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//! Mushroom dataset.
//!
//! Records drawn from *The Audubon Society Field Guide to North American
//! Mushrooms* (1981), describing 23 species of gilled mushrooms in the Agaricus
//! and Lepiota family, used to predict whether a mushroom is edible or poisonous.
//! This is the first **all-categorical** loader: every feature is a string code,
//! so there is no numeric feature matrix.
//!
//! **Features (22, all categorical):** `cap-shape`, `cap-surface`, `cap-color`,
//! `bruises`, `odor`, `gill-attachment`, `gill-spacing`, `gill-size`,
//! `gill-color`, `stalk-shape`, `stalk-root`, `stalk-surface-above-ring`,
//! `stalk-surface-below-ring`, `stalk-color-above-ring`, `stalk-color-below-ring`,
//! `veil-type`, `veil-color`, `ring-number`, `ring-type`, `spore-print-color`,
//! `population`, `habitat`. Each value is a single-letter code.
//!
//! **Target:** `class` — binary label kept verbatim (`e` = edible, `p` = poisonous)
//!
//! **Samples:** 8,124
//! **Application:** Binary classification / edibility prediction
//!
//! **Source:** UCI Machine Learning Repository
//! <https://archive.ics.uci.edu/dataset/73/mushroom>
use ReaderBuilder;
use ;
use ;
use File;
/// Type alias for Mushroom dataset: (categorical features, labels).
type MushroomData = ;
/// The URL for the Mushroom dataset (the `agaricus-lepiota.data` file).
const MUSHROOM_DATA_URL: &str =
"https://archive.ics.uci.edu/ml/machine-learning-databases/mushroom/agaricus-lepiota.data";
/// The name of the cached Mushroom dataset file.
const MUSHROOM_FILENAME: &str = "mushroom.csv";
/// The SHA256 hash of the cached Mushroom dataset file (`agaricus-lepiota.data`'s bytes).
const MUSHROOM_SHA256: &str = "e65d082030501a3ebcbcd7c9f7c71aa9d28fdfff463bf4cf4716a3fe13ac360e";
/// The name of the dataset.
const MUSHROOM_DATASET_NAME: &str = "mushroom";
/// Number of samples.
const N_SAMPLES: usize = 8_124;
/// Number of categorical features.
const N_FEATURES: usize = 22;
/// Number of columns per record (1 label + 22 features).
const N_COLUMNS: usize = 23;
/// Source column index of the label (`class`). The label is the **first** column.
const LABEL_COLUMN: usize = 0;
/// Categorical feature columns, as `(source column index, name)`, in output order.
/// All 22 features follow the leading `class` label column.
const FEATURE_COLUMNS: = ;
/// The token marking a missing categorical value in the source (only in `stalk-root`).
const MISSING_TOKEN: &str = "?";
/// A struct representing the Mushroom dataset with lazy loading.
///
/// The dataset is not loaded until you call one of the data accessor methods.
/// Once loaded, the data is cached for subsequent accesses.
///
/// # About Dataset
///
/// The Mushroom dataset describes hypothetical samples corresponding to 23 species
/// of gilled mushrooms in the Agaricus and Lepiota family, drawn from *The Audubon
/// Society Field Guide to North American Mushrooms* (1981). Each species is labelled
/// edible or poisonous (the latter combining the definitely poisonous, the unknown
/// edibility, and the not-recommended). The classification task is to predict
/// edibility from 22 categorical attributes. There is no simple rule for determining
/// the edibility of a mushroom, which is what makes the dataset interesting.
///
/// # Feature columns
///
/// All 22 features are categorical, stored as single-letter string codes in one
/// `(8124, 22)` `Array2<String>` matrix (there is no numeric matrix). By 0-based
/// column:
///
/// | Column | Attribute |
/// |--------|----------------------------|
/// | `0` | `cap-shape` |
/// | `1` | `cap-surface` |
/// | `2` | `cap-color` |
/// | `3` | `bruises` |
/// | `4` | `odor` |
/// | `5` | `gill-attachment` |
/// | `6` | `gill-spacing` |
/// | `7` | `gill-size` |
/// | `8` | `gill-color` |
/// | `9` | `stalk-shape` |
/// | `10` | `stalk-root` |
/// | `11` | `stalk-surface-above-ring` |
/// | `12` | `stalk-surface-below-ring` |
/// | `13` | `stalk-color-above-ring` |
/// | `14` | `stalk-color-below-ring` |
/// | `15` | `veil-type` |
/// | `16` | `veil-color` |
/// | `17` | `ring-number` |
/// | `18` | `ring-type` |
/// | `19` | `spore-print-color` |
/// | `20` | `population` |
/// | `21` | `habitat` |
///
/// # Labels
///
/// - `class` (shape `(8124,)`): the `Array1<String>` is kept verbatim, each entry
/// being either `e` (edible) or `p` (poisonous).
///
/// Missing values:
/// - The source marks missing values with `?` (only in `stalk-root`, 2,480 samples);
/// these are mapped to empty strings `""`.
///
/// See more information at <https://archive.ics.uci.edu/dataset/73/mushroom>.
///
/// # Citation
///
/// Mushroom (1987). UCI Machine Learning Repository.
/// <https://doi.org/10.24432/C5959T>
///
/// # Thread Safety
///
/// This struct automatically implements `Send` and `Sync` (All fields implement them), making it safe to share across threads.
/// The internal [`Dataset`] ensures thread-safe lazy initialization.
///
/// # Example
/// ```no_run
/// use dataset_ml::mushroom::Mushroom;
///
/// let download_dir = "./mushroom"; // the code will create the directory if it doesn't exist
///
/// let mut dataset = Mushroom::new(download_dir);
/// let features = dataset.features().unwrap();
/// let labels = dataset.labels().unwrap();
///
/// let (features, labels) = dataset.data().unwrap(); // this is also a way to get all data
/// assert_eq!(features.shape(), &[8124, 22]);
/// assert_eq!(labels.len(), 8124);
///
/// // `get_data()` borrows the cached arrays without reloading; `get_data_mut()`
/// // edits them in place — no clone, no reload, the change stays cached. Prefer
/// // this over cloning with `.to_owned()` when you only need to tweak values.
/// if let Some((features, labels)) = dataset.get_data_mut() {
/// features[[0, 0]] = "x".to_string();
/// labels[0] = "e".to_string();
/// }
/// assert!(dataset.get_data().is_some());
///
/// // `take_data()` moves the owned arrays out (no `to_owned()` clone) and leaves
/// // the instance reusable — the next access reloads from the cached file.
/// let (owned_features, owned_labels) = dataset.take_data().unwrap();
/// assert_eq!(owned_features.shape(), &[8124, 22]);
/// assert_eq!(owned_labels.len(), 8124);
///
/// // `into_data()` also returns the owned arrays with no clone, but consumes the
/// // instance (use it when you are done with the dataset).
/// let (owned_features, owned_labels) = dataset.into_data().unwrap();
/// assert_eq!(owned_features.shape(), &[8124, 22]);
/// assert_eq!(owned_labels.len(), 8124);
/// ```