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Dwelling completions per 1,000 people, New South Wales

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Publisher NSW Department of Planning, Housing and InfrastructureUpdated quarterlyLicence CC BY 4.0Latest 2026-10-03Rows 163Fields 3

The Dwelling completions indicator from the NSW Department of Planning, Housing and Infrastructure, the number of NSW residential dwellings completed per 1,000 people annually. Each row is one quarter, dated by the first day of the quarter's last month as the publisher dates it, with the annual completions per 1,000 people at that quarter.

Also called: NSW housing completions rate, New homes built in NSW per capita, NSW residential dwelling completions per 1,000 residents.

Before you use it
What is in each row?
One quarter since June 1985, with the publisher's figure for the number of residential dwellings completed in New South Wales in a year per 1,000 people.
Is this a count of dwellings?
No. The publisher gives a rate per 1,000 people and does not give the count or the population it used in the file. The value is published as the department calculated it.
163quarters
1986 to 2024years drawn
3fields
9formats
1version
012341986: 41987: 41988: 41989: 419891990: 41991: 41992: 41993: 41994: 419941995: 41996: 41997: 41998: 41999: 419992000: 42001: 42002: 42003: 42004: 420042005: 42006: 42007: 42008: 42009: 420092010: 42011: 42012: 42013: 42014: 420142015: 42016: 42017: 42018: 42019: 420192020: 42021: 42022: 42023: 42024: 42024
Quarters per year, 1986 to 2024. 1985 is not drawn because the rows begin on 1 June 1985. 2025 is not drawn because the rows run to 1 December 2025. The figure is a count of rows from version 2026-10-03, worked out in the build. Nothing else is added.

Made for agents

Connect your AI agent

Any agent that connects to publicdata.au/mcp can find this dataset, read its 3 fields, count and filter across all 163 rows and diff its versions. Every answer names the version and carries DPHI's attribution. No key.

Then ask it: What does Dwelling completions per 1,000 people, New South Wales hold, and what changed in the newest version?

claude mcp add --transport http publicdata https://publicdata.au/mcp

One command. No key, no account, no sign-up.

Download it as Excel, CSV, JSON and 6 more formats

Pick a format and a version. Excel is picked first because it opens in the tools most offices have. The URL is yours to keep. A dated version never changes.

Format
"Latest" redirects to the newest version and will change when the publisher releases again. A dated version never changes.
https://publicdata.au/d/nsw-dwelling-completions/latest/data.xlsx
Download

In your own tools

Use it in Excel, R, Python and more

Excel and Power BI read the CSV from its address and refresh from it. The R and Python packages take any dataset on this site by its slug, so a new dataset needs no new release. The DuckDB file attaches read-only over HTTPS, and a query reads only the blocks it touches.

The dated URL in the code never changes. https://publicdata.au/d/nsw-dwelling-completions/latest/ redirects to the newest version.

https://publicdata.au/d/nsw-dwelling-completions/latest/data.csv

In Excel choose Data, then From Web, and paste this address. Excel keeps it, so Refresh All reads the newest version. A sheet holds about a million rows; past that, load the query to the Data Model.

What is in it

Column names are made snake_case and the publisher's original header is kept beside each one. Blank cells are null. Nothing is added, removed, ranked or summarised.

FieldTypePublisher's headerNote
quarterdate(row header 1)The publisher dates each quarter by the first day of its last month.
measurestring(column header 1)
valuenumber(cell)Annual dwelling completions per 1,000 people, as the measure names.

Download this table as a data dictionary (Excel), or read it as a Frictionless Table Schema at schema.json. The key is quarter, measure.

A sample of 10 rows

From the latest version, newest first by quarter, then in the publisher's order, with every field. A blank cell is shown as null.

quartermeasurevalue
2025-12-01Annual dwelling completions per 1,000 people5.24239722211
2025-09-01Annual dwelling completions per 1,000 people5.14050389788
2025-06-01Annual dwelling completions per 1,000 people4.97374132331
2025-03-01Annual dwelling completions per 1,000 people5.29804383689
2024-12-01Annual dwelling completions per 1,000 people5.37259294646
2024-09-01Annual dwelling completions per 1,000 people5.38579114174
2024-06-01Annual dwelling completions per 1,000 people5.518691011
2024-03-01Annual dwelling completions per 1,000 people5.45992810768
2023-12-01Annual dwelling completions per 1,000 people5.66363735275
2023-09-01Annual dwelling completions per 1,000 people5.72127839732
The first row as JSON

As it appears in data.json.

GET https://publicdata.au/d/nsw-dwelling-completions/latest/data.json
{
  "quarter": "1985-06-01",
  "measure": "Annual dwelling completions per 1,000 people",
  "value": 6.648718128901538
}

Query it without downloading

The query API returns only the rows you ask for, as JSON, NDJSON or CSV, from the same typed rows as the files. It needs no key. Build a query here and run it, then copy the URL or the code into your own work.

Try rows or aggregate for this dataset. The query builder needs JavaScript.

How filters work

Each filter is field=operator.value in the query string, and every filter must match. A number or date field compares as a number or date, and a text field compares as text. Values are case-sensitive except with ilike. Prefix not. to negate a filter, as not.eq.value.

OperatorWhat it matches
eq.valueEqual to the value.
neq.valueNot equal to the value. A blank cell does not match.
gt.valueGreater than the value.
gte.valueGreater than or equal to the value.
lt.valueLess than the value.
lte.valueLess than or equal to the value.
like.*text*Matches a pattern where * stands for any run of characters. Case-sensitive.
ilike.*text*The same as like, ignoring case.
in.(a,b,c)Equal to any value in the list. A value cannot contain a comma.
is.nullBlank in the source, or suppressed by the publisher.
ParameterWhat it does
selectFields to return, comma-separated. Every field when absent.
orderfield.asc or field.desc, comma-separated. The publisher's row order when absent.
limitRows per page, 1 to 10,000. 100 when absent.
offsetRows to skip. The next URL in each answer sets it for you.
groupOn aggregate, fields to group by, comma-separated.
metricOn aggregate, count, sum.field, avg.field, min.field or max.field, comma-separated. count when absent.
formatjson, ndjson or csv. JSON carries the provenance header, and the others carry it in response headers.

Without a version the API answers from the newest loaded version, and that answer changes when the publisher releases again. Put versions/<date>/ before rows or aggregate for an answer that never changes. /api/v1/datasets/<slug>/versions lists the loaded versions. The 1 newest version is loaded; versions lists them.

The API allows 60 requests in 10 seconds from one address. Above that it answers 429 for 10 seconds with a Retry-After header, a RateLimit-Policy header and a JSON body that gives the limit. Every API answer carries the same RateLimit-Policy. A client should wait the Retry-After seconds, or read the files, which have no limit. openapi.json describes this dataset's query paths for client generators and agents.

https://publicdata.au/mcp is a remote MCP server over Streamable HTTP with the same tools, defined in the same place, so a tool added to the pages is added here too. It needs no key and no account. The row tools are held to the query API's limit of 60 queries in 10 seconds from one address, and each call is two queries because it also counts the matching rows. Add it to Claude Code with claude mcp add --transport http publicdata https://publicdata.au/mcp, add the URL in Claude as a custom connector, or give it to any client that connects to remote MCP servers. Each queryable dataset is also a resource at https://publicdata.au/d/<slug>/fields.json, which lists its fields with their types, the publisher's descriptions, their ranges and the values they hold, so an agent can read a dataset's shape before it writes a query.

What changed

One version for every release the publisher has made since this site started following the dataset. The date is the day the file changed on the portal.

versions.json · changes.json · history.tar.zst (5.6 KB, every version's Parquet and manifest)

Questions

How do I download Dwelling completions per 1,000 people as a CSV file?

Open https://publicdata.au/d/nsw-dwelling-completions/latest/data.csv. It redirects to the newest dated version, which is https://publicdata.au/d/nsw-dwelling-completions/v/2026-10-03/data.csv today. The same path serves Excel, JSON, Parquet, SQLite, DuckDB, NDJSON, Arrow. A dated URL never changes, so use it when the file must stay the same.

Can I open Dwelling completions per 1,000 people in Excel?

Yes. https://publicdata.au/d/nsw-dwelling-completions/v/2026-10-03/data.xlsx is a workbook with the 163 rows on a records sheet, the field list on a second sheet and the provenance on a third. The CSV also opens in Excel. https://publicdata.au/d/nsw-dwelling-completions/v/2026-10-03/data.csv.gz is the CSV at about a tenth of the size.

What years does Dwelling completions per 1,000 people cover?

The current version covers 1985 to 2024. Each release from DPHI becomes a new dated version here, and earlier versions stay online.

How often is Dwelling completions per 1,000 people updated?

DPHI releases it quarterly. This site checks the portal every week and adds a dated version when the file changes.

Can I use Dwelling completions per 1,000 people commercially?

Yes. CC BY 4.0 allows commercial use, redistribution and derived works as long as the attribution is kept. The attribution string is in this page's side column and inside every file.

Is this the official source for Dwelling completions per 1,000 people?

No. The publisher is NSW Department of Planning, Housing and Infrastructure, and its page is https://data.nsw.gov.au/data/dataset/dwelling-completions. This site republishes the publisher's file without changing its content. The original sits beside every version as source.xlsx with its SHA-256, so the two can be compared.

What this site did to the data. Cells were typed, headers were renamed and the encoding was made UTF-8. Rows were left alone. The publisher's file sits beside every version as source.xlsx so the change can be checked.