Calculate the TPS of the A800 SXM4 80 GB on local AI models
Every model in our catalogue assessed against this card at the context length and minimum quality you choose. Speed is an estimate for a single request, calculated from this card's memory bandwidth and the size of each model once compressed.
Calculated for this card
Largest model it holds
dots.llm1
142B · Q3_K_M · 16.4 tok/s
Fastest model
Gemma 3 QAT 1B
864 tok/s · 1B
What AI models can a A800 SXM4 80 GB run?
Set the inputs, read the answer
More context means more memory for the conversation cache. Speed is for a fresh conversation and does not change with this setting.
Hides models that would only fit by being compressed below this point.
609 models match
Calculating| Quantisation | Fit | ||||||
|---|---|---|---|---|---|---|---|
|
864
tok/s
734–1,037 |
Gemma 3 1B | 1B | Mar 2025 | 1.8 GB | 33k tokens | Q8_0 | Comfortable |
|
864
tok/s
734–1,037 |
Gemma 3 QAT 1B | 1B | Apr 2025 | 1.8 GB | 33k tokens | Q8_0 | Comfortable |
|
864
tok/s
518–1,382 · low confidence |
HGRN 1B (WT 103) ≈ | 1B | Nov 2023 | 1.8 GB | 131k tokens ? | Q8_0 | Comfortable |
|
864
tok/s
518–1,382 · low confidence |
LLama 3..2 Typhoon 2 1B ≈ | 1B | Dec 2024 | 1.8 GB | 131k tokens ? | Q8_0 | Comfortable |
|
864
tok/s
518–1,382 · low confidence |
OLMo-1B ≈ | 1B | Feb 2024 | 1.8 GB | 131k tokens ? | Q8_0 | Comfortable |
|
864
tok/s
518–1,382 · low confidence |
Pythia-1b ≈ | 1B | Apr 2023 | 1.8 GB | 131k tokens ? | Q8_0 | Comfortable |
|
800
tok/s
480–1,280 · low confidence |
OpenELM-1.1B ≈ | 1.1B | May 2024 | 1.9 GB | 131k tokens ? | Q8_0 | Comfortable |
|
785
tok/s
471–1,257 · low confidence |
DeciCoder-1B ≈ | 1.1B | Aug 2023 | 1.9 GB | 131k tokens ? | Q8_0 | Comfortable |
|
785
tok/s
471–1,257 · low confidence |
SantaCoder ≈ | 1.1B | Jan 2023 | 1.9 GB | 131k tokens ? | Q8_0 | Comfortable |
|
785
tok/s
471–1,257 · low confidence |
TinyLlama-1.1B (1T token checkpoint) ≈ | 1.1B | Oct 2023 | 1.9 GB | 131k tokens ? | Q8_0 | Comfortable |
|
785
tok/s
471–1,257 · low confidence |
TinyLlama-1.1B (3T token checkpoint) ≈ | 1.1B | Oct 2023 | 1.9 GB | 131k tokens ? | Q8_0 | Comfortable |
|
720
tok/s
432–1,152 · low confidence |
EXAONE 4.0 (1.2B) ≈ | 1.2B | Jul 2025 | 2.0 GB | 131k tokens ? | Q8_0 | Comfortable |
|
720
tok/s
432–1,152 · low confidence |
MinerU2.5 ≈ | 1.2B | Sep 2025 | 2.0 GB | 131k tokens ? | Q8_0 | Comfortable |
|
720
tok/s
432–1,152 · low confidence |
Pleias 1.0 1.2B ≈ | 1.2B | Dec 2024 | 2.0 GB | 131k tokens ? | Q8_0 | Comfortable |
|
720
tok/s
432–1,152 · low confidence |
Pleias-RAG-1B ≈ | 1.2B | Apr 2025 | 2.0 GB | 131k tokens ? | Q8_0 | Comfortable |
|
702
tok/s
597–843 |
Llama 3.2 1B | 1.2B | Sep 2024 | 2.2 GB | 131k tokens | Q8_0 | Comfortable |
|
693
tok/s
416–1,108 · low confidence |
MiniCPM-1.2B ≈ | 1.2B | Jun 2024 | 2.0 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
DeepSeek Coder 1.3B ≈ | 1.3B | Jan 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
DeepSeek-VL-1.3B ≈ | 1.3B | Mar 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
DigiRL ≈ | 1.3B | Jun 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
GLA Transformer 1.3B ≈ | 1.3B | Aug 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
Janus 1.3B ≈ | 1.3B | Oct 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
Kosmos-2.5 ≈ | 1.3B | Aug 2024 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
Otter ≈ | 1.3B | May 2023 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
|
665
tok/s
399–1,063 · low confidence |
Phi-1 ≈ | 1.3B | Oct 2023 | 2.1 GB | 131k tokens ? | Q8_0 | Comfortable |
Speeds are estimates for a single request — one conversation at a time — calculated from memory bandwidth, model size and quantisation. Real throughput varies with the inference runtime and its version. Figures published by hardware vendors measure many simultaneous requests and are much higher.
On record
A800 SXM4 80 GB full specification
Everything on record for this board, ordered by how much it bears on running a language model rather than by how a spec sheet would list it. Memory comes first because it decides the outcome; the rest is context.
Memory
The two specifications that decide what this card can run and how quickly. Capacity sets which models fit; bandwidth sets how many tokens per second they produce once they do.
- Memory size
- 80 GB
- Memory bandwidth
- 2,040 GB/s
- Memory type
- HBM2e
- Memory bus width
- 5,120 bit
- Memory clock
- 1.59 GHz
The chip
Which processor is on the board and how it was manufactured. A smaller process size generally means more performance for the same power.
- Graphics processor
- GA100
- Architecture
- Ampere
- Generation
- Server Ampere(Axx)
- Foundry
- TSMC
- Process size
- 7 nm
- Transistors
- 54.2 billion
- Transistor density
- 65,600 K/mm²
- Die size
- 826 mm²
- Package
- BGA-2743
- Released
- 11 August 2022
Clock speeds
How fast the processor runs. Worth far less here than on a gaming benchmark: generating text is limited by memory bandwidth, so a higher clock barely moves the result.
- Base clock
- 1.16 GHz
- Boost clock
- 1.41 GHz
Processing units
What the chip contains. These drive graphics performance and matter mainly for processing a long prompt rather than for producing the answer.
- Shading units
- 6,912
- Texture mapping units
- 432
- Render output units
- 160
- Streaming multiprocessors
- 108
- Tensor cores
- 432
- L1 cache
- 192 KB
- L2 cache
- 40 MB
Theoretical performance
Peak arithmetic rates published for the board. These are ceilings that no real workload reaches, and generating text reaches a small fraction of them because it is limited by memory rather than arithmetic.
- Half precision (FP16)
- 78 TFLOPS
- Single precision (FP32)
- 19.5 TFLOPS
- Double precision (FP64)
- 9.7 TFLOPS
- Pixel rate
- 226 GPixel/s
- Texture rate
- 609 GTexel/s
The board
What it takes to physically install and power the card — the practical constraints that decide whether it fits the machine you already own.
- Power draw (TDP)
- 400 W
- Suggested power supply
- 800 W
- Power connectors
- None
- Bus interface
- PCIe 4.0 x16
- Slot width
- SXM Module
Software support
Which graphics and compute interfaces the card supports. CUDA compute capability is the one that bears on inference: below 7.0 there are no tensor cores, and modern inference software falls back to slower code paths.
- CUDA compute capability
- 8.0
- OpenCL
- 3.0
Listings
Where to buy a A800 SXM4 80 GB
No vendor is currently listing this card. Listings come from vendors who publish them here directly — browse the vendor directory to see who is selling what.
What the numbers mean
Capacity and bandwidth
Memory
80 GB
Bandwidth
2,040 GB/s
Largest model
dots.llm1
With 80 GB of HBM2e, the A800 SXM4 80 GB is in the class of hardware that holds the largest open-weight models without splitting them across machines. Roughly 72 GB of that is reachable by an inference runtime once the driver takes its share.
Its 2,040 GB/s across a 5,120-bit bus is at the top of what exists. Since each token means reading the whole model out of memory once, that translates almost directly into generation speed — this card is bandwidth-rich enough that model size stops being the limiting factor long before the bus does.
The figure is the memory clock — 1.59 GHz here — multiplied by the bus width. It is why core counts predict generation speed so poorly.
In practice that combination tops out at dots.llm1 — 142B, compressed to Q3_K_M, generating around 16.4 tokens per second.
The chip and how it was built
The A800 SXM4 80 GB is built on the GA100 graphics processor, using NVIDIA's Ampere architecture, as part of the Server Ampere(Axx) generation.
The chip is manufactured by TSMC, on a 7 nm process, with a die measuring 826 mm², holding 54.2 billion transistors. A smaller process generally means more performance for the same power, though for language models it matters far less than the memory subsystem.
It was released in August 2022, roughly 3 years ago. Inference software support tends to follow hardware by a year or two, so a card of this age generally has mature, well-optimised code paths available to it.
Compute throughput, and why it matters less than it looks
FP16
78 TFLOPS
FP64
9.7 TFLOPS
Tensor cores
432
On paper the A800 SXM4 80 GB reaches 78 TFLOPS at half precision and 19.5 TFLOPS at single precision. These are peak figures no real workload sustains, and generating text reaches only a small fraction of them — decoding is limited by memory rather than arithmetic, which is why a card can look enormously powerful here and still produce tokens at an ordinary rate.
Double-precision throughput is 9.7 TFLOPS. It has no bearing on running a language model — no inference runtime uses it — but it separates datacentre parts from consumer ones, since the latter deliberately restrict it.
The card carries 432 tensor cores across 108 streaming multiprocessors. These accelerate the matrix arithmetic at the heart of a transformer, and they are what make prompt processing — reading a long document before answering — dramatically faster than it would otherwise be.
Clocks run from 1.16 GHz at base to 1.41 GHz boosted. Worth far less here than on a gaming benchmark: raising the clock speeds up the arithmetic, and the arithmetic is not what generation is waiting on.
Cache and processing units
The A800 SXM4 80 GB has 192 KB of L1 cache, backed by 40 MB of L2. Cache absorbs a share of the memory traffic that would otherwise hit the main bus, which is the one place on this page where a number other than bandwidth quietly affects generation speed — a large L2 lets more of the working set stay close to the cores.
There are 6,912 shading units, 432 texture mapping units, and 160 render output units. These drive graphics workloads and contribute to prompt processing, but they sit idle for much of the time a model spends generating a reply.
Power, size and installation
Power draw
400 W
The A800 SXM4 80 GB is rated at 400 W, with a 800 W power supply suggested for the whole system. Running a language model keeps a card busy in bursts rather than continuously — it draws hard while generating and idles between requests — so sustained draw over a working day is usually well below the rated figure.
The board occupies a sxm module. Worth checking against the case and power supply already in the machine, since the largest cards need considerably more of both than a typical desktop provides.
It connects over PCIe 4.0 x16. The interface governs how quickly a model is loaded from disk into the card, not how fast it runs once there, so a narrower link costs a few seconds at startup and nothing thereafter.
The extremes
The largest AI models a A800 SXM4 80 GB can run
The biggest open-weight models that fit on this card, newest first. Each is shown at the best compression the card can hold.
The fastest AI models on a A800 SXM4 80 GB
Where this card produces tokens quickest. Smaller models dominate here, because generating each token means reading the whole model out of memory once.
Step by step
How to work out the tokens per second of a A800 SXM4 80 GB
You do not have to calculate anything by hand — the gputps.com calculator on this page has already worked it out for every model this card can hold. Reading off the answer takes six steps.
-
01
Start with the model, not the specification
Every one of the 609 models this A800 SXM4 80 GB runs is in the table above. Search narrows it by name or by size.
-
02
Match the context to your work
Drag the slider to the conversation length you plan to work at. The cache grows with the conversation, and on 80 GB it is often what pushes a large model over the edge.
-
03
Choose how far you will compress
Each model is shown at the best compression this card can hold. A minimum quality hides the ones that only fit by being squeezed further than you would accept.
-
04
Take the range as the answer
Each speed is an estimate for a single conversation, with a range beneath it — 864 tok/s on Gemma 3 QAT 1B at the top end here. The same card and model vary by thirty to fifty per cent between inference runtimes.
-
05
Check the memory column before committing
Compare what each model needs with the 80 GB this card provides. Tight means it works today; comfortable means it still works when the conversation grows.
-
06
Cross-check against other hardware
Every model name in the table links to its own page, which runs the same calculation across every card we hold. That is where you see whether the A800 SXM4 80 GB is the right buy for it or merely a card that fits.
Answers
A800 SXM4 80 GB — common questions
What is the largest AI model a A800 SXM4 80 GB can run?
The largest model in our catalogue that fits on a A800 SXM4 80 GB is dots.llm1 at 142B parameters, compressed to Q3_K_M. It generates roughly 16.4 tokens per second and needs about 70.1 GB of the card's memory.
How many tokens per second does a A800 SXM4 80 GB produce?
It depends on the model. On a A800 SXM4 80 GB the fastest model we track is Gemma 3 QAT 1B at about 864 tokens per second, while larger models run proportionally slower because each token requires reading the whole model out of memory once. Speeds are estimates for a single conversation at a time.
Can a A800 SXM4 80 GB run a 7B model?
Yes. For example a A800 SXM4 80 GB runs Multi-Token Prediction 7B at Q8_0, using about 7.9 GB of memory and generating around 129 tokens per second.
Can a A800 SXM4 80 GB run a 13B model?
Yes. For example a A800 SXM4 80 GB runs DeepSeekMoE-16B at Q8_0, using about 17.5 GB of memory and generating around 300 tokens per second.
Can a A800 SXM4 80 GB run a 30B model?
Yes. For example a A800 SXM4 80 GB runs ERNIE-4.5-VL-28B-A3B at Q8_0, using about 29.2 GB of memory and generating around 171 tokens per second.
Can a A800 SXM4 80 GB run a 70B model?
Yes. For example a A800 SXM4 80 GB runs Qwen3-Coder-Next at Q6_K, using about 62.0 GB of memory and generating around 87.2 tokens per second.
How much memory does a A800 SXM4 80 GB have?
A A800 SXM4 80 GB has 80 GB of HBM2e memory. Around a tenth of that is reserved by the inference runtime and the driver, leaving roughly 72 GB available for a model and its conversation.
What is the memory bandwidth of a A800 SXM4 80 GB?
The A800 SXM4 80 GB has 2,040 GB/s of memory bandwidth, across a 5,120-bit memory bus. This is the single best predictor of how fast it generates text, because producing each token means reading the entire model out of memory once.
What type of memory does a A800 SXM4 80 GB use?
It uses HBM2e clocked at 1.59 GHz. HBM types are found on datacentre accelerators and carry far more bandwidth than the GDDR used on desktop cards, which is why they generate tokens considerably faster at the same capacity.
Who makes the A800 SXM4 80 GB?
The A800 SXM4 80 GB is a NVIDIA product, with the chip manufactured by TSMC, on a 7 nm process.
When was the A800 SXM4 80 GB released?
The A800 SXM4 80 GB was released in August 2022.
How much power does a A800 SXM4 80 GB use?
The A800 SXM4 80 GB has a rated board power of 400 W, and a 800 W system power supply is suggested. Generating text draws hard in bursts and idles between requests, so average consumption over a working session is normally well below the rated figure.
How much cache does a A800 SXM4 80 GB have?
The A800 SXM4 80 GB has 192 KB of L1 cache, and 40 MB of L2 cache. Cache absorbs part of the memory traffic that would otherwise reach the main bus, so a larger L2 gives a modest lift to generation speed beyond what bandwidth alone predicts.
What are the TFLOPS of a A800 SXM4 80 GB?
The A800 SXM4 80 GB is rated at 78 TFLOPS at half precision and 19.5 TFLOPS at single precision. These are peak arithmetic ceilings rather than achievable rates, and text generation reaches only a small fraction of them because it is limited by memory bandwidth instead.
How many tensor cores does a A800 SXM4 80 GB have?
The A800 SXM4 80 GB has 432 tensor cores across 108 streaming multiprocessors. They accelerate the matrix arithmetic a transformer is built from, which mainly speeds up processing a long prompt rather than producing the reply.
Does the A800 SXM4 80 GB support CUDA?
Yes. The A800 SXM4 80 GB reports CUDA compute capability 8.0. Capability 7.0 and above has tensor cores, which modern inference software uses; below that it falls back to slower code paths for quantised models.
What bus interface does the A800 SXM4 80 GB use?
It uses PCIe 4.0 x16. This governs how fast a model is loaded onto the card rather than how fast it runs once loaded, so it costs a few seconds at startup and nothing during generation.
Is the A800 SXM4 80 GB good for running local AI models?
Its memory is large enough for models most desktop hardware cannot touch and its bandwidth puts it among the fastest hardware available for generation. In total it runs 609 of the models we track. Whether that is enough depends entirely on which model you want — the table above answers that directly.
Can a A800 SXM4 80 GB run a model that does not fit in its memory?
It can be split, with the overflow held in system memory — but that part drags the whole thing down, and none of the 80 GB figures on this page assume it.
Would two A800 SXM4 80 GB cards be twice as fast?
No. A second A800 SXM4 80 GB doubles the memory to 160 GB, which lets you hold models neither could hold alone, but generation does not split that way. These figures describe one card.
What AI models can a A800 SXM4 80 GB run?
609 of the 679 open-weight language models we track fit on a A800 SXM4 80 GB and can be run locally on it. The table on this page lists every one, with the memory it needs, the quantisation it runs at and an estimated generation speed.
The other direction
Looking at it from the other side?
This page starts from the hardware. If you already know which model you want and need to know what it takes to run it, start from the model instead.