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Source channel @olddriverGDstudy · Post #37 · Mar 17

1.前戏长点,能亲的不只嘴,还有锁骨、胸、大腿内侧 。侧着在后面含着耳垂舔。 2.后入时抓手臂更好用力,注意不要抓手腕(会弄疼女孩子),抓肩膀也可以哦。 3.大部分女生的耳朵是敏感处吧,吹气、低声说骚话真的会让女生不自觉地把腿夹紧。 4.洗白白吻遍身体很nice哦。 5.揉着胸从下面顶在洞口,没有见过不湿的。先来正常姿势,等她湿了就用龟头在洞口探进去再出来,一直挑逗,过一会就会发现她自己往里吸,忍着等她忍不住浑身扭,求你再进入。开始慢点,等明显感觉她夹得很紧,再开始。 #知识

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GitHub Trends

@githubtrending · Post #15385 · 01/02/2026, 12:30 PM

#python#deep_learning#inference#openai#quantization#speech_recognition#speech_to_text#transformer#whisper Faster-Whisper is a fast version of OpenAI's Whisper that transcribes audio up to 4x quicker with the same accuracy, using less memory on CPU or GPU—benchmarks show it beats original Whisper (e.g., 1m03s vs 2m23s for 13-min audio on GPU). Install via `pip install faster-whisper`, no FFmpeg needed, and use simple Python code like `WhisperModel("large-v3").transcribe("audio.mp3")` for segments with timestamps. You benefit by getting quick, efficient speech-to-text for real-time apps, saving time and resources on long files or batches. https://github.com/SYSTRAN/faster-whisper

GitHub Trends

@githubtrending · Post #14684 · 05/08/2025, 12:00 PM

#python#apple_silicon#audio_processing#mlx#multimodal#speech_recognition#speech_synthesis#speech_to_text#text_to_speech#transformers MLX-Audio is a powerful tool for converting text into speech and speech into new audio. It works well on Apple Silicon devices, like M-series chips, making it fast and efficient. You can choose from different languages and voices, and even adjust how fast the speech is. It also includes a web interface where you can see audio in 3D and play your own files. This tool is helpful for making audiobooks, interactive media, and personal projects because it's easy to use and provides high-quality audio quickly. https://github.com/Blaizzy/mlx-audio

GitHub Trends

@githubtrending · Post #14804 · 06/07/2025, 01:30 PM

#jupyter_notebook#android#asr#deep_learning#deep_neural_networks#deepspeech#google_speech_to_text#ios#kaldi#offline#privacy#python#raspberry_pi#speaker_identification#speaker_verification#speech_recognition#speech_to_text#speech_to_text_android#stt#voice_recognition#vosk Vosk is a powerful tool for recognizing speech without needing the internet. It supports over 20 languages and dialects, making it useful for many different users. Vosk is small and efficient, allowing it to work on small devices like smartphones and Raspberry Pi. It can be used for things like chatbots, smart home devices, and creating subtitles for videos. This means users can have private and fast speech recognition anywhere, which is especially helpful when internet access is limited. https://github.com/alphacep/vosk-api