Project import generated by Copybara.
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@ -117,7 +117,7 @@ combination of tag name and index number. You can see some examples of input and
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output identifiers in the example below. `SomeAudioVideoCalculator` identifies
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its video output by tag and its audio outputs by the combination of tag and
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index. The input with tag `VIDEO` is connected to the stream named
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`video_stream`. The inputs with tag `AUDIO` and indices `0` and `1` are
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`video_stream`. The outputs with tag `AUDIO` and indices `0` and `1` are
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connected to the streams named `audio_left` and `audio_right`.
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`SomeAudioCalculator` identifies its audio inputs by index only (no tag needed).
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@ -20,7 +20,7 @@ process new data sets, in the [documentation](https://github.com/google/mediapip
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1. Checkout mediapipe repository
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```bash
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git clone https://github.com/google/mediapipe/mediapipe
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git clone https://github.com/google/mediapipe.git
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cd mediapipe
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```
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@ -115,7 +115,7 @@ python -m mediapipe.examples.desktop.media_sequence.demo_dataset \
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### Preparing your own data set
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The process for preparing your own data set is described in the [MediaSequence
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documentation](https://github.com/google/mediapipe/tree/master/mediapipe/util/sequence/README.md).
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documentation](https://github.com/google/mediapipe/blob/master/mediapipe/util/sequence/README.md).
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The Python code for Charades can easily be modified to process most annotations,
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but the MediaPipe processing warrants further discussion. MediaSequence uses
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MediaPipe graphs to extract features related to the metadata or previously
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@ -6,8 +6,6 @@ prototypes used in MediaSequence for storing multimedia data in
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SequenceExamples. Finally, the documentation will describe the specific keys for
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storing specific types of data.
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[TOC]
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## Overview of MediaSequence for machine learning
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The goal of MediaSequence is to provide a tool for transforming annotations of
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@ -54,5 +54,6 @@ cc_library(
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"@org_tensorflow//tensorflow/lite/kernels:padding",
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"@org_tensorflow//tensorflow/lite/kernels/internal:tensor",
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"@org_tensorflow//tensorflow/lite/kernels/internal:tensor_utils",
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"@org_tensorflow//tensorflow/lite/kernels/internal:types",
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],
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)
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