aww1q's repositories

aimet

AIMET is a library that provides advanced quantization and compression techniques for trained neural network models.

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AwesomeCpp

---AWESOME--- C++学习笔记和常见面试知识点,C++11特性,包括智能指针、四种强制转换、function和bind、移动语义、完美转发、tuple、多态原理、虚表、友元函数、符号重载、函数指针、深浅拷贝、struct内存对齐、volatile以及union\static等各种关键字的用法等等,还新添了其他算法和计算机基础的难点,力求简洁清晰

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BaiduImageSpider

一个超级轻量的百度图片爬虫

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deepgaze

Computer Vision library for human-computer interaction. It implements Head Pose and Gaze Direction Estimation Using Convolutional Neural Networks, Skin Detection through Backprojection, Motion Detection and Tracking, Saliency Map.

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FaceDetection

:star2: Human Face Detection based on AdaBoost

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Halpe-FullBody

Halpe: full body human pose estimation and human-object interaction detection dataset

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headpose_final

Human head pose estimation using Keras over TensorFlow.

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it668

git study

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KD_methods_with_TF

Knowledge distillation methods implemented with Tensorflow (now there are 11 (+1) methods, and will be added more.)

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laeonetplus

LAEO-Net++

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mediapipe-bin

MediaPipe Python Wheel installer for RaspberryPi OS aarch64, Ubuntu aarch64, Debian aarch64 and Jetson Nano.

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mediapipe-python-sample

MediaPipeのPythonパッケージのサンプルです。2021/07/23時点でPython実装のある7機能(Hands、Pose、Face Mesh、Holistic、Face Detection、Objectron、Selfie Segmentation)について用意しています。

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Minimal-Hand-pytorch

PyTorch reimplementation of minimal-hand (CVPR2020)

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MobileNet-Yolo

MobileNetV2-YoloV3-Nano: 0.5BFlops 3MB HUAWEI P40: 6ms/img, YoloFace-500k:0.1Bflops 420KB:fire::fire::fire:

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nanodet

⚡Super fast and lightweight anchor-free object detection model. 🔥Only 980 KB(int8) / 1.8MB (fp16) and run 97FPS on cellphone🔥

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open_model_zoo

Pre-trained Deep Learning models and demos (high quality and extremely fast)

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second.pytorch

PointPillars for KITTI object detection

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sense

Enhance your application with the ability to see and interact with humans using any RGB camera.

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sklearn-classification

Data Science Notebook on a Classification Task, using sklearn and Tensorflow.

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tensorflow-yolov3

🔥 TensorFlow Code for technical report: "YOLOv3: An Incremental Improvement"

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tfjs-models

Pretrained models for TensorFlow.js

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Yolo-FastestV2

:zap: Based on Yolo's low-power, ultra-lightweight universal target detection algorithm, the parameter is only 250k, and the speed of the smart phone mobile terminal can reach ~300fps+

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YOLOX

YOLOX is a high-performance anchor-free YOLO, exceeding yolov3~v5 with MegEngine, ONNX, TensorRT, ncnn, and OpenVINO supported. Documentation: https://yolox.readthedocs.io/

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