Zero-Shot Image Classification
TiC-CLIP
vision
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@@ -8,7 +8,7 @@ tags:
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  datasets:
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  - apple/TiC-DataComp
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  ---
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- # Model Card for Model ID
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  <!-- Provide a quick summary of what the model is/does. -->
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@@ -53,6 +53,35 @@ The models are compatible with DataComp evaluation suite and our patched version
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  The models can also be used to resume a training or as initialization for new training using OpenCLIP code.
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  Please follow instructions in our [GitHub repo](https://github.com/apple/ml-tic-clip) to create the evaluation sets or follow [DataComp](https://github.com/mlfoundations/datacomp) for the standard evaluations on 38 datasets.
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  ## Training Details
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  ### Training Data
 
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  datasets:
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  - apple/TiC-DataComp
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  ---
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+ # Model Card for TiC-CLIP-basic-oracle
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  <!-- Provide a quick summary of what the model is/does. -->
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  The models can also be used to resume a training or as initialization for new training using OpenCLIP code.
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  Please follow instructions in our [GitHub repo](https://github.com/apple/ml-tic-clip) to create the evaluation sets or follow [DataComp](https://github.com/mlfoundations/datacomp) for the standard evaluations on 38 datasets.
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+ The following snippet assumes the TiC-DataComp data has been prepared and following the instructions in the GitHub repo.
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+ ```bash
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+ YEAR=2016 # There are no models before 2016 since data from 2014-2016 were compined into one year
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+ REPO="apple/TiC-CLIP-basic-oracle"
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+ huggingface-cli download $REPO checkpoints/$YEAR.pt
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+
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+ ## Train Cummulative
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+ pushd datacomp
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+ final_data_dir=$TIC_DATACOMP_Y_PATH/train/$YEAR/
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+ torchrun --nproc_per_node 8 --nnodes 1 \
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+ train.py \
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+ --scale "tic_medium" \
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+ --dataset_resampled \
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+ --data_dir $final_data_dir \
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+ --output_dir "./results/" \
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+ --exp_name "datacomp_medium-basic_cumulative" \
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+ --imagenet_val $IMAGENET_VAL_PATH \
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+ --save_frequency 1 \
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+ --resume
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+ popd
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+
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+ ## Evaluate Model
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+ # Evaluate a ViT-B/16 model on TiC/Retrieval/Yearly/$YEAR and
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+ # TiC/DataCompNet/Yearly/$YEAR
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+ pushd datacomp
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+ python ../dataset_creation/tic-datacomp/generate_tasklist.py --yaml-path tasklist.yml --sample-eval --eval-tasks retrieval/yearly,datacompnet/yearly
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+ python evaluate.py --data_dir data/ --train_output_dir ./results --use_model "ViT-B-16 $YEAR.pt" --skip_hf --skip_db --skip_notification
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+ ```
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+
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  ## Training Details
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  ### Training Data