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Live · refreshed weeklyUpdated July 6, 2026

AI Hotel Landscape

How leading AI assistants recommend hotels — 616 prompts across 56 destinations, refreshed every Monday.

Data is directional. Some prompts retry due to upstream variance, so absolute counts can shift ±5% week to week.
PROMPTS

The 616 prompts we ask ChatGPT every week

56 destinations × 11 templates. Each prompt has structured dimensions: city, country, region, persona (couples / families / solo / business), budget (luxury / mid / budget), and location zoom (wide city vs neighborhood vs landmark). Control prompts are unmodified baselines.

Prompts / week
616
across 6 platforms
Destinations
56
distinct cities
Countries
37
dest country
Regions
5
continental groupings
56 destinations across 37 countrieseuropeamericasasiaafricaoceania
Template patterns

Every destination below gets the same 11 question types — just with the city name swapped in. That's how 56 destinations × 11 templates = 616 prompts per platform per week.

  • luxury hotels in <city>
  • family friendly hotels in <city>
  • hotels in <city> with rooftop pool
  • hotels near <neighborhood>, <city>
  • boutique hotels in <neighborhood>, <city>
  • best hotels in <city> for solo travelers
  • best hotels in <city>
  • affordable hotels in <city> under $200
  • best hotels in <city> for couples
  • best hotels in <city> for business travelers
  • best hotels in <neighborhood>, <city>
  • hotels near <city> National Park
africa4 destinations · 44 prompts

Each destination is asked the 11 prompt patterns above (11 prompts × 4 cities = 44 prompts in this region).

americas14 destinations · 154 prompts

Each destination is asked the 11 prompt patterns above (11 prompts × 14 cities = 154 prompts in this region).

asia16 destinations · 176 prompts

Each destination is asked the 11 prompt patterns above (11 prompts × 16 cities = 176 prompts in this region).

europe17 destinations · 187 prompts

Each destination is asked the 11 prompt patterns above (11 prompts × 17 cities = 187 prompts in this region).

oceania5 destinations · 55 prompts

Each destination is asked the 11 prompt patterns above (11 prompts × 5 cities = 55 prompts in this region).

HIGHLIGHTS

Named hotels in Brazil — ChatGPT

ChatGPT's top picks specifically in Brazil. Switch country at the top to filter, or clear to see worldwide.

Hotel of the Week
7 mentions
Rio de Janeiro

Most-mentioned hotel by ChatGPT this week.

Newcomer
new — 7 mentions
Rio de Janeiro

Wasn't on ChatGPT's radar last week. Now it is.

ADS

Sponsored placementsWorldwide

OpenAI is rolling out paid sponsor placements in the US, Australia, New Zealand, and Canada — testing may expand. We detect real single-advertiser ad units (organic shopping cards excluded) and pull the brand.

#AdvertiserCaptures
1Expedia292
2IHG Hotels & Resorts98
3Marriott26
4Hilton23
5GetYourGuide18
6Gate 1 Travel7
7Super.com6
8Choice Hotels2
9Priceline2
10Preply1
SOURCES

Where ChatGPT pulls hotel information from

Every URL ChatGPT cited classified into 12 buckets: OTAs, editorial, chain sites, direct hotel pages, social, meta-search, AI tools, community, government, directory consortia, and other.

Chain
25.0% (66)
Other
21.2% (56)
OTA & Aggregator
10.2% (27)
Community
9.5% (25)
Independent Hotel
8.3% (22)
Review Site
8.0% (21)
Editorial
5.7% (15)
Government / DMO
4.5% (12)
Social Channel
3.0% (8)
Meta-search
2.3% (6)
Hotel Directory
1.1% (3)
Encyclopedia
0.8% (2)
AI Tool
0.4% (1)
Top categories
Chain
marriott.com 60% · hyatt.com 21% · all.accor.com 18%
25.0%66
Other
enprimeurclub.com 51% · theblackstonehotel.com 26% · luxstay.world 23%
21.2%56
OTA & Aggregator
expedia.com 55% · booking.com 24% · hotels.com 21%
10.2%27
Community
hotelierschoice.com 50% · travelmyth.com 35% · budgetyourtrip.com 15%
9.5%25
Independent Hotel
panpacific.com 59% · hotel.hardrock.com 21% · lepremierhotel.com 20%
8.3%22
Review Site
tripadvisor.com 62% · oyster.com 35% · tripadvisor.ca 3%
8.0%21
Editorial
thehotelguru.com 39% · timeout.com 32% · vogue.com 29%
5.7%15
Government / DMO
prague.eu 38% · wien.info 32% · sydney.com 30%
4.5%12
BRANDS

Top hotel parent groups by ChatGPT mentionsWorldwide

Each ChatGPT mention matched against Google Places, then rolled up to parent group (Marriott = Ritz-Carlton + Westin + Sheraton + EDITION + …, etc.). WoW delta vs last week. Detection via 175+ brand-domain rules.

Gainers
biggest WoW jumps
1Lungarno412+200%
2Leela813+63%
3Shangri-La2842+50%
4Minor2631+19%
5Peninsula2833+18%
Losers
biggest WoW drops
1Capella1810-44%
2Rosewood2415-38%
3Accor209141-33%
4Wyndham1914-26%
5Mandarin Oriental5544-20%
#BrandMentionsHotelsW/W
1Marriott327179· 0%
2Accor14189 32.5%
3Hilton13183 2.2%
4Hyatt12161 4.0%
5Four Seasons9836 5.4%
6IHG9469 16.8%
7Mandarin Oriental4417 20.0%
8Shangri-La4218 50.0%
9Peninsula339 17.9%
10Minor3120 19.2%
11Kempinski269 7.1%
12Langham249 4.0%
13Taj2210· 0%
14Radisson2116 5.0%
15Meliá2012 11.1%
16Rosewood156 37.5%
17Wyndham1411 26.3%
18Oberoi146 7.7%
19Leela132 62.5%
20Lungarno123 200.0%
Chain vs Independent

Of the hotels named this week: how many resolved to a chain (Marriott / Accor / …), an independent property, a vacation rental, or stayed unmatched.

Chain55.9% 22.6%
Independent44.1% 14.3%
Vacation rental0.0%
Unresolved0.0%
DEFINITIONS

What every metric means

Plain-English definitions for each number on this page. For deeper visuals + examples, see the annual landscape report linked at the bottom.

Captures
Number of AI responses we collected this week. Target = 616 per platform (one per prompt). Less when there are upstream errors.
Web search
Did the response trigger a live web fetch? Detected from the underlying response stream’s search-result events, not the unreliable top-level flag. We do NOT force web search — this is organic model behavior.
Map widget
Did the response render a hotel-card map (the Google-Maps-style widget ChatGPT shows for travel queries)? Each card is a "map entity" with its own provider.
Sponsored placements
Paid sponsor placements. Detected from real single-advertiser ad units in the response stream. Excludes ChatGPT’s organic shopping cards (which are unpaid product carousels). US/AU/NZ/CA only as of May 2026.
Sources / response
Distinct URLs the model consulted while answering — the URLs that show up in its retrieval log, regardless of whether it cited them inline. Computed only over web-search responses (otherwise the answer is from training data, no sources to count).
Citations / response
Subset of sources that the model rendered as inline footnote pills in the answer. A source becomes a citation when the model explicitly references it.
Fanouts / response
Number of sub-queries the model spun up internally to answer the prompt (e.g. "best hotels Paris" might fan out to "hotels Paris Marais", "luxury hotels Paris", "rooftop hotels Paris", …).
Map entities / response
Hotel cards inside the map widget. Each carries a provider (Google Places, TripAdvisor, Yelp, Foursquare, SERP) and a place ID where applicable.
OTA
Online travel agency (Booking, Expedia, Hotels.com, Agoda, Trip.com, Priceline, etc.) — commission-based booking sites.
Direct
A hotel’s own website. Computed at request time by matching the cited domain against Google Places.
Chain
A hotel chain’s brand website (hilton.com, marriott.com, ihg.com, …). 175+ chain-domain rules.
Editorial
Travel media (Condé Nast Traveler, Time Out, Lonely Planet, Forbes Travel Guide, NYT, etc.) and city-specific travel blogs (santorinidave.com, theurbanlist.com, etc.).
Directory
Multi-property hotel consortia / brand collectives (Small Luxury Hotels of the World, Design Hotels, Preferred Hotels, Virtuoso, …). Aggregate hotels under one umbrella but aren’t a single OTA.
Review
TripAdvisor, Oyster, Yelp, Trustpilot, Holidaycheck — review-first platforms.
Want a deeper read? See the in-depth annual report