RST-SFT-Qwen3.5-27B / manifest_cap10_pretokenized.json
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Correct the loss_mask note: do NOT shift (HF/Liger shift internally)
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{
"source_parquet": "data/sft-v1-cap10/rst_sft_train.parquet",
"tokenizer": "data/Qwen3.5-27B-tokenizer",
"rows_in": 10578,
"rows_out": 10578,
"dropped": {
"contract": 0,
"too_long": 0,
"no_trained_tokens": 0,
"error": 0
},
"total_tokens": 99939485,
"trained_tokens": 32402050,
"trained_fraction": 0.3242,
"max_seq_len": 32768,
"mask_source": "slime/utils/mask_utils.py::gen_multi_turn_loss_mask_qwen3_5 (ported)",
"schema": {
"input_ids": "list[int] \u2014 the exact tokens, whole-conversation render",
"loss_mask": "list[int] \u2014 1 = train on this token, 0 = context only"
},
"note": "loss_mask is aligned 1:1 with input_ids: mask[i] refers to token i, with no offset applied. To get `labels`, set labels[i] = input_ids[i] where loss_mask[i]==1 else -100, and do NOT shift \u2014 every HuggingFace CausalLM (and Liger's fused CE) shifts internally, so shifting here misaligns the supervision by one token. Shift only if you hand-write the cross-entropy against unshifted logits, in which case shift logits and labels together as usual."
}