final_merge
This is a merge of pre-trained language models created using mergekit.
Merge Details
Merge Method
This model was merged using the task arithmetic merge method using /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064 as a base.
Models Merged
The following models were included in the merge:
- /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
Configuration
The following YAML configuration was used to produce this model:
base_model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
dtype: bfloat16
merge_method: task_arithmetic
parameters:
int8_mask: 1.0
normalize: 0.0
slices:
- sources:
- layer_range: [0, 2]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 0.903670769683462
- layer_range: [0, 2]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [2, 4]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 0.8677123591929141
- layer_range: [2, 4]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [4, 6]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.0080967885131624
- layer_range: [4, 6]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [6, 8]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.288794492088366
- layer_range: [6, 8]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [8, 10]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.0927250789898328
- layer_range: [8, 10]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [10, 12]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.002818025226096
- layer_range: [10, 12]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [12, 14]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.0346267702747531
- layer_range: [12, 14]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [14, 16]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.060865068400883
- layer_range: [14, 16]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [16, 18]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.0141257624580193
- layer_range: [16, 18]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [18, 20]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.2727977176081706
- layer_range: [18, 20]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
- sources:
- layer_range: [20, 22]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_chinese_1905817950
parameters:
weight: 1.2137521068579595
- layer_range: [20, 22]
model: /kaggle/working/evol_merge_storage/input_models/TinyLlama_v1.1_684560064
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