NVIDIA GeForce RTX 2060 SUPER
vs
Intel Arc B570

vs

GPU Comparison Result

Below are the results of a comparison of NVIDIA GeForce RTX 2060 SUPER and Intel Arc B570 video cards based on key performance characteristics, as well as power consumption and much more.

Advantages

  • Higher Bandwidth: 448.0 GB/s (448.0 GB/s vs 384.0GB/s)
  • Higher Boost Clock: 2600 MHz (1650MHz vs 2600 MHz)
  • Larger Memory Size: 10GB (8GB vs 10GB)
  • More Shading Units: 2304 (2176 vs 2304)
  • Newer Launch Date: December 2024 (July 2019 vs December 2024)

Basic

NVIDIA
Label Name
Intel
July 2019
Launch Date
December 2024
Desktop
Platform
Desktop
GeForce RTX 2060 SUPER
Model Name
Arc B570
GeForce 20
Generation
Battlemage(Arc 5)
1470MHz
Base Clock
1700 MHz
1650MHz
Boost Clock
2600 MHz
PCIe 3.0 x16
Bus Interface
PCIe 4.0 x8
10,800 million
Transistors
21.7 billion
34
RT Cores
18
272
Tensor Cores
Tensor Cores are specialized processing units designed specifically for deep learning, providing higher training and inference performance compared to FP32 training. They enable rapid computations in areas such as computer vision, natural language processing, speech recognition, text-to-speech conversion, and personalized recommendations. The two most notable applications of Tensor Cores are DLSS (Deep Learning Super Sampling) and AI Denoiser for noise reduction.
288
136
TMUs
Texture Mapping Units (TMUs) serve as components of the GPU, which are capable of rotating, scaling, and distorting binary images, and then placing them as textures onto any plane of a given 3D model. This process is called texture mapping.
144
TSMC
Foundry
TSMC
12 nm
Process Size
6 nm
Turing
Architecture
Generation 12.7

Memory Specifications

8GB
Memory Size
10GB
GDDR6
Memory Type
GDDR6
256bit
Memory Bus
The memory bus width refers to the number of bits of data that the video memory can transfer within a single clock cycle. The larger the bus width, the greater the amount of data that can be transmitted instantaneously, making it one of the crucial parameters of video memory. The memory bandwidth is calculated as: Memory Bandwidth = Memory Frequency x Memory Bus Width / 8. Therefore, when the memory frequencies are similar, the memory bus width will determine the size of the memory bandwidth.
160bit
1750MHz
Memory Clock
2400 MHz
448.0 GB/s
Bandwidth
Memory bandwidth refers to the data transfer rate between the graphics chip and the video memory. It is measured in bytes per second, and the formula to calculate it is: memory bandwidth = working frequency × memory bus width / 8 bits.
384.0GB/s

Display and Media

1x DVI
1x HDMI 2.0
2x DisplayPort 1.4a
1x USB Type-C
Outputs
1x HDMI 2.13x DisplayPort 2.0

Theoretical Performance

105.6 GPixel/s
Pixel Rate
Pixel fill rate refers to the number of pixels a graphics processing unit (GPU) can render per second, measured in MPixels/s (million pixels per second) or GPixels/s (billion pixels per second). It is the most commonly used metric to evaluate the pixel processing performance of a graphics card.
208.0 GPixel/s
224.4 GTexel/s
Texture Rate
Texture fill rate refers to the number of texture map elements (texels) that a GPU can map to pixels in a single second.
374.4 GTexel/s
14.36 TFLOPS
FP16 (half)
An important metric for measuring GPU performance is floating-point computing capability. Half-precision floating-point numbers (16-bit) are used for applications like machine learning, where lower precision is acceptable. Single-precision floating-point numbers (32-bit) are used for common multimedia and graphics processing tasks, while double-precision floating-point numbers (64-bit) are required for scientific computing that demands a wide numeric range and high accuracy.
23.96 TFLOPS
224.4 GFLOPS
FP64 (double)
An important metric for measuring GPU performance is floating-point computing capability. Double-precision floating-point numbers (64-bit) are required for scientific computing that demands a wide numeric range and high accuracy, while single-precision floating-point numbers (32-bit) are used for common multimedia and graphics processing tasks. Half-precision floating-point numbers (16-bit) are used for applications like machine learning, where lower precision is acceptable.
-
7.037 TFLOPS
FP32 (float)
An important metric for measuring GPU performance is floating-point computing capability. Single-precision floating-point numbers (32-bit) are used for common multimedia and graphics processing tasks, while double-precision floating-point numbers (64-bit) are required for scientific computing that demands a wide numeric range and high accuracy. Half-precision floating-point numbers (16-bit) are used for applications like machine learning, where lower precision is acceptable.
11.74 TFLOPS

Miscellaneous

34
SM Count
Multiple Streaming Processors (SPs), along with other resources, form a Streaming Multiprocessor (SM), which is also referred to as a GPU's major core. These additional resources include components such as warp schedulers, registers, and shared memory. The SM can be considered the heart of the GPU, similar to a CPU core, with registers and shared memory being scarce resources within the SM.
-
2176
Shading Units
The most fundamental processing unit is the Streaming Processor (SP), where specific instructions and tasks are executed. GPUs perform parallel computing, which means multiple SPs work simultaneously to process tasks.
2304
64 KB (per SM)
L1 Cache
-
4MB
L2 Cache
10 MB
175W
TDP
150W
1.3
Vulkan Version
Vulkan is a cross-platform graphics and compute API by Khronos Group, offering high performance and low CPU overhead. It lets developers control the GPU directly, reduces rendering overhead, and supports multi-threading and multi-core processors.
1.3
3.0
OpenCL Version
3.0
4.6
OpenGL
4.6
7.5
CUDA
-
12 Ultimate (12_2)
DirectX
12 Ultimate (12_2)
1x 8-pin
Power Connectors
2x 8-pin
64
ROPs
The Raster Operations Pipeline (ROPs) is primarily responsible for handling lighting and reflection calculations in games, as well as managing effects like anti-aliasing (AA), high resolution, smoke, and fire. The more demanding the anti-aliasing and lighting effects in a game, the higher the performance requirements for the ROPs; otherwise, it may result in a sharp drop in frame rate.
80
6.6
Shader Model
6.6
450W
Suggested PSU
450 W

Benchmarks

FP32 (float) / TFLOPS
GeForce RTX 2060 SUPER
7.037
Arc B570
11.74 +67%
3DMark Steel Nomad
GeForce RTX 2060 SUPER
1984
Arc B570
2645 +33%
Blender
GeForce RTX 2060 SUPER
2496 +77%
Arc B570
1408.8