deepspeedai / deepspeedai/DeepSpeed
[BUG]Zero++ training failed
@GuanhuaWang is already working on this.
Since Jan 20, 2025.
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Description
Describe the bug
I have 4 nodes, each with 8 A100 gpu. In order to reduce communication between nodes, I used zero++ training, which indeed accelerated the training process. However, during the training process, the loss remained at 11.9321 and the grad_norm remained at 0, resulting in training failure
My Deepspeed configuration file is as follows:
{
"train_batch_size": "auto",
"train_micro_batch_size_per_gpu": "auto",
"gradient_accumulation_steps": "auto",
"gradient_clipping": "auto",
"zero_allow_untested_optimizer": true,
"fp16": {
"enabled": "auto",
"loss_scale": 0,
"loss_scale_window": 1000,
"initial_scale_power": 16,
"hysteresis": 2,
"min_loss_scale": 1
},
"bf16": {
"enabled": "auto"
},
"zero_optimization": {
"stage": 3,
"offload_optimizer": {
"device": "cpu",
"pin_memory": true
},
"offload_param": {
"device": "cpu",
"pin_memory": true
},
"zero_hpz_partition_size": 8,
"zero_quantized_weights": false,
"zero_quantized_gradients": false,
"overlap_comm": true,
"contiguous_gradients": true,
"sub_group_size": 1e9,
"reduce_bucket_size": "auto",
"stage3_prefetch_bucket_size": "auto",
"stage3_param_persistence_threshold": "auto",
"stage3_max_live_parameters": 1e9,
"stage3_max_reuse_distance": 1e9,
"stage3_gather_16bit_weights_on_model_save": true
}
}
Excuse me, where is the problem and how should I solve it?
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