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MedInc
float64
0.5
15
HouseAge
float64
1
52
AveRooms
float64
0.85
142
AveBedrms
float64
0.38
34.1
Population
float64
3
35.7k
AveOccup
float64
0.69
600
Latitude
float64
32.5
42
Longitude
float64
-124.35
-114.31
MedHouseVal
float64
0.15
5
8.3252
41
6.984127
1.02381
322
2.555556
37.88
-122.23
4.526
8.3014
21
6.238137
0.97188
2,401
2.109842
37.86
-122.22
3.585
7.2574
52
8.288136
1.073446
496
2.80226
37.85
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3.521
5.6431
52
5.817352
1.073059
558
2.547945
37.85
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3.413
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52
6.281853
1.081081
565
2.181467
37.85
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3.422
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52
4.761658
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413
2.139896
37.85
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2.697
3.6591
52
4.931907
0.951362
1,094
2.128405
37.84
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2.992
3.12
52
4.797527
1.061824
1,157
1.788253
37.84
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2.414
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42
4.294118
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2.026891
37.84
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3.6912
52
4.970588
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1,551
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37.84
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2.611
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52
5.477612
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910
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37.85
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2.815
3.2705
52
4.77248
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37.85
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52
5.32265
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52
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345
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52
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50
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50
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37.84
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40
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409
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37.85
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1.475
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42
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929
2.538251
37.85
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1.598
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52
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52
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853
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37.84
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41
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317
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37.85
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49
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607
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37.85
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0.938
1.808
52
4.780856
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37.85
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1.055
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50
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2.391121
37.84
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1.089
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52
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395
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37.84
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863
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37.84
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1.223
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52
4.882086
1.090703
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2.648526
37.84
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1.152
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48
5.737313
1.220896
1,026
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37.84
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1.104
1.375
49
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754
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37.83
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1.049
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51
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570
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37.83
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48
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987
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37.83
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1.045
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52
3.74938
0.967742
901
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37.83
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1.039
3.48
52
4.757282
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689
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37.83
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1.914
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52
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37.83
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52
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51
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517
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37.83
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462
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37.84
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52
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467
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37.84
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1.888
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52
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660
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37.83
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52
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37.83
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1.823
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50
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616
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37.83
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1.425
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43
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558
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37.82
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1.375
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40
3.9
1.21875
423
2.64375
37.82
-122.26
1.875
1.775
40
2.6875
1.065341
700
1.988636
37.82
-122.27
1.125
0.9218
21
2.045662
1.034247
735
1.678082
37.82
-122.27
1.719
1.5045
43
4.589681
1.120393
1,061
2.60688
37.82
-122.27
0.938
1.1108
41
4.473611
1.184722
1,959
2.720833
37.82
-122.27
0.975
1.2475
52
4.075
1.14
1,162
2.905
37.82
-122.27
1.042
1.6098
52
5.021459
1.008584
701
3.008584
37.82
-122.28
0.875
1.4113
52
4.295455
1.104545
576
2.618182
37.82
-122.28
0.831
1.5057
52
4.779923
1.111969
622
2.401544
37.82
-122.28
0.875
0.8172
52
6.102459
1.372951
728
2.983607
37.82
-122.28
0.853
1.2171
52
4.5625
1.121711
1,074
3.532895
37.82
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0.803
2.5625
2
2.77193
0.754386
94
1.649123
37.82
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0.6
3.3929
52
5.994652
1.128342
554
2.962567
37.83
-122.29
0.757
6.1183
49
5.869565
1.26087
86
3.73913
37.82
-122.29
0.75
0.9011
50
6.229508
1.557377
377
3.090164
37.81
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0.861
1.191
52
7.698113
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521
3.27673
37.81
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0.761
2.5938
48
6.225564
1.368421
392
2.947368
37.81
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0.735
1.1667
52
5.40107
1.117647
604
3.229947
37.81
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0.784
0.8056
48
4.38253
1.066265
788
2.373494
37.81
-122.3
0.844
2.6094
52
6.986395
1.659864
492
3.346939
37.8
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0.813
1.8516
52
6.97561
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274
3.341463
37.81
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0.85
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46
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2.983633
37.81
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1.292
1.7719
26
6.047244
1.19685
392
3.086614
37.81
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0.825
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46
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1.072202
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37.81
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560
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37.82
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1.931

California Housing

About

🏠 The California Housing dataset, first appearing in "Sparse spatial autoregressions" (1997)

Description

This is an (unofficial) Hugging Face version of the California Housing dataset from the S&P Letters paper "Sparse spatial autoregressions" (1997). It can also be found in StatLib and Luis Torgo's page. A modified version of it, used in "Hands-On Machine learning with Scikit-Learn and TensorFlow", with 9 differenfeatures and missing values, also circulates online.

The California Housing dataset comes from the California 1990 Census. It contains 20640 samples, each of which corresponds to a geographical block and the people living therein. Specifically, it contains the following 8 features:

  1. MedInc: Median income of the people living in the block
  2. HouseAge: Median age of the houses in a block
  3. AveRooms: Average rooms of houses in a block
  4. AveBedrms: Average bedrooms of houses in a block
  5. Population: Number of people living in a block
  6. AveOccup: Average number of people under the same roof
  7. Latitude: Geographical latitude
  8. Longitude: Geographical longitude

The target variable is the median house value (MedHouseVal).

Usage

import datasets

dataset = datasets.load_dataset("gvlassis/california_housing")
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