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  1. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/_tabpfgen_generate.py +100 -0
  2. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/gen_20260501_012611.log +3 -0
  3. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/input_snapshot.json +3 -0
  4. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/public_gate/normalized_schema_snapshot.json +3 -0
  5. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/public_gate/public_gate_report.json +3 -0
  6. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/public_gate/staged_input_manifest.json +3 -0
  7. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/runtime_result.json +3 -0
  8. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/public/staged_features.json +3 -0
  9. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/public/test.csv +3 -0
  10. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/public/train.csv +3 -0
  11. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/public/val.csv +3 -0
  12. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/tabpfgen/adapter_report.json +3 -0
  13. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/tabpfgen/adapter_transforms_applied.json +3 -0
  14. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/tabpfgen/model_input_manifest.json +3 -0
  15. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/tabpfgen-m8-36168-20260501_012611.csv +3 -0
  16. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/tabpfgen_meta.json +3 -0
  17. syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/train_20260501_012611.log +3 -0
syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/_tabpfgen_generate.py ADDED
@@ -0,0 +1,100 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ import os
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+ import numpy as np
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+ import pandas as pd
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+ import json
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+ from tabpfgen import TabPFGen
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+
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+ df = pd.read_csv("/work/output-Benchmark-trainonly-v1/m8/tabpfgen/tabpfgen-m8-20260501_012611/staged/public/train.csv")
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+ target_col = "y"
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+
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+ target_missing = df[target_col].isna()
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+ if target_missing.any():
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+ dropped = int(target_missing.sum())
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+ df = df.loc[~target_missing].copy()
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+ print(
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+ f"[TabPFGen] Dropped {dropped} rows with missing target '{target_col}'"
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+ )
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+ if df.empty:
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+ raise ValueError(
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+ f"[TabPFGen] No rows remain after dropping missing target '{target_col}'"
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+ )
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+
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+ feature_cols = [c for c in df.columns if c != target_col]
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+
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+ cat_encodings = {}
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+ for col in feature_cols:
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+ if df[col].dtype == object or str(df[col].dtype) == 'category':
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+ cats = sorted(df[col].dropna().unique().tolist(), key=str)
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+ cat_map = {v: i for i, v in enumerate(cats)}
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+ df[col] = df[col].map(cat_map).astype(float)
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+ cat_encodings[col] = cats
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+ print(f"[TabPFGen] Label-encoded '{col}' ({len(cats)} categories)")
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+
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+ target_cats = None
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+ if df[target_col].dtype == object or str(df[target_col].dtype) == 'category':
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+ cats = sorted(df[target_col].dropna().unique().tolist(), key=str)
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+ t_map = {v: i for i, v in enumerate(cats)}
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+ df[target_col] = df[target_col].map(t_map).astype(float)
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+ target_cats = cats
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+ print(f"[TabPFGen] Label-encoded target '{target_col}' ({len(cats)} categories)")
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+
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+ X = df[feature_cols].values.astype(np.float32)
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+ y = df[target_col].values
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+ target_n = int(36168)
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+
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+ for i in range(X.shape[1]):
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+ col_vals = X[:, i]
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+ mask = np.isnan(col_vals)
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+ if mask.any():
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+ mean_val = np.nanmean(col_vals)
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+ X[mask, i] = mean_val if not np.isnan(mean_val) else 0.0
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+
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+ # TabPFGen v0.1.x API:仅支持 n_sgld_steps / sgld_* / device。
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+ # (旧版脚本中的 energy_*_chunk 与上游 TabPFGen 不一致,会导致 TypeError。)
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+ gen = TabPFGen(
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+ n_sgld_steps=1000,
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+ sgld_step_size=0.01,
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+ sgld_noise_scale=0.01,
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+ device="auto",
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+ )
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+
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+ print(f"[TabPFGen] Generating {target_n} rows via generate_classification")
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+ X_syn, y_syn = gen.generate_classification(X, y, n_samples=target_n)
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+
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+ syn_df = pd.DataFrame(X_syn, columns=feature_cols)
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+ syn_df[target_col] = y_syn
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+
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+ for col, cats in cat_encodings.items():
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+ codes = np.round(syn_df[col].values).astype(int)
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+ codes = np.clip(codes, 0, len(cats) - 1)
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+ syn_df[col] = [cats[c] for c in codes]
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+
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+ if target_cats is not None:
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+ codes = np.round(syn_df[target_col].values).astype(int)
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+ codes = np.clip(codes, 0, len(target_cats) - 1)
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+ syn_df[target_col] = [target_cats[c] for c in codes]
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+
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+ if len(syn_df) > target_n:
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+ print(f"[TabPFGen] Trimming rows: {len(syn_df)} -> {target_n}")
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+ syn_df = syn_df.iloc[:target_n].copy()
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+ elif len(syn_df) < target_n:
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+ deficit = target_n - len(syn_df)
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+ print(f"[TabPFGen] Padding rows: {len(syn_df)} -> {target_n} (deficit={deficit})")
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+ if len(syn_df) > 0:
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+ extra = syn_df.sample(n=deficit, replace=True, random_state=42)
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+ syn_df = pd.concat(
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+ [syn_df.reset_index(drop=True), extra.reset_index(drop=True)],
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+ ignore_index=True,
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+ )
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+ else:
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+ syn_df = df[feature_cols + [target_col]].sample(
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+ n=target_n, replace=True, random_state=42
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+ ).reset_index(drop=True)
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+
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+ syn_df = syn_df[list(df.columns)]
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+ if len(syn_df) != target_n:
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+ raise RuntimeError(
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+ f"[TabPFGen] Row alignment failed: got {len(syn_df)}, expected {target_n}"
98
+ )
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+ syn_df.to_csv("/work/output-Benchmark-trainonly-v1/m8/tabpfgen/tabpfgen-m8-20260501_012611/tabpfgen-m8-36168-20260501_012611.csv", index=False)
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+ print(f"[TabPFGen] Saved {len(syn_df)} rows -> /work/output-Benchmark-trainonly-v1/m8/tabpfgen/tabpfgen-m8-20260501_012611/tabpfgen-m8-36168-20260501_012611.csv")
syntheticSuccess/m8/tabpfgen/tabpfgen-m8-20260501_012611/gen_20260501_012611.log ADDED
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