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license: cc-by-4.0 |
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tags: |
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- anime |
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- entertainment |
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- streaming |
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- machine-learning |
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- demographics |
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size_categories: |
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- 1K<n<10K |
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--- |
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# πΊ Anime Watchers Dataset (1960β2025) |
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**π¦ Dataset Size:** 10,000 Records |
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**π Format:** CSV |
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**π License:** CC-BY-4.0 |
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--- |
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## π Overview |
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This dataset contains **10,000 synthetic profiles of anime watchers**, spanning from the **Classic Era (1960sβ1989)** to the **Modern Era (2010β2025)**. |
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It is designed for: |
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- **Data Analysis** |
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- **Machine Learning** |
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- **Recommendation Systems** |
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- **Trend Prediction** in anime consumption. |
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--- |
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## π Features |
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Each record represents an individual anime watcher with detailed attributes: |
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- **Demographics:** `Age`, `Gender`, `Country`, `Year of Birth` |
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- **Anime Preferences:** `Favorite Genre`, `Most Watched Title`, `Top 3 Anime List` |
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- **Viewing Habits:** `Start Year Watching`, `Average Weekly Watch Hours`, `Anime Era Preference` |
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- **Platforms & Devices:** `Primary Platform (TV, Netflix, Crunchyroll, etc.)`, `Device Used` |
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- **Engagement:** `Manga Reading`, `Online Community Participation`, `Merchandise Spending` |
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- **Language Preference:** `Subbed`, `Dubbed`, or `Regional Languages` |
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--- |
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## π Generational Patterns |
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- **Classic Era Fans (1960β1989):** Prefer Mecha, watched via TV/VHS, low online activity |
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- **Golden Era Fans (1990β2009):** Popular titles like *Dragon Ball Z*, *Naruto*, *Evangelion* |
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- **Modern Era Fans (2010β2025):** Stream via Crunchyroll/Netflix, binge-watch, active in online communities |
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## β
Example Usage in Python |
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```python |
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from datasets import load_dataset |
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# Load the dataset |
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dataset = load_dataset("Mikey-TraceGod/Anime-Viewers-Data") |
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# Access first example |
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print(dataset['train'][0]) |
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