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  1. SECURITY.md

    ## Untrusted inputs during training and prediction
    
    TensorFlow supports a wide range of input data formats. For example it can
    process images, audio, videos, and text. There are several modules specialized
    in taking those formats, modifying them, and/or converting them to intermediate
    formats that can be processed by TensorFlow.
    
    These modifications and conversions are handled by a variety of libraries that
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  2. ci/official/envs/linux_arm64

    TFCI_BAZEL_TARGET_SELECTING_CONFIG_PREFIX=linux_arm64
    # Note: this is not set to "--cpu", because that changes the package name
    # to tensorflow_cpu. These ARM builds are supposed to have the name "tensorflow"
    # despite lacking Nvidia CUDA support.
    TFCI_BUILD_PIP_PACKAGE_ARGS="--repo_env=WHEEL_NAME=tensorflow"
    TFCI_DOCKER_ENABLE=1
    TFCI_DOCKER_IMAGE=gcr.io/tensorflow-sigs/build-arm64:tf-2-16-multi-python
    TFCI_DOCKER_PULL_ENABLE=1
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  3. RELEASE.md

     * Improvements and fixes in Keras loss masking:
        * Whether you represent a ragged tensor as a `tf.RaggedTensor` or using [keras masking](https://www.tensorflow.org/guide/keras/masking_and_padding), the returned loss values should be the identical to each other. In previous versions Keras may have silently ignored the mask.
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