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@@ -12,6 +12,21 @@ can be easily fine-tuned for your target data. Refer to our [paper](https://arxi
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  **Note that zeroshot, fine-tuning and inference tasks using TTM can easily be executed in 1 GPU machine or in laptops too!!**
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  ## Model Description
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  TTM falls under the category of “focused pre-trained models”, wherein each pre-trained TTM is tailored for a particular forecasting
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  - Stay tuned for more models !
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- ## Benchmark Highlights:
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- TTM outperforms pre-trained GPT4TS (NeurIPS 23) by …
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- TTM outperforms pre-trained LLMTime (NeurIPS 23) by ..
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- TTM outperforms pre-trained Time-LLM (NeurIPS 23) by ..
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- TTM outperform pre-trained MOIRAI by …
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- TTM outperforms other popular benchmarks by ….
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- TTM also outperforms the hard statistical baselines (Statistical ensemble and S-Naive) in M4-hourly dataset which pretrained TS models are finding hard to outperform.
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  ## Model Details
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  For more details on TTM architecture and benchmarks, refer to our [paper](https://arxiv.org/pdf/2401.03955.pdf).
 
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  **Note that zeroshot, fine-tuning and inference tasks using TTM can easily be executed in 1 GPU machine or in laptops too!!**
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+ ## Benchmark Highlights:
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+
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+ TTM outperforms pre-trained GPT4TS (NeurIPS 23) by …
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+ TTM outperforms pre-trained LLMTime (NeurIPS 23) by ..
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+ TTM outperforms pre-trained Time-LLM (NeurIPS 23) by ..
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+
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+ TTM outperform pre-trained MOIRAI by …
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+
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+ TTM outperforms other popular benchmarks by ….
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+
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+ TTM also outperforms the hard statistical baselines (Statistical ensemble and S-Naive) in M4-hourly dataset which pretrained TS models are finding hard to outperform.
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  ## Model Description
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  TTM falls under the category of “focused pre-trained models”, wherein each pre-trained TTM is tailored for a particular forecasting
 
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  - Stay tuned for more models !
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  ## Model Details
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  For more details on TTM architecture and benchmarks, refer to our [paper](https://arxiv.org/pdf/2401.03955.pdf).