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| # Model Card | |
| SONIC provides three released whole-body controller checkpoints for the | |
| Unitree G1. Choose the model based on its reference representation and intended | |
| deployment. | |
| ## Available Models | |
| | Model | Hugging Face location | SMPL reference input | Intended use and comments | | |
| |---|---|---|---| | |
| | **Default SONIC (original release)** | Top-level `model_encoder.onnx`, `model_decoder.onnx`, and `observation_config.yaml`; training checkpoint at `sonic_release/last.pt` | 10 future frames at 20 ms spacing, approximately 200 ms of reference lookahead | Default general-purpose SONIC controller for motion tracking, planning, teleoperation, and compatibility with existing deployments. G1 and teleoperation future-reference observations use `step5`. | | |
| | **Low-latency teleoperation** | [`low_latency/`](https://huggingface.co/nvidia/GEAR-SONIC/tree/main/low_latency) | 4 future frames at 20 ms spacing, approximately 80 ms of reference lookahead | Intended for more responsive whole-body teleoperation and VLA execution. G1 and teleoperation future-reference observations use `step1`. Use its encoder, decoder, and observation config together. | | |
| | **SONIC v1.1** | [`sonic_v1_1/`](https://huggingface.co/nvidia/GEAR-SONIC/tree/main/sonic_v1_1) | 10 future frames at 20 ms spacing, approximately 200 ms of reference lookahead | Uses robot-heading-normalized target orientation and was trained with wrist-pose augmentation. Intended for heading-stable 3-point teleoperation and SONIC-backed VLA policies that use this controller. G1 and teleoperation future-reference observations use `step5`; this is not the low-latency model. | | |
| All three models use the SONIC universal-token controller, produce 64-dimensional | |
| latent motion tokens, run the controller at 50 Hz, and support SMPL pose, G1 | |
| motion reference, and VR 3-point inputs. Deployment uses C++ and TensorRT; the | |
| PyTorch checkpoints support Isaac Lab evaluation and continued training. | |
| ```{note} | |
| The lookahead values describe the reference horizon presented to the | |
| controller. They are not measurements of total end-to-end teleoperation | |
| latency, which also includes sensing, networking, preprocessing, and inference. | |
| ``` | |
| ## Released Files | |
| | Model | Deployment files | PyTorch and configuration files | | |
| |---|---|---| | |
| | Default SONIC | `model_encoder.onnx`, `model_decoder.onnx`, `observation_config.yaml` | `sonic_release/last.pt`, `sonic_release/config.yaml` | | |
| | Low-latency teleoperation | `low_latency/model_encoder.onnx`, `low_latency/model_decoder.onnx`, `low_latency/observation_config.yaml` | `low_latency/last.pt`, `low_latency/config.yaml`, `low_latency/model_config.yaml` | | |
| | SONIC v1.1 | `sonic_v1_1/model_encoder.onnx`, `sonic_v1_1/model_decoder.onnx`, `sonic_v1_1/observation_config.yaml` | `sonic_v1_1/last.pt`, `sonic_v1_1/config.yaml`, `sonic_v1_1/model_config.yaml` | | |
| All files are hosted in | |
| [`nvidia/GEAR-SONIC`](https://huggingface.co/nvidia/GEAR-SONIC). Model weights | |
| are covered by the [NVIDIA Open Model License](resources/license.md). | |
| ## Choosing a Model | |
| Use **Default SONIC** when you want the original release, the broadest | |
| compatibility with existing deployment setups, or the standard motion-tracking | |
| and planning controller. | |
| Use **Low-latency teleoperation** when responsiveness to streamed SMPL, VR, or | |
| VLA commands is the priority. Its shorter reference horizon reduces commanded | |
| motion lookahead, but it does not remove latency elsewhere in the system. | |
| Use **SONIC v1.1** for robot-heading-normalized 3-point | |
| teleoperation or a SONIC-backed VLA policy trained against this controller. It | |
| retains the 10-frame SMPL horizon and was trained with wrist-pose augmentation. | |
| ## Usage | |
| Install the Hugging Face dependency from the repository root: | |
| ```bash | |
| pip install huggingface_hub | |
| ``` | |
| ### Default SONIC | |
| ```bash | |
| python download_from_hf.py | |
| cd gear_sonic_deploy | |
| ./deploy.sh --input-type zmq_manager real | |
| ``` | |
| ### Low-Latency Teleoperation | |
| ```bash | |
| python download_from_hf.py --low-latency | |
| cd gear_sonic_deploy | |
| ./deploy.sh \ | |
| --cp policy/low_latency/model \ | |
| --obs-config policy/low_latency/observation_config.yaml \ | |
| --input-type zmq_manager \ | |
| real | |
| ``` | |
| ### SONIC v1.1 | |
| ```bash | |
| python download_from_hf.py --sonic-v1-1 | |
| cd gear_sonic_deploy | |
| ./deploy.sh \ | |
| --cp policy/sonic_v1_1/model \ | |
| --obs-config policy/sonic_v1_1/observation_config.yaml \ | |
| --input-type zmq_manager \ | |
| real | |
| ``` | |
| ### Python VLA Launcher | |
| For the default model: | |
| ```bash | |
| python gear_sonic/scripts/launch_inference.py \ | |
| --camera-host 192.168.123.164 \ | |
| --prompt "pick up the cup" | |
| ``` | |
| For the low-latency model: | |
| ```bash | |
| python gear_sonic/scripts/launch_inference.py \ | |
| --deploy-checkpoint policy/low_latency/model \ | |
| --deploy-obs-config policy/low_latency/observation_config.yaml \ | |
| --camera-host 192.168.123.164 \ | |
| --prompt "pick up the cup" | |
| ``` | |
| For SONIC v1.1, replace the two `policy/low_latency/` paths above with | |
| `policy/sonic_v1_1/`. | |
| See [Downloading Model Checkpoints](getting_started/download_models.md) for | |
| PyTorch checkpoint evaluation and additional download options. | |
| ## Limitations and Safety | |
| - The low-latency name refers to reduced controller reference lookahead, not a | |
| benchmark of total system latency. | |
| - SONIC v1.1 is not a low-latency checkpoint; it uses the | |
| 10-frame SMPL reference horizon. | |
| - Each ONNX encoder and decoder must be used with its matching observation | |
| configuration. | |
| - These checkpoints target the Unitree G1 embodiment. | |
| - Test in simulation before deployment and keep a safety operator ready to | |
| stop a physical robot. | |