Datasets:
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number_of_pregnancies
int8 0
17
| plasma_glucose_concentration
float64 0
199
| diastolic_blood_pressure
float64 0
122
| triceps_thickness
float64 0
99
| serum_insulin
float64 0
846
| bmi
float64 0
67.1
| diabetes_pedigree
float64 0.08
2.42
| age
float64 21
81
| has_diabetes
class label 2
classes |
---|---|---|---|---|---|---|---|---|
6 | 148 | 72 | 35 | 0 | 33.6 | 0.627 | 50 | 1yes
|
1 | 85 | 66 | 29 | 0 | 26.6 | 0.351 | 31 | 0no
|
8 | 183 | 64 | 0 | 0 | 23.3 | 0.672 | 32 | 1yes
|
1 | 89 | 66 | 23 | 94 | 28.1 | 0.167 | 21 | 0no
|
0 | 137 | 40 | 35 | 168 | 43.1 | 2.288 | 33 | 1yes
|
5 | 116 | 74 | 0 | 0 | 25.6 | 0.201 | 30 | 0no
|
3 | 78 | 50 | 32 | 88 | 31 | 0.248 | 26 | 1yes
|
10 | 115 | 0 | 0 | 0 | 35.3 | 0.134 | 29 | 0no
|
2 | 197 | 70 | 45 | 543 | 30.5 | 0.158 | 53 | 1yes
|
8 | 125 | 96 | 0 | 0 | 0 | 0.232 | 54 | 1yes
|
4 | 110 | 92 | 0 | 0 | 37.6 | 0.191 | 30 | 0no
|
10 | 168 | 74 | 0 | 0 | 38 | 0.537 | 34 | 1yes
|
10 | 139 | 80 | 0 | 0 | 27.1 | 1.441 | 57 | 0no
|
1 | 189 | 60 | 23 | 846 | 30.1 | 0.398 | 59 | 1yes
|
5 | 166 | 72 | 19 | 175 | 25.8 | 0.587 | 51 | 1yes
|
7 | 100 | 0 | 0 | 0 | 30 | 0.484 | 32 | 1yes
|
0 | 118 | 84 | 47 | 230 | 45.8 | 0.551 | 31 | 1yes
|
7 | 107 | 74 | 0 | 0 | 29.6 | 0.254 | 31 | 1yes
|
1 | 103 | 30 | 38 | 83 | 43.3 | 0.183 | 33 | 0no
|
1 | 115 | 70 | 30 | 96 | 34.6 | 0.529 | 32 | 1yes
|
3 | 126 | 88 | 41 | 235 | 39.3 | 0.704 | 27 | 0no
|
8 | 99 | 84 | 0 | 0 | 35.4 | 0.388 | 50 | 0no
|
7 | 196 | 90 | 0 | 0 | 39.8 | 0.451 | 41 | 1yes
|
9 | 119 | 80 | 35 | 0 | 29 | 0.263 | 29 | 1yes
|
11 | 143 | 94 | 33 | 146 | 36.6 | 0.254 | 51 | 1yes
|
10 | 125 | 70 | 26 | 115 | 31.1 | 0.205 | 41 | 1yes
|
7 | 147 | 76 | 0 | 0 | 39.4 | 0.257 | 43 | 1yes
|
1 | 97 | 66 | 15 | 140 | 23.2 | 0.487 | 22 | 0no
|
13 | 145 | 82 | 19 | 110 | 22.2 | 0.245 | 57 | 0no
|
5 | 117 | 92 | 0 | 0 | 34.1 | 0.337 | 38 | 0no
|
5 | 109 | 75 | 26 | 0 | 36 | 0.546 | 60 | 0no
|
3 | 158 | 76 | 36 | 245 | 31.6 | 0.851 | 28 | 1yes
|
3 | 88 | 58 | 11 | 54 | 24.8 | 0.267 | 22 | 0no
|
6 | 92 | 92 | 0 | 0 | 19.9 | 0.188 | 28 | 0no
|
10 | 122 | 78 | 31 | 0 | 27.6 | 0.512 | 45 | 0no
|
4 | 103 | 60 | 33 | 192 | 24 | 0.966 | 33 | 0no
|
11 | 138 | 76 | 0 | 0 | 33.2 | 0.42 | 35 | 0no
|
9 | 102 | 76 | 37 | 0 | 32.9 | 0.665 | 46 | 1yes
|
2 | 90 | 68 | 42 | 0 | 38.2 | 0.503 | 27 | 1yes
|
4 | 111 | 72 | 47 | 207 | 37.1 | 1.39 | 56 | 1yes
|
3 | 180 | 64 | 25 | 70 | 34 | 0.271 | 26 | 0no
|
7 | 133 | 84 | 0 | 0 | 40.2 | 0.696 | 37 | 0no
|
7 | 106 | 92 | 18 | 0 | 22.7 | 0.235 | 48 | 0no
|
9 | 171 | 110 | 24 | 240 | 45.4 | 0.721 | 54 | 1yes
|
7 | 159 | 64 | 0 | 0 | 27.4 | 0.294 | 40 | 0no
|
0 | 180 | 66 | 39 | 0 | 42 | 1.893 | 25 | 1yes
|
1 | 146 | 56 | 0 | 0 | 29.7 | 0.564 | 29 | 0no
|
2 | 71 | 70 | 27 | 0 | 28 | 0.586 | 22 | 0no
|
7 | 103 | 66 | 32 | 0 | 39.1 | 0.344 | 31 | 1yes
|
7 | 105 | 0 | 0 | 0 | 0 | 0.305 | 24 | 0no
|
1 | 103 | 80 | 11 | 82 | 19.4 | 0.491 | 22 | 0no
|
1 | 101 | 50 | 15 | 36 | 24.2 | 0.526 | 26 | 0no
|
5 | 88 | 66 | 21 | 23 | 24.4 | 0.342 | 30 | 0no
|
8 | 176 | 90 | 34 | 300 | 33.7 | 0.467 | 58 | 1yes
|
7 | 150 | 66 | 42 | 342 | 34.7 | 0.718 | 42 | 0no
|
1 | 73 | 50 | 10 | 0 | 23 | 0.248 | 21 | 0no
|
7 | 187 | 68 | 39 | 304 | 37.7 | 0.254 | 41 | 1yes
|
0 | 100 | 88 | 60 | 110 | 46.8 | 0.962 | 31 | 0no
|
0 | 146 | 82 | 0 | 0 | 40.5 | 1.781 | 44 | 0no
|
0 | 105 | 64 | 41 | 142 | 41.5 | 0.173 | 22 | 0no
|
2 | 84 | 0 | 0 | 0 | 0 | 0.304 | 21 | 0no
|
8 | 133 | 72 | 0 | 0 | 32.9 | 0.27 | 39 | 1yes
|
5 | 44 | 62 | 0 | 0 | 25 | 0.587 | 36 | 0no
|
2 | 141 | 58 | 34 | 128 | 25.4 | 0.699 | 24 | 0no
|
7 | 114 | 66 | 0 | 0 | 32.8 | 0.258 | 42 | 1yes
|
5 | 99 | 74 | 27 | 0 | 29 | 0.203 | 32 | 0no
|
0 | 109 | 88 | 30 | 0 | 32.5 | 0.855 | 38 | 1yes
|
2 | 109 | 92 | 0 | 0 | 42.7 | 0.845 | 54 | 0no
|
1 | 95 | 66 | 13 | 38 | 19.6 | 0.334 | 25 | 0no
|
4 | 146 | 85 | 27 | 100 | 28.9 | 0.189 | 27 | 0no
|
2 | 100 | 66 | 20 | 90 | 32.9 | 0.867 | 28 | 1yes
|
5 | 139 | 64 | 35 | 140 | 28.6 | 0.411 | 26 | 0no
|
13 | 126 | 90 | 0 | 0 | 43.4 | 0.583 | 42 | 1yes
|
4 | 129 | 86 | 20 | 270 | 35.1 | 0.231 | 23 | 0no
|
1 | 79 | 75 | 30 | 0 | 32 | 0.396 | 22 | 0no
|
1 | 0 | 48 | 20 | 0 | 24.7 | 0.14 | 22 | 0no
|
7 | 62 | 78 | 0 | 0 | 32.6 | 0.391 | 41 | 0no
|
5 | 95 | 72 | 33 | 0 | 37.7 | 0.37 | 27 | 0no
|
0 | 131 | 0 | 0 | 0 | 43.2 | 0.27 | 26 | 1yes
|
2 | 112 | 66 | 22 | 0 | 25 | 0.307 | 24 | 0no
|
3 | 113 | 44 | 13 | 0 | 22.4 | 0.14 | 22 | 0no
|
2 | 74 | 0 | 0 | 0 | 0 | 0.102 | 22 | 0no
|
7 | 83 | 78 | 26 | 71 | 29.3 | 0.767 | 36 | 0no
|
0 | 101 | 65 | 28 | 0 | 24.6 | 0.237 | 22 | 0no
|
5 | 137 | 108 | 0 | 0 | 48.8 | 0.227 | 37 | 1yes
|
2 | 110 | 74 | 29 | 125 | 32.4 | 0.698 | 27 | 0no
|
13 | 106 | 72 | 54 | 0 | 36.6 | 0.178 | 45 | 0no
|
2 | 100 | 68 | 25 | 71 | 38.5 | 0.324 | 26 | 0no
|
15 | 136 | 70 | 32 | 110 | 37.1 | 0.153 | 43 | 1yes
|
1 | 107 | 68 | 19 | 0 | 26.5 | 0.165 | 24 | 0no
|
1 | 80 | 55 | 0 | 0 | 19.1 | 0.258 | 21 | 0no
|
4 | 123 | 80 | 15 | 176 | 32 | 0.443 | 34 | 0no
|
7 | 81 | 78 | 40 | 48 | 46.7 | 0.261 | 42 | 0no
|
4 | 134 | 72 | 0 | 0 | 23.8 | 0.277 | 60 | 1yes
|
2 | 142 | 82 | 18 | 64 | 24.7 | 0.761 | 21 | 0no
|
6 | 144 | 72 | 27 | 228 | 33.9 | 0.255 | 40 | 0no
|
2 | 92 | 62 | 28 | 0 | 31.6 | 0.13 | 24 | 0no
|
1 | 71 | 48 | 18 | 76 | 20.4 | 0.323 | 22 | 0no
|
6 | 93 | 50 | 30 | 64 | 28.7 | 0.356 | 23 | 0no
|
1 | 122 | 90 | 51 | 220 | 49.7 | 0.325 | 31 | 1yes
|
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YAML Metadata
Error:
"configs[0]" must be of type object
pima
The pima dataset from the UCI ML repository. Predict diabetes of a patient.
Configurations and tasks
Configuration | Task | Description |
---|---|---|
pima | Binary classification | Does the patient have diabetes? |
Usage
from datasets import load_dataset
dataset = load_dataset("mstz/pima")["train"]
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