can be observed, the algorithm has put the pick-up AND DELIVERY points together properly to stop the truck from driving around the study area. It can similarly be recognized that the truck's movement numbers are adjacent to each other. It means that the DELIVERY points are ordered to follow each other, AND the postal vehicle evades moving significant ways. Consequently, the vehicle's driving length is decreased, which decreases the overall driving length of all vehicles. Nevertheless, the first vehicle's route does not look so visually optimal. It can be seen that the vehicle has been required to move to some distant points. First, the ultimate solution's fitness function's state holds the lowest possible value among the solutions. Furthermore, the algorithm could not optimize the paths more, AND it has to insert some distant locations in the route of one of the vehicles. Indeed, every attempt has been performed to gain the most suitable paths. However, we can optimize this problem by improving our methods or use other metaheuristics algorithms for future research.

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Issue Info: 
  • Year: 

    2016
  • Volume: 

    3
  • Issue: 

    6
  • Pages: 

    149-165
Measures: 
  • Citations: 

    0
  • Views: 

    1239
  • Downloads: 

    0
Abstract: 

The classical models of vehicle routing generally focused on minimizing total distance AND travel time, however in green vehicle routing problem the main objective is minimizing total emissions AND fuel consumption besides the other objects.In this paper, extension of GVRP with minimizing fuel AND emission costs presented that considered PICKUP AND DELIVERY constraints with hard time windows. Travel time in this model is not constant AND speed of vehicles would be determined in regards to customers’ time widows. In this paper, a heuristic based adaptive large neighborhood search proposed for solving the model. Construction algorithm in this method is heuristic based algorithm with proposed criterion according to pick up AND DELIVERY constrains AND time windows with assumption of variable speed. Computational results confirms efficiency of this algorithm.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Author(s): 

BERHAN ESHETIE

Issue Info: 
  • Year: 

    2015
  • Volume: 

    8
  • Issue: 

    19
  • Pages: 

    1-7
Measures: 
  • Citations: 

    0
  • Views: 

    414
  • Downloads: 

    227
Abstract: 

The problem of designing a set of routes with minimum cost to serve a collection of customers with a fleet of vehicles is a fundamental challenge when the number of customers to be dropped or picked up is not known during the planning horizon. The purpose of this paper is to develop a vehicle routing Problem (VRP) model that addresses stochastic simultaneous PICKUP AND DELIVERY in the urban public transport systems of Addis Ababa city Bus Enterprise, in Ethiopia. To this effect, a mathematical model is developed AND fitted with real data collected from Anbessa City Bus Service Enterprise (ACBSE) AND solved using Clark-Wright saving algorithm. The form-to-distance is computed from the data collected from Google Earth AND the passenger data from the ACBSE. The findings of the study show that the model is feasible AND showed an improvement as compared to the current performances of the enterprise. It showed an improvement on the current number of routes (number of buses used) AND the total kilometer covered. The average performances of the model show that on average 6.48 routes are required to serve passenger demANDs of 271 AND on average the simulation run was performed with 0.40 seconds of CPU time. During this instance, the average distance traveled by the vehicles in a single trip is 552.92kms.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Issue Info: 
  • Year: 

    2015
  • Volume: 

    1
Measures: 
  • Views: 

    132
  • Downloads: 

    0
Abstract: 

MINIMIZATION OF SYSTEM COSTS IS MAIN GOAL FROM THE PERSPECTIVE OF DISTRIBUTION COMPANIES’ MANAGERS, BUT THIS OPINION LEADS TO INCREASE THE RISK OF PRODUCTS DAMAGE. CONSEQUENTLY NUMEROUS COSTS MAY BE IMPOSED TO SYSTEM’S STAKEHOLDERS. THE EFFICACY OF PREMIUM DETERMINATION POLICY ON LOCATION AND ROUTING NETWORK STRUCTURE IS CONSIDERED IN THIS STUDY. THIS PAPER ADDRESSES LOCATION ROUTING PROBLEM WITH SIMULTANEOUS PICKUP AND DELIVERY. THE MODEL AIMS TO MINIMIZE THE TOTAL COST (INCLUDING FIXED COSTS FOR ESTABLISHING DEPOTS AND VEHICLES, TRANSPORTATION COSTS AND ALSO INSURANCE COSTS) THROUGH DETERMINING THE LOCATION OF DEPOTS, ALLOCATION OF CUSTOMERS TO THESE OPENED DEPOTS AND PLANNING ROUTES. THE INSURANCE COST IS EXPENDED TO REDUCE THE RISK OF SYSTEM AND IT CONSISTS OF TWO TERMS: BASIC COST THAT IS PAID FOR ALL INVENTORY VOLUMES UP TO PREDETERMINE THRESHOLD VOLUME, AND SUPPLEMENTARY INSURANCE IS PAID FOR PER UNIT OF OVER PLUS PRODUCTS THAT ARE MORE THAN THRESHOLD VOLUME. SOME NUMERICAL EXAMPLES ARE USED TO EVALUATE VALIDITY AND EFFICIENCY OF THE PROPOSED MODEL. THE RESULTS SHOW THAT ADOPTING APPROPRIATE PREMIUM DETERMINATION POLICY, CAUSES TO DECREASE THE RISK OF NETWORK.

Yearly Impact:   مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Issue Info: 
  • Year: 

    2019
  • Volume: 

    6
  • Issue: 

    3 (23)
  • Pages: 

    217-235
Measures: 
  • Citations: 

    0
  • Views: 

    157
  • Downloads: 

    63
Abstract: 

In this work, the capacitated location-routing problem with simultaneous PICKUP AND DELIVERY (CLRPSPD) is considered. This problem is a more realistic case of the capacitated location-routing problem (CLRP) AND belongs to the reverse logistics of the supply chain. The problem has many real-life applications of which some have been addressed in the literature such as management of liquid petroleum gas tanks, laundry service of hotels AND drink distribution. The CLRP-SPD is composed of two well-known problems; facility location problem AND vehicle routing problem. In CLRP-SPD, a set of customers with given DELIVERY AND PICKUP demANDs should be supplied by a fleet of vehicles that start AND end their tours at a single depot. Moreover, the depots AND vehicles have a predefined capacity AND the objective function is minimizing the route distances, fixed costs of establishing the depot(s) AND employing the vehicles. The node-based MIP formulation of the CLRP-SPD is proposed based on the literature of the problem. To solve the model, a greedy clustering method (GCM) is developed which includes four phases; clustering the customers, establishing the proper depot(s), assigning the clusters to depot(s) AND constructing the vehicle tours by ant colony system (ACS). The numerical experiments on two sets of test problems with different sizes on the number of customers AND cANDidate depots show the efficiency of the heuristic method with the proposed method in the literature. Finally, performance of the heuristic method to the similar methods in the literature is evaluated by several stANDard test problems of the CLRP.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Issue Info: 
  • Year: 

    2017
  • Volume: 

    51
  • Issue: 

    1
  • Pages: 

    101-115
Measures: 
  • Citations: 

    0
  • Views: 

    1868
  • Downloads: 

    0
Abstract: 

Integrated optimization approach in supply chain has become one of the most important AND interesting subjects for researchers in recent years. In this paper, a mathematical model is presented for two-echelon location-routing problem with simultaneous PICKUP AND DELIVERY, so that a layer of facilities with the name of “middle warehouse” are located between main distribution centers AND customers. Each customer has demANDs for commodity reception AND DELIVERY SIMULTANEOUSLY. In this paper, first a two-echelon integer programming mathematical model, which central/middle storerooms capacities are considered limited, is presented. Then, using genetic AND simulated annealing algorithms, a hybrid metaheuristic method is delivered for solving the model. Numerical results of solving sample instances in different sizes confirm the good performance of our approach.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Issue Info: 
  • Year: 

    2014
  • Volume: 

    32
  • Issue: 

    272
  • Pages: 

    34-49
Measures: 
  • Citations: 

    0
  • Views: 

    1377
  • Downloads: 

    0
Abstract: 

In recent years, much more attentions have been focused on siRNA-based gene therapy. This approach is based on PTGS (Post-transcriptional gene silencing). Due to some defects in viral vectors, non-viral vectors have been used to deliver nucleic acids into target cells. Although, transfection efficiency in non-viral vectors is less than viral ones, but safety of non-viral vectors is much more. Characteristic features of siRNA, such as high compatibility, application in low doses AND its versatility make it suitable in the gene therapy field. However, some challenges, such as stimulating immune system AND Off-target silencing will be remain. In this review article, we express bottlenecks existing in siRNA DELIVERY into target cells. According to the information, with further development of siRNA DELIVERY in the future, it could be a promising approach in treatment for a variety of genetic diseases.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Issue Info: 
  • Year: 

    2013
  • Volume: 

    1
  • Issue: 

    1
  • Pages: 

    51-60
Measures: 
  • Citations: 

    0
  • Views: 

    122
  • Downloads: 

    93
Abstract: 

In this article, multiple-product PVRP with PICKUP AND DELIVERY that is used widely in goods distribution or otherservice companies, especially by railways, was introduced. A mathematical formulation was provided for this problem. Each product had a set of vehicles which could carry the product AND PICKUP AND DELIVERY could SIMULTANEOUSLYoccur. To solve the problem, two meta-heuristic methods, both based on particle swarm optimization, were providedAND ran for small AND large class problems AND their efficiency were demonstrated. Also, efficiency of binary PSO togeneral PSO was tested AND BPSO was shown to outperform the general method. This approach can be used in railwaytransportation.

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Author(s): 

LANDRIEU A. | MATI Y. | BINDER Z.

Issue Info: 
  • Year: 

    2001
  • Volume: 

    12
  • Issue: 

    -
  • Pages: 

    5-6
Measures: 
  • Citations: 

    1
  • Views: 

    169
  • Downloads: 

    0
Keywords: 
Abstract: 

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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Author(s): 

Issue Info: 
  • Year: 

    2022
  • Volume: 

    171
  • Issue: 

    -
  • Pages: 

    0-0
Measures: 
  • Citations: 

    1
  • Views: 

    2
  • Downloads: 

    0
Keywords: 
Abstract: 

Yearly Impact: مرکز اطلاعات علمی Scientific Information Database (SID) - Trusted Source for Research and Academic Resources

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