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Merge branch 'main' of https://github.com/xuhongzuo/DeepOD
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xuhongzuo committed Sep 21, 2023
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7 changes: 5 additions & 2 deletions README.rst
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Expand Up @@ -18,7 +18,7 @@ Python Deep Outlier/Anomaly Detection (DeepOD)
and `Anomaly Detection <https://en.wikipedia.org/wiki/Anomaly_detection>`_. ``DeepOD`` supports tabular anomaly detection and time-series anomaly detection.


DeepOD includes **25** deep outlier detection / anomaly detection algorithms (in unsupervised/weakly-supervised paradigm).
DeepOD includes **26** deep outlier detection / anomaly detection algorithms (in unsupervised/weakly-supervised paradigm).
More baseline algorithms will be included later.


Expand Down Expand Up @@ -184,6 +184,7 @@ Implemented Models
:header: "Model", "Venue", "Year", "Type", "Title"
:widths: 4, 4, 4, 8, 20

DCdetector, KDD, 2023, unsupervised, DCdetector: Dual Attention Contrastive Representation Learning for Time Series Anomaly Detection [#Yang2023dcdetector]_
TimesNet, ICLR, 2023, unsupervised, TIMESNET: Temporal 2D-Variation Modeling for General Time Series Analysis [#Wu2023timesnet]_
AnomalyTransformer, ICLR, 2022, unsupervised, Anomaly Transformer: Time Series Anomaly Detection with Association Discrepancy [#Xu2022transformer]_
TranAD, VLDB, 2022, unsupervised, TranAD: Deep Transformer Networks for Anomaly Detection in Multivariate Time Series Data
Expand Down Expand Up @@ -244,4 +245,6 @@ Reference
.. [#Xu2022transformer] Xu Jiehui, et al. "Anomaly Transformer: Time Series Anomaly Detection with Association Discrepancy". ICLR, 2022.
.. [#Wu2023timesnet] Wu Haixu, et al. "TimesNet: Temporal 2D-Variation Modeling for General Time Series Analysis". ICLR. 2023.
.. [#Wu2023timesnet] Wu Haixu, et al. "TimesNet: Temporal 2D-Variation Modeling for General Time Series Analysis". ICLR. 2023.
.. [#Yang2023dcdetector] Yang Yiyuan et al. "DCdetector: Dual Attention Contrastive Representation Learning for Time Series Anomaly Detection". KDD. 2023
3 changes: 2 additions & 1 deletion deepod/models/__init__.py
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Expand Up @@ -20,6 +20,7 @@
from deepod.models.time_series.dif import DeepIsolationForestTS
from deepod.models.time_series.dsvdd import DeepSVDDTS

from deepod.models.time_series.dcdetector import DCdetector
from deepod.models.time_series.timesnet import TimesNet
from deepod.models.time_series.anomalytransformer import AnomalyTransformer
from deepod.models.time_series.tranad import TranAD
Expand All @@ -31,7 +32,7 @@
__all__ = [
'RCA', 'DeepSVDD', 'GOAD', 'NeuTraL', 'RDP', 'ICL', 'SLAD', 'DeepIsolationForest',
'DeepSAD', 'DevNet', 'PReNet', 'FeaWAD', 'REPEN', 'RoSAS',
'TimesNet', 'AnomalyTransformer', 'TranAD', 'COUTA', 'USAD', 'TcnED',
'DCdetector', 'TimesNet', 'AnomalyTransformer', 'TranAD', 'COUTA', 'USAD', 'TcnED',
'DeepIsolationForestTS', 'DeepSVDDTS',
'PReNetTS', 'DeepSADTS', 'DevNetTS'
]
3 changes: 2 additions & 1 deletion deepod/models/time_series/__init__.py
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Expand Up @@ -7,6 +7,7 @@
from .tcned import TcnED
from .anomalytransformer import AnomalyTransformer
from .timesnet import TimesNet
from .dcdetector import DCdetector

# weakly-supervised
from .dsad import DeepSADTS
Expand All @@ -15,4 +16,4 @@


__all__ = ['DeepIsolationForestTS', 'DeepSVDDTS', 'TranAD', 'USAD', 'COUTA',
'DeepSADTS', 'DevNetTS', 'PReNetTS', 'AnomalyTransformer', 'TimesNet']
'DeepSADTS', 'DevNetTS', 'PReNetTS', 'AnomalyTransformer', 'TimesNet', 'DCdetector']
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