100+ datasets found
  1. F

    Households; Owner-Occupied Real Estate at Market Value, Transactions

    • fred.stlouisfed.org
    json
    Updated Sep 11, 2025
    + more versions
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    (2025). Households; Owner-Occupied Real Estate at Market Value, Transactions [Dataset]. https://fred.stlouisfed.org/series/BOGZ1FA155035013Q
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    jsonAvailable download formats
    Dataset updated
    Sep 11, 2025
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Description

    Graph and download economic data for Households; Owner-Occupied Real Estate at Market Value, Transactions (BOGZ1FA155035013Q) from Q4 1946 to Q2 2025 about market value, real estate, transactions, households, and USA.

  2. d

    Housing Market Value Analysis 2021

    • catalog.data.gov
    • data.wprdc.org
    • +1more
    Updated Jan 24, 2023
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    Allegheny County (2023). Housing Market Value Analysis 2021 [Dataset]. https://catalog.data.gov/dataset/housing-market-value-analysis-2021
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    Dataset updated
    Jan 24, 2023
    Dataset provided by
    Allegheny County
    Description

    In 2021, Allegheny County Economic Development (ACED), in partnership with Urban Redevelopment Authority of Pittsburgh(URA), completed the a Market Value Analysis (MVA) for Allegheny County. This analysis services as both an update to previous MVA’s commissioned separately by ACED and the URA and combines the MVA for the whole of Allegheny County (inclusive of the City of Pittsburgh). The MVA is a unique tool for characterizing markets because it creates an internally referenced index of a municipality’s residential real estate market. It identifies areas that are the highest demand markets as well as areas of greatest distress, and the various markets types between. The MVA offers insight into the variation in market strength and weakness within and between traditional community boundaries because it uses Census block groups as the unit of analysis. Where market types abut each other on the map becomes instructive about the potential direction of market change, and ultimately, the appropriateness of types of investment or intervention strategies. This MVA utilized data that helps to define the local real estate market. The data used covers the 2017-2019 period, and data used in the analysis includes: Residential Real Estate Sales Mortgage Foreclosures Residential Vacancy Parcel Year Built Parcel Condition Building Violations Owner Occupancy Subsidized Housing Units The MVA uses a statistical technique known as cluster analysis, forming groups of areas (i.e., block groups) that are similar along the MVA descriptors, noted above. The goal is to form groups within which there is a similarity of characteristics within each group, but each group itself different from the others. Using this technique, the MVA condenses vast amounts of data for the universe of all properties to a manageable, meaningful typology of market types that can inform area-appropriate programs and decisions regarding the allocation of resources. Please refer to the presentation and executive summary for more information about the data, methodology, and findings.

  3. Listed real estate market capitalization in Europe 2024, by country

    • statista.com
    Updated Jul 11, 2025
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    Statista (2025). Listed real estate market capitalization in Europe 2024, by country [Dataset]. https://www.statista.com/statistics/1189669/listed-real-estate-market-size-europe/
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    Dataset updated
    Jul 11, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Dec 2024
    Area covered
    Europe
    Description

    Differences within the value of listed real estate among European countries were significant as of December 2024. Listed real estate refers to real estate companies that are quoted on stock exchanges. They receive income from real estate assets. The United Kingdom was in the lead with listed real estate valued at ** billion U.S. dollars, whereas the value of listed real estate in Portugal, Italy, and Ireland was a lot lower. Overall, the value of the commercial real estate sector in Europe, Middle East, and Africa (EMEA) region was approximately ** trillion U.S. dollars.

  4. Brasil real estate Data

    • kaggle.com
    Updated Jun 20, 2023
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    Ashish Jayswal (2023). Brasil real estate Data [Dataset]. https://www.kaggle.com/datasets/ashishkumarjayswal/brasil-real-estate
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    CroissantCroissant is a format for machine-learning datasets. Learn more about this at mlcommons.org/croissant.
    Dataset updated
    Jun 20, 2023
    Dataset provided by
    Kagglehttp://kaggle.com/
    Authors
    Ashish Jayswal
    License

    https://cdla.io/sharing-1-0/https://cdla.io/sharing-1-0/

    Area covered
    Brazil
    Description

    The property listings dataset contains information about real estate properties available for sale or rent in Brazil. It includes details such as property type (apartment, house, commercial property), location (city, neighborhood), size (square footage, number of rooms), price, amenities, and contact information for the property owner or real estate agent. This dataset can be used for market analysis, property valuation, and identifying trends in the real estate market.

    Sales and Rental Prices Dataset: The sales and rental prices dataset provides information about the prices of real estate properties in Brazil. It includes data on property transactions, including sale prices and rental prices per square meter or per month. This dataset can be used to analyze price trends, compare property prices across different regions, and identify areas with high or low real estate market demand.

    Property Characteristics Dataset: The property characteristics dataset contains detailed information about the features and attributes of real estate properties. It includes data such as the number of bedrooms, bathrooms, parking spaces, floor plan, construction year, building amenities, and property condition. This dataset can be used for property classification, identifying popular property features, and evaluating property quality.

    Geographical Data: Geographical data includes information about the location and spatial features of real estate properties in Brazil. It can include data such as latitude and longitude coordinates, zoning information, proximity to amenities (schools, hospitals, parks), and neighborhood demographics. This dataset can be used for spatial analysis, identifying hotspots or desirable locations, and understanding the neighborhood characteristics.

    Property Market Trends Dataset: The property market trends dataset provides information about market conditions and trends in the real estate sector in Brazil. It includes data such as the number of property listings, average time on the market, price fluctuations, mortgage interest rates, and economic indicators that impact the real estate market. This dataset can be used for market forecasting, understanding market dynamics, and making informed investment decisions.

    Real Estate Regulatory Data: Real estate regulatory data includes information about legal and regulatory aspects of the real estate sector in Brazil. It can include data on property ownership, property taxes, zoning regulations, building permits, and legal restrictions on property transactions. This dataset can be used for legal compliance, understanding property ownership rights, and assessing the legal framework for real estate transactions.

    Historical Data: Historical real estate data includes past records and trends of property prices, market conditions, and sales volumes in Brazil. This dataset can span several years and can be used to analyze long-term market trends, compare current market conditions with historical data, and assess the performance of the real estate market over time.

  5. F

    Households and Nonprofit Organizations; Real Estate at Market Value, Market...

    • fred.stlouisfed.org
    json
    Updated Sep 12, 2025
    + more versions
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    (2025). Households and Nonprofit Organizations; Real Estate at Market Value, Market Value Levels [Dataset]. https://fred.stlouisfed.org/series/HNOREMV
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    jsonAvailable download formats
    Dataset updated
    Sep 12, 2025
    License

    https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

    Description

    Graph and download economic data for Households and Nonprofit Organizations; Real Estate at Market Value, Market Value Levels (HNOREMV) from Q4 1945 to Q2 2025 about , and USA.

  6. c

    Redfin usa properties dataset

    • crawlfeeds.com
    csv, zip
    Updated Jun 13, 2025
    + more versions
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    Crawl Feeds (2025). Redfin usa properties dataset [Dataset]. https://crawlfeeds.com/datasets/redfin-usa-properties-dataset
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    zip, csvAvailable download formats
    Dataset updated
    Jun 13, 2025
    Dataset authored and provided by
    Crawl Feeds
    License

    https://crawlfeeds.com/privacy_policyhttps://crawlfeeds.com/privacy_policy

    Description

    Explore the Redfin USA Properties Dataset, available in CSV format. This extensive dataset provides valuable insights into the U.S. real estate market, including detailed property listings, prices, property types, and more across various states and cities. Perfect for those looking to conduct in-depth market analysis, real estate investment research, or financial forecasting.

    Key Features:

    • Comprehensive Property Data: Includes essential details such as listing prices, property types, square footage, and the number of bedrooms and bathrooms.
    • Geographic Coverage: Encompasses a wide range of U.S. states and cities, providing a broad view of the national real estate market.
    • Historical Trends: Analyze past market data to understand price movements, regional differences, and market trends over time.
    • Geo-Location Details: Enables spatial analysis and mapping by including precise geographical coordinates of properties.

    Who Can Benefit From This Dataset:

    • Real Estate Investors: Identify lucrative opportunities by analyzing property values, market trends, and regional price variations.
    • Market Analysts: Gain a deeper understanding of the U.S. housing market dynamics to inform research and reporting.
    • Data Scientists and Researchers: Leverage detailed real estate data for modeling, urban studies, or economic analysis.
    • Financial Analysts: Utilize the dataset for financial modeling, helping to predict market behavior and assess investment risks.

    Download the Redfin USA Properties Dataset to access essential information on the U.S. housing market, ideal for professionals in real estate, finance, and data analytics. Unlock key insights to make informed decisions in a dynamic market environment.

    Looking for deeper insights or a custom data pull from Redfin?
    Send a request with just one click and explore detailed property listings, price trends, and housing data.
    đź”— Request Redfin Real Estate Data

  7. US Residential Real Estate Market Analysis | Trends, Forecast, Size &...

    • mordorintelligence.com
    pdf,excel,csv,ppt
    Updated Jul 10, 2025
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    Mordor Intelligence (2025). US Residential Real Estate Market Analysis | Trends, Forecast, Size & Industry Growth Report 2030 [Dataset]. https://www.mordorintelligence.com/industry-reports/residential-real-estate-market-in-usa
    Explore at:
    pdf,excel,csv,pptAvailable download formats
    Dataset updated
    Jul 10, 2025
    Dataset authored and provided by
    Mordor Intelligence
    License

    https://www.mordorintelligence.com/privacy-policyhttps://www.mordorintelligence.com/privacy-policy

    Time period covered
    2019 - 2030
    Area covered
    United States
    Description

    The United States Residential Real Estate Market is Segmented by Property Type (Apartments and Condominiums, and Villas and Landed Houses), by Price Band (Affordable, Mid-Market and Luxury), by Business Model (Sales and Rental), by Mode of Sale (Primary and Secondary), and by Region (Northeast, Midwest, Southeast, West and Southwest). The Market Forecasts are Provided in Terms of Value (USD)

  8. Global commercial real estate market size 2019-2024, by region

    • statista.com
    Updated Jun 20, 2025
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    Statista (2025). Global commercial real estate market size 2019-2024, by region [Dataset]. https://www.statista.com/statistics/1189630/commercial-real-estate-market-size-global/
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    Dataset updated
    Jun 20, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    Worldwide
    Description

    In 2024, the estimated value of the global commercial real estate market was over **** trillion U.S. dollars, up from **** trillion U.S. dollars the year before. The North America region had the largest market size, valued at over ** trillion U.S. dollars, slightly higher than Asia-Pacific and Europe, Middle East, and Africa (EMEA). What is the market size of listed commercial real estate? The listed real estate market comprises real estate companies that are traded on stock exchanges and varies across different regions. In 2023, the size of the listed real estate market was about *** trillion U.S. dollars, with the North America region comprising the largest share. Which real estate sector is most popular for investment? Real estate has earned itself a good name as an investment vehicle among Ultra-High-Net-Worth Individuals (UHNWIs). In 2024, some of the real estate sectors increasingly attracting UHNWI’s interest were healthcare and education properties.

  9. Market value of real estate companies trading on the London Stock Exchange...

    • statista.com
    Updated Jul 21, 2025
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    Statista (2025). Market value of real estate companies trading on the London Stock Exchange 2018-2024 [Dataset]. https://www.statista.com/statistics/894786/real-estate-companies-on-lse-market-value/
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    Dataset updated
    Jul 21, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    Jan 2018 - Dec 2025
    Area covered
    United Kingdom
    Description

    The total market value of real estate companies on the London Stock Exchange (LSE) fluctuated between 2018 and 2024. In December 2024, the market capitalization amounted to ***** billion British pounds, down from 138 billion British pounds in December 2021. These fluctuations could also be observed in the overall market capitalization of the LSE.

  10. Residential Real Estate Market Size, Share, Growth & Industry Trends Report,...

    • mordorintelligence.com
    pdf,excel,csv,ppt
    Updated Jun 26, 2025
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    Mordor Intelligence (2025). Residential Real Estate Market Size, Share, Growth & Industry Trends Report, 2030 [Dataset]. https://www.mordorintelligence.com/industry-reports/residential-real-estate-market
    Explore at:
    pdf,excel,csv,pptAvailable download formats
    Dataset updated
    Jun 26, 2025
    Dataset authored and provided by
    Mordor Intelligence
    License

    https://www.mordorintelligence.com/privacy-policyhttps://www.mordorintelligence.com/privacy-policy

    Time period covered
    2019 - 2030
    Area covered
    Global
    Description

    Residential Real Estate Market is Segmented by Property Type (Apartments & Condominiums, and Landed Houses & Villas), by Price Band (Affordable, Mid-Market, and Luxury/Super-prime), by Business Model (Sales and Rental), by Mode of Sale (Primary and Secondary), and by Region (North America, South America, Europe, Asia-Pacific, and Middle East & Africa). The Market Forecasts are Provided in Terms of Value (USD).

  11. E

    United States Real Estate Market Growth Analysis - Forecast Trends and...

    • expertmarketresearch.com
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    Claight Corporation (Expert Market Research), United States Real Estate Market Growth Analysis - Forecast Trends and Outlook (2025-2034) [Dataset]. https://www.expertmarketresearch.com/reports/united-states-real-estate-market
    Explore at:
    pdf, excel, csv, pptAvailable download formats
    Dataset authored and provided by
    Claight Corporation (Expert Market Research)
    License

    https://www.expertmarketresearch.com/privacy-policyhttps://www.expertmarketresearch.com/privacy-policy

    Time period covered
    2025 - 2034
    Area covered
    United States
    Variables measured
    CAGR, Forecast Market Value, Historical Market Value
    Measurement technique
    Secondary market research, data modeling, expert interviews
    Dataset funded by
    Claight Corporation (Expert Market Research)
    Description

    The United States real estate market was valued at USD 3.43 Trillion in 2024. The industry is expected to grow at a CAGR of 2.80% during the forecast period of 2025-2034 to reach a value of USD 4.52 Trillion by 2034. The market growth is mainly driven by the rising corporate investment, particularly in addressing the nation’s affordable housing shortage.

    Major corporations are actively investing to integrate housing stability with social responsibility, supporting both new construction and the preservation of existing homes. In September 2024, UnitedHealth Group surpassed USD 1 billion in investments for affordable and mixed-income housing through direct capital and tax credits. These projects span 31 states and have delivered over 25,000 homes, simultaneously improved community health and providing secure housing for low- and moderate-income households.

    Such corporate involvements are reshaping trends in United States real estate market by expanding the supply of affordable housing, reducing barriers for renters and homeowners, and stimulating development in high-demand urban and suburban areas. By aligning financial resources with strategic planning, corporations are enabling scalable solutions that meet social and economic objectives while enhancing overall market efficiency.

  12. Listed real estate market size worldwide 2024, by region

    • statista.com
    Updated May 27, 2025
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    Statista (2025). Listed real estate market size worldwide 2024, by region [Dataset]. https://www.statista.com/statistics/1189675/listed-real-estate-market-size-global/
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    Dataset updated
    May 27, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Area covered
    Worldwide
    Description

    North America was home to the largest listed real estate market in 2024. The aggregate market size of the listed commercial real estate market in Canada and the United States amounted to *** trillion U.S. dollars as of December 2024. Listed real estate refers to real estate companies that are quoted on stock exchanges and receive income from real estate assets.

  13. Germany Residential Real Estate Market Size and Trends Analysis 2025 - 2030

    • mordorintelligence.com
    pdf,excel,csv,ppt
    Updated Jul 10, 2025
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    Mordor Intelligence (2025). Germany Residential Real Estate Market Size and Trends Analysis 2025 - 2030 [Dataset]. https://www.mordorintelligence.com/industry-reports/residential-real-estate-market-in-germany
    Explore at:
    pdf,excel,csv,pptAvailable download formats
    Dataset updated
    Jul 10, 2025
    Dataset authored and provided by
    Mordor Intelligence
    License

    https://www.mordorintelligence.com/privacy-policyhttps://www.mordorintelligence.com/privacy-policy

    Time period covered
    2019 - 2030
    Area covered
    Germany
    Description

    The Germany Residential Real Estate Market is Segmented by Property Type (Apartments & Condominiums and Villas & Landed Houses), Price Band (Affordable, Mid-Market and Luxury), Business Model (Sales and Rental), Mode of Sale (Primary and Secondary), and Key Cities (Berlin, Hamburg, Munich, Cologne, Frankfurt, Dusseldorf, Leipzig and Rest of Germany). The Market Forecasts are Provided in Terms of Value (USD).

  14. c

    The global Residential Real Estate market size will be USD 32651.6 million...

    • cognitivemarketresearch.com
    pdf,excel,csv,ppt
    Updated Aug 15, 2025
    + more versions
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    Cognitive Market Research (2025). The global Residential Real Estate market size will be USD 32651.6 million in 2024. [Dataset]. https://www.cognitivemarketresearch.com/residential-real-estate-market-report
    Explore at:
    pdf,excel,csv,pptAvailable download formats
    Dataset updated
    Aug 15, 2025
    Dataset authored and provided by
    Cognitive Market Research
    License

    https://www.cognitivemarketresearch.com/privacy-policyhttps://www.cognitivemarketresearch.com/privacy-policy

    Time period covered
    2021 - 2033
    Area covered
    Global
    Description

    According to Cognitive Market Research, the global Residential Real Estate market size was USD 32651.6 million in 2024. It will expand at a compound annual growth rate (CAGR) of 5.50% from 2024 to 2031.

    North America held the major market share for more than 40% of the global revenue with a market size of USD 13060.64 million in 2024 and will grow at a compound annual growth rate (CAGR) of 3.7% from 2024 to 2031.
    Europe accounted for a market share of over 30% of the global revenue with a market size of USD 9795.48 million.
    Asia Pacific held a market share of around 23% of the global revenue with a market size of USD 7509.87 million in 2024 and will grow at a compound annual growth rate (CAGR) of 7.5% from 2024 to 2031.
    Latin America had a market share of more than 5% of the global revenue with a market size of USD 1632.58 million in 2024 and will grow at a compound annual growth rate (CAGR) of 4.9% from 2024 to 2031.
    Middle East and Africa had a market share of around 2% of the global revenue and was estimated at a market size of USD 653.03 million in 2024 and will grow at a compound annual growth rate (CAGR) of 5.2% from 2024 to 2031.
    The single-family homes category is the fastest growing segment of the Residential Real Estate industry
    

    Market Dynamics of Residential Real Estate Market

    Key Drivers for Residential Real Estate Market

    Increasing population drives housing demand to Boost Market Growth

    Increasing population drives housing demand by creating a need for more residential spaces to accommodate growing numbers of people. As population rises, particularly in urban and suburban areas, demand for housing expands, fueling the residential real estate market. This is especially evident in countries experiencing rapid urbanization, where people move to cities seeking better job opportunities, education, and lifestyle options, further increasing housing needs. Additionally, population growth often correlates with the formation of new households, such as young families or individuals moving out on their own, intensifying the demand for housing units. In response, developers and investors are motivated to build more residential properties, ranging from single-family homes to multifamily units, contributing to market growth and driving real estate values upward. For instance, The Ashwin Sheth Group aims to broaden its residential and commercial offerings in the Mumbai Metropolitan Region (MMR) of India.

    Rising incomes and economic stability to Drive Market Growth

    Rising incomes and economic stability drive the residential real estate market by boosting consumers’ purchasing power and confidence in long-term investments like homeownership. As incomes increase, people can afford larger down payments, qualify for higher loan amounts, and manage mortgage payments more comfortably, making home buying a more viable option. Economic stability, characterized by low unemployment rates and steady GDP growth, reinforces this confidence, as individuals feel secure in their financial situations. With greater disposable income, many consumers seek to upgrade to larger homes, buy second properties, or invest in luxury real estate, further fueling demand. This economic backdrop attracts both local and foreign investors, leading to more housing developments, increased property values, and a flourishing residential real estate market.

    Restraint Factor for the Residential Real Estate Market

    High Property Prices will Limit Market Growth

    High property prices restrain the residential real estate market by making homeownership unaffordable for a significant portion of the population. As prices rise, potential buyers, particularly first-time homeowners and low- to middle-income families, may find it challenging to secure adequate financing or meet the necessary down payment requirements. This affordability crisis limits the pool of qualified buyers, leading to slower sales and potential stagnation in market growth. Additionally, high property prices can prompt increased demand for rental properties, shifting focus away from home purchases. In markets where prices escalate rapidly, even affluent buyers may hesitate, fearing potential market corrections. Consequently, elevated property values can create a barrier to entry, ultimately restricting the overall health and vibrancy of the residential real estate market.

    Impact of Covid-19 on the Residential Real Estate Market

    The COVI...

  15. t

    US Current Real Estate Market Values | National Automated Valuation Model...

    • data.thewarrengroup.com
    Updated Feb 13, 2025
    + more versions
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    The Warren Group (2025). US Current Real Estate Market Values | National Automated Valuation Model (AVM) Data | Home Sale Prices, Market Trends, and Geographic Data [Dataset]. https://data.thewarrengroup.com/products/us-national-automated-valuation-model-avm-data-current-ma-the-warren-group
    Explore at:
    Dataset updated
    Feb 13, 2025
    Dataset authored and provided by
    The Warren Group
    Area covered
    United States
    Description

    Our Automated Valuation Model (AVM) Data is a service that uses mathematical modeling to determine current market values. AVM data includes sales prices, property characteristics, market trends, and geographic information, to estimate real estate values with minimal human intervention.

  16. C

    Housing Market Value Analysis - Allegheny County Economic Development

    • data.wprdc.org
    • catalog.data.gov
    csv, html, lyr, pdf +2
    Updated May 26, 2023
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    Allegheny County (2023). Housing Market Value Analysis - Allegheny County Economic Development [Dataset]. https://data.wprdc.org/dataset/market-value-analysis-allegheny-county-economic-development
    Explore at:
    zip, csv, png, html, lyr, pdf(11534), pdf(9358422)Available download formats
    Dataset updated
    May 26, 2023
    Dataset authored and provided by
    Allegheny County
    License

    CC0 1.0 Universal Public Domain Dedicationhttps://creativecommons.org/publicdomain/zero/1.0/
    License information was derived automatically

    Area covered
    Allegheny County
    Description

    In 2017, the County Department of Economic Development, in conjunction with Reinvestment Fund, completed the 2016 Market Value Analysis (MVA) for Allegheny County. A similar MVA was completed with the Pittsburgh Urban Redevelopment Authority in 2016. The Market Value Analysis (MVA) offers an approach for community revitalization; it recommends applying interventions not only to where there is a need for development but also in places where public investment can stimulate private market activity and capitalize on larger public investment activities. The MVA is a unique tool for characterizing markets because it creates an internally referenced index of a municipality’s residential real estate market. It identifies areas that are the highest demand markets as well as areas of greatest distress, and the various markets types between. The MVA offers insight into the variation in market strength and weakness within and between traditional community boundaries because it uses Census block groups as the unit of analysis. Where market types abut each other on the map becomes instructive about the potential direction of market change, and ultimately, the appropriateness of types of investment or intervention strategies.

    The 2016 Allegheny County MVA does not include the City of Pittsburgh, which was characterized at the same time in the fourth update of the City of Pittsburgh’s MVA. All calculations herein therefore do not include the City of Pittsburgh. While the methodology between the City and County MVA's are very similar, the classification of communities will differ, and so the data between the two should not be used interchangeably.

    Allegheny County's MVA utilized data that helps to define the local real estate market. Most data used covers the 2013-2016 period, and data used in the analysis includes:

    •Residential Real Estate Sales; • Mortgage Foreclosures; • Residential Vacancy; • Parcel Year Built; • Parcel Condition; • Owner Occupancy; and • Subsidized Housing Units.

    The MVA uses a statistical technique known as cluster analysis, forming groups of areas (i.e., block groups) that are similar along the MVA descriptors, noted above. The goal is to form groups within which there is a similarity of characteristics within each group, but each group itself different from the others. Using this technique, the MVA condenses vast amounts of data for the universe of all properties to a manageable, meaningful typology of market types that can inform area-appropriate programs and decisions regarding the allocation of resources.

    During the research process, staff from the County and Reinvestment Fund spent an extensive amount of effort ensuring the data and analysis was accurate. In addition to testing the data, staff physically examined different areas to verify the data sets being used were appropriate indicators and the resulting MVA categories accurately reflect the market.

    Please refer to the report (included here as a pdf) for more information about the data, methodology, and findings.

  17. Importance of different issues for the real estate development market U.S....

    • statista.com
    Updated Jun 20, 2025
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    Statista (2025). Importance of different issues for the real estate development market U.S. 2025 [Dataset]. https://www.statista.com/statistics/1282361/importance-of-development-issues-for-real-estate-us/
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    Dataset updated
    Jun 20, 2025
    Dataset authored and provided by
    Statistahttp://statista.com/
    Time period covered
    2024
    Area covered
    United States
    Description

    Construction labor costs are the development issues that industry experts in the United States expect to have the highest importance in real estate in 2025. Respondents ranked construction labor costs as having an importance score of **** out of five. On the other hand, health and safety related policies are expected to be of the least importance in the industry come 2025.

  18. New York Housing Market

    • kaggle.com
    Updated Jan 6, 2024
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    Nidula Elgiriyewithana ⚡ (2024). New York Housing Market [Dataset]. http://doi.org/10.34740/kaggle/dsv/7351086
    Explore at:
    CroissantCroissant is a format for machine-learning datasets. Learn more about this at mlcommons.org/croissant.
    Dataset updated
    Jan 6, 2024
    Dataset provided by
    Kaggle
    Authors
    Nidula Elgiriyewithana ⚡
    Area covered
    New York
    Description

    Description:

    This dataset contains prices of New York houses, providing valuable insights into the real estate market in the region. It includes information such as broker titles, house types, prices, number of bedrooms and bathrooms, property square footage, addresses, state, administrative and local areas, street names, and geographical coordinates.

    DOI

    Key Features:

    • BROKERTITLE: Title of the broker
    • TYPE: Type of the house
    • PRICE: Price of the house
    • BEDS: Number of bedrooms
    • BATH: Number of bathrooms
    • PROPERTYSQFT: Square footage of the property
    • ADDRESS: Full address of the house
    • STATE: State of the house
    • MAIN_ADDRESS: Main address information
    • ADMINISTRATIVE_AREA_LEVEL_2: Administrative area level 2 information
    • LOCALITY: Locality information
    • SUBLOCALITY: Sublocality information
    • STREET_NAME: Street name
    • LONG_NAME: Long name
    • FORMATTED_ADDRESS: Formatted address
    • LATITUDE: Latitude coordinate of the house
    • LONGITUDE: Longitude coordinate of the house

    Potential Use Cases:

    • Price analysis: Analyze the distribution of house prices to understand market trends and identify potential investment opportunities.
    • Property size analysis: Explore the relationship between property square footage and prices to assess the value of different-sized houses.
    • Location-based analysis: Investigate geographical patterns to identify areas with higher or lower property prices.
    • Bedroom and bathroom trends: Analyze the impact of the number of bedrooms and bathrooms on house prices.
    • Broker performance analysis: Evaluate the influence of different brokers on the pricing of houses.

    If you find this dataset useful, your support through an upvote would be greatly appreciated ❤️🙂 Thank you

  19. T

    Saudi Arabia Real Estate Price Index

    • tradingeconomics.com
    • es.tradingeconomics.com
    • +13more
    csv, excel, json, xml
    Updated Sep 9, 2025
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    TRADING ECONOMICS (2025). Saudi Arabia Real Estate Price Index [Dataset]. https://tradingeconomics.com/saudi-arabia/housing-index
    Explore at:
    xml, excel, csv, jsonAvailable download formats
    Dataset updated
    Sep 9, 2025
    Dataset authored and provided by
    TRADING ECONOMICS
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Time period covered
    Mar 31, 2014 - Sep 30, 2025
    Area covered
    Saudi Arabia
    Description

    Housing Index in Saudi Arabia decreased to 103.90 points in the third quarter of 2025 from 105 points in the second quarter of 2025. This dataset provides - Saudi Arabia Housing Index- actual values, historical data, forecast, chart, statistics, economic calendar and news.

  20. French Real Estate Dataset (2017-2023)

    • kaggle.com
    Updated Oct 31, 2023
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    NECHBA MOHAMMED (2023). French Real Estate Dataset (2017-2023) [Dataset]. https://www.kaggle.com/datasets/nechbamohammed/real-estate-dataset
    Explore at:
    CroissantCroissant is a format for machine-learning datasets. Learn more about this at mlcommons.org/croissant.
    Dataset updated
    Oct 31, 2023
    Dataset provided by
    Kagglehttp://kaggle.com/
    Authors
    NECHBA MOHAMMED
    Area covered
    French
    Description

    The dataset comprises comprehensive details pertaining to real estate properties and transactions in France spanning from 2017 to 2023. With a vast compilation of 19,569,530 lines of intricate information, this extensive dataset is notably rich in content, encompassing a diverse range of essential attributes crucial for in-depth analysis of the real estate market.

    Dataset Columns

    lot5_surface_carrez and lot4_surface_carrez: These columns indicate the "Carrez" area of the fifth and fourth lots, respectively.

    ancien_id_parcelle: It provides information about the former parcel identifier associated with the property.

    lot5_numero and lot4_numero: These columns contain the numbers of the fifth and fourth lots.

    numero_volume: The volume number associated with the property.

    lot3_surface_carrez: The "Carrez" area of the third lot.

    lot3_numero: The number of the third lot.

    lot2_surface_carrez and lot2_numero: These columns represent the "Carrez" area and the number of the second lot.

    lot1_surface_carrez and lot1_numero: They indicate the "Carrez" area and the number of the first lot.

    surface_reelle_bati: The actual surface area of the building, in square meters.

    nombre_pieces_principales: The number of main rooms in the property.

    type_local and code_type_local: These columns specify the type of premises and its associated code.

    adresse_numero: The property's address number.

    surface_terrain: The land area, in square meters.

    code_nature_culture and nature_culture: They detail the nature of the land's use, along with its corresponding code.

    latitude and longitude: The latitude and longitude coordinates of the property.

    valeur_fonciere: The property's land value.

    code_postal: The postal code of the location.

    adresse_nom_voie and adresse_code_voie: These columns specify the name and code of the street in the address.

    id_parcelle: The parcel identifier associated with the property.

    code_departement: The department code where the property is located.

    nom_commune and code_commune: These columns indicate the name and code of the municipality of the location.

    nombre_lots: The total number of lots included in the property.

    nature_mutation: The nature of the real estate transaction, whether it is a sale, a donation, or other.

    numero_disposition: The disposition number assigned to each transaction.

    date_mutation: The date of the real estate transaction.

    id_mutation: The identifier of the real estate transaction.

Share
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TwitterTwitter
Email
Click to copy link
Link copied
Close
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(2025). Households; Owner-Occupied Real Estate at Market Value, Transactions [Dataset]. https://fred.stlouisfed.org/series/BOGZ1FA155035013Q

Households; Owner-Occupied Real Estate at Market Value, Transactions

BOGZ1FA155035013Q

Explore at:
jsonAvailable download formats
Dataset updated
Sep 11, 2025
License

https://fred.stlouisfed.org/legal/#copyright-public-domainhttps://fred.stlouisfed.org/legal/#copyright-public-domain

Description

Graph and download economic data for Households; Owner-Occupied Real Estate at Market Value, Transactions (BOGZ1FA155035013Q) from Q4 1946 to Q2 2025 about market value, real estate, transactions, households, and USA.

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