Data sources

Flood-risk data sources for Czechia: who publishes what, and how to use it

Czech flood risk rests on three pillars: the statutory Q5, Q20 and Q100 zones aggregated by VÚV TGM in DIBAVOD, the Floods Directive hazard and risk maps from the Ministry of the Environment for Q5 to Q500, and the four-zone insurance map run for the Czech Insurers’ Association by Intermap, all built on ČHMÚ hydrology and ČÚZK 1 m LiDAR.

4
flood scenarios on the Floods Directive hazard maps (Q5, Q20, Q100, Q500)
1:10 000
scale of the statutory flood zones aggregated in DIBAVOD
4 zones
ČAP insurance flood map, from negligible to high hazard
0.18 m
mean height error of the ČÚZK DMR 5G terrain model in open terrain
5 300 m³/s
Vltava peak discharge in Prague during the August 2002 flood

Three official layers, one terrain model

Czechia is unusual in Central Europe in that it has three separate, publicly documented flood-hazard products that answer different questions. The statutory flood zones (záplavová území) are administrative areas fixed by the water authority under the Water Act and tell you whether a plot is legally inside a Q5, Q20 or Q100 flood extent. The Floods Directive maps, produced for the Ministry of the Environment (MŽP) in six-year planning cycles, add depth, velocity and a Q500 scenario for the stretches of river that carry significant flood risk. The insurers’ map, run for the Czech Insurers’ Association (ČAP) by Intermap Technologies, condenses hydraulic modeling into four risk zones that member insurers use when pricing property cover.

All three are built on the same upstream inputs: N-year discharges and gauge records from the Czech Hydrometeorological Institute (ČHMÚ), hydraulic studies commissioned by the five river-basin state enterprises (Povodí), and the national airborne laser-scanning terrain model DMR 5G published by the Czech Office for Surveying, Mapping and Cadastre (ČÚZK). Two European layers, the JRC river flood hazard maps and Copernicus Emergency Management Service (CEMS) satellite products, are useful for cross-checks and for observed flood extents, but they are explicitly not official maps for Czech territory.

The practical consequence is that a single address can carry three different labels: outside any statutory zone, inside a Floods Directive Q500 extent, and in ČAP zone 2. None of those is wrong. They describe different return periods, different modeling assumptions and different legal weight, and the sections below explain which one to trust for which purpose.

Source inventory

The datasets a Czech flood assessment should start from, with the publisher of record, what each one actually contains and how it can be obtained.

PublisherDatasetWhat it holdsResolution / unitUpdate cadenceAccessLicense
VÚV TGM (Water Research Institute)DIBAVOD záplavová území (layers D01–D08)Aggregated statutory flood zones Q5, Q20, Q100, Q500, the Q100 active zone and the largest recorded natural flood extentPolygons at 1:10 000Quarterly refresh anticipated; flood layers dated 30 Oct 2025 on the download pageShapefile download, WMS, WFSCC BY 4.0 (HEIS metadata record)
MŽP (Ministry of the Environment) via CDSMapy povodňového nebezpečí, ohrožení a rizikFlood extent, depth and velocity for Q5, Q20, Q100 and Q500 on stretches with significant flood risk, plus hazard and risk classificationVector and raster per river stretchSix-year Floods Directive cycles (2013, 2019, refreshed 2025)Map viewer and search on cds.mzp.czPublic viewing; reuse terms not stated on the portal
MŽP via POVISPovodňový informační systémDigital flood plans (national, regional, ORP, municipal), flood commission records, areas of significant flood risk by planning cycleAdministrative units and river stretchesContinuous; plan cycles 2015–2020, 2021–2026, 2027–2032Public web applicationPublic viewing
ČAP with Intermap TechnologiesPovodňové mapy (insurance risk zones, tariff zones TZ1–TZ4)Four-level flood hazard classification per address, river and flash-flood components, depth and velocity behind the zoneAddress-level lookupGenerational rebuilds: RZ2023 built 2022–2023, sixth-generation river maps announced Feb 2026Free basic check for private individuals; paid property report since Feb 2023; commercial use by contract with IntermapProprietary
ČHMÚHlásná a předpovědní povodňová služba (HPPS)Real-time stages and discharges, three flood-activity degrees (SPA), forecasts, historical SPA, flash-flood risk, groundwaterGauge stations; cm and m³/sReal timePublic web portalPublic viewing
ČHMÚN-year discharges and historical hydrologyDesign discharges used for flood-zone determination; Krolmus-MEF map of extreme floods back to 1374Per gauge profilePeriodic re-evaluationData provision on request; historical apps onlineProvision terms set by ČHMÚ
Povodí Labe, Vltavy, Ohře, Moravy, Odry (state enterprises)Flood-zone proposals and hazard studiesHydraulic studies behind statutory zones, flood-protection measures, dispatch situation reportsPer watercourseAs studies are commissionedPublished through DIBAVOD, CDS and each enterprise’s portalVaries
ČÚZKDMR 5G digital terrain modelBare-earth elevation from airborne laser scanning 2009–2013, complete 30 June 2016TIN; mean height error 0.18 m open terrain, 0.30 m forestOngoing verification by stereophotogrammetry and selective laser scanningLAZ download, ATOM feed, WMSCC BY 4.0, no fees
European Commission JRCRiver flood hazard maps for Europe and the Mediterranean BasinWater depth in meters for nine return periods from 10 to 500 years on basins above 150 km²Raster grid of roughly 100 mVersioned releasesDirect downloadCC BY 4.0
Copernicus EMSRapid Mapping and flood monitoringSatellite-derived flood delineation for activations, EFAS forecastsSatellite scenePer activation and daily forecastsFree of charge portalFree and open Copernicus terms
EEAFlood Risk Areas ViewerAreas of potential significant flood risk and Floods Directive reporting by member statesReported unitsPer reporting cyclePublic viewerEEA open terms

Publisher pages linked in the sources list; cadence and license as stated by each publisher on the date of writing.

Statutory flood zones: Q5, Q20, Q100 and the active zone

The legally binding layer is the záplavové území defined in Section 66 of the Water Act (Act No. 254/2001 Coll.). The VÚV TGM metadata record describes it as an administratively designated territory that may be flooded during a natural flood, which the water authority (vodoprávní úřad) must determine on the basis of a proposal from the watercourse administrator. In practice the proposal comes from the relevant Povodí state enterprise, backed by a hydraulic study, and the zone is drawn for the 5-year, 20-year and 100-year discharges. Within the Q100 extent the authority also delineates an active zone (aktivní zóna záplavového území), the strip where flow is concentrated and where new construction is restricted.

The aggregated national copy of these zones is DIBAVOD, the Digital Base of Water Management Data maintained by the GIS department of VÚV TGM. Its flood category holds six layers: Q5 (D01), Q20 (D02), Q100 (D03), the largest recorded natural flood extent (D04), the active-zone boundary for Q100 (D05) and Q500 (D08). The download page dates the Q5, Q20, Q100, active-zone and Q500 layers to 30 October 2025 and provides them as zipped shapefiles; the HEIS catalogue record for the same dataset states a scale of 1:10 000, WMS and WFS services and a CC BY 4.0 license with attribution.

Two cautions come from the publisher itself. First, DIBAVOD is an aggregation of individual determinations that were drawn at different times with different methods, so neighboring stretches can join awkwardly. Second, every flood layer carries the warning that the outline is orientational only and that binding information must be obtained from the watercourse administrator or the local water authority. For a legal question about a specific parcel, the determination document held by the water authority is the record, not the shapefile.

A Q500 layer exists in DIBAVOD but has no statutory force; it is carried because the Floods Directive cycle models a 500-year scenario and because several Povodí studies computed it. Treat it as a hazard indication, not as a zone with planning consequences.

Floods Directive maps and planning cycles

Czechia implements Directive 2007/60/EC through six-year cycles. The Ministry of the Environment publishes the resulting hazard, threat and risk maps in its Central Data Store (CDS) and the areas of significant flood risk in POVIS; the third-cycle draft plans for 2028–2033 were put to public consultation on 3 September 2026 with comments open until 28 February 2027.

CyclePlan periodMap vintageWhat was publishedWhere
First2015–2020Maps from 2013Hazard maps for Q5, Q20, Q100, Q500, threat maps, risk maps for the first set of significant-risk stretchesCDS (archival) and POVIS
Second2021–2026Maps from 2019Updated hazard, threat and risk maps; plans for the Labe, Odra and Danube basin districtsCDS second planning period, POVIS
Third2027–2032 (plans 2028–2033)Maps refreshed in 2025Extent, depth and velocity per scenario; threat and risk unified into one map; draft plans in consultationPOVIS public section, MŽP website

MŽP press release of 3 September 2026; CDS "O datech"; POVIS2 public section.

The ČAP insurance flood map: four zones and what sits behind them

The Czech Insurers’ Association acts as expert guarantor of a flood-map system that Intermap Technologies builds and operates. It was opened to the public in January 2009 and made free for private use from May 2010; a basic zone check remains free for individuals, an extended property report has been a paid service since 1 February 2023, and commercial use requires a contract with Intermap. The zone meanings below follow the public descriptions of the map; the exact thresholds have changed between generations.

The insurers’ map is worth understanding in more depth than its four labels suggest, because its inputs are now closer to a full hazard model than to a simple buffer. According to ČAP, the RZ2023 generation, built in 2022 and 2023, used the state terrain model DMR 4G, N-year discharges from more than 200 ČHMÚ gauging stations, information on about 9 000 km of flood-protection structures and 2D hydraulic modeling that yields flow velocity and duration as well as depth. The earlier public descriptions record a coverage threshold of catchments above 20 km² and detailed 1:10 000 plans for around 200 of the largest towns.

In February 2026 ČAP announced the next step: a sixth generation of river maps and a second generation of flash-flood (přívalové povodně) maps, commissioned by eight member insurers. The river component reclassifies several N-year discharges, adds bridge profiles as flow obstacles, extends 2D velocity modeling to roughly 100 major watercourses and was validated against anonymized claims from the September 2024 floods. The flash-flood component uses a terrain model with about 20 cm precision, building footprints for water routing and new soil-hydrology (CN) maps from VÚMOP. The simplified tariff zones TZ1 to TZ4 combine flood type, return period, inundation depth and velocity, and now incorporate the full flash-flood map.

Because zone boundaries are proprietary and the underlying depth grids are not published, the ČAP map is the right tool for anticipating an insurer’s reaction to an address and the wrong tool for engineering, planning or independent modeling. Member insurers also retain discretion to deviate from the standard zone based on their own strategy and data, so the zone is an input to pricing rather than a rule.

ZonePublic descriptionReturn-period meaning as described publiclyTypical underwriting consequence
1Negligible hazard of floodingOutside modeled flood extentsStandard cover, no flood surcharge
2Low hazard of floodingWithin the maximum modeled or 100-year extent, depending on the description consultedPossible surcharge, insurer-specific
3Medium hazard of floodingRoughly a 50-year flood extentSurcharge or exclusion of flood peril; some insurers decline
4High hazard of floodingRoughly a 20-year flood extentGenerally uninsurable for flood

cap.cz/povodnove-mapy; archiv.cap.cz; GISportal (2012); oPojištění.cz (2010).

Hydrology from ČHMÚ and Povodí, terrain from ČÚZK

The ČHMÚ flood reporting and forecasting service (HPPS) is the operational backbone. It publishes real-time stages in centimetres and discharges in cubic meters per second from the national gauge network, the three degrees of flood activity (SPA 1 vigilance, 2 alert, 3 emergency) reached at each profile, hydrological forecasts, the history of SPA exceedances, groundwater levels and a flash-flood risk product. Stations are grouped by the 14 regions, seven ČHMÚ branch offices and nine river-basin areas; most are operated by ČHMÚ itself, with the rest run by Povodí enterprises and other partners. Operational values are transmitted without full quality control and are later verified, so official statistics should be taken from validated series rather than from the live map.

The design values behind every statutory zone are the N-year discharges (N-leté průtoky) that ČHMÚ derives for gauge profiles and provides as standard hydrological data. ČHMÚ also curates the historical record: its Krolmus-MEF application maps extreme floods back to 1374 and documents flood marks such as the carved gauge on the Děčín Castle rock, which matters when a study needs to know whether a modeled Q100 has ever actually been exceeded on a reach.

The five river-basin state enterprises, founded by the Ministry of Agriculture, are the watercourse administrators for the main rivers and therefore the bodies that commission hydraulic studies, propose flood zones to the water authority and build and operate flood-protection measures. Povodí Moravy, for example, states that it watches 3 800 km of watercourses and 30 dams around the clock; Povodí Labe links directly to the CDS hazard maps and to the national flood-zone viewer from its home page. Their dispatch centres issue situation reports during events, which is the fastest source for what a specific weir or reservoir is doing.

Terrain comes from ČÚZK. DMR 5G is a bare-earth model stored as a triangulated irregular network of points from airborne laser scanning flown between 2009 and 2013 and completed for the whole 78 866 km² of the country on 30 June 2016. Its stated total mean height error is 0.18 m in open terrain and 0.30 m under forest, it is delivered in S-JTSK (EPSG 5514) with Baltic-after-adjustment heights, and it is distributed as LAZ tiles, through an ATOM feed and as a WMS, free of charge under CC BY 4.0. ČÚZK keeps it current through digital stereophotogrammetry and selective re-scanning. For any hydraulic modeling of small streams this is the layer that decides where water goes, and its accuracy is the reason the ČAP flash-flood maps can quote roughly 20 cm precision.

European layers: JRC, Copernicus and the EEA

Three EU products complement the national ones. They are consistent across borders, which the Czech maps are not, but they are coarser and carry no legal standing.

  • JRC river flood hazard maps. The Joint Research Centre’s gridded maps cover Europe and the Mediterranean basin for nine return periods from 1-in-10 to 1-in-500 years on river basins larger than 150 km², with cell values giving water depth in meters. They are produced with the LISFLOOD hydrological and LISFLOOD-FP hydrodynamic models used by the European Flood Awareness System, are released under CC BY 4.0 and, in the publisher’s own words, are not an official flood hazard map. The grid is roughly 100 m, so they resolve the Labe, Vltava, Morava and Odra but not the tributaries that caused most of the 2024 damage.
  • Copernicus Emergency Management Service. CEMS provides free-of-charge satellite mapping for natural hazards, including on-demand rapid mapping of flood extents during activations and the EFAS and GloFAS forecasting systems. Observed extents from Sentinel imagery are the best public evidence for validating any model against what actually flooded, and the September 2024 event in the Odra basin was mapped this way.
  • EEA Flood Risk Areas Viewer. The European Environment Agency publishes the areas of potential significant flood risk and related Floods Directive reporting submitted by member states, which lets a Czech stretch be compared with its Polish or German continuation across the border.
  • Copernicus Land elevation and hydrography. Where DMR 5G is not needed, the pan-European Copernicus DEM and the EU-Hydro river network provide a consistent lower-resolution base for catchment delineation and cross-border reaches.

The events that shaped the maps

Each large flood since 1997 has been followed by a rebuild of the official products, and the figures below are the ones the public record most often cites. They come from encyclopedic summaries that cite Czech press and government statements; the underlying ČHMÚ and MŽP evaluation reports are the authoritative versions.

EventRiversDeaths in CzechiaReported damageNotes
July 1997Morava, Odra50About 63 billion CZK538 towns and villages affected; 300–600 mm of rain over several days; Troubky the worst-hit municipality
August 2002Vltava, Labe1770–73 billion CZKVltava peaked at 5 300 m³/s in Prague; about 40 000 people evacuated from the capital; metro damage about 7 billion CZK
June 2013Vltava, Labe11Government released 4 billion CZK from reservesVltava at 3 200 m³/s in Prague on 3 June; more than 19 000 evacuated; state of emergency in seven regions
September 2024 (Storm Boris)Odra, Opava, Bělá and Moravian rivers5 confirmed in the Moravian-Silesian RegionEU solidarity aid of 114 million EUR approved in December 2024Jeseník received nearly 500 mm of rain; Jeseník, Krnov, Opava and Ostrava severely hit; ČAP used the claims to validate its 2026 maps

Wikipedia summaries of the 1997, 2002, 2013 and 2024 floods (citing Czech press and government sources); ČAP press release of 2 February 2026.

How a model combines these sources

A property-level flood model built from public data treats these sources as layers of evidence rather than as one answer. The statutory Q5, Q20 and Q100 zones and the Floods Directive Q500 extents set the return-period envelope; the DMR 5G terrain and ČHMÚ N-year discharges allow depth to be modeled on the small streams that official maps skip; observed CEMS extents are held back as a validation set; and the ČAP zone is carried as a separate signal of how insurers will price the address. This is the approach Bytero takes when it scores an address, with each layer kept traceable to its publisher and vintage. Availability by market is listed on the coverage page.

Questions

Is the Q100 zone the same as the insurers’ zone 4?

No. The Q100 zone is a statutory extent for a 100-year discharge, determined by the water authority. The ČAP zone 4 is a proprietary insurance classification that has been described publicly as roughly a 20-year flood extent, refined with depth and velocity. A plot can be inside Q100 and in zone 2 or 3.

Can I download the Czech flood zones for free?

Yes. VÚV TGM publishes the aggregated Q5, Q20, Q100 and Q500 zones and the Q100 active zone in DIBAVOD as shapefiles, WMS and WFS under CC BY 4.0. The publisher stresses that the outlines are orientational and that the binding version is the determination held by the water authority.

Where are the Floods Directive hazard maps with depths and velocities?

In the Ministry of the Environment Central Data Store (cds.mzp.cz), which shows extent, depth and velocity for Q5, Q20, Q100 and Q500 on stretches with significant flood risk, and in POVIS for the areas of significant flood risk by planning cycle. The maps were refreshed in 2025 for the third cycle.

Does Czechia publish free LiDAR terrain data?

Yes. ČÚZK distributes DMR 5G, the national airborne laser-scanning terrain model, free of charge under CC BY 4.0 as LAZ tiles, an ATOM feed and a WMS, with a stated mean height error of 0.18 m in open terrain.

What does the ČAP address check cost?

A basic zone check is free for private individuals on the ČAP site. An extended property report has been a paid service since February 2023, and any commercial use of the maps requires a contract with the operator, Intermap Technologies.

Sources

  1. ČAP: Povodňové mapy
  2. ČAP press release, 2 February 2026: further development of flood maps by Intermap Technologies
  3. ČAP archive: Povodňové mapy application and terms
  4. oPojištění.cz: Povodňové mapy pro veřejnost zdarma (2010)
  5. GISportal.cz: Povodňové mapy na webu ČAP (2012)
  6. Hypoindex.cz: ČAP a Intermap Technologies zveřejňují povodňové mapy (2009)
  7. yespojisteni.cz: pojištění a povodňové zóny
  8. VÚV TGM: DIBAVOD project
  9. VÚV TGM: DIBAVOD structure and downloads
  10. HEIS VÚV metadata: Záplavová území
  11. MŽP Central Data Store: about the flood hazard, threat and risk maps
  12. MŽP Central Data Store (map application)
  13. POVIS2 public section: areas of significant flood risk
  14. POVIS: Povodňový informační systém
  15. MŽP press release, 3 September 2026: new flood risk management plans
  16. ČHMÚ: Hlásná a předpovědní povodňová služba
  17. ČHMÚ: current water levels and flood map
  18. ČHMÚ: historical hydrology
  19. ČHMÚ: flash-flood risk forecast
  20. Povodí Labe, státní podnik
  21. Povodí Moravy, státní podnik
  22. Povodí Odry, státní podnik
  23. ČÚZK Geoportál: DMR 5G metadata
  24. JRC Data Catalogue: River flood hazard maps for Europe and the Mediterranean Basin region
  25. Copernicus Emergency Management Service: mapping portal
  26. Copernicus Emergency Management Service: overview
  27. EEA: Flood Risk Areas Viewer
  28. Wikipedia: 1997 Central European flood
  29. Wikipedia: 2002 European floods
  30. Wikipedia: 2013 European floods
  31. Wikipedia: 2024 Central European floods