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Check out the documentation for more information.

This is experimental model. It never actually worked on Android device.

Stable Diffusion v1.5 converted to LiteRT

This repository contains a LiteRT/TFLite export of the Hugging Face model stable-diffusion-v1-5/stable-diffusion-v1-5.

Base variants

  • fp32/: reference float export used by android-gpu and ios-coreml
  • int8/: mixed bundle with fp32 text encoder fallback, PT2E dynamic int8 UNet, and fp32 VAE fallback

Deployment profiles

  • android-qnn-npu: LiteRT Qualcomm AI Engine Direct (QNN) (android, preferred accelerator=NPU)
  • android-gpu: LiteRT GPU delegate (android, preferred accelerator=GPU)
  • android-cpu: LiteRT CPU/XNNPACK (android, preferred accelerator=CPU)
  • ios-coreml: LiteRT Core ML delegate (ios, preferred accelerator=CORE_ML)

Profiles are emitted in conversion_manifest.json as manifest-level mappings onto the exported base variants. This avoids duplicating large model binaries while still letting each runtime pick backend-specific artifacts.

Files per exported base variant

  • text_encoder.tflite
  • unet.tflite
  • vae_decoder.tflite

Shared assets

  • tokenizer/
  • scheduler/
  • configs/
  • configs/text_encoder_runtime_config.json
  • conversion_manifest.json

Notes

  • Stable Diffusion v1.5 is a multi-stage pipeline, so this export is split into submodels.
  • The notebook first tries to export the text encoder with INT32 token ids for better GPU/Core ML delegate compatibility and records the actual exported input dtype per variant and per deployment profile.
  • The fp32 bundle is optional debug output; on CPU runtimes it is skipped by default to avoid kernel deaths during fp32 UNet conversion.
  • android-qnn-npu is a LiteRT/QNN-oriented deployment profile, not a Qualcomm AOT context binary.
  • Both exported base variants are smoke-tested by reloading the serialized LiteRT models and executing inference.
  • The preview images in preview/ are decoder smoke tests, not final text-to-image samples.
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