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8月19日 的 AI Benchmark 應用程式分析

AI Benchmark

AI Benchmark

  • Ignatov Andrey
  • Google Play 商店
  • 免費版
  • 工具
Neural Image Generation, Face Recognition, Image Classification, Question Answering... Is your smartphone capable of running the latest Deep Neural Networks to perform these and many other AI-based tasks? Does it have a dedicated AI Chip? Is it fast enough? Run AI Benchmark to professionally evaluate its AI Performance! Current phone ranking: http://ai-benchmark.com/ranking AI Benchmark measures the speed, accuracy, power consumption and memory requirements for several key AI, Computer Vision and NLP models. Among the tested solutions are Image Classification and Face Recognition methods, AI models performing neural image and text generation, neural networks used for Image / Video Super-Resolution and Photo Enhancement, as well as AI solutions used in autonomous driving systems and smartphones for real-time Depth Estimation and Semantic Image Segmentation. The visualization of the algorithms’ outputs allows to assess their results graphically and to get to know the current state-of-the-art in various AI fields. In total, AI Benchmark consists of 83 tests and 30 sections listed below: Section 1. Classification, MobileNet-V3 Section 2. Classification, Inception-V3 Section 3. Face Recognition, Swin Transformer Section 4. Classification, EfficientNet-B4 Section 5. Classification, MobileViT-V2 Sections 6/7. Parallel Model Execution, 8 x Inception-V3 Section 8. Object Tracking, YOLO-V8 Section 9. Optical Character Recognition, ViT Transformer Section 10. Semantic Segmentation, DeepLabV3+ Section 11. Parallel Segmentation, 2 x DeepLabV3+ Section 12. Semantic Segmentation, Segment Anything Section 13. Photo Deblurring, IMDN Section 14. Image Super-Resolution, ESRGAN Section 15. Image Super-Resolution, SRGAN Section 16. Image Denoising, U-Net Section 17. Depth Estimation, MV3-Depth Section 18. Depth Estimation, MiDaS 3.1 Section 19/20. Image Enhancement, DPED Section 21. Learned Camera ISP, MicroISP Section 22. Bokeh Effect Rendering, PyNET-V2 Mobile Section 23. FullHD Video Super-Resolution, XLSR Section 24/25. 4K Video Super-Resolution, VideoSR Section 26. Question Answering, MobileBERT Section 27. Neural Text Generation, Llama2 Section 28. Neural Text Generation, GPT2 Section 29. Neural Image Generation, Stable Diffusion V1.5 Section 30. Memory Limits, ResNet Besides that, one can load and test their own TensorFlow Lite deep learning models in the PRO Mode. A detailed description of the tests can be found here: http://ai-benchmark.com/tests.html Note: Hardware acceleration is supported on all mobile SoCs with dedicated NPUs and AI accelerators, including Qualcomm Snapdragon, MediaTek Dimensity / Helio, Google Tensor, HiSilicon Kirin, Samsung Exynos, and UNISOC Tiger chipsets. Starting from AI Benchmark v4, one can also enable GPU-based AI acceleration on older devices in the settings ("Accelerate" -> "Enable GPU Acceleration" / "Arm NN", OpenGL ES-3.0+ is required).
AI Benchmark

AI Benchmark 使用排名

基於 Similarweb 的算法,根據過去 28 天的安裝數和活躍用戶數進行計算。

所有類別 在
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工具 在
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每日活躍使用者

通過查看AI Benchmark 的下載量和每日活躍用戶數,分析 AI Benchmark 用戶的使用模式。

位使用者

通過查看AI Benchmark 的下載量和每日活躍用戶數,分析 AI Benchmark 用戶的使用模式。

解鎖每日活躍使用者
6月7月8月

隨時間變化的 AI Benchmark 排名統計

Similarweb 的使用排名和Google Play 商店AI Benchmark排名

使用排名

排名

AI Benchmark按國家/地區排名

AI Benchmark 在其主要類別中排名最高的國家

無可顯示數據

用戶興趣和熱門類別

AI Benchmark用戶使用的熱門類別和應用程式

無可顯示數據

的頂級競爭對手和替代方案

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8月 19, 2026