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  1. SECURITY.md

    internal communication only. It is not built for use in untrusted environments
    or networks.
    
    For performance reasons, the default TensorFlow server does not include any
    authorization protocol and sends messages unencrypted. It accepts connections
    from anywhere, and executes the graphs it is sent without performing any checks.
    Therefore, if you run a `tf.train.Server` in your network, anybody with access
    Plain Text
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  2. .github/bot_config.yml

             * It has an added advantage since you can you easily switch to different hardware accelerators (cpu, gpu, tpu) as per the task.
             * All you need is a good internet connection and you are all set.
          * Try to build TF from sources by changing CPU optimization flags.
       
       *Please let us know if this helps.*
       
    windows_comment: >
    Others
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  3. tensorflow/c/eager/c_api_experimental.h

        int64_t init_timeout_in_ms, TF_Status* status,
        bool clear_existing_contexts);
    
    // Set server def with retries and timeout. This is helpful for fault-tolerant
    // initial connection in high-preemption environments, such as
    // ParameterServerStrategy training.
    // This API is for experimental usage and may be subject to change.
    TF_CAPI_EXPORT extern void TFE_ContextSetServerDefWithTimeoutAndRetries(
    C
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  4. RELEASE.md

    *   Add safe static factory functions for SparseTensor and convert all CHECKs to
        DCHECKs. Using the constructor directly is unsafe and deprecated.
    *   Make the Bigtable client connection pool configurable & increase the
        default # of connections for performance.
    *   Added derivative of `tf.random_gamma` with respect to the alpha parameter.
    *   Added derivative of `tf.igamma(a, x)` and `tf.igammac(a, x)` with respect to
        a.
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