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fine_corpus_l4_20260308_053024

20.51M parameter fine_corpus model — bpe-8k tokenizer, 8L/384D/6H

Overview

20.51M
Parameters
7.9643
Final Loss
-
Best Val Loss
2876.5
Perplexity
256,000
Tokens Processed
0.0
Tokens/Param
8,352 tok/s
Avg Throughput
32s
Training Time
Training Progress125 / 78,000 steps (0.2%)
Loss reduced by 12.1% from initial 9.0626

Dataset & Training

Domainfine_corpus
Tokenizerbpe-8k
Total Iterations78,000
Batch Size4
Context Length512 tokens
Tokens per Batch2,048
Dataset Passes~0
Effective Tokens256,000

Training Pipeline

Warmupsteps 11

Learning rate warmup — model weights adjusting to data distribution

Loss: 9.0639.063Linear LR warmup, gradient clipping

Training Metrics

Loss Curve
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Smoothed Loss
Perplexity
Learning Rate
Gradient Norm
Throughput (tok/s)
Timing Breakdown
No Telemetry

Model Architecture

Model Configuration

ArchitectureGPT (decoder-only transformer)
Parameters20.51M
Layers8
Embedding Dim384
Attention Heads6
Head Dim64
FFN Dim1536
FFN Activationgelu
Vocab Size8,000
Context Length512 tokens
Dropout0

Training Configuration

Optimizeradamw
Learning Rate0.0006
LR Min0.00006
LR ScheduleCosine decay
Warmup Steps500
Batch Size4
Grad Accum Steps1
Effective Batch4
Grad Clip1
Weight Decay0.1
Backendhelios
Tokenizerbpe-8k
Seed42

Layer Structure

Token Embed
8,000×384
Pos Embed
512×384
Block 0
Attn+FFN
Block 1
Attn+FFN
Block 2
Attn+FFN
Block 3
Attn+FFN
Block 4
Attn+FFN
Block 5
Attn+FFN
...2 more
LayerNorm
384
LM Head
384×8,000

Generated Samples

No samples generated yet. Samples appear at configured intervals during training.

Checkpoints

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