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Restaurants in New York and Toronto
Marina Hunt
Table of contest:
Introduction
Data
Methodology
Result
Discussion
Conclusion
References
Introduction
Opening a restaurant is one of the most important financial decisions an
individual will make in their lifetime. It can be a daunting experience
for some.
ii
Throughout project, I explore the in-depth process of opening a restaurant in
New York and Toronto. Where the processes diverge between the two cities,
I explain the differences. It’s our goal to educate potential restaurant owner
about the differences and make it easier to understand.
New York and Toronto are two of biggest cities in North East. New York is
famously diverse city. New York City welcomed a record 65.2 million visitors,
comprising 51.6 million domestic and 13.5 million international visitors, the
ninth consecutive year of tourism growth
Long recognized as one of the most livable cities in the world, Toronto has
only recently started receiving the attention it deserves as a tourist
destination, and there’s never been a better time to visit. Urban renewal
projects have transformed industrial zones, and an energetic dining scene
churns out a steady stream of innovative restaurants.
Data
For this assignment, I used following data:
Wikipedia page of Toronto
https://en.wikipedia.org/wiki/List_of_postal_codes_of_Canada:_M'
https://cocl.us/Geospatial_data
New York City data
https://cocl.us/new_york_dataset
Foursquare API to pull the following location data on restaurants in Toronto and New York
• Venue Name
• Venue ID
• Venue Location
• Venue Category
• Count of Likes
I have used Wiki page of Toronto and https://cocl.us/Geospatial_data
to scab a table to dataframes.
iii
I have cluster similar restaurants together. Based on the output from foursquare, user can
easily determine what type of restaurants are best to eat at based on feedback.
I used https://cocl.us/new_york_dataset to explore various neiborhoods New York.
iv
Check	the	quality	of	the	rating	with	Foursquare	
Methodology
From this JSON the following attributes are extracted and added to the Dataframe:
v
• Restaurant ID
• Restaurant Category Name
• Restaurant Category ID
• Restaurant Postalcode
• Restaurant City
• Restaurant Latitude
• Restaurant Longitude
• Venue Name
• Venue Latitude
• Venue Longitude
From Foursquare data, we got 326 unique categories of restaurants. Based on the
output from Foursquare data, I used filtering the restaurants venues in order to easy
determine what type of restaurant include best price, rating and likes count.
To get better understading of the data we I will visualize it. In order to do so, I am
performing K-Means clustering to visualize the groups of the best rated category.	
Using	K-Means	algorithm	from	Scikit-learn	library	to	obtain	clusters.	
Result
What is very interesting is these results by category.
Restaurant Category in Toronto
Restaurant Category in New York
vi
Visualization
Map New York
Map Toronto
vii
Discussion
The idea for the Capstone Project is to show that when driven by venue and location
data from FourSquare, that it is possible to present the future possible location to open
new restaurant.
According to this analysis, the person who want to open restaurant can decide on a city
location.
Conclusion
Toronto area will provide the least competition for potential restaurant owner compare
to New York area.
viii

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Restaurants new york toronto

  • 1. Restaurants in New York and Toronto Marina Hunt Table of contest: Introduction Data Methodology Result Discussion Conclusion References Introduction Opening a restaurant is one of the most important financial decisions an individual will make in their lifetime. It can be a daunting experience for some.
  • 2. ii Throughout project, I explore the in-depth process of opening a restaurant in New York and Toronto. Where the processes diverge between the two cities, I explain the differences. It’s our goal to educate potential restaurant owner about the differences and make it easier to understand. New York and Toronto are two of biggest cities in North East. New York is famously diverse city. New York City welcomed a record 65.2 million visitors, comprising 51.6 million domestic and 13.5 million international visitors, the ninth consecutive year of tourism growth Long recognized as one of the most livable cities in the world, Toronto has only recently started receiving the attention it deserves as a tourist destination, and there’s never been a better time to visit. Urban renewal projects have transformed industrial zones, and an energetic dining scene churns out a steady stream of innovative restaurants. Data For this assignment, I used following data: Wikipedia page of Toronto https://en.wikipedia.org/wiki/List_of_postal_codes_of_Canada:_M' https://cocl.us/Geospatial_data New York City data https://cocl.us/new_york_dataset Foursquare API to pull the following location data on restaurants in Toronto and New York • Venue Name • Venue ID • Venue Location • Venue Category • Count of Likes I have used Wiki page of Toronto and https://cocl.us/Geospatial_data to scab a table to dataframes.
  • 3. iii I have cluster similar restaurants together. Based on the output from foursquare, user can easily determine what type of restaurants are best to eat at based on feedback. I used https://cocl.us/new_york_dataset to explore various neiborhoods New York.
  • 4. iv Check the quality of the rating with Foursquare Methodology From this JSON the following attributes are extracted and added to the Dataframe:
  • 5. v • Restaurant ID • Restaurant Category Name • Restaurant Category ID • Restaurant Postalcode • Restaurant City • Restaurant Latitude • Restaurant Longitude • Venue Name • Venue Latitude • Venue Longitude From Foursquare data, we got 326 unique categories of restaurants. Based on the output from Foursquare data, I used filtering the restaurants venues in order to easy determine what type of restaurant include best price, rating and likes count. To get better understading of the data we I will visualize it. In order to do so, I am performing K-Means clustering to visualize the groups of the best rated category. Using K-Means algorithm from Scikit-learn library to obtain clusters. Result What is very interesting is these results by category. Restaurant Category in Toronto Restaurant Category in New York
  • 7. vii Discussion The idea for the Capstone Project is to show that when driven by venue and location data from FourSquare, that it is possible to present the future possible location to open new restaurant. According to this analysis, the person who want to open restaurant can decide on a city location. Conclusion Toronto area will provide the least competition for potential restaurant owner compare to New York area.