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Results 1 - 3 of 3 for Oliver (0.15 sec)

  1. tensorflow/c/eager/c_api_experimental.h

    TF_CAPI_EXPORT extern void TFE_ContextUpdateServerDefWithTimeout(
        TFE_Context* ctx, int keep_alive_secs, const void* proto, size_t proto_len,
        int64_t init_timeout_in_ms, TF_Status* status);
    
    // This API is for experimental usage and may be subject to change.
    TF_CAPI_EXPORT extern void TFE_ContextSetServerDefWithTimeout(
        TFE_Context* ctx, int keep_alive_secs, const void* proto, size_t proto_len,
        int64_t init_timeout_in_ms, TF_Status* status,
    C
    - Registered: Tue Apr 30 12:39:09 GMT 2024
    - Last Modified: Wed Feb 21 22:37:46 GMT 2024
    - 39.5K bytes
    - Viewed (0)
  2. tensorflow/c/c_api.h

    // Return a new execution session with the associated graph, or NULL on
    // error. Does not take ownership of any input parameters.
    //
    // *`graph` must be a valid graph (not deleted or nullptr). `graph` will be
    // kept alive for the lifetime of the returned TF_Session. New nodes can still
    // be added to `graph` after this call.
    TF_CAPI_EXPORT extern TF_Session* TF_NewSession(TF_Graph* graph,
    C
    - Registered: Tue Apr 30 12:39:09 GMT 2024
    - Last Modified: Thu Oct 26 21:08:15 GMT 2023
    - 82.3K bytes
    - Viewed (3)
  3. tensorflow/c/eager/tape.h

    template <typename Gradient, typename BackwardFunction, typename TapeTensor>
    class GradientTape {
     public:
      // If `persistent` is true, GradientTape will not eagerly delete backward
      // functions (and hence the tensors they keep alive). Instead, everything
      // is deleted in ~GradientTape. Persistent GradientTapes are useful when
      // users want to compute multiple gradients over the same tape.
    C
    - Registered: Tue Apr 30 12:39:09 GMT 2024
    - Last Modified: Tue Apr 02 12:40:29 GMT 2024
    - 47.2K bytes
    - Viewed (1)
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