GEFORCE

NVIDIA GRID M10-8Q

NVIDIA graphics card specifications and benchmark scores

8 GB
VRAM
1306
MHz Boost
225W
TDP
128
Bus Width

NVIDIA GRID M10-8Q Specifications

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GRID M10-8Q GPU Core

Shader units and compute resources

The NVIDIA GRID M10-8Q GPU core specifications define its raw processing power for graphics and compute workloads. Shading units (also called CUDA cores, stream processors, or execution units depending on manufacturer) handle the parallel calculations required for rendering. TMUs (Texture Mapping Units) process texture data, while ROPs (Render Output Units) handle final pixel output. Higher shader counts generally translate to better GPU benchmark performance, especially in demanding games and 3D applications.

Shading Units
640
Shaders
640
TMUs
40
ROPs
16
⏱️

GRID M10-8Q Clock Speeds

GPU and memory frequencies

Clock speeds directly impact the GRID M10-8Q's performance in GPU benchmarks and real-world gaming. The base clock represents the minimum guaranteed frequency, while the boost clock indicates peak performance under optimal thermal conditions. Memory clock speed affects texture loading and frame buffer operations. The GRID M10-8Q by NVIDIA dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.

Base Clock
1033 MHz
Base Clock
1,033 MHz
Boost Clock
1306 MHz
Boost Clock
1,306 MHz
Memory Clock
1300 MHz 5.2 Gbps effective
GDDR GDDR 6X 6X

NVIDIA's GRID M10-8Q Memory

VRAM capacity and bandwidth

VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The GRID M10-8Q's memory capacity determines how well it handles high-resolution textures and multiple displays. Memory bandwidth, measured in GB/s, affects how quickly data moves between the GPU and VRAM. Higher bandwidth improves performance in memory-intensive scenarios like 4K gaming. The memory bus width and type (GDDR6, GDDR6X, HBM) significantly influence overall GPU benchmark scores.

Memory Size
8 GB
VRAM
8,192 MB
Memory Type
GDDR5
VRAM Type
GDDR5
Memory Bus
128 bit
Bus Width
128-bit
Bandwidth
83.20 GB/s
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GRID M10-8Q by NVIDIA Cache

On-chip cache hierarchy

On-chip cache provides ultra-fast data access for the GRID M10-8Q, reducing the need to fetch data from slower VRAM. L1 and L2 caches store frequently accessed data close to the compute units. AMD's Infinity Cache (L3) dramatically increases effective bandwidth, improving GPU benchmark performance without requiring wider memory buses. Larger cache sizes help maintain high frame rates in memory-bound scenarios and reduce power consumption by minimizing VRAM accesses.

L1 Cache
64 KB (per SMM)
L2 Cache
2 MB
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GRID M10-8Q Theoretical Performance

Compute and fill rates

Theoretical performance metrics provide a baseline for comparing the NVIDIA GRID M10-8Q against other graphics cards. FP32 (single-precision) performance, measured in TFLOPS, indicates compute capability for gaming and general GPU workloads. FP64 (double-precision) matters for scientific computing. Pixel and texture fill rates determine how quickly the GPU can render complex scenes. While real-world GPU benchmark results depend on many factors, these specifications help predict relative performance levels.

FP32 (Float)
1.672 TFLOPS
FP64 (Double)
52.24 GFLOPS (1:32)
Pixel Rate
20.90 GPixel/s
Texture Rate
52.24 GTexel/s
🏗️

Maxwell Architecture & Process

Manufacturing and design details

The NVIDIA GRID M10-8Q is built on NVIDIA's Maxwell architecture, which defines how the GPU processes graphics and compute workloads. The manufacturing process node affects power efficiency, thermal characteristics, and maximum clock speeds. Smaller process nodes pack more transistors into the same die area, enabling higher performance per watt. Understanding the architecture helps predict how the GRID M10-8Q will perform in GPU benchmarks compared to previous generations.

Architecture
Maxwell
GPU Name
GM107
Process Node
28 nm
Foundry
TSMC
Transistors
1,870 million
Die Size
148 mm²
Density
12.6M / mm²
🔌

NVIDIA's GRID M10-8Q Power & Thermal

TDP and power requirements

Power specifications for the NVIDIA GRID M10-8Q determine PSU requirements and thermal management needs. TDP (Thermal Design Power) indicates the heat output under typical loads, guiding cooler selection. Power connector requirements ensure adequate power delivery for stable operation during demanding GPU benchmarks. The suggested PSU wattage accounts for the entire system, not just the graphics card. Efficient power delivery enables the GRID M10-8Q to maintain boost clocks without throttling.

TDP
225 W
TDP
225W
Power Connectors
1x 8-pin
Suggested PSU
550 W
📐

GRID M10-8Q by NVIDIA Physical & Connectivity

Dimensions and outputs

Physical dimensions of the NVIDIA GRID M10-8Q are critical for case compatibility. Card length, height, and slot width determine whether it fits in your chassis. The PCIe interface version affects bandwidth for communication with the CPU. Display outputs define monitor connectivity options, with modern cards supporting multiple high-resolution displays simultaneously. Verify these specifications against your case and motherboard before purchasing to ensure a proper fit.

Slot Width
Dual-slot
Length
267 mm 10.5 inches
Bus Interface
PCIe 3.0 x16
Display Outputs
No outputs
Display Outputs
No outputs
🎮

NVIDIA API Support

Graphics and compute APIs

API support determines which games and applications can fully utilize the NVIDIA GRID M10-8Q. DirectX 12 Ultimate enables advanced features like ray tracing and variable rate shading. Vulkan provides cross-platform graphics capabilities with low-level hardware access. OpenGL remains important for professional applications and older games. CUDA (NVIDIA) and OpenCL enable GPU compute for video editing, 3D rendering, and scientific applications. Higher API versions unlock newer graphical features in GPU benchmarks and games.

DirectX
12 (11_0)
DirectX
12 (11_0)
OpenGL
4.6
OpenGL
4.6
Vulkan
1.4
Vulkan
1.4
OpenCL
3.0
CUDA
5.0
Shader Model
6.7 (5.1)
📦

GRID M10-8Q Product Information

Release and pricing details

The NVIDIA GRID M10-8Q is manufactured by NVIDIA as part of their graphics card lineup. Release date and launch pricing provide context for comparing GPU benchmark results with competing products from the same era. Understanding the product lifecycle helps evaluate whether the GRID M10-8Q by NVIDIA represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.

Manufacturer
NVIDIA
Release Date
May 2016
Production
End-of-life

GRID M10-8Q Benchmark Scores

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No benchmark data available for this GPU.

About NVIDIA GRID M10-8Q

N

What’s the deal with the NVIDIA GRID M10-8Q by NVIDIA? Let’s break it down. This GPU

    So, how does the NVIDIA GRID M10-8Q by NVIDIA stack up in terms of gaming? With 8 GB of GDDR5 memory and a boost clock of 1306 MHz, it’s built for more than just casual play. But wait does that VRAM capacity and bandwidth actually matter for modern games? The 225W TDP suggests it’s serious, but is it overkill for your average setup? Its Maxwell architecture might feel a bit dated
    • NVIDIA GRID M10-8Q by NVIDIA boasts

      Is the NVIDIA GRID M10-8Q by NVIDIA worth the hype? It’s got a 28nm process and PCIe 3.0 x16 interface, but does that translate to real-world performance? With a base clock of 1033 MHz, it’s not the fastest, but the 1306 MHz boost clock might keep it competitive. Still, without benchmark data, how do you know if it’s a solid choice? The 8 GB GDDR5 is a plus, but is it enough for today’s AAA titles? For a card released in 2016, the NVIDIA GRID M10-8Q by NVIDIA feels like a relic, but maybe it’s still a hidden gem. If you’re looking for a balance between performance and power, the NVIDIA GRID M10-8Q by NVIDIA might be worth a second glance.

The AMD Equivalent of GRID M10-8Q

Looking for a similar graphics card from AMD? The AMD Radeon RX 480 offers comparable performance and features in the AMD lineup.

AMD Radeon RX 480

AMD • 8 GB VRAM

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