RADEON

AMD Radeon RX 6700M

AMD graphics card specifications and benchmark scores

10 GB
VRAM
2400
MHz Boost
135W
TDP
160
Bus Width
Ray Tracing

At a Glance

AMD
VRAM 10 GB
Boost Clock 2,400 MHz
Shaders 2,304
Bus Width 160-bit
TDP 135W
Memory Type GDDR6
RT Cores 36
Architecture RDNA 2.0
nm
Process 7 nm
Released May 2021

AMD Radeon RX 6700M Specifications

Radeon RX 6700M GPU Core

Shader units and compute resources

The AMD Radeon RX 6700M 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
2,304
Shaders
2,304
TMUs
144
ROPs
64
Compute Units
36

RX 6700M Clock Speeds

GPU and memory frequencies

Clock speeds directly impact the Radeon RX 6700M'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 Radeon RX 6700M by AMD dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.

Base Clock
1489 MHz
Base Clock
1,489 MHz
Boost Clock
2400 MHz
Boost Clock
2,400 MHz
Game Clock
2300 MHz
Memory Clock
2000 MHz 16 Gbps effective
GDDR GDDR 6X 6X

AMD's Radeon RX 6700M Memory

VRAM capacity and bandwidth

VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The Radeon RX 6700M'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
10 GB
VRAM
10,240 MB
Memory Type
GDDR6
VRAM Type
GDDR6
Memory Bus
160 bit
Bus Width
160-bit
Bandwidth
320.0 GB/s

Radeon RX 6700M by AMD Cache

On-chip cache hierarchy

On-chip cache provides ultra-fast data access for the RX 6700M, 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
128 KB per Array
L2 Cache
3 MB
Infinity Cache
80 MB

RX 6700M Theoretical Performance

Compute and fill rates

Theoretical performance metrics provide a baseline for comparing the AMD Radeon RX 6700M 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)
11.06 TFLOPS
FP64 (Double)
691.2 GFLOPS (1:16)
FP16 (Half)
22.12 TFLOPS (2:1)
Pixel Rate
153.6 GPixel/s
Texture Rate
345.6 GTexel/s

Radeon RX 6700M Ray Tracing & AI

Hardware acceleration features

The AMD Radeon RX 6700M includes dedicated hardware for ray tracing and AI acceleration. RT cores handle real-time ray tracing calculations for realistic lighting, reflections, and shadows in supported games. Tensor cores (NVIDIA) or XMX cores (Intel) accelerate AI workloads including DLSS, FSR, and XeSS upscaling technologies. These features enable higher visual quality without proportional performance costs, making the RX 6700M capable of delivering both stunning graphics and smooth frame rates in modern titles.

RT Cores
36

RDNA 2.0 Architecture & Process

Manufacturing and design details

The AMD Radeon RX 6700M is built on AMD's RDNA 2.0 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 RX 6700M will perform in GPU benchmarks compared to previous generations.

Architecture
RDNA 2.0
GPU Name
Navi 22
Process Node
7 nm
Foundry
TSMC
Transistors
17,200 million
Die Size
335 mm²
Density
51.3M / mm²

AMD's Radeon RX 6700M Power & Thermal

TDP and power requirements

Power specifications for the AMD Radeon RX 6700M 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 Radeon RX 6700M to maintain boost clocks without throttling.

TDP
135 W
TDP
135W
Power Connectors
None

Radeon RX 6700M by AMD Physical & Connectivity

Dimensions and outputs

Physical dimensions of the AMD Radeon RX 6700M 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
IGP
Bus Interface
PCIe 4.0 x16
Display Outputs
Portable Device Dependent
Display Outputs
Portable Device Dependent

AMD API Support

Graphics and compute APIs

API support determines which games and applications can fully utilize the AMD Radeon RX 6700M. 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 Ultimate (12_2)
DirectX
12 Ultimate (12_2)
OpenGL
4.6
OpenGL
4.6
Vulkan
1.4
Vulkan
1.4
OpenCL
2.1
Shader Model
6.8

Radeon RX 6700M Product Information

Release and pricing details

The AMD Radeon RX 6700M is manufactured by AMD 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 Radeon RX 6700M by AMD represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.

Manufacturer
AMD
Release Date
May 2021
Production
End-of-life
Predecessor
Polaris Mobile

Radeon RX 6700M Benchmark Scores

3dmark_3dmark_steel_nomad_dx12Source

3DMark Steel Nomad is the latest GPU benchmark running at native 4K with DirectX 12. It's roughly 3x more demanding than Time Spy, testing AMD Radeon RX 6700M with cutting-edge rendering techniques. The benchmark uses state-of-the-art graphics technologies to stress modern hardware.

3dmark_3dmark_steel_nomad_dx12 #112 of 188
1,845
10%
Max: 18,355

geekbench_metalSource

Geekbench Metal tests GPU compute using Apple's Metal API. This shows how AMD Radeon RX 6700M performs in macOS and iOS applications that leverage GPU acceleration. Metal provides low-overhead access to Apple silicon GPUs. Creative applications on Mac heavily utilize Metal for rendering and video processing.

geekbench_metal #21 of 161
91,911
41%
Max: 226,821

geekbench_openclSource

Geekbench OpenCL tests GPU compute performance using the cross-platform OpenCL API. This shows how AMD Radeon RX 6700M handles parallel computing tasks like video encoding and scientific simulations. OpenCL is widely supported across different GPU vendors and platforms.

geekbench_opencl #134 of 643
76,542
20%
Max: 388,405

geekbench_vulkanSource

Geekbench Vulkan tests GPU compute using the modern low-overhead Vulkan API. This shows how AMD Radeon RX 6700M performs with next-generation graphics and compute workloads. Vulkan offers better CPU efficiency than older APIs like OpenGL. Modern games and applications increasingly use Vulkan for cross-platform GPU acceleration.

geekbench_vulkan #93 of 444
90,816
24%
Max: 376,915

passmark_directx_10Source

DirectX 10 tests AMD Radeon RX 6700M with the graphics API introduced with Windows Vista. This shows performance in games from the 2007-2009 era that targeted this feature level.

passmark_directx_11Source

DirectX 11 tests AMD Radeon RX 6700M with the widely-used graphics API powering most current games. This shows mainstream gaming performance across the majority of today's titles. DX11 remains the most common rendering path even in newer games.

passmark_directx_12Source

DirectX 12 tests AMD Radeon RX 6700M with the modern low-overhead graphics API. This shows performance in next-gen games that leverage DX12 features like ray tracing and mesh shaders. DX12 offers better CPU efficiency through reduced driver overhead. AAA games increasingly require DX12 for advanced graphical features and optimal performance.

passmark_directx_9Source

DirectX 9 tests AMD Radeon RX 6700M performance with the legacy graphics API still used by older games. This shows compatibility and performance with classic titles from the 2000s era. Many indie games and older titles still rely on DirectX 9. Emulators and legacy software also benefit from good DX9 performance.

passmark_g2dSource

PassMark G2D tests 2D graphics performance for desktop rendering, UI elements, and productivity applications. This shows how AMD Radeon RX 6700M handles everyday visual tasks. Higher scores mean smoother desktop experience and faster UI rendering. Multi-monitor setups and high-DPI displays benefit from strong 2D performance.

passmark_g3dSource

PassMark G3D measures overall 3D graphics performance of AMD Radeon RX 6700M across DirectX 9 through 12 tests. This provides a comprehensive gaming capability score.

passmark_g3d #89 of 164
13,536
31%
Max: 44,065

passmark_gpu_computeSource

GPU compute tests parallel processing capability of AMD Radeon RX 6700M using OpenCL. This shows performance in video encoding, scientific computing, and AI workloads. Non-gaming applications increasingly leverage GPU compute for acceleration. Video editing, 3D rendering, and machine learning all benefit from strong GPU compute scores.

passmark_gpu_compute #97 of 162
5,191
18%
Max: 28,396

About AMD Radeon RX 6700M

The AMD Radeon RX 6700M sits in a peculiar spot in the mobile GPU hierarchy. With an average benchmark score of 25,180, it lands at the 69th percentile of all GPUs, placing it firmly in the upper-midrange tier of laptop graphics. The data shows a GPU that is essentially locked in a statistical dead heat with its nearest rivals, trading fractions of a percent in either direction. Its aggregate score sits within a razor-thin 0.4% band of four competing products, making it a compelling option for gamers who prioritize consistent, predictable performance over chasing the absolute top end of the mobile stack.

Benchmark Performance

The RX 6700M’s synthetic benchmark results paint a picture of a balanced performer across different API workloads. In 3DMark Steel Nomad, a demanding DirectX 12 test, it scores 1,845 points, demonstrating solid modern rendering capability. Geekbench results show strong compute potential, with a Vulkan score of 83,828 and an OpenCL score of 78,329, while the Metal score reaches 93,259. The PassMark suite reveals more granular strengths: the GPU achieves a G3D score of 13,536, with a particularly strong G2D score of 555, indicating robust 2D acceleration. Compute performance is respectable at 5,191 in PassMark’s GPU compute test.

The most striking aspect of the RX 6700M’s benchmark profile is its extreme proximity to its competitors. Against the AMD Radeon RX 6600, the RX 6700M trails by a negligible 0.2%, a difference that falls well within normal run-to-run variance. Conversely, it edges out the NVIDIA GeForce RTX 3060 Ti by 0.2%, showing that these two GPUs are effectively interchangeable in raw aggregate performance. The RX 6700M’s position becomes even more interesting when compared to the AMD Radeon 890M, an integrated graphics solution, which leads the discrete RX 6700M by only 0.3%. This suggests that modern integrated graphics have closed much of the gap in synthetic workloads, though real-world gaming scenarios may differ.

The FP32 throughput of 11.06 TFLOPS, combined with a texture rate of 345.6 GTexel/s and a pixel rate of 153.6 GPixel/s, provides the theoretical foundation for these scores. The 10 GB of GDDR6 memory on a 160-bit bus delivers 320.0 GB/s of bandwidth, which is sufficient for the GPU’s target resolutions. In legacy DirectX tests, the GPU shows interesting characteristics: a DirectX 9 score of 155 and a DirectX 10 score of 92, while DirectX 11 reaches 129 and DirectX 12 drops to 65. These numbers suggest the architecture is heavily optimized for modern APIs, with the 12 Ultimate (12_2) feature set delivering its best results in contemporary workloads.

Ray Tracing and Feature Set

The RX 6700M is built on the RDNA 2.0 architecture using TSMC’s 7 nm process, featuring the Navi 22 chip with 17,200 million transistors on a 335 mm² die. The GPU includes 36 dedicated ray tracing cores, providing hardware-accelerated ray tracing capabilities for supported titles. This places it in the generation of GPUs that made real-time ray tracing viable on mobile platforms, though the implementation is a first-generation effort from AMD in this space.

The feature set is anchored by DirectX 12 Ultimate support with the 12_2 feature level, ensuring compatibility with the latest DirectX 12 games that leverage mesh shaders, variable rate shading, and other advanced features. Vulkan 1.4 and OpenGL 4.6 support round out the API coverage, making the GPU versatile across different game engines and applications. The absence of dedicated tensor cores means the RX 6700M relies on its standard compute units for any machine learning or AI-accelerated workloads, which is a notable distinction from NVIDIA’s competing RTX lineup.

The GPU’s rendering capabilities are further defined by its 2,304 shading units, 144 texture mapping units, and 64 ROPs. The 22.12 TFLOPS of FP16 performance (at a 2:1 ratio) provides decent compute headroom for applications that can leverage half-precision math. The 7 nm process node contributes to the 135 W TDP, a figure that balances performance with thermal requirements for laptop integration. The PCIe 4.0 x16 bus interface ensures adequate bandwidth for data transfer between the GPU and system memory, though the portable device-dependent display outputs mean connectivity varies by laptop model.

How It Compares

AMD Radeon RX 6600: The RX 6700M trails the RX 6600 by a marginal 0.2% in average benchmark scores. This effectively makes them performance twins, with the RX 6700M offering similar capabilities in a mobile form factor. Gamers choosing between these two should base their decision on other factors, such as laptop design, cooling, and price, as the raw performance difference is imperceptible in real-world usage.

NVIDIA GeForce RTX 3060 Ti: The RX 6700M leads the RTX 3060 Ti by 0.2%, a razor-thin margin that puts them on equal footing. This comparison is notable because the RTX 3060 Ti is a desktop card, while the RX 6700M is mobile silicon. The near-identical scores suggest that laptop implementations of the RX 6700M can deliver desktop-class performance in this segment, though the NVIDIA card’s feature set, including tensor cores, may offer advantages in specific workloads.

AMD Radeon 890M: The integrated Radeon 890M leads the RX 6700M by 0.3%, which is a remarkable result for an iGPU. This comparison highlights how far integrated graphics have advanced, but the RX 6700M’s dedicated memory and higher sustained power delivery will likely favor it in extended gaming sessions. The delta is so small that the 890M represents a serious alternative for users who want to avoid discrete GPUs entirely.

AMD Radeon RX 580 2048SP: The RX 6700M trails this older Polaris-based card by 0.4%. While the RX 580 2048SP is a desktop GPU from an earlier generation, the RX 6700M’s newer architecture delivers similar aggregate performance with significantly better feature support, including ray tracing and DirectX 12 Ultimate. This comparison underscores the efficiency gains of RDNA 2.0 over older GCN-based designs.

FAQ

Q: How does the RX 6700M perform in DirectX 12 workloads?

A: The GPU scores 1,845 points in 3DMark Steel Nomad (a DirectX 12 test) and 65 in PassMark’s DirectX 12 test. Its DirectX 12 Ultimate (12_2) support ensures compatibility with the latest features.

Q: What is the memory configuration of the RX 6700M?

A: It features 10 GB of GDDR6 memory on a 160-bit bus, delivering 320.0 GB/s of bandwidth with a 2000 MHz memory clock (16 Gbps effective).

Q: Does the RX 6700M support hardware ray tracing?

A: Yes, it includes 36 dedicated ray tracing cores based on the RDNA 2.0 architecture, enabling hardware-accelerated ray tracing in compatible games.

Q: What is the power consumption of this GPU?

A: The RX 6700M has a 135 W TDP, making it suitable for high-performance gaming laptops. It uses no external power connectors, drawing power directly from the motherboard.

Q: How does the RX 6700M compare to the RTX 3060 Ti?

A: The RX 6700M leads by 0.2% in average benchmark scores, with scores of 25,180 versus 25,120. The difference is negligible, placing them at parity in aggregate performance.

Q: What API support does the RX 6700M offer?

A: It supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, providing broad compatibility with modern games and applications.

Who Should Consider It

The RX 6700M is aimed squarely at gamers who want solid 1080p performance with headroom for high refresh rates in competitive titles. Its 69th percentile standing means it outperforms roughly two-thirds of all GPUs, making it a strong choice for mainstream gaming laptops. The 10 GB VRAM capacity is well-suited for 1080p and entry-level 1440p gaming, where texture-heavy titles will appreciate the memory headroom. The 135 W TDP indicates that laptops equipped with this GPU will require robust cooling solutions, but the performance per watt is competitive given the 7 nm process.

For users who play a mix of esports titles and modern AAA games, the RX 6700M’s DirectX 12 Ultimate support ensures forward compatibility with future releases. The FP32 throughput of 11.06 TFLOPS provides ample compute power for high-refresh-rate gaming at medium to high settings in most titles. The 36 ray tracing cores enable ray-traced effects in supported games, though users should expect to adjust settings to maintain playable frame rates with RT enabled, as this is a first-generation RT implementation.

Laptop buyers seeking a balanced gaming experience without chasing the absolute flagship tier will find the RX 6700M compelling. Its performance parity with the RTX 3060 Ti and RX 6600 means that software features, display quality, and system design will likely differentiate laptops more than the GPU itself. The end-of-life production status suggests that laptops with this GPU may be available at attractive prices as inventory clears, though buyers should ensure the rest of the system meets their needs. For those who prioritize modern API support and hardware ray tracing over raw rasterization speed, the RX 6700M represents a capable, well-rounded option in the mobile GPU landscape.

The NVIDIA Equivalent of Radeon RX 6700M

Looking for a similar graphics card from NVIDIA? The NVIDIA GeForce RTX 3070 Ti offers comparable performance and features in the NVIDIA lineup.

NVIDIA GeForce RTX 3070 Ti

NVIDIA • 8 GB VRAM

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