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pushing files to the repo from the example!

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  1. README.md +118 -0
  2. config.json +53 -0
  3. skops-xwel2v4p.pkl +3 -0
README.md ADDED
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+ ---
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+ license: apache-2.0
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+ library_name: sklearn
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+ tags:
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+ - sklearn
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+ - skops
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+ - tabular-classification
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+ model_format: pickle
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+ model_file: skops-xwel2v4p.pkl
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+ widget:
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+ - structuredData:
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+ age:
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+ - 40
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+ - 21
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+ - 55
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+ alamine_aminotransferase:
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+ - 232
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+ - 36
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+ - 112
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+ albumin_and_globulin_ratio:
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+ - 0.8
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+ - 1.34
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+ - 0.8
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+ alkaline_phosphotase:
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+ - 293
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+ - 150
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+ - 482
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+ gender:
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+ - 0
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+ - 1
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+ - 1
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+ total_bilirubin:
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+ - 0.9
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+ - 3.9
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+ - 0.8
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+ ---
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+
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+ # Model description
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+
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+ This model was created following the instructions in the following Kaggle notebook:The possible classified predictions are: 'Non liver patient', 'Liver patient'The predictors are: age, gender, total_bilirubin, alkaline_phosphotase, alamine_aminotransferase, albumin_and_globulin_ratio
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+
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+ ## Intended uses & limitations
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+
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+ This model follows the limitations of the Apache 2.0 license.
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+
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+ ## Training Procedure
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+
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+ [More Information Needed]
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+
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+ ### Hyperparameters
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+
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+ <details>
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+ <summary> Click to expand </summary>
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+
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+ | Hyperparameter | Value |
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+ |--------------------------|---------|
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+ | bootstrap | False |
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+ | ccp_alpha | 0.0 |
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+ | class_weight | |
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+ | criterion | gini |
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+ | max_depth | |
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+ | max_features | sqrt |
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+ | max_leaf_nodes | |
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+ | max_samples | |
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+ | min_impurity_decrease | 0.0 |
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+ | min_samples_leaf | 1 |
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+ | min_samples_split | 2 |
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+ | min_weight_fraction_leaf | 0.0 |
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+ | n_estimators | 100 |
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+ | n_jobs | |
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+ | oob_score | False |
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+ | random_state | 123 |
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+ | verbose | 0 |
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+ | warm_start | False |
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+
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+ </details>
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+
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+ ### Model Plot
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+
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+ <style>#sk-container-id-1 {color: black;background-color: white;}#sk-container-id-1 pre{padding: 0;}#sk-container-id-1 div.sk-toggleable {background-color: white;}#sk-container-id-1 label.sk-toggleable__label {cursor: pointer;display: block;width: 100%;margin-bottom: 0;padding: 0.3em;box-sizing: border-box;text-align: center;}#sk-container-id-1 label.sk-toggleable__label-arrow:before {content: "▸";float: left;margin-right: 0.25em;color: #696969;}#sk-container-id-1 label.sk-toggleable__label-arrow:hover:before {color: black;}#sk-container-id-1 div.sk-estimator:hover label.sk-toggleable__label-arrow:before {color: black;}#sk-container-id-1 div.sk-toggleable__content {max-height: 0;max-width: 0;overflow: hidden;text-align: left;background-color: #f0f8ff;}#sk-container-id-1 div.sk-toggleable__content pre {margin: 0.2em;color: black;border-radius: 0.25em;background-color: #f0f8ff;}#sk-container-id-1 input.sk-toggleable__control:checked~div.sk-toggleable__content {max-height: 200px;max-width: 100%;overflow: auto;}#sk-container-id-1 input.sk-toggleable__control:checked~label.sk-toggleable__label-arrow:before {content: "▾";}#sk-container-id-1 div.sk-estimator input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-1 div.sk-label input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-1 input.sk-hidden--visually {border: 0;clip: rect(1px 1px 1px 1px);clip: rect(1px, 1px, 1px, 1px);height: 1px;margin: -1px;overflow: hidden;padding: 0;position: absolute;width: 1px;}#sk-container-id-1 div.sk-estimator {font-family: monospace;background-color: #f0f8ff;border: 1px dotted black;border-radius: 0.25em;box-sizing: border-box;margin-bottom: 0.5em;}#sk-container-id-1 div.sk-estimator:hover {background-color: #d4ebff;}#sk-container-id-1 div.sk-parallel-item::after {content: "";width: 100%;border-bottom: 1px solid gray;flex-grow: 1;}#sk-container-id-1 div.sk-label:hover label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-1 div.sk-serial::before {content: "";position: absolute;border-left: 1px solid gray;box-sizing: border-box;top: 0;bottom: 0;left: 50%;z-index: 0;}#sk-container-id-1 div.sk-serial {display: flex;flex-direction: column;align-items: center;background-color: white;padding-right: 0.2em;padding-left: 0.2em;position: relative;}#sk-container-id-1 div.sk-item {position: relative;z-index: 1;}#sk-container-id-1 div.sk-parallel {display: flex;align-items: stretch;justify-content: center;background-color: white;position: relative;}#sk-container-id-1 div.sk-item::before, #sk-container-id-1 div.sk-parallel-item::before {content: "";position: absolute;border-left: 1px solid gray;box-sizing: border-box;top: 0;bottom: 0;left: 50%;z-index: -1;}#sk-container-id-1 div.sk-parallel-item {display: flex;flex-direction: column;z-index: 1;position: relative;background-color: white;}#sk-container-id-1 div.sk-parallel-item:first-child::after {align-self: flex-end;width: 50%;}#sk-container-id-1 div.sk-parallel-item:last-child::after {align-self: flex-start;width: 50%;}#sk-container-id-1 div.sk-parallel-item:only-child::after {width: 0;}#sk-container-id-1 div.sk-dashed-wrapped {border: 1px dashed gray;margin: 0 0.4em 0.5em 0.4em;box-sizing: border-box;padding-bottom: 0.4em;background-color: white;}#sk-container-id-1 div.sk-label label {font-family: monospace;font-weight: bold;display: inline-block;line-height: 1.2em;}#sk-container-id-1 div.sk-label-container {text-align: center;}#sk-container-id-1 div.sk-container {/* jupyter's `normalize.less` sets `[hidden] { display: none; }` but bootstrap.min.css set `[hidden] { display: none !important; }` so we also need the `!important` here to be able to override the default hidden behavior on the sphinx rendered scikit-learn.org. See: https://github.com/scikit-learn/scikit-learn/issues/21755 */display: inline-block !important;position: relative;}#sk-container-id-1 div.sk-text-repr-fallback {display: none;}</style><div id="sk-container-id-1" class="sk-top-container" style="overflow: auto;"><div class="sk-text-repr-fallback"><pre>ExtraTreesClassifier(random_state=123)</pre><b>In a Jupyter environment, please rerun this cell to show the HTML representation or trust the notebook. <br />On GitHub, the HTML representation is unable to render, please try loading this page with nbviewer.org.</b></div><div class="sk-container" hidden><div class="sk-item"><div class="sk-estimator sk-toggleable"><input class="sk-toggleable__control sk-hidden--visually" id="sk-estimator-id-1" type="checkbox" checked><label for="sk-estimator-id-1" class="sk-toggleable__label sk-toggleable__label-arrow">ExtraTreesClassifier</label><div class="sk-toggleable__content"><pre>ExtraTreesClassifier(random_state=123)</pre></div></div></div></div></div>
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+
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+ ## Evaluation Results
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+
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+ | Metric | Value |
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+ |----------|----------|
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+ | accuracy | 0.836538 |
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+ | f1 score | 0.836538 |
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+
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+ ### Model description/Evaluation Results/Classification report
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+
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+ | index | precision | recall | f1-score | support |
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+ |-------------------|-------------|----------|------------|-----------|
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+ | Liver patient | 0.814159 | 0.87619 | 0.844037 | 105 |
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+ | Non liver patient | 0.863158 | 0.796117 | 0.828283 | 103 |
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+ | macro avg | 0.838659 | 0.836153 | 0.83616 | 208 |
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+ | weighted avg | 0.838423 | 0.836538 | 0.836236 | 208 |
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+
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+ # How to Get Started with the Model
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+
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+ [More Information Needed]
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+
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+ # Model Card Authors
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+
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+ gianlab
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+
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+ # Model Card Contact
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+
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+ You can contact the model card authors through following channels:
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+ [More Information Needed]
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+
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+ # Citation
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+
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+ Below you can find information related to citation.
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+
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+ **BibTeX:**
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+ ```
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+ [More Information Needed]
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+ ```
config.json ADDED
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+ {
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+ "sklearn": {
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+ "columns": [
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+ "age",
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+ "gender",
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+ "total_bilirubin",
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+ "alkaline_phosphotase",
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+ "alamine_aminotransferase",
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+ "albumin_and_globulin_ratio"
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+ ],
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+ "environment": [
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+ "scikit-learn=1.2.2"
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+ ],
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+ "example_input": {
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+ "age": [
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+ 40,
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+ 21,
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+ 55
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+ ],
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+ "alamine_aminotransferase": [
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+ 232,
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+ 36,
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+ 112
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+ ],
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+ "albumin_and_globulin_ratio": [
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+ 0.8,
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+ 1.34,
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+ 0.8
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+ ],
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+ "alkaline_phosphotase": [
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+ 293,
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+ 150,
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+ 482
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+ ],
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+ "gender": [
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+ 0,
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+ 1,
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+ 1
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+ ],
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+ "total_bilirubin": [
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+ 0.9,
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+ 3.9,
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+ 0.8
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+ ]
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+ },
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+ "model": {
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+ "file": "skops-xwel2v4p.pkl"
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+ },
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+ "model_format": "pickle",
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+ "task": "tabular-classification",
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+ "use_intelex": false
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+ }
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+ }
skops-xwel2v4p.pkl ADDED
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+ version https://git-lfs.github.com/spec/v1
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+ oid sha256:18ac24fadb2a8a3d9a0a747a77aaaa2450802eb1c45355fd91384d206558dcde
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+ size 3564202