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@@ -4,7 +4,7 @@ base_model: google/vit-base-patch16-224-in21k
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  tags:
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  - generated_from_trainer
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  datasets:
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- - image_folder
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  metrics:
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  - accuracy
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  - precision
@@ -16,8 +16,8 @@ model-index:
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  name: Image Classification
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  type: image-classification
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  dataset:
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- name: image_folder
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- type: image_folder
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  config: FastJobs--Visual_Emotional_Analysis
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  split: train
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  args: FastJobs--Visual_Emotional_Analysis
@@ -33,12 +33,13 @@ model-index:
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  value: 0.6712765732314218
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  ---
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- <!-- This model card has been generated automatically according to the information the Trainer had access to. You
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- should probably proofread and complete it, then remove this comment. -->
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- # emotion_classification
 
 
 
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- This model is a fine-tuned version of [google/vit-base-patch16-224-in21k](https://huggingface.co/google/vit-base-patch16-224-in21k) on the image_folder dataset.
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  It achieves the following results on the evaluation set:
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  - Loss: 1.0511
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  - Accuracy: 0.6687
@@ -47,15 +48,26 @@ It achieves the following results on the evaluation set:
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  ## Model description
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- More information needed
 
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- ## Intended uses & limitations
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- More information needed
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- ## Training and evaluation data
 
 
 
 
 
 
 
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- More information needed
 
 
 
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  ## Training procedure
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  tags:
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  - generated_from_trainer
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  datasets:
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+ - FastJobs/Visual_Emotional_Analysis
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  metrics:
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  - accuracy
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  - precision
 
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  name: Image Classification
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  type: image-classification
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  dataset:
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+ name: FastJobs/Visual_Emotional_Analysis
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+ type: FastJobs/Visual_Emotional_Analysis
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  config: FastJobs--Visual_Emotional_Analysis
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  split: train
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  args: FastJobs--Visual_Emotional_Analysis
 
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  value: 0.6712765732314218
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  ---
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+ # Emotion Classification
 
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+ This model is a fine-tuned version of [google/vit-base-patch16-224-in21k](https://huggingface.co/google/vit-base-patch16-224-in21k)
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+ on the [FastJobs/Visual_Emotional_Analysis](https://huggingface.co/datasets/FastJobs/Visual_Emotional_Analysis) dataset.
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+
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+ In theory, the accuracy for a random guess on this dataset is 0.1429.
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  It achieves the following results on the evaluation set:
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  - Loss: 1.0511
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  - Accuracy: 0.6687
 
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  ## Model description
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+ The Vision Transformer base version trained on ImageNet-21K released by Google.
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+ Further details can be found on their [repo](https://huggingface.co/google/vit-base-patch16-224-in21k).
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+ ## Training and evaluation data
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+ ### Data Split
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+ Used a 4:1 ratio for training and development sets and a random seed of 42.
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+ Also used a seed of 42 for batching the data, completely unrelated lol.
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+
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+ ### Pre-processing Augmentation
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+
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+ The main pre-processing phase for both training and evaluation includes:
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+ - Bilinear interpolation to resize the image to (224, 224, 3) because it uses ImageNet images to train the original model
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+ - Normalizing images using a mean and standard deviation of [0.5, 0.5, 0.5] just like the original model
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+ Other than the aforementioned pre-processing, the training set was augmented using:
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+ - Random horizontal & vertical flip
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+ - Color jitter
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+ - Random resized crop
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  ## Training procedure
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