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sgl-project--sglang/python/sglang/srt/debug_utils/comparator/display.py
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chore: import upstream snapshot with attribution
2026-07-13 12:38:16 +08:00

145 lines
4.4 KiB
Python

from __future__ import annotations
from collections import defaultdict
from io import StringIO
from pathlib import Path
from typing import Any, Optional
import polars as pl
from sglang.srt.debug_utils.comparator.output_types import (
InputIdsRecord,
RankInfoRecord,
)
from sglang.srt.debug_utils.comparator.report_sink import report_sink
from sglang.srt.debug_utils.dump_loader import LOAD_FAILED, ValueWithMeta
PARALLEL_INFO_KEYS: list[str] = ["sglang_parallel_info", "megatron_parallel_info"]
def emit_display_records(
*,
df: pl.DataFrame,
dump_dir: Path,
label: str,
tokenizer: Any,
) -> None:
rank_rows: Optional[list[dict[str, Any]]] = _collect_rank_info(
df, dump_dir=dump_dir
)
if rank_rows is not None:
report_sink.add(RankInfoRecord(label=label, rows=rank_rows))
input_ids_rows: Optional[list[dict[str, Any]]] = _collect_input_ids_and_positions(
df, dump_dir=dump_dir, tokenizer=tokenizer
)
if input_ids_rows is not None:
report_sink.add(InputIdsRecord(label=label, rows=input_ids_rows))
def _render_polars_as_text(df: pl.DataFrame, *, title: Optional[str] = None) -> str:
from rich.console import Console
from rich.table import Table
table = Table(title=title)
for col in df.columns:
table.add_column(col)
for row in df.iter_rows():
table.add_row(*[str(v) for v in row])
buf = StringIO()
Console(file=buf, force_terminal=False, width=200).print(table)
return buf.getvalue().rstrip("\n")
def _render_polars_as_rich_table(
df: pl.DataFrame, *, title: Optional[str] = None
) -> Any:
from rich.table import Table
table = Table(title=title)
for col in df.columns:
table.add_column(col)
for row in df.iter_rows():
table.add_row(*[str(v) for v in row])
return table
def _collect_rank_info(
df: pl.DataFrame, dump_dir: Path
) -> Optional[list[dict[str, Any]]]:
unique_rows: pl.DataFrame = (
df.filter(pl.col("name") == "input_ids")
.sort("rank")
.unique(subset=["rank"], keep="first")
)
if unique_rows.is_empty():
return None
table_rows: list[dict[str, Any]] = []
for row in unique_rows.to_dicts():
meta: dict[str, Any] = ValueWithMeta.load(dump_dir / row["filename"]).meta
row_data: dict[str, Any] = {"rank": row["rank"]}
for key in PARALLEL_INFO_KEYS:
_extract_parallel_info(row_data=row_data, info=meta.get(key, {}))
table_rows.append(row_data)
return table_rows or None
def _collect_input_ids_and_positions(
df: pl.DataFrame,
dump_dir: Path,
*,
tokenizer: Any = None,
) -> Optional[list[dict[str, Any]]]:
filtered: pl.DataFrame = df.filter(pl.col("name").is_in(["input_ids", "positions"]))
if filtered.is_empty():
return None
data_by_step_rank: dict[tuple[int, int], dict[str, Any]] = defaultdict(dict)
for row in filtered.to_dicts():
key: tuple[int, int] = (row["step"], row["rank"])
item: ValueWithMeta = ValueWithMeta.load(dump_dir / row["filename"])
if item.value is not LOAD_FAILED:
data_by_step_rank[key][row["name"]] = item.value
table_rows: list[dict[str, Any]] = []
for (step, rank), data in sorted(data_by_step_rank.items()):
ids = data.get("input_ids")
pos = data.get("positions")
ids_list: Optional[list[int]] = (
ids.flatten().tolist() if ids is not None else None
)
row_data: dict[str, Any] = {
"step": step,
"rank": rank,
"num_tokens": len(ids_list) if ids_list is not None else None,
"input_ids": str(ids_list) if ids_list is not None else "N/A",
"positions": str(pos.flatten().tolist()) if pos is not None else "N/A",
}
if tokenizer is not None and ids_list is not None:
row_data["decoded_text"] = repr(
tokenizer.decode(ids_list, skip_special_tokens=False)
)
table_rows.append(row_data)
return table_rows or None
def _extract_parallel_info(row_data: dict[str, Any], info: dict[str, Any]) -> None:
if not info or info.get("error"):
return
for key in sorted(info.keys()):
if key.endswith("_rank"):
base: str = key[:-5]
size_key: str = f"{base}_size"
if size_key in info:
row_data[base] = f"{info[key]}/{info[size_key]}"