MiniMax M2.5/M2.7 · Performance per Dollar

MiniMax M2.5/M2.7 — B300 vs H200 Performance per Dollar

Cost per million tokens of B300 (NVIDIA Blackwell) versus H200 (NVIDIA Hopper) on MiniMax M2.5/M2.7. Owning-hyperscaler TCO normalized by output 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.

B300: $0.13 per million tokens. H200: $0.32. Both at 52 tok/s/user on MiniMax M2.5/M2.7, with B300 138% cheaper.

Around the middle of the 25–134 tok/s/user interactivity band — at 80 tok/s/user — B300 runs $0.42 per million tokens on MiniMax M2.5/M2.7 while H200 runs $0.58. B300 is the cheaper choice by 38%.

On MiniMax M2.5/M2.7 at 107 tok/s/user, the per-million math comes out to $0.69 for B300 and $1.11 for H200; B300 delivers 61% more output per dollar. (Numbers reflect the default 1k/1k · fp8 selection for this URL — table and chart below update if you change sequence, precision, or model in the controls.)

Chip pricing (owning hyperscaler): B300 $2.26/chip/hr · H200 $1.22/chip/hr. Source: SemiAnalysis Market July 2026 Pricing Surveys & AI Cloud TCO Model.

View full latency + throughput comparison →

MiniMax M2.5/M2.7: B300 versus H200 cost per million tokens at matched interactivity levels
B300 versus H200 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
B300:$0.133H200:$0.317
B300:$0.422H200:$0.582
B300:$0.687H200:$1.108
Concurrency
B300:~478H200:~42
B300:~42H200:~15
B300:~17H200:~6

Inference Performance

Inference performance metrics across different models, hardware configurations, and serving parameters.

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