spokestack-ios VS DL4S

Compare spokestack-ios vs DL4S and see what are their differences.

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spokestack-ios DL4S
1 5
27 100
- -
2.2 0.0
over 2 years ago 6 months ago
Swift Swift
Apache License 2.0 MIT License
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.

spokestack-ios

Posts with mentions or reviews of spokestack-ios. We have used some of these posts to build our list of alternatives and similar projects.
  • I'm making personalized voice super easy to use in iOS, and need help testing!
    1 project | /r/iOSProgramming | 24 Apr 2021
    Some of you may already be familiar with the open-source Spokestack Swift libraries. Want to help shape a new product that will change what's possible with Voice AI for makers, enthusiasts, prototypers, and creators? We're beta testing a no-code AutoML service that will let you [redacted because we're not ready to say it publicly yet], using your own voice.

DL4S

Posts with mentions or reviews of DL4S. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2021-04-05.
  • Machine learning modules for swift
    1 project | /r/swift | 25 Oct 2022
    Lastly, there are some third party libraries that you could try. I wrote a machine learning / deep learning library for Swift a while ago: DL4S. It does not have GPU acceleration (yet), so it won't allow you to do large ML workloads, but it has no problem with datasets like MNIST and it has an API similar to PyTorch/Tensorflow 2.
  • Should I use accelerate or another library for simple, np.sum-like, matrix operations?
    1 project | /r/swift | 4 May 2022
    Shameless plug: If you're looking for a more user friendly method for accelerated operations on vectors, matrices and tensors: I built Deep Learning for Swift a while ago, which implements a lot of numpy functions. It's primarily made for deep learning but you can also do number crunching with it.
  • Anyone taking part or has taken part in the Swift Student Challenge?
    2 projects | /r/swift | 5 Apr 2021
    Last year I won by building a chat bot with seq2seq and attention using my own deep learning library. The whole thing wasn't all that impressive from a visual standpoint but I guess the technical achievement was good enough for them. Also, I wrote a lot of stuff into the beyond WWDC field.
  • Recommendations for Books on Deep Learning.
    1 project | /r/swift | 14 Feb 2021
    If you want to go the latter route, Apple provides a bunch of low level frameworks for this: Accelerate, BNNS, ML Compute and MetalPerformanceShaderGraph. CoreML also supports some limited fine tuning capabilities. There are also 3rd party solutions, like DL4S (which I created).
  • Any good open source projects that uses Swift?
    3 projects | /r/swift | 7 Jan 2021
    I actually have one project in this list myself (DL4S), but the project is probably not very beginner friendly to work on.

What are some alternatives?

When comparing spokestack-ios and DL4S you can also consider the following projects:

CoreML-Models - Largest list of models for Core ML (for iOS 11+)

Swift-AI - The Swift machine learning library.

SwiftSpeech - A speech recognition framework designed for SwiftUI.

SwiftCoreMLTools - A Swift library for creating and exporting CoreML Models in Swift

MLKit - A simple machine learning framework written in Swift 🤖

Caffe2

Bender - Easily craft fast Neural Networks on iOS! Use TensorFlow models. Metal under the hood.

CoreML-samples - Sample code for Core ML using ResNet50 provided by Apple and a custom model generated by coremltools.

AIToolbox - A toolbox of AI modules written in Swift: Graphs/Trees, Support Vector Machines, Neural Networks, PCA, K-Means, Genetic Algorithms