- 11 10月, 2017 1 次提交
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由 Markus Kliegl 提交于
* conv_shift_op: initial implementation using Eigen Limitations: - both gradient outputs must be specified and are always computed - explicit for loops => could be optimized in various ways (e.g., different memory layout) * conv shift - gradient fixes fix case when not all output gradients desired * conv shift: minor cleanup * conv shift - more minor cleanup * conv shift: clean up & initial GPU implementation * fix rebase issue
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- 10 10月, 2017 19 次提交
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由 chengduoZH 提交于
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由 chengduoZH 提交于
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由 Luo Tao 提交于
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由 chengduoZH 提交于
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由 Yu Yang 提交于
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由 fengjiayi 提交于
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由 chengduoZH 提交于
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由 Luo Tao 提交于
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由 Abhinav Arora 提交于
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由 Yu Yang 提交于
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由 fengjiayi 提交于
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由 fengjiayi 提交于
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由 Abhinav Arora 提交于
* Adding implementation for copying a vector to tensor * Changing Tensor test to access gpu memory indirectly
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由 Yu Yang 提交于
It will significantly reduce binary size. It is useful for mobile deployment.
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由 Yu Yang 提交于
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由 Yu Yang 提交于
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由 Abhinav Arora 提交于
* Implementing the Adamax optimizer step operator * Adding unit tests for adamax_op * Changing learning rate and time step to inputs from attributes * Changing learning rate and time step to input(tensors) * Making the Adamax operator conform to naming convention * Removing Tensor<float> from comments * Rectifying the Adamax implementation * Changing Unit Test values and adding comments * Changing Unit Test to test multiple steps
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由 kavyasrinet 提交于
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由 fengjiayi 提交于
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- 09 10月, 2017 7 次提交
- 07 10月, 2017 8 次提交
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由 qiaolongfei 提交于
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由 qiaolongfei 提交于
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由 Yi Wang 提交于
* Update program.md * Update * Update
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由 Yan Chunwei 提交于
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由 fengjiayi 提交于
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由 qiaolongfei 提交于
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由 Yan Chunwei 提交于
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由 qiaolongfei 提交于
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- 06 10月, 2017 5 次提交
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由 Kexin Zhao 提交于
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由 Kavya Srinet 提交于
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由 Kavya Srinet 提交于
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由 qiaolongfei 提交于
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由 qiaolongfei 提交于
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