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    Home / Central Data Catalog / FCV / LBN_2023_RTEP_V01_M
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Monthly energy price estimates by product and market
Lebanon, 27 markets, 2012/01/01-2025/05/01, version 2025-05-12

Lebanon, 2012 - 2025
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Reference ID
LBN_2023_RTEP_v01_M
Producer(s)
Bo Pieter Johannes Andrée
Collection(s)
Fragility, Conflict and Violence
Metadata
DDI/XML JSON
Created on
Jan 24, 2024
Last modified
May 15, 2025
Page views
2726
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  • Study Description
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  • Identification

    Survey ID number

    LBN_2023_RTEP_v01_M

    Title

    Monthly energy price estimates by product and market

    Subtitle

    Lebanon, 27 markets, 2012/01/01-2025/05/01, version 2025-05-12

    Abbreviation or Acronym

    Real Time Energy Prices

    Country/Economy
    Name Country code
    Lebanon LBN
    Study type

    Monthly energy price estimates in fragile countries

    Series Information

    Real Time Prices (RTP) is a live dataset compiled and updated weekly by the World Bank Development Economics Data Group (DECDG) using a combination of direct price measurement and Machine Learning estimation of missing price data. The historical and current estimates are based on price information gathered from the World Food Program (WFP), UN-Food and Agricultural Organization (FAO), select National Statistical Offices, and are continually updated and revised as more price information becomes available. Real-time exchange rate data used in this process are from official and public sources.

    RTP consists of three sub-series, Real Time Food Prices (RTFP) includes prices on a variety of food items that primarily include country-specific staple foods, Real Time Energy Prices (RTEP) includes fuel prices, and Real Time Exchange Rates (RTFX) and includes unofficial exchange rate estimates as well as possible other unofficial deflators.

    • RTFP: https://microdata.worldbank.org/index.php/catalog/study/WLD_2021_RTFP_v02_M
    • RTEP: https://microdata.worldbank.org/index.php/catalog/study/WLD_2023_RTEP_v01_M
    • RTFX: https://microdata.worldbank.org/index.php/catalog/study/WLD_2023_RTFX_v01_M

    To produce smooth price series, outliers in the data are often adjusted using non-parametric density estimation and other techniques. Generalized Auto-Regressive Conditional Heteroskedasticity models are used to estimate intra-month price ranges. These models allow for excess kurtosis using a Generalized Error Distribution (GED). Open, High, Low, and Close price estimates are provided based on the modeled time-varying price distributions.

    Data are produced from 2007 to the present and estimates are given for individual commodity items at geo-referenced market locations. Predicted data for missing entries are based on exchange rates, and price data available either at other market locations or from related price items.

    RTP estimates of historical and current prices may serve as proxies for sub-national price inflation series or substitute national-level Consumer Price Inflation (CPI) indicators when complete information is unavailable. Therefore, RTP data may differ from other sources with official data, including the World Bank’s International Comparison Program (ICP) or inflation series reported in the World Development Indicators.

    The following datasets are part of this sub-series:

    • All countries: https://microdata.worldbank.org/index.php/catalog/study/WLD_2023_RTEP_v01_M
    • Afghanistan: https://microdata.worldbank.org/index.php/catalog/study/AFG_2023_RTEP_v01_M
    • Armenia: https://microdata.worldbank.org/index.php/catalog/study/ARM_2023_RTEP_v01_M
    • Gambia, The: https://microdata.worldbank.org/index.php/catalog/study/GMB_2023_RTEP_v01_M
    • Guinea-Bissau: https://microdata.worldbank.org/index.php/catalog/study/GNB_2023_RTEP_v01_M
    • Iraq: https://microdata.worldbank.org/index.php/catalog/study/IRQ_2023_RTEP_v01_M
    • Lao PDR: https://microdata.worldbank.org/index.php/catalog/study/LAO_2023_RTEP_v01_M
    • Lebanon: https://microdata.worldbank.org/index.php/catalog/study/LBN_2023_RTEP_v01_M
    • Liberia: https://microdata.worldbank.org/index.php/catalog/study/LBR_2023_RTEP_v01_M
    • Nigeria: https://microdata.worldbank.org/index.php/catalog/study/NGA_2023_RTEP_v01_M
    • Somalia: https://microdata.worldbank.org/index.php/catalog/study/SOM_2023_RTEP_v01_M
    • South Sudan: https://microdata.worldbank.org/index.php/catalog/study/SSD_2023_RTEP_v01_M
    • Syrian Arab Republic: https://microdata.worldbank.org/index.php/catalog/study/SYR_2023_RTEP_v01_M
    • Yemen, Rep.: https://microdata.worldbank.org/index.php/catalog/study/YEM_2023_RTEP_v01_M
    HIGH-LOW CHART, AND INFLATION
    LOCATION OF MARKETS
    DATA PREVIEW
    Abstract
    Energy price inflation is an important metric to inform economic policy but traditional sources of consumer prices are often produced with delay during crises and only at an aggregate level. This may poorly reflect the actual price trends in rural or poverty-stricken areas, where large populations reside in fragile situations.
    This data set includes energy price estimates and is intended to help gain insight in price developments beyond what can be formally measured by traditional methods. The estimates are generated using a machine-learning approach that imputes ongoing subnational price surveys, often with accuracy similar to direct measurement of prices. The data set provides new opportunities to investigate local price dynamics in areas where populations are sensitive to localized price shocks and where traditional data are not available.

    Version

    Version Date

    2025/05/12

    Version Responsibility Statement

    FCV Data Platform

    Scope

    Notes

    List of products included in estimates (not all products are included in country-level estimates): fuel diesel, fuel gas, fuel petrol gasoline 95 octane

    Keywords
    Energy Price Monitor EPM Real Time Energy Prices RTEP Inflation Energy Price Inflation Energy security Energy Insecurity Energy Crisis Famine Fragility FCS FCV Energy Price Crisis Commodity prices Energy prices Real Time Energy Prices Price measurement Real-time exchange rate data Commodity items Geo-referenced market locations Sub-national price inflation series Consumer Price Inflation (CPI) National-level CPI indicators International Comparison Program (ICP) Inflation series Market prices Price analysis Real-time data National prices International prices Price fluctuations Price trends Price Volatility Lebanon

    Coverage

    Geographic Coverage notes

    The data cover the following sub-national areas: Akkar, Mount Lebanon, Baalbek-El Hermel, North, Beirut, Bekaa, El Nabatieh, South, Market Average

    Geographic Unit

    Sub-national level, Admin 2 (selected)

    Producers and sponsors

    Primary investigators
    Name Affiliation
    Bo Pieter Johannes Andrée World Bank, Development Data Group (DECDG), Office of the Chief Statistician (DECCS)
    Funding Agency/Sponsor
    Name Grant number Role
    Foreign, Commonwealth & Development Office of the United Kingdom Support to data analytics
    Foreign, Commonwealth & Development Office of the United Kingdom KP-P174529-KMCE-TF0B4149 Data documentation and dissemination (FCV Data Platform)
    Department of Foreign Affairs and Trade of Australia TF0B6892 Support to methodological development in low data regions
    Department of Foreign Affairs and Trade of Australia TF0B6579 Support to methodological development in low data regions
    Federal Ministry for Economic Cooperation and Development of Germany as part of the World Bank’s Food Systems 2030 Multi-Donor Trust Fund TF073570 Expansion of coverage and maintenance
    Federal Ministry for Economic Cooperation and Development of Germany as part of the World Bank’s Food Systems 2030 Multi-Donor Trust Fund TF0C0728 Expansion of coverage and maintenance
    Other Identifications/Acknowledgments
    Name Affiliation Role
    World Food Programme (WFP) United Nations Source of market price data
    Food and Agriculture Organization (FAO) United Nations Source of market price data

    Data collection

    Dates of Data Collection
    Start End
    2012/01/01 2025/05/01
    Time periods
    Start date End date
    2012/01/01 2025/05/01
    Sources
    Data source Origin of source Characteristics
    World Food Programme (WFP) https://data.humdata.org/organization/wfp?vocab_Topics=prices World Food Programme (WFP); data published in the Humanitarian Data Exchange (HDX) data catalog at https://data.humdata.org/
    Food and Agriculture Organization (FAO) https://fpma.fao.org/giews/fpmat4/#/dashboard/tool/domestic Local exchange rates and implied exchange rates data derived from commodity pairs published by FAO through the Food Price Monitoring and Analysis (FMPA) Tool

    Access policy

    Location of Data Collection

    World Bank Microdata Library, FCV Collection

    URL for Location of Data Collection

    https://microdatalib.worldbank.org

    Data Access

    Access authority
    Name Affiliation URL
    Data Help Desk World Bank, Development Data Group https://datahelpdesk.worldbank.org/
    Restrictions

    The estimates presented in this dataset are all based on publicly-available data.
    The dataset of price estimates is published as open data.

    Disclaimer and copyrights

    Disclaimer

    The RTEP data and metadata provided are "as is" and "as available," and every effort is made to ensure their timeliness, accuracy, and completeness. When errors are discovered, they are corrected as appropriate and feasible. For details on the terms and conditions for usage of the RTEP database, please refer to the license details.

    Additional metadata

    Ticker info
    ISO Country Title Unit Food index weight Data coverage Imputation
    LBN Lebanon Cabbage KG 1 28.02% 0.93
    LBN Lebanon Eggs 30 pcs 0.3333 53.53% 0.94
    LBN Lebanon Unofficial exchange rate (Parallel-market Estimate)(Unofficial country sourced, UN Treasury extended) USD/LCU 0 100% n/a
    LBN Lebanon Fish (sardine, canned) 125 G 8 27.88% 0.95
    LBN Lebanon Food Price Index LCU, Indexed, January 2018 = 1 Laspreyes 40.65% 0.95
    LBN Lebanon Fuel (diesel) 20 L 0 43.63% 0.92
    LBN Lebanon Fuel (gas) 10 KG 0 42.72% 0.93
    LBN Lebanon Fuel (petrol-gasoline, 95 octane) 20 L 0 41.24% 0.94
    LBN Lebanon Oil (sunflower) 5 L 0.2 47.36% 0.97
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