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Watchdog Timeout Caused by Silent Single-Rank OOM

A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks.

Quick answer

A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception.

Symptom
RuntimeError: NCCL error in: ... unhandled system error
Root cause
A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks.
Recommended fix
TORCH_NCCL_ASYNC_ERROR_HANDLING=1
How Denpex helps
Denpex matches Watchdog Timeout Caused by Silent Single-Rank OOM across every rank in a distributed run and reports which rank failed first, so you act on the initiating node instead of the loudest one.
Memory#Crash leading to Watchdog Timeout

What this failure is

Watchdog Timeout Caused by Silent Single-Rank OOM is a Memory failure seen during ML training runs. A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks. Common tags: Crash Leading To Watchdog Timeout.

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Why it happens (the mechanism)

The surviving nodes report a watchdog timeout, obscuring the root cause (OOM) which is only logged on the single node that crashed.

What you'll observe

  • Watchdog caught collective operation timeout
  • CUDA out of memory
  • RuntimeError: NCCL error in: ... unhandled system error

Common symptoms and what they mean

SymptomWhy it happens
Training stops progressing, GPU utilization on some nodes drops to 0%, while others stay at 100% waiting.A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks.
Watchdog timeout is reported on surviving nodes, but the actual OOM error is buried in the logs of a single rank.A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks.

Which systems are affected

  • PyTorch
  • CUDA
  • NCCL

How to confirm this is the problem

Use this checklist to test the hypothesis against a small reproduction. No single line proves the root cause, so preserve the preceding events and compare one variable at a time.

  • Search the logs of all individual ranks for 'CUDA out of memory'.
  • Set TORCH_NCCL_ASYNC_ERROR_HANDLING=1 to propagate errors faster.

Searchable error signature

search key
RuntimeError: NCCL error in: ... unhandled system error
Watchdog caught collective operation timeout
CUDA out of memory

Use this text as a lookup key in logs and upstream issue trackers. It is not presented as a captured customer log. Confirm the cause from your own preceding events, versions, configuration and the cited references.

The fix and the prevention pattern

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Root cause

  • A single rank hits a CUDA Out of Memory error during the forward or backward pass and crashes or raises an exception. Because the process group isn't cleanly torn down, the surviving ranks continue to the next all_reduce or all_gather and wait indefinitely for the dead rank. The watchdog timeout is the only visible failure on the surviving ranks.

The fix and how to prevent it

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