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Intelion/gpuark-gpu-dataset

GPU Ark — open GPU specifications & benchmarks dataset Specifications of 13,566 GPUs released between 1999 and 2025 — from the GeForce 256 to NVIDIA Blackwell and AMD Instinct MI355X — plus 993 third-party benchmark results. Curated and maintained by GPU Ark (a GPU catalog & price comparison project). Canonical source and always-fresh copy: https://gpuark.com/datasets/. Files File Rows What gpuark-gpu-specs.csv 13,566 One row per GPU — public spec… See the full description on the dataset page: https://huggingface.co/datasets/Intelion/gpuark-gpu-dataset.

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Dataset Card

GPU Ark — open GPU specifications & benchmarks dataset

Specifications of 13,566 GPUs released between 1999 and 2025 — from the GeForce 256 to NVIDIA Blackwell and AMD Instinct MI355X — plus 993 third-party benchmark results. Curated and maintained by [GPU Ark](https://gpuark.com/) (a GPU catalog & price comparison project). Canonical source and always-fresh copy: <https://gpuark.com/datasets/>.

Files

FileRowsWhat
gpuark-gpu-specs.csv13,566One row per GPU — public spec columns
gpuark-benchmarks.csv993Third-party benchmark results, join on gpu_id
gpuark-gpu-dataset.sqlite—Both tables (gpu_specs, benchmarks) for SQL

Key columns (gpu_specs)

id, name, slug, vendor (nvd/amd/int), manufacturer, arch_name, card_release_date, proc_foundry, proc_process_size, proc_transistors, cores, tensor_cores, base_clock, boost_clock, ram, ram_type, bus_width, ram_bandwidth, fp16/fp32/fp64/bf16/tf32/int8_performance, tdp, multi_gpu, api_cuda, is_retail_board, gpi_value.

Quick start

python
import pandas as pd
df = pd.read_csv("gpuark-gpu-specs.csv", parse_dates=["card_release_date"])
nv = df[df.vendor == "nvd"]
# peak FP32 flagship per year
print(nv.groupby(nv.card_release_date.dt.year).fp32_performance.max())

Known issues (read before drawing conclusions)

  • —`vendor` is set for ~2,360 of ~13,566 rows (nvd/amd/int); the rest are mostly partner/OEM board variants without a chip-vendor tag. Filter on vendor for vendor-level work.
  • —`ram` (VRAM) unit is inconsistent across eras — older cards store MB, newer store GB (a value ≥ 256 on a pre-2018 card is almost certainly MB).
  • —`fp16`/`bf16`/`int8` are sparse and not consistently tensor-vs-non-tensor across vendors (NVIDIA Ampere+ tensor figures are often listed with structured sparsity = 2× dense). Don't compare low-precision peaks cross-vendor without checking the card.
  • —`card_release_date` has a handful of implausible years — filter to 1998..2025.
  • —`is_retail_board=True` = AIB/OEM editions of a reference chip (near-duplicates).

License & attribution

CC BY 4.0 — free to use with attribution to [gpuark.com](https://gpuark.com/).

Citation

GPU Ark (2026). GPU specifications & benchmarks dataset. https://gpuark.com/datasets/