Free sample dataset containing non-attended event data for a 1 year historical period and a 30 day future period for the Seattle, Washington area. Includes events in the Public Holidays, School holidays, Observances, politics, Daylight Savings and Academic (University holiday and exam period) event categories.
PredictHQ’s easy-to-use global events API gives businesses direct access to a constantly updated and verified event database drawing on billions of data points daily. Events across 19 categories, from expos to concerts to college dates to natural disasters, are aggregated from hundreds of sources then cleansed, filtered, enriched and verified using our proprietary data pipeline.
Companies use this information to inform their demand forecasting and planning, and update their staffing, inventory and pricing strategies to match demand. Teams at Domino’s Pizza, Uber and Accor Hotels trust PredictHQ’s precise and scalable real-world events data to enhance demand forecasting models, improve workforce optimization strategies, aid dynamic pricing efforts, and much more.
The pandemic upended demand patterns and made them harder than ever to forecast. Companies are increasingly using verified external data to know what will drive demand up or down so they can make the most of every opportunity while mitigating losses. PredictHQ’s feature engineering, which includes applying a Predicted Attendance to each event as well as our Features API for easy integrations, means teams can quickly start driving value.
Documentation
Learn more about PredictHQ's real-world event data by visiting our Developer and Data Science Documentation. Our documentation includes a Quickstart API Guide to help you get up and running quickly as well as a full list of parameters for our Events and Places endpoints as well as our Broadcasts API for Live TV events. Finally, learn more about our Features API, which removes the friction of accurately aggregating events, enabling you to correlate event data to business demand quickly. Looking at individual spikes often leads to too small of a data set to correlate accurately. Data Aggregation enables data science teams to visualize enough volume of spike days to prove correlations of events to demand.
Getting started with PredictHQ's event data - A guide for Data Scientists
Join our Data Science Solutions Engineer to walk-through a Step-by-Step demo on Correlating Demand to Events. Our Data Science Docs will assist you and your team in getting started with our intelligent event data quickly. Our wealth of resources will enable you to analyze PredictHQ's event data, combine it with your historical demand data, and identify the relationship between the two. The end goal is to ensure you successfully identify correlations and properly feature engineer event data to incorporate it into your existing event data modeling. For additional information, check out our Dev Docs, chat with us live at PredictHQ.com, or email us @ awsdx@predicthq.com
Disclaimer: forward looking data subject to change as events are dynamic. Using PredictHQ’s APIs enables you to access the most up to date data.
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This listing offers one pricing dimension: Product Access, measured in Units. It is a free sample dataset, so no charges apply. The single dimension simply grants you access to the data for non-attended events in Seattle. There are no tiers, instance sizes, or usage add-ons to choose from. You get access at no cost, letting you test and evaluate the event data before deciding on a broader arrangement.
Top-of-mind questions for buyers
What does the Product Access unit grant, and what data does this sample cover?
One unit grants access to the sample dataset of non-attended events in Seattle. Non-attended events include categories like severe weather, health warnings, disasters, and observances. The data is verified, enriched event information you can use to test forecasting or machine learning models before a broader arrangement.
How do I access and integrate this sample dataset once I subscribe?
You ingest the dataset through AWS. The vendor also delivers event data via other data platforms and APIs, and provides a standard place identifier so you can join the event data with your own location datasets. This sample lets you evaluate the data format inside your environment.
Does the free sample cover all event categories, or only non-attended events?
This sample covers non-attended events in Seattle only. Non-attended events are live, unscheduled occurrences such as severe weather, disasters, and health warnings. It does not include attended events like conferences or concerts. Separate sample listings cover attended, unscheduled, and live TV event types.
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This product does not have a refund policy. For questions, contact awsdx@predicthq.com
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