Difference between revisions of "Charge Metrics Proposal"
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* Electricity Consumption | * Electricity Consumption | ||
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− | <center>There are 2 | + | <center>There are 2 groups of dataset. 1. Household monthly electricity consumption by postal code from 2013 to 2016. 2. Household yearly electricity consumption from 2007 to 2017. Those dataset will be used as the main dataset to visualise the electricity consumption in Singapore.</center> |
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| <center>Singapore Residents by Planning Area and Type of Dwelling, 2000 - 2017<br/> | | <center>Singapore Residents by Planning Area and Type of Dwelling, 2000 - 2017<br/> | ||
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* Year | * Year | ||
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− | <center>This dataset aims to complement the main dataset by providing detailed information about the | + | <center>This dataset aims to complement the main dataset by providing detailed information about the Singapore residents distribution by planning area and type if dewlling.</center> |
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| <center>HDB Property Information<br/> | | <center>HDB Property Information<br/> | ||
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* Number of Executive Condominiums Sold | * Number of Executive Condominiums Sold | ||
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− | <center>This dataset | + | <center>This dataset provide a comprehensive records of Singapore HDB Property Information. This dataset will enables us to scale the average electricity consumption by the number of units for the given dwelling type for the block.</center> |
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| <center>Private Apartment Information<br/> | | <center>Private Apartment Information<br/> | ||
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− | <center>This dataset | + | <center>This dataset will be a complementry dataset to the HDB Property Information by providing unit information for the private Apartments.</center> |
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| <center>List of Postal Districts <br/> | | <center>List of Postal Districts <br/> | ||
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− | <center>This dataset | + | <center>This dataset is used to map the postal code to the corresponding district. </center> |
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− | <p> | + | <p>Unfamiliar with D3.js </p> |
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− | * Independent learning through online learning resources | + | * Independent learning through online learning resources |
− | * Validating learning outcome through review and coding practices | + | * Validating learning outcome through review and coding practices |
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− | | <p>Data | + | | <p>Data Merge, Cleaning and Transformation</p> |
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− | * | + | * Subzone energy usage data: |
− | * Missing NA records: | + | * Missing NA records: government have purposedly removed some data points to enforce the data privacy. We will be examine the effect of remove the NA and decide the appropriate action to take. |
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| <p>Choice of web hosting provider</p> | | <p>Choice of web hosting provider</p> | ||
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* A quick production pipeline required due to the time limit | * A quick production pipeline required due to the time limit | ||
− | * Examine the | + | * Examine the requirement of the data visualisation: dynamic or statics |
− | * Current solution is to use Github Page as a hosting provider | + | * Current solution is to use Github Page as a hosting provider there is no dynamic data retrieval required |
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− | | <p> | + | | <p>Unfamilar with implementation efforts required for customized D3.js interactivity</p> |
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− | * | + | * The week will be spending 2 weeks to familiarize with D3.js structure & syntax |
− | * | + | * Follwing 2 weeks will be trying out the customized D3.js interactivity |
* The project scope and plan will be re-examined based on the project objective, complexity and time available | * The project scope and plan will be re-examined based on the project objective, complexity and time available | ||
+ | |||
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Revision as of 03:23, 15 October 2018
HOME | PROJECT POSTER | RESEARCH PAPER |
Contents
Motivation
Household electricity consumption in Singapore has increased by about 17% over the past decade, according to a report by the National Environment Agency in May 2018. On aggregate levels, Singapore households consumed 7,295 GWh (gigawatt hours) in 2017, which roughly translates to an average expenditure of $1,000 a year on electricity per household.
Electricity consumption is a national issue, especially given that Singapore has finite energy sources. It is therefore important to encourage households to consume electricity in more sustainable ways.
Traditionally, the lack of transparency surrounding electricity use has been acknowledged as a possible challenge in raising awareness on electricity consumption. Improving visualisation of household electricity consumption can help people in Singapore gain better clarity of their consumption habits and expenditure, and thus more incentive to reduce electricity usage.
Our project visualises the distribution of household electricity consumption across planning regions in Singapore, accounting for type of residential homes, income and demographic profiles. We aim to better communicate electricity consumption in everyday life to people in Singapore, and ultimately engage them to reduce electricity consumption.
Objectives
Data
Datasets | Data Attributes | Rationale Of Usage |
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Source: https://www.singstat.gov.sg/find-data/search-by-theme/population/geographic-distribution/latest-data |
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Source: https://data.gov.sg/dataset/hdb-property-information |
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Source: Real Estate Information System |
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Source: https://www.ura.gov.sg/realEstateIIWeb/resources/misc/list_of_postal_districts.htm |
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Related Works
Related Works | What We Can Learn |
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Prototype
Landing Page
[1]Logo
[2]Bivariate Chloropleth Map
[3]Filter
[4]Button to Historical Trend Page
[5]Slope Graph
Historical Trend Page
[1]Area Chart for Total Electricity Consumption
[2]Area Chart for Number of Singapore Resident
[4]Rate of Change of Number of Singapore Resident and Total Electricity Consumption
[3]Connected Scatter Plot
Project Schedules
Project Schedule on Google Sheet:https://docs.google.com/spreadsheets/d/1IlT3Na8Ujlv9izY-0PWvCWEWzfqOmzq3jGHIbWCDiwk/edit?usp=sharing
Challenges
Challenges | Possible Solutions |
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Unfamiliar with D3.js |
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Data Merge, Cleaning and Transformation |
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Choice of web hosting provider |
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Unfamilar with implementation efforts required for customized D3.js interactivity |
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References
[1] Energy Market Authority (https://www.ema.gov.sg/singapore_energy_statistics.aspx)
[2] Data Gov Database (https://data.gov.sg)
[3] D3.js (Documentation https://d3js.org/)
[4] Observalehq (https://beta.observablehq.com/)
[5] One Map (https://www.onemap.sg/main/v2/)
[6] Energy Consumption Predition Example (http://cs109-energy.github.io/building-energy-consumption-prediction.html)
Feedback
Please feel free leave your comments, suggestions or anything interesting :)