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  1. README.md +62 -77
  2. config.json +21 -65
  3. model.pkl +2 -2
README.md CHANGED
@@ -3,91 +3,49 @@ library_name: sklearn
3
  tags:
4
  - sklearn
5
  - skops
6
- - tabular-classification
7
  model_format: pickle
8
  model_file: model.pkl
9
  widget:
10
  - structuredData:
11
  x0:
12
- - -0.09392700711129204
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- - 2.371755361225434
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- - 0.9671947566078468
15
  x1:
16
- - 1.6715939059930913
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- - 1.0187539498438483
18
- - 0.31581839557288527
19
  x10:
20
- - 1.974051683532626
21
- - 0.5529279014966972
22
- - 1.4204609635013674
23
  x11:
24
- - 0.2611945709034309
25
- - 0.6196937299076192
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- - 1.190400503805864
27
  x12:
28
- - -0.10332312980738237
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- - -1.5650628809571772
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- - -1.519967717751437
31
  x13:
32
- - -0.19920098627926822
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- - 0.5095640242994445
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- - -0.3729003029693749
35
  x14:
36
- - 0.6242153953856313
37
- - -1.0186442123275312
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- - -3.0604199544158504
39
  x15:
40
- - -0.8808380741451728
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- - -1.2523426524049155
42
- - -0.7973581049651146
43
  x16:
44
- - 1.0661014648120772
45
- - 0.028663896855952335
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- - 1.3294361695442827
47
  x17:
48
- - -0.16809563986134812
49
- - 1.5728684096371472
50
- - 2.403793617769665
51
  x18:
52
- - -0.40971494857613056
53
- - -2.0685626995449002
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- - -2.6352772611427193
55
- x19:
56
- - -0.48150986525698813
57
- - 1.2364168667276738
58
- - 2.180976940508645
59
  x2:
60
- - -0.6858149404655255
61
- - -2.5704433172483783
62
- - -0.2805726481338807
63
  x3:
64
- - -0.9938521434003649
65
- - 0.004948433682649548
66
- - 0.12386186534436842
67
  x4:
68
- - -1.5351676597000408
69
- - -0.06686764679970754
70
- - -1.1398384472701109
71
  x5:
72
- - 0.05599600888975593
73
- - 0.7388591828858628
74
- - -0.014210997630448757
75
  x6:
76
- - -0.14538476476312687
77
- - 0.954051151587725
78
- - 1.4942788646796958
79
  x7:
80
- - 1.705729977752746
81
- - 0.45072299069455823
82
- - -0.27356356357396394
83
  x8:
84
- - 0.6083980206344903
85
- - 0.500745387789729
86
- - -0.13961381253754068
87
  x9:
88
- - 0.3675427037708833
89
- - -0.19653609210222556
90
- - -2.081336638897732
91
  ---
92
 
93
  # Model description
@@ -107,26 +65,53 @@ widget:
107
  <details>
108
  <summary> Click to expand </summary>
109
 
110
- | Hyperparameter | Value |
111
- |--------------------------|---------|
112
- | ccp_alpha | 0.0 |
113
- | class_weight | |
114
- | criterion | gini |
115
- | max_depth | |
116
- | max_features | |
117
- | max_leaf_nodes | |
118
- | min_impurity_decrease | 0.0 |
119
- | min_samples_leaf | 1 |
120
- | min_samples_split | 2 |
121
- | min_weight_fraction_leaf | 0.0 |
122
- | random_state | |
123
- | splitter | best |
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
124
 
125
  </details>
126
 
127
  ### Model Plot
128
 
129
- <style>#sk-container-id-5 {color: black;background-color: white;}#sk-container-id-5 pre{padding: 0;}#sk-container-id-5 div.sk-toggleable {background-color: white;}#sk-container-id-5 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-5 label.sk-toggleable__label-arrow:before {content: "▸";float: left;margin-right: 0.25em;color: #696969;}#sk-container-id-5 label.sk-toggleable__label-arrow:hover:before {color: black;}#sk-container-id-5 div.sk-estimator:hover label.sk-toggleable__label-arrow:before {color: black;}#sk-container-id-5 div.sk-toggleable__content {max-height: 0;max-width: 0;overflow: hidden;text-align: left;background-color: #f0f8ff;}#sk-container-id-5 div.sk-toggleable__content pre {margin: 0.2em;color: black;border-radius: 0.25em;background-color: #f0f8ff;}#sk-container-id-5 input.sk-toggleable__control:checked~div.sk-toggleable__content {max-height: 200px;max-width: 100%;overflow: auto;}#sk-container-id-5 input.sk-toggleable__control:checked~label.sk-toggleable__label-arrow:before {content: "▾";}#sk-container-id-5 div.sk-estimator input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-5 div.sk-label input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-5 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-5 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-5 div.sk-estimator:hover {background-color: #d4ebff;}#sk-container-id-5 div.sk-parallel-item::after {content: "";width: 100%;border-bottom: 1px solid gray;flex-grow: 1;}#sk-container-id-5 div.sk-label:hover label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-5 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-5 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-5 div.sk-item {position: relative;z-index: 1;}#sk-container-id-5 div.sk-parallel {display: flex;align-items: stretch;justify-content: center;background-color: white;position: relative;}#sk-container-id-5 div.sk-item::before, #sk-container-id-5 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-5 div.sk-parallel-item {display: flex;flex-direction: column;z-index: 1;position: relative;background-color: white;}#sk-container-id-5 div.sk-parallel-item:first-child::after {align-self: flex-end;width: 50%;}#sk-container-id-5 div.sk-parallel-item:last-child::after {align-self: flex-start;width: 50%;}#sk-container-id-5 div.sk-parallel-item:only-child::after {width: 0;}#sk-container-id-5 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-5 div.sk-label label {font-family: monospace;font-weight: bold;display: inline-block;line-height: 1.2em;}#sk-container-id-5 div.sk-label-container {text-align: center;}#sk-container-id-5 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-5 div.sk-text-repr-fallback {display: none;}</style><div id="sk-container-id-5" class="sk-top-container" style="overflow: auto;"><div class="sk-text-repr-fallback"><pre>DecisionTreeClassifier()</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-5" type="checkbox" checked><label for="sk-estimator-id-5" class="sk-toggleable__label sk-toggleable__label-arrow">DecisionTreeClassifier</label><div class="sk-toggleable__content"><pre>DecisionTreeClassifier()</pre></div></div></div></div></div>
130
 
131
  ## Evaluation Results
132
 
 
3
  tags:
4
  - sklearn
5
  - skops
6
+ - tabular-regression
7
  model_format: pickle
8
  model_file: model.pkl
9
  widget:
10
  - structuredData:
11
  x0:
12
+ - 187785.0
 
 
13
  x1:
14
+ - 0.0
 
 
15
  x10:
16
+ - 98.45860046637567
 
 
17
  x11:
18
+ - 61.657549555908474
 
 
19
  x12:
20
+ - 41.84577837324427
 
 
21
  x13:
22
+ - 51.50421179302046
 
 
23
  x14:
24
+ - 15.40016168148747
 
 
25
  x15:
26
+ - 16.958113054087026
 
 
27
  x16:
28
+ - 7.016658253407371
 
 
29
  x17:
30
+ - 0.31728840754111515
 
 
31
  x18:
32
+ - 0.37469684721099433
 
 
 
 
 
 
33
  x2:
34
+ - 0.9987966305655837
 
 
35
  x3:
36
+ - 0.9876543209876546
 
 
37
  x4:
38
+ - 0.9621793942906827
 
 
39
  x5:
40
+ - 0.9412654160563247
 
 
41
  x6:
42
+ - 0.9297844692386968
 
 
43
  x7:
44
+ - 23.85371179039301
 
 
45
  x8:
46
+ - 15.242242787152968
 
 
47
  x9:
48
+ - 78.08802650260293
 
 
49
  ---
50
 
51
  # Model description
 
65
  <details>
66
  <summary> Click to expand </summary>
67
 
68
+ | Hyperparameter | Value |
69
+ |-------------------------|------------------|
70
+ | objective | reg:squarederror |
71
+ | base_score | |
72
+ | booster | |
73
+ | callbacks | |
74
+ | colsample_bylevel | |
75
+ | colsample_bynode | |
76
+ | colsample_bytree | |
77
+ | device | |
78
+ | early_stopping_rounds | |
79
+ | enable_categorical | False |
80
+ | eval_metric | |
81
+ | feature_types | |
82
+ | gamma | |
83
+ | grow_policy | |
84
+ | importance_type | |
85
+ | interaction_constraints | |
86
+ | learning_rate | 0.01 |
87
+ | max_bin | |
88
+ | max_cat_threshold | |
89
+ | max_cat_to_onehot | |
90
+ | max_delta_step | |
91
+ | max_depth | |
92
+ | max_leaves | |
93
+ | min_child_weight | |
94
+ | missing | nan |
95
+ | monotone_constraints | |
96
+ | multi_strategy | |
97
+ | n_estimators | |
98
+ | n_jobs | |
99
+ | num_parallel_tree | |
100
+ | random_state | |
101
+ | reg_alpha | |
102
+ | reg_lambda | |
103
+ | sampling_method | |
104
+ | scale_pos_weight | |
105
+ | subsample | |
106
+ | tree_method | |
107
+ | validate_parameters | |
108
+ | verbosity | |
109
 
110
  </details>
111
 
112
  ### Model Plot
113
 
114
+ <style>#sk-container-id-2 {color: black;background-color: white;}#sk-container-id-2 pre{padding: 0;}#sk-container-id-2 div.sk-toggleable {background-color: white;}#sk-container-id-2 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-2 label.sk-toggleable__label-arrow:before {content: "▸";float: left;margin-right: 0.25em;color: #696969;}#sk-container-id-2 label.sk-toggleable__label-arrow:hover:before {color: black;}#sk-container-id-2 div.sk-estimator:hover label.sk-toggleable__label-arrow:before {color: black;}#sk-container-id-2 div.sk-toggleable__content {max-height: 0;max-width: 0;overflow: hidden;text-align: left;background-color: #f0f8ff;}#sk-container-id-2 div.sk-toggleable__content pre {margin: 0.2em;color: black;border-radius: 0.25em;background-color: #f0f8ff;}#sk-container-id-2 input.sk-toggleable__control:checked~div.sk-toggleable__content {max-height: 200px;max-width: 100%;overflow: auto;}#sk-container-id-2 input.sk-toggleable__control:checked~label.sk-toggleable__label-arrow:before {content: "▾";}#sk-container-id-2 div.sk-estimator input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-2 div.sk-label input.sk-toggleable__control:checked~label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-2 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-2 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-2 div.sk-estimator:hover {background-color: #d4ebff;}#sk-container-id-2 div.sk-parallel-item::after {content: "";width: 100%;border-bottom: 1px solid gray;flex-grow: 1;}#sk-container-id-2 div.sk-label:hover label.sk-toggleable__label {background-color: #d4ebff;}#sk-container-id-2 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-2 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-2 div.sk-item {position: relative;z-index: 1;}#sk-container-id-2 div.sk-parallel {display: flex;align-items: stretch;justify-content: center;background-color: white;position: relative;}#sk-container-id-2 div.sk-item::before, #sk-container-id-2 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-2 div.sk-parallel-item {display: flex;flex-direction: column;z-index: 1;position: relative;background-color: white;}#sk-container-id-2 div.sk-parallel-item:first-child::after {align-self: flex-end;width: 50%;}#sk-container-id-2 div.sk-parallel-item:last-child::after {align-self: flex-start;width: 50%;}#sk-container-id-2 div.sk-parallel-item:only-child::after {width: 0;}#sk-container-id-2 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-2 div.sk-label label {font-family: monospace;font-weight: bold;display: inline-block;line-height: 1.2em;}#sk-container-id-2 div.sk-label-container {text-align: center;}#sk-container-id-2 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-2 div.sk-text-repr-fallback {display: none;}</style><div id="sk-container-id-2" class="sk-top-container" style="overflow: auto;"><div class="sk-text-repr-fallback"><pre>XGBRegressor(base_score=None, booster=None, callbacks=None,colsample_bylevel=None, colsample_bynode=None,colsample_bytree=None, device=None, early_stopping_rounds=None,enable_categorical=False, eval_metric=None, feature_types=None,gamma=None, grow_policy=None, importance_type=None,interaction_constraints=None, learning_rate=0.01, max_bin=None,max_cat_threshold=None, max_cat_to_onehot=None,max_delta_step=None, max_depth=None, max_leaves=None,min_child_weight=None, missing=nan, monotone_constraints=None,multi_strategy=None, n_estimators=None, n_jobs=None,num_parallel_tree=None, random_state=None, ...)</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-2" type="checkbox" checked><label for="sk-estimator-id-2" class="sk-toggleable__label sk-toggleable__label-arrow">XGBRegressor</label><div class="sk-toggleable__content"><pre>XGBRegressor(base_score=None, booster=None, callbacks=None,colsample_bylevel=None, colsample_bynode=None,colsample_bytree=None, device=None, early_stopping_rounds=None,enable_categorical=False, eval_metric=None, feature_types=None,gamma=None, grow_policy=None, importance_type=None,interaction_constraints=None, learning_rate=0.01, max_bin=None,max_cat_threshold=None, max_cat_to_onehot=None,max_delta_step=None, max_depth=None, max_leaves=None,min_child_weight=None, missing=nan, monotone_constraints=None,multi_strategy=None, n_estimators=None, n_jobs=None,num_parallel_tree=None, random_state=None, ...)</pre></div></div></div></div></div>
115
 
116
  ## Evaluation Results
117
 
config.json CHANGED
@@ -19,119 +19,75 @@
19
  "x15",
20
  "x16",
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  "x17",
22
- "x18",
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- "x19"
24
  ],
25
  "environment": [
26
  "scikit-learn=1.2.2"
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  ],
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  "example_input": {
29
  "x0": [
30
- -0.09392700711129204,
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- 2.371755361225434,
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- 0.9671947566078468
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  ],
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  "x1": [
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- 1.6715939059930913,
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- 1.0187539498438483,
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- 0.31581839557288527
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  ],
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  "x10": [
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- 1.974051683532626,
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- 0.5529279014966972,
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- 1.4204609635013674
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  ],
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  "x11": [
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- 0.2611945709034309,
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- 0.6196937299076192,
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- 1.190400503805864
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  ],
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  "x12": [
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- -0.10332312980738237,
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- -1.5650628809571772,
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- -1.519967717751437
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  ],
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  "x13": [
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- -0.19920098627926822,
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- 0.5095640242994445,
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- -0.3729003029693749
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  ],
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  "x14": [
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- 0.6242153953856313,
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- -1.0186442123275312,
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- -3.0604199544158504
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  ],
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  "x15": [
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- -0.8808380741451728,
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- -1.2523426524049155,
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- -0.7973581049651146
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  ],
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  "x16": [
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- 1.0661014648120772,
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- 0.028663896855952335,
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- 1.3294361695442827
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  ],
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  "x17": [
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- -0.16809563986134812,
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- 1.5728684096371472,
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- 2.403793617769665
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  ],
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  "x18": [
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- -0.40971494857613056,
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- -2.0685626995449002,
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- -2.6352772611427193
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- ],
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- "x19": [
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- -0.48150986525698813,
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- 1.2364168667276738,
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- 2.180976940508645
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  ],
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  "x2": [
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- -0.6858149404655255,
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- -2.5704433172483783,
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- -0.2805726481338807
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  ],
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  "x3": [
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- -0.9938521434003649,
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- 0.004948433682649548,
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- 0.12386186534436842
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  ],
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  "x4": [
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- -1.5351676597000408,
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- -0.06686764679970754,
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- -1.1398384472701109
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  ],
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  "x5": [
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- 0.05599600888975593,
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- 0.7388591828858628,
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- -0.014210997630448757
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  ],
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  "x6": [
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- -0.14538476476312687,
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- 0.954051151587725,
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- 1.4942788646796958
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  ],
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  "x7": [
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- 1.705729977752746,
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- 0.45072299069455823,
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- -0.27356356357396394
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  ],
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  "x8": [
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- 0.6083980206344903,
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- 0.500745387789729,
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- -0.13961381253754068
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  ],
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  "x9": [
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- 0.3675427037708833,
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- -0.19653609210222556,
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- -2.081336638897732
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  ]
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  },
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  "model": {
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  "file": "model.pkl"
132
  },
133
  "model_format": "pickle",
134
- "task": "tabular-classification",
135
  "use_intelex": false
136
  }
137
  }
 
19
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