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Add a new method to benchmarks: DoubleEnsemble #286
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acdc469
Add A New Baseline: DoubleEnsemble
meng-ustc 8c3ec16
Add A New Baseline: DoubleEnsemble
meng-ustc fd5c68a
Update workflow_config_doubleensemble_Alpha158.yaml
meng-ustc d27dc8b
Add A New Baseline: DoubleEnsemble
meng-ustc 4259097
Modify run_all_model.py
meng-ustc cd5b721
Update
meng-ustc 1a990fd
Add Risk Prediction Demo
meng-ustc ce60097
Add README and Formatted
meng-ustc 70575e8
Delete workflow_by_code_lgb_risk_demo.py
meng-ustc 6e2ce6f
Add the results of DoubleEnsemble
meng-ustc ee4692a
Merge branch 'main' of https://github.com/meng-ustc/qlib
meng-ustc 1de4def
Update parameter names: 'k' and 'base'
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# DoubleEnsemble | ||
* DoubleEnsemble is an ensemble framework leveraging learning trajectory based sample reweighting and shuffling based feature selection, to solve both the low signal-to-noise ratio and increasing number of features problems. They identify the key samples based on the training dynamics on each sample and elicit key features based on the ablation impact of each feature via shuffling. The model is applicable to a wide range of base models, capable of extracting complex patterns, while mitigating the overfitting and instability issues for financial market prediction. | ||
* This code used in Qlib is implemented by ourselves. | ||
* Paper: DoubleEnsemble: A New Ensemble Method Based on Sample Reweighting and Feature Selection for Financial Data Analysis [https://arxiv.org/pdf/2010.01265.pdf](https://arxiv.org/pdf/2010.01265.pdf). |
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pandas==1.1.2 | ||
numpy==1.17.4 | ||
lightgbm==3.1.0 |
90 changes: 90 additions & 0 deletions
90
examples/benchmarks/DoubleEnsemble/workflow_config_doubleensemble_Alpha158.yaml
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qlib_init: | ||
provider_uri: "~/.qlib/qlib_data/cn_data" | ||
region: cn | ||
market: &market csi300 | ||
benchmark: &benchmark SH000300 | ||
data_handler_config: &data_handler_config | ||
start_time: 2008-01-01 | ||
end_time: 2020-08-01 | ||
fit_start_time: 2008-01-01 | ||
fit_end_time: 2014-12-31 | ||
instruments: *market | ||
port_analysis_config: &port_analysis_config | ||
strategy: | ||
class: TopkDropoutStrategy | ||
module_path: qlib.contrib.strategy.strategy | ||
kwargs: | ||
topk: 50 | ||
n_drop: 5 | ||
backtest: | ||
verbose: False | ||
limit_threshold: 0.095 | ||
account: 100000000 | ||
benchmark: *benchmark | ||
deal_price: close | ||
open_cost: 0.0005 | ||
close_cost: 0.0015 | ||
min_cost: 5 | ||
task: | ||
model: | ||
class: DEnsembleModel | ||
module_path: qlib.contrib.model.double_ensemble | ||
kwargs: | ||
base: "gbm" | ||
loss: mse | ||
k: 6 | ||
enable_sr: True | ||
enable_fs: True | ||
alpha1: 1 | ||
alpha2: 1 | ||
bins_sr: 10 | ||
bins_fs: 5 | ||
decay: 0.5 | ||
sample_ratios: | ||
- 0.8 | ||
- 0.7 | ||
- 0.6 | ||
- 0.5 | ||
- 0.4 | ||
sub_weights: | ||
- 1 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
epochs: 28 | ||
colsample_bytree: 0.8879 | ||
learning_rate: 0.2 | ||
subsample: 0.8789 | ||
lambda_l1: 205.6999 | ||
lambda_l2: 580.9768 | ||
max_depth: 8 | ||
num_leaves: 210 | ||
num_threads: 20 | ||
verbosity: -1 | ||
dataset: | ||
class: DatasetH | ||
module_path: qlib.data.dataset | ||
kwargs: | ||
handler: | ||
class: Alpha158 | ||
module_path: qlib.contrib.data.handler | ||
kwargs: *data_handler_config | ||
segments: | ||
train: [2008-01-01, 2014-12-31] | ||
valid: [2015-01-01, 2016-12-31] | ||
test: [2017-01-01, 2020-08-01] | ||
record: | ||
- class: SignalRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: {} | ||
- class: SigAnaRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: | ||
ana_long_short: False | ||
ann_scaler: 252 | ||
- class: PortAnaRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: | ||
config: *port_analysis_config |
97 changes: 97 additions & 0 deletions
97
examples/benchmarks/DoubleEnsemble/workflow_config_doubleensemble_Alpha360.yaml
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qlib_init: | ||
provider_uri: "~/.qlib/qlib_data/cn_data" | ||
region: cn | ||
market: &market csi300 | ||
benchmark: &benchmark SH000300 | ||
data_handler_config: &data_handler_config | ||
start_time: 2008-01-01 | ||
end_time: 2020-08-01 | ||
fit_start_time: 2008-01-01 | ||
fit_end_time: 2014-12-31 | ||
instruments: *market | ||
infer_processors: [] | ||
learn_processors: | ||
- class: DropnaLabel | ||
- class: CSRankNorm | ||
kwargs: | ||
fields_group: label | ||
label: ["Ref($close, -2) / Ref($close, -1) - 1"] | ||
port_analysis_config: &port_analysis_config | ||
strategy: | ||
class: TopkDropoutStrategy | ||
module_path: qlib.contrib.strategy.strategy | ||
kwargs: | ||
topk: 50 | ||
n_drop: 5 | ||
backtest: | ||
verbose: False | ||
limit_threshold: 0.095 | ||
account: 100000000 | ||
benchmark: *benchmark | ||
deal_price: close | ||
open_cost: 0.0005 | ||
close_cost: 0.0015 | ||
min_cost: 5 | ||
task: | ||
model: | ||
class: DEnsembleModel | ||
module_path: qlib.contrib.model.double_ensemble | ||
kwargs: | ||
base: "gbm" | ||
loss: mse | ||
k: 6 | ||
enable_sr: True | ||
enable_fs: True | ||
alpha1: 1 | ||
alpha2: 1 | ||
bins_sr: 10 | ||
bins_fs: 5 | ||
decay: 0.5 | ||
sample_ratios: | ||
- 0.8 | ||
- 0.7 | ||
- 0.6 | ||
- 0.5 | ||
- 0.4 | ||
sub_weights: | ||
- 1 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
- 0.2 | ||
epochs: 136 | ||
colsample_bytree: 0.8879 | ||
learning_rate: 0.0421 | ||
subsample: 0.8789 | ||
lambda_l1: 205.6999 | ||
lambda_l2: 580.9768 | ||
max_depth: 8 | ||
num_leaves: 210 | ||
num_threads: 20 | ||
verbosity: -1 | ||
dataset: | ||
class: DatasetH | ||
module_path: qlib.data.dataset | ||
kwargs: | ||
handler: | ||
class: Alpha360 | ||
module_path: qlib.contrib.data.handler | ||
kwargs: *data_handler_config | ||
segments: | ||
train: [2008-01-01, 2014-12-31] | ||
valid: [2015-01-01, 2016-12-31] | ||
test: [2017-01-01, 2020-08-01] | ||
record: | ||
- class: SignalRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: {} | ||
- class: SigAnaRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: | ||
ana_long_short: False | ||
ann_scaler: 252 | ||
- class: PortAnaRecord | ||
module_path: qlib.workflow.record_temp | ||
kwargs: | ||
config: *port_analysis_config |
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Could you update your model results here ?
https://github.com/microsoft/qlib/tree/main/examples/benchmarks
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The results are up to date now.