| Literature DB >> 36156949 |
Abstract
During the development of the urban water system from 1.0 to 3.0, the impervious surface area gradually increased, hindering the natural infiltration and self-purification process of urban rainwater, resulting in serious urban water pollution, urban waterlogging in the rainy season, and groundwater problems. Since water will seep into the ground, serious water pollution will cause damage to the ground. Therefore, in dealing with urban rainwater problems, we want to use the sponge's ability to absorb and store water to build our cities into sponge cities. In this paper, we have constructed a sponge city planning and information system development based on geographic information fuzzy processing. We use differentiated fuzzy processing methods to eliminate classified information to achieve a perfect combination with nearby images and use ordinary fuzzy processing methods to solve the problem of nonconfidential information. This paper discusses the impact of natural topography on the planning and construction of sponge cities, including whether natural topography will affect rainwater, whether it will affect the distribution of different strata, and whether it will affect the utilization of groundwater resources. The basic functions of this platform are provided by a series of functions of GIS, and multiple modules are developed according to management requirements. The initial state of street view data is a lot of fisheye lens photos and corresponding point location information, which are displayed online after data preprocessing, detection information, editing information, and blurring processing.Entities:
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Year: 2022 PMID: 36156949 PMCID: PMC9499764 DOI: 10.1155/2022/9464785
Source DB: PubMed Journal: Comput Intell Neurosci
Figure 1Structure design of street view security and confidential information processing platform.
Figure 2Platform function modules and processing flowchart.
Figure 3Analysis results of elevation, slope, and aspect of a city.
Figure 4A generalized diagram of ArcGIS water flow direction D8 algorithm.
Evaluation factors for the suitability of sponge city construction in the secondary zone.
| Factor | Range | Scoring |
|---|---|---|
| Green area rate | <20% | 1 |
| 20%∼30% | 2 | |
| 30%10% | 3 | |
| 40%∼50% | 4 | |
| >50% | 5 | |
|
| ||
| Surface rate | <3% | 1 |
| 3%∼6% | 2 | |
| 6%∼9% | 3 | |
| 9%∼12% | 4 | |
| >12% | 5 | |
|
| ||
| Proportion of built-up area | >85% | 1 |
| 60%∼85% | 2 | |
| 45%∼60% | 3 | |
| 20%∼45% | 4 | |
| <20% | 5 | |
Applicable topographic feature index evaluation and comparison criteria for sponge facilities.
| Sponge facility | Location characteristics | Natural terrain conditions | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Soil condition | Groundwater characteristics | Topography | Nature of catchment | Space requirement | |||||
| Land use type | Pollution load intensity | Soil type | The highest underground water level is from the bottom of the facility (m) | Confluence gradient (%) | Catchment area (ha) | Impermeability (%) | Area (ha) | ||
| Permeable sponge facilities “seepage” | Permeable paving | R/B/G/S | Low | A-B | >0.61 | 1–3 | <1 | >0 | — |
| Sunken green space | R/S/B/G | In | A-B | >0.61 | 1–5 | >4 | >0 | In | |
| Biological retention facility | R/S/B/G | In | A-B | >1.22 | 1–5 | <4 | >0 | In | |
| Infiltration pond | R/S/B/G | In | A-B | >3 | <15 | 1–4 | >0 | Big | |
| Seepage well | R/S/B/G | Low | A-B | >0.61 | <10 | <1 | >0 | Small | |
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| Adjustment category sponge facilities “stay” | Regulating pond | R/G | Low | A-D | >1 | <10 | >6 | >0 | Big |
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| Adjustment category sponge facilities “stay” | Regulation pool | R/S/B/G/M | Low | A-D | >1 | — | — | >0 | Small |
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| Storage type sponge facilities “fan, use” | Wet pond | R/G | High | A-D | >1.22 | <10 | >6 | 0–80 | Big |
| Rain wetland | R/G | High | B-D | >1.22 | 4–15 | >10 | 0–80 | Big | |
| Reservoir | R/S/B/G | Low | A-D | — | — | >0 | Small | ||
| Rainwater irrigation | R/B | Low | — | — | — | — | — | Small | |
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| Purification category sponge facility “clean” | Green roof | R/B/M | In | — | — | <4 | — | — | — |
| Vegetation buffer zone | R/S/B/G/M | High | A-D | >0.61 | 2–6 | >4 | >0 | In | |
| Initial rainwater abandonment facility | R/B/M | High | — | — | — | — | — | Small | |
| Artificial soil | R/B/M | In | A-D | >0.61 | <10 | <2 | 0–50 | Small | |
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| Transfer type sponge facility “row” | Zhicaogou | R/S/B/G | In | A-D | >0.61 | 0.5–5 | <2 | >0 | In |
| Seepage pipe/drain | R/G | Low | A-B | >1.22 | — | <2 | >0 | In | |
Figure 5Combining sponge facilities with activity space to enrich the landscape.
Key issues and main tasks of each work stage.
| Work phase | The key issue | Main mission |
|---|---|---|
| Definition and plan | What is the question? | Determine the outline of the system plan; survey tasks for the transportation requirements; make preparations for the survey |
| Feasibility study | Is there a feasible solution? | Provide expert opinions and suggestions |
| Demand analysis | What must the system do? | Understand the artificial system model; determine user needs; order current business flow and data flow; collect original business data, analyze demand survey results, and make design preparations |
| Outline design | How to solve the problem? | Determine system design principles and goals, carry out system control structure design, software function structure design, database design, operating environment design and interface design; determine system implementation plan |
| Detailed design | How to implement the system concretely? | Familiar with the basic development platform software; determine the module function and the calling relationship between the modules; determine the module interface; give the module control mix diagram 1 gives the software guide and user input and output interface |
| Program code | How to design the correct program unit? | According to detailed design results and programming guidelines, the functions of each caution block are realized with code |
| Test inheritance | How to ensure that the software meets the requirements? | Install and develop the application system on-site, and conduct anti-image debugging through simulation operation; meanwhile, conduct system use training for business personnel at all levels of the planning bureau |
| Operation and maintenance | How to make the system persistently meet the requirements? | The system enters the formal operation stage, during which system identification is completed; operation and maintenance are carried out |
Figure 6Platform architecture.