Hydro-Ecology of Household Life: Comparative Determination of Water Use Behavior in Mitigating Climate Change in Urban Areas
Abstract
1. Introduction
1.1. Literature Review
1.1.1. Perceptions Influencing Water Management Intentions
1.1.2. The Government’s Role in Shaping Public Satisfaction with Water Management
1.1.3. Public Satisfaction with Water Management
1.1.4. Implications of Community Satisfaction in Water Management
1.1.5. Environmental Characteristic and Water Use Patterns
2. Materials and Methods
2.1. Overview
- Instrument Development and Data Collection: A structured questionnaire was developed to collect quantitative data on household water management behavior, including perceptions, perception of government roles, public satisfaction, and demographic information. The questionnaire consisted of 76 items for three variables, consisting of 25 items measuring perception, 35 items assessing the government’s role, and 16 items evaluating public satisfaction. The questionnaire also collected geotag information (longitude and latitude) of the respondent’s residence. A Likert scale was employed in the questionnaire to measure the constructs examined in this study.
- Quantitative Data Analysis: SPSS software was used for the statistical analysis of the questionnaire data to examine the variables.
- Geospatial Data Processing and Integration: Geographic Information System (GIS) software (ArcMap 10.6.1) was used to process the geotag data into point features. These respondent points were then overlaid with relevant geospatial layers, specifically LULC maps to understand the surrounding environmental context, UHI maps are used to assess the impact of urban thermal conditions.
- Integrated Modelling and Comparative AnalysisAverage Nearest Neighbour (ANN) was employed to identify areas with high household behavioral water use and to compare water use behavior patterns based on the distinct hydro-ecological features of Surabaya and the surrounding city (Sidoarjo), as well as their respective spatial conditions. The NNA map of behavioral pattern then was subsequently overlaid with UHI intensity and LULC layers to assess spatial coincidence between behavioral patterns and environmental stressors. This overlay analysis was used to identify areas with potential water scarcity risk based on the interaction between household water use behavior and environmental conditions. The resulting composite layer was classified using the equal interval (equal break) method to categorize the spatial distribution into relative risk levels.
2.2. Study Area Description
2.3. Samples
2.4. Statistical Analysis
2.5. Spatial Analysis
3. Results
3.1. Statistical Analysis Results
3.2. Spatial Analysis Results
3.2.1. Spatial Pattern
3.2.2. Land Use Land Cover
3.2.3. Urban Heat Island
3.2.4. Integrated Spatial Map
4. Discussion
5. Conclusions
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Variable | Category | Frequency (N) |
|---|---|---|
| Gender | Male | 51 |
| Female | 153 | |
| Total | 204 | |
| Last Education Level | Postgraduate (Master/Ph.D.) | 6 |
| Undergraduate (Bachelor) | 61 | |
| Diploma | 5 | |
| Senior High School | 118 | |
| Junior High School | 11 | |
| Elementary School | 3 | |
| Total | 204 | |
| Household Monthly Income | Less than Rp1.000.000 (Less than 60 USD) | 52 |
| Rp1.000.000–Rp3.000.000 (60 USD–177 USD) | 52 | |
| Rp3.000.000–Rp5.000.000 (178 USD–296 USD) | 64 | |
| Rp5.000.000–Rp10.000.000 (297 USD–592 USD) | 33 | |
| More than Rp10.000.000 (More than 593 USD) | 3 | |
| Total | 204 |
| Variables | Mean | SD | Minimum | Max | Validity Test Results Value Range | Reliability Test |
|---|---|---|---|---|---|---|
| Perception | 3.92 | 0.53 | 3 | 5 | 0.356–0.815 | 0.935 |
| Government’s role | 3.77 | 0.66 | 2 | 5 | 0.543–0.844 | 0.972 |
| Public Satisfaction | 3.67 | 0.83 | 2 | 5 | 0.522–0.819 | 0.933 |
| Region | Mean | Std. Deviation |
|---|---|---|
| Surabaya | 3.49 | 0.549 |
| Sidoarjo | 3.95 | 0.696 |
| Region | p-Value | z-Score | Spatial Pattern |
|---|---|---|---|
| Overall ANN Summary | 0.001 | −7.161 | Clustered |
| High-Score Behavior Group ANN Summary | 0.001 | −5.903 | Clustered |
| Low-Score Behavior Group ANN Summary | 0.001 | −3.283 | Clustered |
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Share and Cite
Nugraheni, D.R.; Martono, D.; Antriyandarti, E. Hydro-Ecology of Household Life: Comparative Determination of Water Use Behavior in Mitigating Climate Change in Urban Areas. Environments 2026, 13, 189. https://doi.org/10.3390/environments13040189
Nugraheni DR, Martono D, Antriyandarti E. Hydro-Ecology of Household Life: Comparative Determination of Water Use Behavior in Mitigating Climate Change in Urban Areas. Environments. 2026; 13(4):189. https://doi.org/10.3390/environments13040189
Chicago/Turabian StyleNugraheni, Dwi Rahayu, Dwinowo Martono, and Ernoiz Antriyandarti. 2026. "Hydro-Ecology of Household Life: Comparative Determination of Water Use Behavior in Mitigating Climate Change in Urban Areas" Environments 13, no. 4: 189. https://doi.org/10.3390/environments13040189
APA StyleNugraheni, D. R., Martono, D., & Antriyandarti, E. (2026). Hydro-Ecology of Household Life: Comparative Determination of Water Use Behavior in Mitigating Climate Change in Urban Areas. Environments, 13(4), 189. https://doi.org/10.3390/environments13040189

