DeepSeekv4 Pro 0813 1.6T · Performance per Dollar

DeepSeekv4 Pro 0813 1.6T — MI355X vs Vera Rubin NVL72 Performance per Dollar

Cost per million tokens of MI355X (AMD CDNA 4) versus Vera Rubin NVL72 (NVIDIA Vera Rubin) on DeepSeekv4 Pro 0813 1.6T. Large-hyperscaler-volume ownership TCO normalized by total tokens — performance per dollar across LLM workloads. Pick the more cost-efficient SKU at every target interactivity level. Use the chart controls below to switch sequences, precisions, and metrics — same interactions as the main inference chart.

MI355X costs $0.10 per million tokens at 35 tok/s/user on DeepSeekv4 Pro 0813 1.6T; we have no Vera Rubin NVL72 benchmark data at this exact target.

At 68 tok/s/user on DeepSeekv4 Pro 0813 1.6T, MI355X comes in at $0.24 per million tokens. Vera Rubin NVL72 hasn't been benchmarked at this operating point.

Only MI355X has cost data at 101 tok/s/user on DeepSeekv4 Pro 0813 1.6T — $0.50 per million tokens. Vera Rubin NVL72 is unmeasured at this target. (Numbers reflect the default 8k/1k · fp4 selection for this URL — table and chart below update if you change sequence, precision, or model in the controls.)

Chip pricing (owning hyperscaler): MI355X $1.50/chip/hr · Vera Rubin NVL72 $3.61/chip/hr. Source: SemiAnalysis Market July 2026 Pricing Surveys & AI Cloud TCO Model.

View full latency + throughput comparison →

DeepSeekv4 Pro 0813 1.6T: MI355X versus Vera Rubin NVL72 cost per million tokens at matched interactivity levels
MI355X versus Vera Rubin NVL72 cost per million tokens for this comparison's canonical default workload. Lower cost indicates better performance per dollar.
Interpolated from real benchmark data. Edit target interactivity values below to compare at different operating points.
Metric
Interactivity (tok/s/user)
Interactivity (tok/s/user)
Interactivity (tok/s/user)
Dollar per Million Tokens
MI355X:$0.097Vera Rubin NVL72:
MI355X:$0.241Vera Rubin NVL72:
MI355X:$0.502Vera Rubin NVL72:
Concurrency
MI355X:~512Vera Rubin NVL72:
MI355X:~32Vera Rubin NVL72:
MI355X:~8Vera Rubin NVL72:

Inference Performance

Agentic inference metrics from the AgentX scenario and fixed-sequence inference metrics across models, hardware configurations, and serving parameters.

Benchmark Config

DeepSeek V4 Pro 0813 1.6T 8K / 1K Cost per Million Total Tokens vs. Interactivity

Cost Tier:
Source:
SemiAnalysis InferenceX™

TCO $/chip/hr:

Source: SemiAnalysis Market July 2026 Pricing Surveys & AI Cloud TCO Model

Note: Disaggregated inference configurations (e.g., MoRI SGLang, Dynamo TRTLLM) calculate cost per million tokens per decode chip or per prefill chip, rather than per total chip count. This makes direct token cost comparison with aggregated configs not an apples-to-apples comparison.

Note: Disaggregated inference configurations (e.g., MoRI SGLang, Dynamo TRTLLM) calculate input throughput per decode chip or per prefill chip, rather than per total chip count. This makes direct input throughput comparison with aggregated configs not an apples-to-apples comparison.

Note: Disaggregated inference configurations (e.g., MoRI SGLang, Dynamo TRTLLM) calculate output throughput per decode chip or per prefill chip, rather than per total chip count. This makes direct output throughput comparison with aggregated configs not an apples-to-apples comparison.

Note: Disaggregated inference configurations (e.g., MoRI SGLang, Dynamo TRTLLM) calculate power per decode chip or per prefill chip, rather than per total chip count. This makes direct power comparison with aggregated configs not an apples-to-apples comparison.

Note: Disaggregated inference configurations (e.g., MoRI SGLang, Dynamo TRTLLM) calculate Joules per decode chip or per prefill chip, rather than per total chip count. This makes direct Joules per token comparison with aggregated configs not an apples-to-apples comparison.

No data available

Matching measurements exist, but their chip series are hidden.

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1 The ATOM engine is promising, however it has yet to serve production tokens. It is still in its infant stage.