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Progressive Enhancement / Graceful degradation #68

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@dontcallmedom

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@dontcallmedom

In my talk I allude to a long-standing approach in Web technologies to give tools to developers to allow ideally for progressive enhancement (the ability to bring more features as optional improvements on more powerful devices and browsers), or fallback to graceful degradation (providing a fallback when more advanced or powerful features aren't available).

Many talks highlight the fact that ML is moving fast, with a set of core primitives rapidly evolving.

In his talk, @miaowang14 highlights the strategies the Android NN API has taken to backwards-compatibility and the growth in the operators provided by the API.

How much discussion has there been in the context of the WebNN API and the Model loader API in features detection, and how confident are we this can be used in the context of progressive enhancement / graceful degradation? @huningxin @jbingham

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    Developer's PerspectiveMachine Learning Experiences on the Web: A Developer's PerspectiveDiscussion topicTopic discussed at the workshopWeb Platform FoundationsWeb Platform Foundations for Machine Learning

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