CalamitousFelicitousness
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1 |
+
---
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2 |
+
library_name: transformers
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+
license: apache-2.0
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4 |
+
base_model: Qwen/Qwen2.5-32B
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+
datasets:
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+
- anthracite-org/kalo-opus-instruct-22k-no-refusal
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+
- Nopm/Opus_WritingStruct
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8 |
+
- Gryphe/Sonnet3.5-SlimOrcaDedupCleaned
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9 |
+
- Gryphe/Sonnet3.5-Charcard-Roleplay
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10 |
+
- Gryphe/ChatGPT-4o-Writing-Prompts
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11 |
+
- Epiculous/Synthstruct-Gens-v1.1-Filtered-n-Cleaned
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12 |
+
- Epiculous/SynthRP-Gens-v1.1-Filtered-n-Cleaned
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13 |
+
- nothingiisreal/Reddit-Dirty-And-WritingPrompts
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14 |
+
- allura-org/Celeste-1.x-data-mixture
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15 |
+
- cognitivecomputations/dolphin-2.9.3
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tags:
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- generated_from_trainer
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+
model-index:
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19 |
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- name: EVA-Qwen2.5-32B-SFFT-v0.1
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+
results: []
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21 |
+
---
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+
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23 |
+
# This repo contains the copy of the original quantized to FP8. Original: [EVA-UNIT-01/EVA-Qwen2.5-32B-v0.1](https://huggingface.co/EVA-UNIT-01/EVA-Qwen2.5-32B-v0.1)
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+
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# EVA Qwen2.5-32B v0.1
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+
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<p>
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A RP/storywriting specialist model, full-parameter finetune of Qwen2.5-32B on mixture of synthetic and natural data.<br>
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It uses Celeste 70B 0.1 data mixture, greatly expanding it to improve versatility, creativity and "flavor" of the resulting model.<br>
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</p>
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31 |
+
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+
<p>Version notes for 0.1: Additional round of cleaning for the datasets, new subsets of 4o-WritingPrompts and Charcards, picking the most diverse samples from them, plus added a small subset of SystemChat2.0 to improve instruction following and sliglthy increased sequence length. Additionally, fixed the training config mistake from 32B 0.0, layernorm layers stay frozen this time. Unfreezing them caused positivity bias to appear in 32B 0.0 for some reason.</p>
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+
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34 |
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<p>
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35 |
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<p>Prompt format is ChatML.</p><br>
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36 |
+
<h3>Recommended sampler values:</h3>
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37 |
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<ul>
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38 |
+
<li>Temperature: 1</li>
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39 |
+
<li>Typical-P: 0.9</li>
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40 |
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<li>Min-P: 0.05</li>
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41 |
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<li>Top-A: 0.2</li>
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42 |
+
<li>Repetition Penalty: 1.03</li>
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43 |
+
</ul>
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44 |
+
|
45 |
+
<h3>Recommended SillyTavern presets (via CalamitousFelicitousness):</h3>
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46 |
+
|
47 |
+
- [Context](https://huggingface.co/EVA-UNIT-01/EVA-Yi-1.5-9B-32K-V1/blob/main/%5BChatML%5D%20Roleplay-v1.9%20Context.json)
|
48 |
+
- [Instruct and System Prompt](https://huggingface.co/EVA-UNIT-01/EVA-Yi-1.5-9B-32K-V1/blob/main/%5BChatML%5D%20Roleplay-v1.9%20Instruct.json)
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49 |
+
</p>
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50 |
+
|
51 |
+
<p>
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52 |
+
<br>
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53 |
+
<h3>
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54 |
+
Training data:
|
55 |
+
</h3>
|
56 |
+
<ul>
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57 |
+
<li>Celeste 70B 0.1 data mixture minus Opus Instruct subset. See that model's <a href=https://huggingface.co/nothingiisreal/L3.1-70B-Celeste-V0.1-BF16>card</a> for details.</li>
|
58 |
+
<li>Kalomaze's Opus_Instruct_25k dataset, filtered for refusals.</li>
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59 |
+
<li>A subset (1k rows) of ChatGPT-4o-WritingPrompts by Gryphe</li>
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60 |
+
<li>A subset (2k rows) of Sonnet3.5-Charcards-Roleplay by Gryphe</li>
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61 |
+
<li>Synthstruct and SynthRP datasets by Epiculous</li>
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62 |
+
<li>A subset from Dolphin-2.9.3, including filtered version of not_samantha and a small subset of systemchat.</li>
|
63 |
+
</ul>
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64 |
+
<h3>
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65 |
+
Training time and hardware:
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66 |
+
</h3>
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67 |
+
<ul><li>7 hours on 8xH100 SXM, provided by <a href=https://featherless.ai/>FeatherlessAI</a></li></ul><br>
|
68 |
+
</p>
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69 |
+
<p>Model was trained by Kearm and Auri.</p>
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70 |
+
<h4>Special thanks:</h4><ul>
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71 |
+
<li><b>to <a href=https://featherless.ai/>FeatherlessAI</a> for generously providing 8xH100 SXM node for training of this model</b></li>
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72 |
+
<li>to Gryphe, Lemmy, Kalomaze, Nopm, Epiculous and CogninitiveComputations for the data</li>
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73 |
+
<li>and to Allura-org for support, feedback, beta-testing and doing quality control of EVA models.</li></ul>
|
74 |
+
|
75 |
+
[<img src="https://raw.githubusercontent.com/axolotl-ai-cloud/axolotl/main/image/axolotl-badge-web.png" alt="Built with Axolotl" width="200" height="32"/>](https://github.com/axolotl-ai-cloud/axolotl)
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76 |
+
<details><summary>See axolotl config</summary>
|
77 |
+
|
78 |
+
axolotl version: `0.4.1`
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79 |
+
```yaml
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80 |
+
base_model: Qwen/Qwen2.5-32B
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81 |
+
|
82 |
+
load_in_8bit: false
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83 |
+
load_in_4bit: false
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84 |
+
strict: false
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85 |
+
|
86 |
+
plugins:
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87 |
+
- axolotl.integrations.liger.LigerPlugin
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88 |
+
liger_rope: true
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89 |
+
liger_rms_norm: true
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90 |
+
liger_swiglu: true
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91 |
+
liger_fused_linear_cross_entropy: true
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92 |
+
|
93 |
+
# plugins:
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94 |
+
# - axolotl.integrations.spectrum.SpectrumPlugin
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95 |
+
|
96 |
+
# spectrum_top_fraction: 0.5
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97 |
+
# # Optional if using a pre-scanned model as your base_model. Useful if using a model mirror
|
98 |
+
# spectrum_model_name: Qwen/Qwen2.5-32B
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99 |
+
|
100 |
+
datasets:
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101 |
+
- path: datasets/deduped_Synthstruct-Gens_processed_sharegpt_converted_cleaned.jsonl
|
102 |
+
type: sharegpt
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103 |
+
- path: datasets/opus-instruct-22k-no_refusals-filtered.jsonl
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104 |
+
type: sharegpt
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105 |
+
- path: datasets/Celeste_Filtered.jsonl
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106 |
+
type: sharegpt
|
107 |
+
- path: datasets/Sonnet3-5-charcard-names-filtered-sharegpt.jsonl
|
108 |
+
type: sharegpt
|
109 |
+
- path: datasets/deduped_SynthRP-Gens_processed_09-25-2024-ShareGPT_converted_cleaned.jsonl
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110 |
+
type: sharegpt
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111 |
+
- path: datasets/Gryphe-4o-WP-filtered-sharegpt.jsonl
|
112 |
+
type: sharegpt
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113 |
+
- path: datasets/deduped_not_samantha_norefusals.jsonl
|
114 |
+
type: sharegpt
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115 |
+
- path: datasets/SystemChat_subset_filtered_sharegpt.jsonl
|
116 |
+
type: sharegpt
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117 |
+
|
118 |
+
chat_template: chatml
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119 |
+
shuffle_merged_datasets: true
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120 |
+
val_set_size: 0.001
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121 |
+
output_dir: ./EVA-Qwen2.5-32B-SFFT-v0.1
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122 |
+
|
123 |
+
sequence_len: 9216
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124 |
+
sample_packing: true
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125 |
+
eval_sample_packing: false
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126 |
+
pad_to_sequence_len: true
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127 |
+
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128 |
+
# adapter: qlora
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129 |
+
# lora_model_dir:
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130 |
+
# lora_r: 64
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131 |
+
# lora_alpha: 128
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132 |
+
# lora_dropout: 0.05
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133 |
+
# lora_target_linear: true
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134 |
+
# peft_use_dora: true
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135 |
+
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136 |
+
unfrozen_parameters:
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137 |
+
- ^lm_head.weight$
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138 |
+
- ^model.embed_tokens.weight$
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139 |
+
# mlp.down_proj layers
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140 |
+
- model.layers.63.mlp.down_proj
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141 |
+
- model.layers.49.mlp.down_proj
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142 |
+
- model.layers.48.mlp.down_proj
|
143 |
+
- model.layers.45.mlp.down_proj
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144 |
+
- model.layers.44.mlp.down_proj
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145 |
+
- model.layers.47.mlp.down_proj
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146 |
+
- model.layers.46.mlp.down_proj
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147 |
+
- model.layers.43.mlp.down_proj
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148 |
+
- model.layers.8.mlp.down_proj
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149 |
+
- model.layers.11.mlp.down_proj
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150 |
+
- model.layers.19.mlp.down_proj
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151 |
+
- model.layers.35.mlp.down_proj
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152 |
+
- model.layers.20.mlp.down_proj
|
153 |
+
- model.layers.52.mlp.down_proj
|
154 |
+
- model.layers.39.mlp.down_proj
|
155 |
+
- model.layers.62.mlp.down_proj
|
156 |
+
- model.layers.50.mlp.down_proj
|
157 |
+
- model.layers.29.mlp.down_proj
|
158 |
+
- model.layers.16.mlp.down_proj
|
159 |
+
- model.layers.28.mlp.down_proj
|
160 |
+
- model.layers.53.mlp.down_proj
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161 |
+
- model.layers.30.mlp.down_proj
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162 |
+
- model.layers.31.mlp.down_proj
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163 |
+
- model.layers.32.mlp.down_proj
|
164 |
+
- model.layers.7.mlp.down_proj
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165 |
+
- model.layers.36.mlp.down_proj
|
166 |
+
- model.layers.12.mlp.down_proj
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167 |
+
- model.layers.18.mlp.down_proj
|
168 |
+
- model.layers.37.mlp.down_proj
|
169 |
+
- model.layers.38.mlp.down_proj
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170 |
+
- model.layers.14.mlp.down_proj
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171 |
+
- model.layers.13.mlp.down_proj
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+
# mlp.gate_proj layers
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173 |
+
- model.layers.43.mlp.gate_proj
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174 |
+
- model.layers.61.mlp.gate_proj
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175 |
+
- model.layers.60.mlp.gate_proj
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176 |
+
- model.layers.44.mlp.gate_proj
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177 |
+
- model.layers.62.mlp.gate_proj
|
178 |
+
- model.layers.28.mlp.gate_proj
|
179 |
+
- model.layers.29.mlp.gate_proj
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+
- model.layers.45.mlp.gate_proj
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181 |
+
- model.layers.37.mlp.gate_proj
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+
- model.layers.35.mlp.gate_proj
|
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+
- model.layers.59.mlp.gate_proj
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184 |
+
- model.layers.36.mlp.gate_proj
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185 |
+
- model.layers.30.mlp.gate_proj
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186 |
+
- model.layers.48.mlp.gate_proj
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+
- model.layers.38.mlp.gate_proj
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188 |
+
- model.layers.27.mlp.gate_proj
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189 |
+
- model.layers.31.mlp.gate_proj
|
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+
- model.layers.34.mlp.gate_proj
|
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+
- model.layers.58.mlp.gate_proj
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+
- model.layers.33.mlp.gate_proj
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+
- model.layers.39.mlp.gate_proj
|
194 |
+
- model.layers.26.mlp.gate_proj
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+
- model.layers.32.mlp.gate_proj
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- model.layers.46.mlp.gate_proj
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197 |
+
- model.layers.42.mlp.gate_proj
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+
- model.layers.49.mlp.gate_proj
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- model.layers.57.mlp.gate_proj
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+
- model.layers.50.mlp.gate_proj
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+
- model.layers.47.mlp.gate_proj
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+
- model.layers.56.mlp.gate_proj
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- model.layers.63.mlp.gate_proj
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+
- model.layers.55.mlp.gate_proj
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+
# mlp.up_proj layers
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206 |
+
- model.layers.61.mlp.up_proj
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207 |
+
- model.layers.60.mlp.up_proj
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+
- model.layers.32.mlp.up_proj
|
209 |
+
- model.layers.59.mlp.up_proj
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+
- model.layers.58.mlp.up_proj
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+
- model.layers.57.mlp.up_proj
|
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+
- model.layers.44.mlp.up_proj
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+
- model.layers.28.mlp.up_proj
|
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+
- model.layers.35.mlp.up_proj
|
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+
- model.layers.36.mlp.up_proj
|
216 |
+
- model.layers.29.mlp.up_proj
|
217 |
+
- model.layers.31.mlp.up_proj
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+
- model.layers.34.mlp.up_proj
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219 |
+
- model.layers.55.mlp.up_proj
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220 |
+
- model.layers.49.mlp.up_proj
|
221 |
+
- model.layers.30.mlp.up_proj
|
222 |
+
- model.layers.53.mlp.up_proj
|
223 |
+
- model.layers.43.mlp.up_proj
|
224 |
+
- model.layers.56.mlp.up_proj
|
225 |
+
- model.layers.33.mlp.up_proj
|
226 |
+
- model.layers.54.mlp.up_proj
|
227 |
+
- model.layers.62.mlp.up_proj
|
228 |
+
- model.layers.27.mlp.up_proj
|
229 |
+
- model.layers.51.mlp.up_proj
|
230 |
+
- model.layers.52.mlp.up_proj
|
231 |
+
- model.layers.37.mlp.up_proj
|
232 |
+
- model.layers.45.mlp.up_proj
|
233 |
+
- model.layers.26.mlp.up_proj
|
234 |
+
- model.layers.42.mlp.up_proj
|
235 |
+
- model.layers.50.mlp.up_proj
|
236 |
+
- model.layers.48.mlp.up_proj
|
237 |
+
- model.layers.39.mlp.up_proj
|
238 |
+
# self_attn.k_proj layers
|
239 |
+
- model.layers.63.self_attn.k_proj
|
240 |
+
- model.layers.55.self_attn.k_proj
|
241 |
+
- model.layers.60.self_attn.k_proj
|
242 |
+
- model.layers.7.self_attn.k_proj
|
243 |
+
- model.layers.12.self_attn.k_proj
|
244 |
+
- model.layers.13.self_attn.k_proj
|
245 |
+
- model.layers.57.self_attn.k_proj
|
246 |
+
- model.layers.29.self_attn.k_proj
|
247 |
+
- model.layers.14.self_attn.k_proj
|
248 |
+
- model.layers.51.self_attn.k_proj
|
249 |
+
- model.layers.53.self_attn.k_proj
|
250 |
+
- model.layers.54.self_attn.k_proj
|
251 |
+
- model.layers.22.self_attn.k_proj
|
252 |
+
- model.layers.61.self_attn.k_proj
|
253 |
+
- model.layers.18.self_attn.k_proj
|
254 |
+
- model.layers.30.self_attn.k_proj
|
255 |
+
- model.layers.9.self_attn.k_proj
|
256 |
+
- model.layers.24.self_attn.k_proj
|
257 |
+
- model.layers.23.self_attn.k_proj
|
258 |
+
- model.layers.25.self_attn.k_proj
|
259 |
+
- model.layers.10.self_attn.k_proj
|
260 |
+
- model.layers.58.self_attn.k_proj
|
261 |
+
- model.layers.56.self_attn.k_proj
|
262 |
+
- model.layers.15.self_attn.k_proj
|
263 |
+
- model.layers.32.self_attn.k_proj
|
264 |
+
- model.layers.28.self_attn.k_proj
|
265 |
+
- model.layers.8.self_attn.k_proj
|
266 |
+
- model.layers.59.self_attn.k_proj
|
267 |
+
- model.layers.11.self_attn.k_proj
|
268 |
+
- model.layers.48.self_attn.k_proj
|
269 |
+
- model.layers.16.self_attn.k_proj
|
270 |
+
- model.layers.50.self_attn.k_proj
|
271 |
+
# self_attn.o_proj layers
|
272 |
+
- model.layers.15.self_attn.o_proj
|
273 |
+
- model.layers.23.self_attn.o_proj
|
274 |
+
- model.layers.31.self_attn.o_proj
|
275 |
+
- model.layers.30.self_attn.o_proj
|
276 |
+
- model.layers.18.self_attn.o_proj
|
277 |
+
- model.layers.24.self_attn.o_proj
|
278 |
+
- model.layers.17.self_attn.o_proj
|
279 |
+
- model.layers.28.self_attn.o_proj
|
280 |
+
- model.layers.34.self_attn.o_proj
|
281 |
+
- model.layers.33.self_attn.o_proj
|
282 |
+
- model.layers.25.self_attn.o_proj
|
283 |
+
- model.layers.12.self_attn.o_proj
|
284 |
+
- model.layers.14.self_attn.o_proj
|
285 |
+
- model.layers.29.self_attn.o_proj
|
286 |
+
- model.layers.16.self_attn.o_proj
|
287 |
+
- model.layers.26.self_attn.o_proj
|
288 |
+
- model.layers.22.self_attn.o_proj
|
289 |
+
- model.layers.27.self_attn.o_proj
|
290 |
+
- model.layers.35.self_attn.o_proj
|
291 |
+
- model.layers.20.self_attn.o_proj
|
292 |
+
- model.layers.13.self_attn.o_proj
|
293 |
+
- model.layers.36.self_attn.o_proj
|
294 |
+
- model.layers.19.self_attn.o_proj
|
295 |
+
- model.layers.37.self_attn.o_proj
|
296 |
+
- model.layers.21.self_attn.o_proj
|
297 |
+
- model.layers.11.self_attn.o_proj
|
298 |
+
- model.layers.54.self_attn.o_proj
|
299 |
+
- model.layers.5.self_attn.o_proj
|
300 |
+
- model.layers.38.self_attn.o_proj
|
301 |
+
- model.layers.6.self_attn.o_proj
|
302 |
+
- model.layers.8.self_attn.o_proj
|
303 |
+
- model.layers.9.self_attn.o_proj
|
304 |
+
# self_attn.q_proj layers
|
305 |
+
- model.layers.1.self_attn.q_proj
|
306 |
+
- model.layers.2.self_attn.q_proj
|
307 |
+
- model.layers.3.self_attn.q_proj
|
308 |
+
- model.layers.45.self_attn.q_proj
|
309 |
+
- model.layers.54.self_attn.q_proj
|
310 |
+
- model.layers.35.self_attn.q_proj
|
311 |
+
- model.layers.48.self_attn.q_proj
|
312 |
+
- model.layers.61.self_attn.q_proj
|
313 |
+
- model.layers.52.self_attn.q_proj
|
314 |
+
- model.layers.50.self_attn.q_proj
|
315 |
+
- model.layers.60.self_attn.q_proj
|
316 |
+
- model.layers.56.self_attn.q_proj
|
317 |
+
- model.layers.58.self_attn.q_proj
|
318 |
+
- model.layers.42.self_attn.q_proj
|
319 |
+
- model.layers.59.self_attn.q_proj
|
320 |
+
- model.layers.44.self_attn.q_proj
|
321 |
+
- model.layers.55.self_attn.q_proj
|
322 |
+
- model.layers.57.self_attn.q_proj
|
323 |
+
- model.layers.41.self_attn.q_proj
|
324 |
+
- model.layers.36.self_attn.q_proj
|
325 |
+
- model.layers.39.self_attn.q_proj
|
326 |
+
- model.layers.4.self_attn.q_proj
|
327 |
+
- model.layers.43.self_attn.q_proj
|
328 |
+
- model.layers.34.self_attn.q_proj
|
329 |
+
- model.layers.46.self_attn.q_proj
|
330 |
+
- model.layers.49.self_attn.q_proj
|
331 |
+
- model.layers.40.self_attn.q_proj
|
332 |
+
- model.layers.25.self_attn.q_proj
|
333 |
+
- model.layers.51.self_attn.q_proj
|
334 |
+
- model.layers.17.self_attn.q_proj
|
335 |
+
- model.layers.37.self_attn.q_proj
|
336 |
+
- model.layers.53.self_attn.q_proj
|
337 |
+
# self_attn.v_proj layers
|
338 |
+
- model.layers.55.self_attn.v_proj
|
339 |
+
- model.layers.31.self_attn.v_proj
|
340 |
+
- model.layers.47.self_attn.v_proj
|
341 |
+
- model.layers.45.self_attn.v_proj
|
342 |
+
- model.layers.49.self_attn.v_proj
|
343 |
+
- model.layers.48.self_attn.v_proj
|
344 |
+
- model.layers.15.self_attn.v_proj
|
345 |
+
- model.layers.30.self_attn.v_proj
|
346 |
+
- model.layers.7.self_attn.v_proj
|
347 |
+
- model.layers.44.self_attn.v_proj
|
348 |
+
- model.layers.29.self_attn.v_proj
|
349 |
+
- model.layers.51.self_attn.v_proj
|
350 |
+
- model.layers.50.self_attn.v_proj
|
351 |
+
- model.layers.14.self_attn.v_proj
|
352 |
+
- model.layers.54.self_attn.v_proj
|
353 |
+
- model.layers.32.self_attn.v_proj
|
354 |
+
- model.layers.43.self_attn.v_proj
|
355 |
+
- model.layers.10.self_attn.v_proj
|
356 |
+
- model.layers.46.self_attn.v_proj
|
357 |
+
- model.layers.38.self_attn.v_proj
|
358 |
+
- model.layers.57.self_attn.v_proj
|
359 |
+
- model.layers.22.self_attn.v_proj
|
360 |
+
- model.layers.39.self_attn.v_proj
|
361 |
+
- model.layers.6.self_attn.v_proj
|
362 |
+
- model.layers.23.self_attn.v_proj
|
363 |
+
- model.layers.58.self_attn.v_proj
|
364 |
+
- model.layers.53.self_attn.v_proj
|
365 |
+
- model.layers.40.self_attn.v_proj
|
366 |
+
- model.layers.24.self_attn.v_proj
|
367 |
+
- model.layers.9.self_attn.v_proj
|
368 |
+
- model.layers.25.self_attn.v_proj
|
369 |
+
- model.layers.5.self_attn.v_proj
|
370 |
+
|
371 |
+
|
372 |
+
|
373 |
+
wandb_project: EVA-Qwen2.5-32B-SFFT-v0.1
|
374 |
+
wandb_entity:
|
375 |
+
wandb_watch:
|
376 |
+
wandb_name: Unit-01
|
377 |
+
wandb_log_model:
|
378 |
+
|
379 |
+
gradient_accumulation_steps: 8
|
380 |
+
micro_batch_size: 1
|
381 |
+
num_epochs: 3
|
382 |
+
optimizer: paged_adamw_8bit
|
383 |
+
lr_scheduler: cosine
|
384 |
+
learning_rate: 0.00005
|
385 |
+
max_grad_norm: 3
|
386 |
+
|
387 |
+
train_on_inputs: false
|
388 |
+
group_by_length: false
|
389 |
+
bf16: auto
|
390 |
+
fp16:
|
391 |
+
tf32: false
|
392 |
+
|
393 |
+
gradient_checkpointing: "unsloth"
|
394 |
+
# gradient_checkpointing_kwargs:
|
395 |
+
# use_reentrant: true
|
396 |
+
early_stopping_patience:
|
397 |
+
resume_from_checkpoint:
|
398 |
+
local_rank:
|
399 |
+
logging_steps: 1
|
400 |
+
xformers_attention:
|
401 |
+
flash_attention: true
|
402 |
+
|
403 |
+
warmup_steps: 20
|
404 |
+
evals_per_epoch: 4
|
405 |
+
saves_per_epoch: 2
|
406 |
+
save_safetensors: true
|
407 |
+
hub_model_id:
|
408 |
+
hub_strategy:
|
409 |
+
debug:
|
410 |
+
deepspeed: deepspeed_configs/zero3_bf16.json
|
411 |
+
weight_decay: 0.1
|
412 |
+
# fsdp:
|
413 |
+
# - full_shard
|
414 |
+
# - auto_wrap
|
415 |
+
# fsdp_config:
|
416 |
+
# fsdp_limit_all_gathers: true
|
417 |
+
# fsdp_sync_module_states: false
|
418 |
+
# fsdp_offload_params: true
|
419 |
+
# fsdp_cpu_ram_efficient_loading: true
|
420 |
+
# fsdp_auto_wrap_policy: TRANSFORMER_BASED_WRAP
|
421 |
+
# fsdp_transformer_layer_cls_to_wrap: Qwen2DecoderLayer
|
422 |
+
# fsdp_activation_checkpointing: true
|
423 |
+
# fsdp_state_dict_type: SHARDED_STATE_DICT # Changed from FULL_STATE_DICT
|
424 |
+
# fsdp_sharding_strategy: FULL_SHARD
|
425 |
+
# fsdp_forward_prefetch: false # Added
|
426 |
+
# fsdp_backward_prefetch: "BACKWARD_PRE" # Added
|
427 |
+
# fsdp_backward_prefetch_limit: 1 # Added
|
428 |
+
# fsdp_mixed_precision: BF16 # Added
|
429 |
+
```
|
430 |
+
|
431 |
+
</details>
|