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id
int32
0
12.3k
x
array 2D
station
class label
12 classes
year
class label
5 classes
month
class label
12 classes
day
class label
31 classes
season
class label
4 classes
0
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1Changping
32016
89
2728
1Autumn
1
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0Aotizhongxin
32016
910
1011
1Autumn
2
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0Aotizhongxin
32016
23
2829
3Spring
3
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5Gucheng
22015
01
1920
2Winter
4
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0Aotizhongxin
22015
56
2021
0Summer
5
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3Dongsi
32016
56
2728
0Summer
6
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11Wanshouxigong
22015
89
2829
1Autumn
7
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0Aotizhongxin
32016
34
2930
3Spring
8
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6Huairou
12014
34
1314
3Spring
9
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7Nongzhanguan
42017
01
1415
2Winter
10
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8Shunyi
22015
89
56
1Autumn
11
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7Nongzhanguan
22015
89
67
1Autumn
12
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1Changping
02013
89
89
1Autumn
13
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5Gucheng
32016
1011
12
1Autumn
14
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2Dingling
12014
56
2829
0Summer
15
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5Gucheng
12014
45
45
3Spring
16
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2Dingling
02013
23
1112
2Winter
17
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10Wanliu
32016
56
2930
0Summer
18
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10Wanliu
32016
67
1920
0Summer
19
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1Changping
22015
45
1213
3Spring
20
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1Changping
02013
23
89
2Winter
21
[ [ 1.7718675136566162, 1.2901194095611572, -0.31550320982933044, 0.8358428478240967, 1.7835410833358765, -0.7654613852500916, -1.1226669549942017, 0.7974961400032043, -0.17332525551319122, 0.1650712937116623, -0.7071067690849304, 0.7071067690849304, -0.505229353904...
6Huairou
22015
1112
89
2Winter
22
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10Wanliu
22015
45
2021
3Spring
23
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9Tiantan
12014
23
89
2Winter
24
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7Nongzhanguan
02013
89
89
1Autumn
25
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3Dongsi
12014
01
56
2Winter
26
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10Wanliu
02013
78
2526
0Summer
27
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3Dongsi
32016
78
01
0Summer
28
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3Dongsi
12014
67
2021
0Summer
29
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11Wanshouxigong
12014
910
56
1Autumn
30
[ [ 0.8191612362861633, 1.279222846031189, 0.7468228340148926, 1.1774516105651855, -0.026518628001213074, 0.5581862330436707, -0.22201336920261383, -0.2240757793188095, 0.41389310359954834, -0.07853282988071442, -0.7071067690849304, 0.7071067690849304, -0.9866213202...
4Guanyuan
12014
34
78
3Spring
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MSD Beijing Multi-Site Air Quality Dataset Attribution

The Multi-factor Sequential Disentanglement benchmark includes the Beijing Multi-Site Air Quality (BMS-AQ) dataset, a time series dataset that captures daily air quality and weather measurements across multiple monitoring stations in Beijing. For the benchmark, we preprocess this data into daily sequences of 24 hourly records, grouped by station and date. Each sequence is labeled with static attributes such as station, year, month, day, and season, resulting in a temporal dataset suitable for studying disentanglement in real-world time series.

Note: We process and redistribute this dataset solely for non-commercial research purposes. Please cite the above paper when using this dataset in your work.

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