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📈 1930 Participants all Week
1930 Participants all Week 📈 4330 Entries all Week
4330 Entries all WeekNumber of Posts and Participants per Tag
| Number of Posts | Number of Participants | Weekly Changes, % | |
|---|---|---|---|
| #foodphotography | |||
| #animalphotography | |||
| #landscapephotography | +18.1 % | ||
| #cityscapephotography | +0.7 % | ||
| #architecturalphotography | +3.7 % | ||
| #vehiclephotography | +1.2 % | ||
| #macrophotography | +19.1 % | ||
| #colourfulphotography | +25.9 % | ||
| #streetphotography | +10.8 % | ||
| #portraitphotography | +32.9 % | ||
| #sportsphotography | +11.4 % | ||
| #smartphonephotography | +9.2 % | ||
| #goldenhourphotography | +46.3 % | ||
| #longexposurephotography | +48.2 % |
Number taking part in both Contests of the Day
| Participants in both contests | |
|---|---|
Number of Participants each Day
| Participants for the day | Weekly Changes, % | |
|---|---|---|
+14.2 % | ||
+2.2 % | ||
+24.9 % | ||
+17.2 % | ||
+24.5 % | ||
+45.0 % |
Authors with the Most Posts
Authors Participated in All PhotoContests this Week
Histogram of Number of Posts every 15 minutes
The data represents the CET (UTC+1), which is the official time for !
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Sunday
Background Info
I have extracted the data using api.steemit.com and the following api call:
payload = '{"id":4,"jsonrpc":"2.0","method":"call","params":["database_api","get_discussions_by_created", [{"tag":"' + tag + '","limit":100}]]}'
I am using pandas library. Pandas is an open source and is designed for Python users for data analysis and manipulation.
Monday: foodphotography and animalphotography
Tuesday: landscapephotography and cityscapephotography
Wednesday: architecturalphotography and vehiclephotography
Thursday: macrophotography and colourfulphotography
Friday: streetphotography and portraitphotography
Saturday: sportsphotography and smartphonephotography
Sunday: goldenhourphotography and longexposurephotography