Shellmiao 9279d1873b Add projects | 1 年間 前 | |
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README.md | 1 年間 前 | |
hetero_linr_compute_loss_not_reveal_conf.json | 1 年間 前 | |
hetero_linr_compute_loss_not_reveal_dsl.json | 1 年間 前 | |
hetero_linr_conf.json | 1 年間 前 | |
hetero_linr_cv_conf.json | 1 年間 前 | |
hetero_linr_cv_dsl.json | 1 年間 前 | |
hetero_linr_dsl.json | 1 年間 前 | |
hetero_linr_encrypted_reveal_in_host_conf.json | 1 年間 前 | |
hetero_linr_encrypted_reveal_in_host_dsl.json | 1 年間 前 | |
hetero_linr_large_init_w_compute_loss_conf.json | 1 年間 前 | |
hetero_linr_large_init_w_compute_loss_dsl.json | 1 年間 前 | |
hetero_linr_predict_conf.json | 1 年間 前 | |
hetero_linr_predict_dsl.json | 1 年間 前 | |
hetero_linr_sample_weight_conf.json | 1 年間 前 | |
hetero_linr_sample_weight_dsl.json | 1 年間 前 | |
hetero_linr_validate_conf.json | 1 年間 前 | |
hetero_linr_validate_dsl.json | 1 年間 前 | |
hetero_linr_warm_start_conf.json | 1 年間 前 | |
hetero_linr_warm_start_dsl.json | 1 年間 前 | |
hetero_sshe_linr_testsuite.json | 1 年間 前 |
This section introduces the dsl and conf for usage of different types of tasks.
Train_task: dsl: hetero_linr_dsl.json runtime_config : hetero_linr_conf.json
LinR Compute Loss without Reveal: dsl: hetero_linr_compute_loss_not_reveal_dsl.json runtime_config: hetero_linr_compute_loss_not_reveal_conf.json
Cross Validation Task: dsl: hetero_linr_cv_dsl.json runtime_config: hetero_linr_cv_conf.json
LinR with validation: dsl: hetero_linr_validate_dsl.json conf: hetero_linr_validate_conf.json
LinR with Warm start task: dsl: hetero_linr_warm_start_dsl.json conf: hetero_linr_warm_start_conf.json
LinR with Encrypted Reveal in Host task: dsl: hetero_linr_encrypted_reveal_in_host_dsl.json conf: hetero_linr_encrypted_reveal_in_host_conf.json
LinR with Large Init Weight: dsl: hetero_linr_large_init_w_compute_loss_dsl.json conf: hetero_linr_large_init_w_compute_loss_conf.json
LinR with sample weight: dsl: hetero_linr_sample_weight_dsl.json conf: hetero_linr_sample_weight_conf.json
Predict_task: dsl: hetero_linr_predict_dsl.json runtime_config : hetero_linr_predict_conf.json
Users can use following commands to running the task.
flow job submit -c ${runtime_config} -d ${dsl}
After having finished a successful training task, you can use it to predict, you can use the obtained model to perform prediction. You need to add the corresponding model id and model version to the configuration file