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[Attention] 超级视客营 MMRazor 🚀🚀🚀 #353
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humu789
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humu789
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Feb 13, 2023
* fix pose demo and windows build (open-mmlab#307) * init * Update nms_rotated.cpp * add postprocessing_masks gpu version (open-mmlab#276) * add postprocessing_masks gpu version * default device cpu * pre-commit fix Co-authored-by: hadoop-basecv <[email protected]> * fixed a bug causes text-recognizer to fail when (non-NULL) empty bboxes list is passed (open-mmlab#310) * [Fix] include missing <type_traits> for formatter.h (open-mmlab#313) * fix formatter * relax GCC version requirement * fix * fix lint * fix lint * [Fix] MMEditing cannot save results when testing (open-mmlab#336) * fix show * lint * remove redundant codes * resolve comment * type hint * docs(build): fix typo (open-mmlab#352) * docs(build): add missing build option * docs(build): add onnx install * style(doc): trim whitespace * docs(build): revert install onnx * docs(build): add ncnn LD_LIBRARY_PATH * docs(build): fix path error * fix openvino export tmp model, add binary flag (open-mmlab#353) * init circleci (open-mmlab#348) * fix wrong input mat type (open-mmlab#362) * fix wrong input mat type * fix lint * fix(docs): remove redundant doc tree (open-mmlab#360) * fix missing ncnn_DIR & InferenceEngine_DIR (open-mmlab#364) * update doc Co-authored-by: Chen Xin <[email protected]> Co-authored-by: Shengxi Li <[email protected]> Co-authored-by: hadoop-basecv <[email protected]> Co-authored-by: lzhangzz <[email protected]> Co-authored-by: Yifan Zhou <[email protected]> Co-authored-by: tpoisonooo <[email protected]> Co-authored-by: lvhan028 <[email protected]>
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活动介绍
大家好,第一期 OpenMMLab 超级视客营实训活动开始啦!超级视客营实训活动提供十七个方向、上百个不同难度的任务供大家选择,不管你是初涉 AI 的新手还是资深炼丹师,都有适合你的任务供你选择。助力大家上手 OpenMMLab 开源算法库并参与项目建设。本期活动联合北京超级云计算中心,提供算力支持,为大家开发保驾护航。
活动参与方式:选择你感兴趣的任务,在 OpenMMLab 官网提交报名表。完成匹配后,即可和导师对接制定任务规划,开始上手开发。根据不同任务要求在对应的地址提交代码结果,出题方初步 review 通过后即可领取下一个任务或者坐等领奖。活动详情戳:OpenMMLab 官网活动页。
任务列表
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
可参考源码:https://github.com/HobbitLong/RepDistiller
目标:在 cifar 数据集上复现精度
活动报名地址:报名表地址
根据任务难度可以获得对应积分,兑换不同奖品。另外完成任务后在知识社区发布学习心得即可获得额外积分(记得主动找小助手领取哦)。
活动交流群:群二维码
有任何疑问欢迎大家加入群聊或者 Issue 下参与讨论,快来完成挑战,加入 OpenMMLab 贡献者队伍吧~
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