| Literature DB >> 35035810 |
Biwen Yao1, Huiming Wang1, Mingliang Shao1, Jian Chen1, Guo Wei1.
Abstract
With the acceleration of the informatization process, but because of the late start of the informatization construction of logistics management, the current digital system construction of logistics management has not been popularized, and the intelligent logistics integrated management evaluation system is also extremely lacking. In order to solve the lack of existing intelligent logistics comprehensive management evaluation system, this paper introduces the research of intelligent logistics comprehensive management evaluation system based on hospital data fusion technology. This paper analyzes and utilizes the Kalman filter and adaptive weighted data fusion technology in data fusion technology and then analyzes the evaluation index and system design principles of the intelligent logistics comprehensive management evaluation system and then designs the application layer from the application layer. Design the application layer from the application layer. Then design the framework of the intelligent logistics comprehensive management evaluation system at the network layer and the data layer. The system is finally tested, and the test results show that the evaluation accuracy of the system reaches 80%.Entities:
Mesh:
Year: 2022 PMID: 35035810 PMCID: PMC8759850 DOI: 10.1155/2022/1490874
Source DB: PubMed Journal: J Healthc Eng ISSN: 2040-2295 Impact factor: 2.682
Evaluation indicators of smart logistics management.
| First level indicator | Secondary indicators | Three-level indicators |
|---|---|---|
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| Sectoral system indicators | Formulation and implementation of management system |
| Supervision system indicators | Supervision and inspection plan | |
| Satisfaction index | Satisfaction of logistics work | |
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| Human resource management index | Reasonable degree of employee title |
| Operational quality management indicators | Accident avoidance | |
| Economic benefit index | Logistic expenditure ratio | |
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| Technical indicators of equipment and facilities | Fixed asset management plan |
| Information technology indicators | Information system failure avoidance frequency | |
| Energy-saving technology level indicators | Energy saving expenditure | |
Figure 1Schematic diagram of system structure.
Key technical requirements and solutions.
| Key technology | Claim | Solving technology |
|---|---|---|
| Field control network technology | Has good flexibility, expansion | Adopt advanced field control network technology |
| Intelligent equipment | Scalable, real-time, and reliable | Choose important places or important circuits, install multifunction power monitoring instruments |
| Data information | Performance, easy to construct | Connect various smart devices to the field control network |
| Interface technology | Multifunctional and intelligent | Advanced remote transmission network technology to ensure the continuity and integrity of data |
| Long-distance transmission network technology | Collect all kinds of information on a system platform | Distributed system architecture enhances the scalability, stability, and execution efficiency of the system |
| System platform and application software technology | Stable and reliable data transmission | Anti-strong electromagnetic interference, anti-high temperature/humidity, antivibration, antilightning, antimisoperation of the system, etc. |
Figure 2The working principle of the framework.
Figure 3Minimum system wiring diagram of WIFI module.
Figure 4Features included in the spring framework.
Figure 5Sequence diagram of different types of users logging into the system.
Figure 6Logistics asset query function.
Figure 7Data report module process.
Test environment.
| Hardware test environment | 2 clients, 1 server |
|---|---|
| Software testing environment | Operating system: Win7 ultimate |
| Database | Oracle 11 g |
| Browser | Google Chrome, IE, Firefox |
Figure 8Satisfaction statistics chart.
Figure 9Statistics chart of data report function.